1 1.48 msaitoh /* $NetBSD: segwrite.c,v 1.48 2020/05/14 08:34:17 msaitoh Exp $ */ 2 1.1 perseant /*- 3 1.1 perseant * Copyright (c) 2003 The NetBSD Foundation, Inc. 4 1.1 perseant * All rights reserved. 5 1.1 perseant * 6 1.1 perseant * This code is derived from software contributed to The NetBSD Foundation 7 1.1 perseant * by Konrad E. Schroder <perseant (at) hhhh.org>. 8 1.1 perseant * 9 1.1 perseant * Redistribution and use in source and binary forms, with or without 10 1.1 perseant * modification, are permitted provided that the following conditions 11 1.1 perseant * are met: 12 1.1 perseant * 1. Redistributions of source code must retain the above copyright 13 1.1 perseant * notice, this list of conditions and the following disclaimer. 14 1.1 perseant * 2. Redistributions in binary form must reproduce the above copyright 15 1.1 perseant * notice, this list of conditions and the following disclaimer in the 16 1.1 perseant * documentation and/or other materials provided with the distribution. 17 1.1 perseant * 18 1.1 perseant * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS 19 1.1 perseant * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED 20 1.1 perseant * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR 21 1.1 perseant * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS 22 1.1 perseant * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR 23 1.1 perseant * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF 24 1.1 perseant * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS 25 1.1 perseant * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN 26 1.1 perseant * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) 27 1.1 perseant * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE 28 1.1 perseant * POSSIBILITY OF SUCH DAMAGE. 29 1.1 perseant */ 30 1.1 perseant /* 31 1.1 perseant * Copyright (c) 1991, 1993 32 1.1 perseant * The Regents of the University of California. All rights reserved. 33 1.1 perseant * 34 1.1 perseant * Redistribution and use in source and binary forms, with or without 35 1.1 perseant * modification, are permitted provided that the following conditions 36 1.1 perseant * are met: 37 1.1 perseant * 1. Redistributions of source code must retain the above copyright 38 1.1 perseant * notice, this list of conditions and the following disclaimer. 39 1.1 perseant * 2. Redistributions in binary form must reproduce the above copyright 40 1.1 perseant * notice, this list of conditions and the following disclaimer in the 41 1.1 perseant * documentation and/or other materials provided with the distribution. 42 1.5 agc * 3. Neither the name of the University nor the names of its contributors 43 1.1 perseant * may be used to endorse or promote products derived from this software 44 1.1 perseant * without specific prior written permission. 45 1.1 perseant * 46 1.1 perseant * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND 47 1.1 perseant * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 48 1.1 perseant * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 49 1.1 perseant * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE 50 1.1 perseant * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 51 1.1 perseant * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 52 1.1 perseant * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 53 1.1 perseant * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 54 1.1 perseant * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 55 1.1 perseant * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 56 1.1 perseant * SUCH DAMAGE. 57 1.1 perseant * 58 1.1 perseant * @(#)lfs_segment.c 8.10 (Berkeley) 6/10/95 59 1.1 perseant */ 60 1.1 perseant 61 1.1 perseant /* 62 1.1 perseant * Partial segment writer, taken from the kernel and adapted for userland. 63 1.1 perseant */ 64 1.1 perseant #include <sys/types.h> 65 1.1 perseant #include <sys/param.h> 66 1.1 perseant #include <sys/time.h> 67 1.1 perseant #include <sys/buf.h> 68 1.1 perseant #include <sys/mount.h> 69 1.1 perseant 70 1.1 perseant /* Override certain things to make <ufs/lfs/lfs.h> work */ 71 1.23 dholland #define VU_DIROP 0x01000000 /* XXX XXX from sys/vnode.h */ 72 1.1 perseant #define vnode uvnode 73 1.1 perseant #define buf ubuf 74 1.1 perseant #define panic call_panic 75 1.1 perseant 76 1.1 perseant #include <ufs/lfs/lfs.h> 77 1.34 dholland #include <ufs/lfs/lfs_accessors.h> 78 1.25 dholland #include <ufs/lfs/lfs_inode.h> 79 1.1 perseant 80 1.1 perseant #include <assert.h> 81 1.1 perseant #include <stdio.h> 82 1.1 perseant #include <stdlib.h> 83 1.1 perseant #include <string.h> 84 1.1 perseant #include <err.h> 85 1.1 perseant #include <errno.h> 86 1.15 christos #include <util.h> 87 1.1 perseant 88 1.1 perseant #include "bufcache.h" 89 1.47 joerg #include "extern.h" 90 1.10 christos #include "lfs_user.h" 91 1.1 perseant #include "segwrite.h" 92 1.1 perseant 93 1.1 perseant /* Compatibility definitions */ 94 1.1 perseant off_t written_bytes = 0; 95 1.1 perseant off_t written_data = 0; 96 1.1 perseant off_t written_indir = 0; 97 1.1 perseant off_t written_dev = 0; 98 1.1 perseant int written_inodes = 0; 99 1.1 perseant 100 1.1 perseant /* Global variables */ 101 1.1 perseant time_t write_time; 102 1.1 perseant 103 1.40 dholland static void lfs_shellsort(struct lfs *, 104 1.40 dholland struct ubuf **, union lfs_blocks *, int, int); 105 1.40 dholland 106 1.1 perseant /* 107 1.1 perseant * Logical block number match routines used when traversing the dirty block 108 1.1 perseant * chain. 109 1.1 perseant */ 110 1.1 perseant int 111 1.1 perseant lfs_match_data(struct lfs * fs, struct ubuf * bp) 112 1.1 perseant { 113 1.1 perseant return (bp->b_lblkno >= 0); 114 1.1 perseant } 115 1.1 perseant 116 1.1 perseant int 117 1.1 perseant lfs_match_indir(struct lfs * fs, struct ubuf * bp) 118 1.1 perseant { 119 1.1 perseant daddr_t lbn; 120 1.1 perseant 121 1.1 perseant lbn = bp->b_lblkno; 122 1.26 christos return (lbn < 0 && (-lbn - ULFS_NDADDR) % LFS_NINDIR(fs) == 0); 123 1.1 perseant } 124 1.1 perseant 125 1.1 perseant int 126 1.1 perseant lfs_match_dindir(struct lfs * fs, struct ubuf * bp) 127 1.1 perseant { 128 1.1 perseant daddr_t lbn; 129 1.1 perseant 130 1.1 perseant lbn = bp->b_lblkno; 131 1.26 christos return (lbn < 0 && (-lbn - ULFS_NDADDR) % LFS_NINDIR(fs) == 1); 132 1.1 perseant } 133 1.1 perseant 134 1.1 perseant int 135 1.1 perseant lfs_match_tindir(struct lfs * fs, struct ubuf * bp) 136 1.1 perseant { 137 1.1 perseant daddr_t lbn; 138 1.1 perseant 139 1.1 perseant lbn = bp->b_lblkno; 140 1.26 christos return (lbn < 0 && (-lbn - ULFS_NDADDR) % LFS_NINDIR(fs) == 2); 141 1.1 perseant } 142 1.1 perseant 143 1.1 perseant /* 144 1.1 perseant * Do a checkpoint. 145 1.1 perseant */ 146 1.1 perseant int 147 1.1 perseant lfs_segwrite(struct lfs * fs, int flags) 148 1.1 perseant { 149 1.1 perseant struct inode *ip; 150 1.1 perseant struct segment *sp; 151 1.1 perseant struct uvnode *vp; 152 1.39 dholland SEGSUM *ssp; 153 1.1 perseant int redo; 154 1.1 perseant 155 1.1 perseant lfs_seglock(fs, flags | SEGM_CKP); 156 1.1 perseant sp = fs->lfs_sp; 157 1.1 perseant 158 1.1 perseant lfs_writevnodes(fs, sp, VN_REG); 159 1.1 perseant lfs_writevnodes(fs, sp, VN_DIROP); 160 1.39 dholland ssp = (SEGSUM *)sp->segsum; 161 1.39 dholland lfs_ss_setflags(fs, ssp, lfs_ss_getflags(fs, ssp) & ~(SS_CONT)); 162 1.1 perseant 163 1.1 perseant do { 164 1.1 perseant vp = fs->lfs_ivnode; 165 1.1 perseant fs->lfs_flags &= ~LFS_IFDIRTY; 166 1.1 perseant ip = VTOI(vp); 167 1.32 dholland if (LIST_FIRST(&vp->v_dirtyblkhd) != NULL || lfs_sb_getidaddr(fs) <= 0) 168 1.1 perseant lfs_writefile(fs, sp, vp); 169 1.1 perseant 170 1.1 perseant redo = lfs_writeinode(fs, sp, ip); 171 1.1 perseant redo += lfs_writeseg(fs, sp); 172 1.1 perseant redo += (fs->lfs_flags & LFS_IFDIRTY); 173 1.1 perseant } while (redo); 174 1.1 perseant 175 1.1 perseant lfs_segunlock(fs); 176 1.1 perseant #if 0 177 1.1 perseant printf("wrote %" PRId64 " bytes (%" PRId32 " fsb)\n", 178 1.26 christos written_bytes, (ulfs_daddr_t)lfs_btofsb(fs, written_bytes)); 179 1.1 perseant printf("wrote %" PRId64 " bytes data (%" PRId32 " fsb)\n", 180 1.26 christos written_data, (ulfs_daddr_t)lfs_btofsb(fs, written_data)); 181 1.1 perseant printf("wrote %" PRId64 " bytes indir (%" PRId32 " fsb)\n", 182 1.26 christos written_indir, (ulfs_daddr_t)lfs_btofsb(fs, written_indir)); 183 1.1 perseant printf("wrote %" PRId64 " bytes dev (%" PRId32 " fsb)\n", 184 1.26 christos written_dev, (ulfs_daddr_t)lfs_btofsb(fs, written_dev)); 185 1.1 perseant printf("wrote %d inodes (%" PRId32 " fsb)\n", 186 1.26 christos written_inodes, lfs_btofsb(fs, written_inodes * fs->lfs_ibsize)); 187 1.1 perseant #endif 188 1.1 perseant return 0; 189 1.1 perseant } 190 1.1 perseant 191 1.1 perseant /* 192 1.1 perseant * Write the dirty blocks associated with a vnode. 193 1.1 perseant */ 194 1.1 perseant void 195 1.1 perseant lfs_writefile(struct lfs * fs, struct segment * sp, struct uvnode * vp) 196 1.1 perseant { 197 1.1 perseant struct ubuf *bp; 198 1.40 dholland FINFO *fip; 199 1.1 perseant struct inode *ip; 200 1.1 perseant IFILE *ifp; 201 1.39 dholland SEGSUM *ssp; 202 1.1 perseant 203 1.1 perseant ip = VTOI(vp); 204 1.1 perseant 205 1.32 dholland if (sp->seg_bytes_left < lfs_sb_getbsize(fs) || 206 1.40 dholland sp->sum_bytes_left < FINFOSIZE(fs) + LFS_BLKPTRSIZE(fs)) 207 1.1 perseant (void) lfs_writeseg(fs, sp); 208 1.1 perseant 209 1.40 dholland sp->sum_bytes_left -= FINFOSIZE(fs); 210 1.39 dholland ssp = (SEGSUM *)sp->segsum; 211 1.39 dholland lfs_ss_setnfinfo(fs, ssp, lfs_ss_getnfinfo(fs, ssp) + 1); 212 1.1 perseant 213 1.39 dholland if (vp->v_uflag & VU_DIROP) { 214 1.39 dholland lfs_ss_setflags(fs, ssp, 215 1.39 dholland lfs_ss_getflags(fs, ssp) | (SS_DIROP | SS_CONT)); 216 1.39 dholland } 217 1.1 perseant 218 1.1 perseant fip = sp->fip; 219 1.40 dholland lfs_fi_setnblocks(fs, fip, 0); 220 1.40 dholland lfs_fi_setino(fs, fip, ip->i_number); 221 1.40 dholland LFS_IENTRY(ifp, fs, lfs_fi_getino(fs, fip), bp); 222 1.40 dholland lfs_fi_setversion(fs, fip, lfs_if_getversion(fs, ifp)); 223 1.16 ad brelse(bp, 0); 224 1.1 perseant 225 1.1 perseant lfs_gather(fs, sp, vp, lfs_match_data); 226 1.1 perseant lfs_gather(fs, sp, vp, lfs_match_indir); 227 1.1 perseant lfs_gather(fs, sp, vp, lfs_match_dindir); 228 1.1 perseant lfs_gather(fs, sp, vp, lfs_match_tindir); 229 1.1 perseant 230 1.1 perseant fip = sp->fip; 231 1.40 dholland if (lfs_fi_getnblocks(fs, fip) != 0) { 232 1.39 dholland sp->fip = NEXT_FINFO(fs, fip); 233 1.40 dholland lfs_blocks_fromfinfo(fs, &sp->start_lbp, sp->fip); 234 1.1 perseant } else { 235 1.40 dholland /* XXX shouldn't this update sp->fip? */ 236 1.40 dholland sp->sum_bytes_left += FINFOSIZE(fs); 237 1.39 dholland lfs_ss_setnfinfo(fs, ssp, lfs_ss_getnfinfo(fs, ssp) - 1); 238 1.1 perseant } 239 1.1 perseant } 240 1.1 perseant 241 1.1 perseant int 242 1.1 perseant lfs_writeinode(struct lfs * fs, struct segment * sp, struct inode * ip) 243 1.1 perseant { 244 1.1 perseant struct ubuf *bp, *ibp; 245 1.41 dholland union lfs_dinode *cdp; 246 1.1 perseant IFILE *ifp; 247 1.1 perseant SEGUSE *sup; 248 1.39 dholland SEGSUM *ssp; 249 1.1 perseant daddr_t daddr; 250 1.1 perseant ino_t ino; 251 1.45 dholland IINFO *iip; 252 1.45 dholland int i, fsb = 0; 253 1.1 perseant int redo_ifile = 0; 254 1.1 perseant struct timespec ts; 255 1.1 perseant int gotblk = 0; 256 1.1 perseant 257 1.1 perseant /* Allocate a new inode block if necessary. */ 258 1.1 perseant if ((ip->i_number != LFS_IFILE_INUM || sp->idp == NULL) && 259 1.1 perseant sp->ibp == NULL) { 260 1.1 perseant /* Allocate a new segment if necessary. */ 261 1.33 dholland if (sp->seg_bytes_left < lfs_sb_getibsize(fs) || 262 1.44 dholland sp->sum_bytes_left < LFS_BLKPTRSIZE(fs)) 263 1.1 perseant (void) lfs_writeseg(fs, sp); 264 1.1 perseant 265 1.1 perseant /* Get next inode block. */ 266 1.32 dholland daddr = lfs_sb_getoffset(fs); 267 1.32 dholland lfs_sb_addoffset(fs, lfs_btofsb(fs, lfs_sb_getibsize(fs))); 268 1.1 perseant sp->ibp = *sp->cbpp++ = 269 1.26 christos getblk(fs->lfs_devvp, LFS_FSBTODB(fs, daddr), 270 1.33 dholland lfs_sb_getibsize(fs)); 271 1.1 perseant sp->ibp->b_flags |= B_GATHERED; 272 1.1 perseant gotblk++; 273 1.1 perseant 274 1.1 perseant /* Zero out inode numbers */ 275 1.41 dholland for (i = 0; i < LFS_INOPB(fs); ++i) { 276 1.41 dholland union lfs_dinode *tmpdip; 277 1.41 dholland 278 1.41 dholland tmpdip = DINO_IN_BLOCK(fs, sp->ibp->b_data, i); 279 1.41 dholland lfs_dino_setinumber(fs, tmpdip, 0); 280 1.41 dholland } 281 1.1 perseant 282 1.1 perseant ++sp->start_bpp; 283 1.32 dholland lfs_sb_subavail(fs, lfs_btofsb(fs, lfs_sb_getibsize(fs))); 284 1.1 perseant /* Set remaining space counters. */ 285 1.32 dholland sp->seg_bytes_left -= lfs_sb_getibsize(fs); 286 1.44 dholland sp->sum_bytes_left -= LFS_BLKPTRSIZE(fs); 287 1.45 dholland 288 1.45 dholland /* Store the address in the segment summary. */ 289 1.45 dholland iip = NTH_IINFO(fs, sp->segsum, sp->ninodes / LFS_INOPB(fs)); 290 1.45 dholland lfs_ii_setblock(fs, iip, daddr); 291 1.1 perseant } 292 1.1 perseant /* Update the inode times and copy the inode onto the inode page. */ 293 1.1 perseant ts.tv_nsec = 0; 294 1.1 perseant ts.tv_sec = write_time; 295 1.1 perseant /* XXX kludge --- don't redirty the ifile just to put times on it */ 296 1.1 perseant if (ip->i_number != LFS_IFILE_INUM) 297 1.1 perseant LFS_ITIMES(ip, &ts, &ts, &ts); 298 1.1 perseant 299 1.1 perseant /* 300 1.1 perseant * If this is the Ifile, and we've already written the Ifile in this 301 1.1 perseant * partial segment, just overwrite it (it's not on disk yet) and 302 1.1 perseant * continue. 303 1.1 perseant * 304 1.1 perseant * XXX we know that the bp that we get the second time around has 305 1.1 perseant * already been gathered. 306 1.1 perseant */ 307 1.1 perseant if (ip->i_number == LFS_IFILE_INUM && sp->idp) { 308 1.42 dholland lfs_copy_dinode(fs, sp->idp, ip->i_din); 309 1.43 dholland ip->i_lfs_osize = lfs_dino_getsize(fs, ip->i_din); 310 1.1 perseant return 0; 311 1.1 perseant } 312 1.1 perseant bp = sp->ibp; 313 1.41 dholland cdp = DINO_IN_BLOCK(fs, bp->b_data, sp->ninodes % LFS_INOPB(fs)); 314 1.42 dholland lfs_copy_dinode(fs, cdp, ip->i_din); 315 1.1 perseant 316 1.1 perseant /* If all blocks are goig to disk, update the "size on disk" */ 317 1.43 dholland ip->i_lfs_osize = lfs_dino_getsize(fs, ip->i_din); 318 1.1 perseant 319 1.1 perseant if (ip->i_number == LFS_IFILE_INUM) /* We know sp->idp == NULL */ 320 1.41 dholland sp->idp = DINO_IN_BLOCK(fs, bp->b_data, sp->ninodes % LFS_INOPB(fs)); 321 1.1 perseant if (gotblk) { 322 1.1 perseant LFS_LOCK_BUF(bp); 323 1.12 jnemeth assert(!(bp->b_flags & B_INVAL)); 324 1.16 ad brelse(bp, 0); 325 1.1 perseant } 326 1.1 perseant /* Increment inode count in segment summary block. */ 327 1.39 dholland ssp = (SEGSUM *)sp->segsum; 328 1.39 dholland lfs_ss_setninos(fs, ssp, lfs_ss_getninos(fs, ssp) + 1); 329 1.1 perseant 330 1.1 perseant /* If this page is full, set flag to allocate a new page. */ 331 1.26 christos if (++sp->ninodes % LFS_INOPB(fs) == 0) 332 1.1 perseant sp->ibp = NULL; 333 1.1 perseant 334 1.1 perseant /* 335 1.1 perseant * If updating the ifile, update the super-block. Update the disk 336 1.38 dholland * address for this inode in the ifile. 337 1.1 perseant */ 338 1.1 perseant ino = ip->i_number; 339 1.1 perseant if (ino == LFS_IFILE_INUM) { 340 1.32 dholland daddr = lfs_sb_getidaddr(fs); 341 1.32 dholland lfs_sb_setidaddr(fs, LFS_DBTOFSB(fs, bp->b_blkno)); 342 1.13 perseant sbdirty(); 343 1.1 perseant } else { 344 1.1 perseant LFS_IENTRY(ifp, fs, ino, ibp); 345 1.38 dholland daddr = lfs_if_getdaddr(fs, ifp); 346 1.38 dholland lfs_if_setdaddr(fs, ifp, LFS_DBTOFSB(fs, bp->b_blkno) + fsb); 347 1.27 christos (void)LFS_BWRITE_LOG(ibp); /* Ifile */ 348 1.1 perseant } 349 1.1 perseant 350 1.1 perseant /* 351 1.1 perseant * Account the inode: it no longer belongs to its former segment, 352 1.1 perseant * though it will not belong to the new segment until that segment 353 1.1 perseant * is actually written. 354 1.1 perseant */ 355 1.1 perseant if (daddr != LFS_UNUSED_DADDR) { 356 1.26 christos u_int32_t oldsn = lfs_dtosn(fs, daddr); 357 1.1 perseant LFS_SEGENTRY(sup, fs, oldsn, bp); 358 1.41 dholland sup->su_nbytes -= DINOSIZE(fs); 359 1.1 perseant redo_ifile = 360 1.1 perseant (ino == LFS_IFILE_INUM && !(bp->b_flags & B_GATHERED)); 361 1.1 perseant if (redo_ifile) 362 1.1 perseant fs->lfs_flags |= LFS_IFDIRTY; 363 1.1 perseant LFS_WRITESEGENTRY(sup, fs, oldsn, bp); /* Ifile */ 364 1.1 perseant } 365 1.1 perseant return redo_ifile; 366 1.1 perseant } 367 1.1 perseant 368 1.1 perseant int 369 1.1 perseant lfs_gatherblock(struct segment * sp, struct ubuf * bp) 370 1.1 perseant { 371 1.1 perseant struct lfs *fs; 372 1.39 dholland SEGSUM *ssp; 373 1.1 perseant int version; 374 1.1 perseant int j, blksinblk; 375 1.1 perseant 376 1.1 perseant /* 377 1.1 perseant * If full, finish this segment. We may be doing I/O, so 378 1.1 perseant * release and reacquire the splbio(). 379 1.1 perseant */ 380 1.1 perseant fs = sp->fs; 381 1.32 dholland blksinblk = howmany(bp->b_bcount, lfs_sb_getbsize(fs)); 382 1.44 dholland if (sp->sum_bytes_left < LFS_BLKPTRSIZE(fs) * blksinblk || 383 1.1 perseant sp->seg_bytes_left < bp->b_bcount) { 384 1.1 perseant lfs_updatemeta(sp); 385 1.1 perseant 386 1.40 dholland version = lfs_fi_getversion(fs, sp->fip); 387 1.1 perseant (void) lfs_writeseg(fs, sp); 388 1.1 perseant 389 1.40 dholland lfs_fi_setversion(fs, sp->fip, version); 390 1.40 dholland lfs_fi_setino(fs, sp->fip, VTOI(sp->vp)->i_number); 391 1.1 perseant /* Add the current file to the segment summary. */ 392 1.39 dholland ssp = (SEGSUM *)sp->segsum; 393 1.39 dholland lfs_ss_setnfinfo(fs, ssp, lfs_ss_getnfinfo(fs, ssp) + 1); 394 1.40 dholland sp->sum_bytes_left -= FINFOSIZE(fs); 395 1.1 perseant 396 1.1 perseant return 1; 397 1.1 perseant } 398 1.1 perseant /* Insert into the buffer list, update the FINFO block. */ 399 1.1 perseant bp->b_flags |= B_GATHERED; 400 1.1 perseant /* bp->b_flags &= ~B_DONE; */ 401 1.1 perseant 402 1.1 perseant *sp->cbpp++ = bp; 403 1.40 dholland for (j = 0; j < blksinblk; j++) { 404 1.40 dholland unsigned bn; 405 1.40 dholland 406 1.40 dholland bn = lfs_fi_getnblocks(fs, sp->fip); 407 1.40 dholland lfs_fi_setnblocks(fs, sp->fip, bn + 1); 408 1.48 msaitoh lfs_fi_setblock(fs, sp->fip, bn, bp->b_lblkno + j); 409 1.40 dholland } 410 1.1 perseant 411 1.44 dholland sp->sum_bytes_left -= LFS_BLKPTRSIZE(fs) * blksinblk; 412 1.1 perseant sp->seg_bytes_left -= bp->b_bcount; 413 1.1 perseant return 0; 414 1.1 perseant } 415 1.1 perseant 416 1.1 perseant int 417 1.1 perseant lfs_gather(struct lfs * fs, struct segment * sp, struct uvnode * vp, int (*match) (struct lfs *, struct ubuf *)) 418 1.1 perseant { 419 1.1 perseant struct ubuf *bp, *nbp; 420 1.1 perseant int count = 0; 421 1.1 perseant 422 1.1 perseant sp->vp = vp; 423 1.1 perseant loop: 424 1.1 perseant for (bp = LIST_FIRST(&vp->v_dirtyblkhd); bp; bp = nbp) { 425 1.1 perseant nbp = LIST_NEXT(bp, b_vnbufs); 426 1.1 perseant 427 1.1 perseant assert(bp->b_flags & B_DELWRI); 428 1.1 perseant if ((bp->b_flags & (B_BUSY | B_GATHERED)) || !match(fs, bp)) { 429 1.1 perseant continue; 430 1.1 perseant } 431 1.1 perseant if (lfs_gatherblock(sp, bp)) { 432 1.1 perseant goto loop; 433 1.1 perseant } 434 1.1 perseant count++; 435 1.1 perseant } 436 1.1 perseant 437 1.1 perseant lfs_updatemeta(sp); 438 1.1 perseant sp->vp = NULL; 439 1.1 perseant return count; 440 1.1 perseant } 441 1.1 perseant 442 1.1 perseant 443 1.1 perseant /* 444 1.1 perseant * Change the given block's address to ndaddr, finding its previous 445 1.22 dholland * location using ulfs_bmaparray(). 446 1.1 perseant * 447 1.1 perseant * Account for this change in the segment table. 448 1.1 perseant */ 449 1.44 dholland static void 450 1.1 perseant lfs_update_single(struct lfs * fs, struct segment * sp, daddr_t lbn, 451 1.44 dholland daddr_t ndaddr, int size) 452 1.1 perseant { 453 1.1 perseant SEGUSE *sup; 454 1.1 perseant struct ubuf *bp; 455 1.22 dholland struct indir a[ULFS_NIADDR + 2], *ap; 456 1.1 perseant struct inode *ip; 457 1.1 perseant struct uvnode *vp; 458 1.1 perseant daddr_t daddr, ooff; 459 1.1 perseant int num, error; 460 1.20 mlelstv int osize; 461 1.20 mlelstv int frags, ofrags; 462 1.1 perseant 463 1.1 perseant vp = sp->vp; 464 1.1 perseant ip = VTOI(vp); 465 1.1 perseant 466 1.22 dholland error = ulfs_bmaparray(fs, vp, lbn, &daddr, a, &num); 467 1.1 perseant if (error) 468 1.30 christos errx(EXIT_FAILURE, "%s: ulfs_bmaparray returned %d looking up lbn %" 469 1.30 christos PRId64 "", __func__, error, lbn); 470 1.1 perseant if (daddr > 0) 471 1.26 christos daddr = LFS_DBTOFSB(fs, daddr); 472 1.1 perseant 473 1.26 christos frags = lfs_numfrags(fs, size); 474 1.1 perseant switch (num) { 475 1.1 perseant case 0: 476 1.43 dholland ooff = lfs_dino_getdb(fs, ip->i_din, lbn); 477 1.1 perseant if (ooff == UNWRITTEN) 478 1.43 dholland lfs_dino_setblocks(fs, ip->i_din, 479 1.43 dholland lfs_dino_getblocks(fs, ip->i_din) + frags); 480 1.1 perseant else { 481 1.1 perseant /* possible fragment truncation or extension */ 482 1.26 christos ofrags = lfs_btofsb(fs, ip->i_lfs_fragsize[lbn]); 483 1.43 dholland lfs_dino_setblocks(fs, ip->i_din, 484 1.43 dholland lfs_dino_getblocks(fs, ip->i_din) + (frags - ofrags)); 485 1.1 perseant } 486 1.43 dholland lfs_dino_setdb(fs, ip->i_din, lbn, ndaddr); 487 1.1 perseant break; 488 1.1 perseant case 1: 489 1.43 dholland ooff = lfs_dino_getib(fs, ip->i_din, a[0].in_off); 490 1.1 perseant if (ooff == UNWRITTEN) 491 1.43 dholland lfs_dino_setblocks(fs, ip->i_din, 492 1.43 dholland lfs_dino_getblocks(fs, ip->i_din) + frags); 493 1.43 dholland lfs_dino_setib(fs, ip->i_din, a[0].in_off, ndaddr); 494 1.1 perseant break; 495 1.1 perseant default: 496 1.1 perseant ap = &a[num - 1]; 497 1.32 dholland if (bread(vp, ap->in_lbn, lfs_sb_getbsize(fs), 0, &bp)) 498 1.30 christos errx(EXIT_FAILURE, "%s: bread bno %" PRId64, __func__, 499 1.1 perseant ap->in_lbn); 500 1.1 perseant 501 1.43 dholland ooff = lfs_iblock_get(fs, bp->b_data, ap->in_off); 502 1.1 perseant if (ooff == UNWRITTEN) 503 1.43 dholland lfs_dino_setblocks(fs, ip->i_din, 504 1.43 dholland lfs_dino_getblocks(fs, ip->i_din) + frags); 505 1.43 dholland lfs_iblock_set(fs, bp->b_data, ap->in_off, ndaddr); 506 1.1 perseant (void) VOP_BWRITE(bp); 507 1.1 perseant } 508 1.1 perseant 509 1.1 perseant /* 510 1.1 perseant * Update segment usage information, based on old size 511 1.1 perseant * and location. 512 1.1 perseant */ 513 1.1 perseant if (daddr > 0) { 514 1.26 christos u_int32_t oldsn = lfs_dtosn(fs, daddr); 515 1.22 dholland if (lbn >= 0 && lbn < ULFS_NDADDR) 516 1.1 perseant osize = ip->i_lfs_fragsize[lbn]; 517 1.1 perseant else 518 1.32 dholland osize = lfs_sb_getbsize(fs); 519 1.1 perseant LFS_SEGENTRY(sup, fs, oldsn, bp); 520 1.1 perseant sup->su_nbytes -= osize; 521 1.1 perseant if (!(bp->b_flags & B_GATHERED)) 522 1.1 perseant fs->lfs_flags |= LFS_IFDIRTY; 523 1.1 perseant LFS_WRITESEGENTRY(sup, fs, oldsn, bp); 524 1.1 perseant } 525 1.1 perseant /* 526 1.1 perseant * Now that this block has a new address, and its old 527 1.1 perseant * segment no longer owns it, we can forget about its 528 1.1 perseant * old size. 529 1.1 perseant */ 530 1.22 dholland if (lbn >= 0 && lbn < ULFS_NDADDR) 531 1.1 perseant ip->i_lfs_fragsize[lbn] = size; 532 1.1 perseant } 533 1.1 perseant 534 1.1 perseant /* 535 1.1 perseant * Update the metadata that points to the blocks listed in the FINFO 536 1.1 perseant * array. 537 1.1 perseant */ 538 1.1 perseant void 539 1.1 perseant lfs_updatemeta(struct segment * sp) 540 1.1 perseant { 541 1.1 perseant struct ubuf *sbp; 542 1.1 perseant struct lfs *fs; 543 1.1 perseant struct uvnode *vp; 544 1.1 perseant daddr_t lbn; 545 1.1 perseant int i, nblocks, num; 546 1.20 mlelstv int frags; 547 1.1 perseant int bytesleft, size; 548 1.40 dholland union lfs_blocks tmpptr; 549 1.1 perseant 550 1.40 dholland fs = sp->fs; 551 1.1 perseant vp = sp->vp; 552 1.40 dholland 553 1.40 dholland /* 554 1.40 dholland * This code was cutpasted from the kernel. See the 555 1.40 dholland * corresponding comment in lfs_segment.c. 556 1.40 dholland */ 557 1.40 dholland #if 0 558 1.1 perseant nblocks = &sp->fip->fi_blocks[sp->fip->fi_nblocks] - sp->start_lbp; 559 1.40 dholland #else 560 1.40 dholland lfs_blocks_fromvoid(fs, &tmpptr, (void *)NEXT_FINFO(fs, sp->fip)); 561 1.40 dholland nblocks = lfs_blocks_sub(fs, &tmpptr, &sp->start_lbp); 562 1.40 dholland //nblocks_orig = nblocks; 563 1.40 dholland #endif 564 1.1 perseant 565 1.1 perseant if (vp == NULL || nblocks == 0) 566 1.1 perseant return; 567 1.1 perseant 568 1.1 perseant /* 569 1.1 perseant * This count may be high due to oversize blocks from lfs_gop_write. 570 1.1 perseant * Correct for this. (XXX we should be able to keep track of these.) 571 1.1 perseant */ 572 1.1 perseant for (i = 0; i < nblocks; i++) { 573 1.1 perseant if (sp->start_bpp[i] == NULL) { 574 1.1 perseant printf("nblocks = %d, not %d\n", i, nblocks); 575 1.1 perseant nblocks = i; 576 1.1 perseant break; 577 1.1 perseant } 578 1.32 dholland num = howmany(sp->start_bpp[i]->b_bcount, lfs_sb_getbsize(fs)); 579 1.1 perseant nblocks -= num - 1; 580 1.1 perseant } 581 1.1 perseant 582 1.1 perseant /* 583 1.1 perseant * Sort the blocks. 584 1.1 perseant */ 585 1.40 dholland lfs_shellsort(fs, sp->start_bpp, &sp->start_lbp, nblocks, lfs_sb_getbsize(fs)); 586 1.1 perseant 587 1.1 perseant /* 588 1.1 perseant * Record the length of the last block in case it's a fragment. 589 1.1 perseant * If there are indirect blocks present, they sort last. An 590 1.1 perseant * indirect block will be lfs_bsize and its presence indicates 591 1.1 perseant * that you cannot have fragments. 592 1.1 perseant */ 593 1.40 dholland lfs_fi_setlastlength(fs, sp->fip, ((sp->start_bpp[nblocks - 1]->b_bcount - 1) & 594 1.40 dholland lfs_sb_getbmask(fs)) + 1); 595 1.1 perseant 596 1.1 perseant /* 597 1.1 perseant * Assign disk addresses, and update references to the logical 598 1.1 perseant * block and the segment usage information. 599 1.1 perseant */ 600 1.1 perseant for (i = nblocks; i--; ++sp->start_bpp) { 601 1.1 perseant sbp = *sp->start_bpp; 602 1.40 dholland lbn = lfs_blocks_get(fs, &sp->start_lbp, 0); 603 1.1 perseant 604 1.32 dholland sbp->b_blkno = LFS_FSBTODB(fs, lfs_sb_getoffset(fs)); 605 1.1 perseant 606 1.1 perseant /* 607 1.1 perseant * If we write a frag in the wrong place, the cleaner won't 608 1.1 perseant * be able to correctly identify its size later, and the 609 1.1 perseant * segment will be uncleanable. (Even worse, it will assume 610 1.1 perseant * that the indirect block that actually ends the list 611 1.1 perseant * is of a smaller size!) 612 1.1 perseant */ 613 1.33 dholland if ((sbp->b_bcount & lfs_sb_getbmask(fs)) && i != 0) 614 1.30 christos errx(EXIT_FAILURE, "%s: fragment is not last block", __func__); 615 1.1 perseant 616 1.1 perseant /* 617 1.1 perseant * For each subblock in this possibly oversized block, 618 1.1 perseant * update its address on disk. 619 1.1 perseant */ 620 1.1 perseant for (bytesleft = sbp->b_bcount; bytesleft > 0; 621 1.32 dholland bytesleft -= lfs_sb_getbsize(fs)) { 622 1.32 dholland size = MIN(bytesleft, lfs_sb_getbsize(fs)); 623 1.26 christos frags = lfs_numfrags(fs, size); 624 1.40 dholland lbn = lfs_blocks_get(fs, &sp->start_lbp, 0); 625 1.40 dholland lfs_blocks_inc(fs, &sp->start_lbp); 626 1.32 dholland lfs_update_single(fs, sp, lbn, lfs_sb_getoffset(fs), size); 627 1.32 dholland lfs_sb_addoffset(fs, frags); 628 1.1 perseant } 629 1.1 perseant 630 1.1 perseant } 631 1.1 perseant } 632 1.1 perseant 633 1.1 perseant /* 634 1.1 perseant * Start a new segment. 635 1.1 perseant */ 636 1.1 perseant int 637 1.1 perseant lfs_initseg(struct lfs * fs) 638 1.1 perseant { 639 1.1 perseant struct segment *sp; 640 1.1 perseant SEGUSE *sup; 641 1.1 perseant SEGSUM *ssp; 642 1.1 perseant struct ubuf *bp, *sbp; 643 1.1 perseant int repeat; 644 1.1 perseant 645 1.1 perseant sp = fs->lfs_sp; 646 1.1 perseant 647 1.1 perseant repeat = 0; 648 1.1 perseant 649 1.1 perseant /* Advance to the next segment. */ 650 1.1 perseant if (!LFS_PARTIAL_FITS(fs)) { 651 1.1 perseant /* lfs_avail eats the remaining space */ 652 1.32 dholland lfs_sb_subavail(fs, lfs_sb_getfsbpseg(fs) - (lfs_sb_getoffset(fs) - 653 1.32 dholland lfs_sb_getcurseg(fs))); 654 1.1 perseant lfs_newseg(fs); 655 1.1 perseant repeat = 1; 656 1.32 dholland lfs_sb_setoffset(fs, lfs_sb_getcurseg(fs)); 657 1.1 perseant 658 1.32 dholland sp->seg_number = lfs_dtosn(fs, lfs_sb_getcurseg(fs)); 659 1.32 dholland sp->seg_bytes_left = lfs_fsbtob(fs, lfs_sb_getfsbpseg(fs)); 660 1.1 perseant 661 1.1 perseant /* 662 1.1 perseant * If the segment contains a superblock, update the offset 663 1.1 perseant * and summary address to skip over it. 664 1.1 perseant */ 665 1.1 perseant LFS_SEGENTRY(sup, fs, sp->seg_number, bp); 666 1.1 perseant if (sup->su_flags & SEGUSE_SUPERBLOCK) { 667 1.32 dholland lfs_sb_addoffset(fs, lfs_btofsb(fs, LFS_SBPAD)); 668 1.1 perseant sp->seg_bytes_left -= LFS_SBPAD; 669 1.1 perseant } 670 1.16 ad brelse(bp, 0); 671 1.1 perseant /* Segment zero could also contain the labelpad */ 672 1.35 dholland if (lfs_sb_getversion(fs) > 1 && sp->seg_number == 0 && 673 1.33 dholland lfs_sb_gets0addr(fs) < lfs_btofsb(fs, LFS_LABELPAD)) { 674 1.33 dholland lfs_sb_addoffset(fs, lfs_btofsb(fs, LFS_LABELPAD) - lfs_sb_gets0addr(fs)); 675 1.33 dholland sp->seg_bytes_left -= LFS_LABELPAD - lfs_fsbtob(fs, lfs_sb_gets0addr(fs)); 676 1.1 perseant } 677 1.1 perseant } else { 678 1.32 dholland sp->seg_number = lfs_dtosn(fs, lfs_sb_getcurseg(fs)); 679 1.32 dholland sp->seg_bytes_left = lfs_fsbtob(fs, lfs_sb_getfsbpseg(fs) - 680 1.32 dholland (lfs_sb_getoffset(fs) - lfs_sb_getcurseg(fs))); 681 1.1 perseant } 682 1.32 dholland lfs_sb_setlastpseg(fs, lfs_sb_getoffset(fs)); 683 1.1 perseant 684 1.1 perseant sp->fs = fs; 685 1.1 perseant sp->ibp = NULL; 686 1.1 perseant sp->idp = NULL; 687 1.1 perseant sp->ninodes = 0; 688 1.1 perseant sp->ndupino = 0; 689 1.1 perseant 690 1.1 perseant /* Get a new buffer for SEGSUM and enter it into the buffer list. */ 691 1.1 perseant sp->cbpp = sp->bpp; 692 1.8 perseant sbp = *sp->cbpp = getblk(fs->lfs_devvp, 693 1.32 dholland LFS_FSBTODB(fs, lfs_sb_getoffset(fs)), lfs_sb_getsumsize(fs)); 694 1.1 perseant sp->segsum = sbp->b_data; 695 1.32 dholland memset(sp->segsum, 0, lfs_sb_getsumsize(fs)); 696 1.1 perseant sp->start_bpp = ++sp->cbpp; 697 1.32 dholland lfs_sb_addoffset(fs, lfs_btofsb(fs, lfs_sb_getsumsize(fs))); 698 1.1 perseant 699 1.1 perseant /* Set point to SEGSUM, initialize it. */ 700 1.1 perseant ssp = sp->segsum; 701 1.39 dholland lfs_ss_setnext(fs, ssp, lfs_sb_getnextseg(fs)); 702 1.39 dholland lfs_ss_setnfinfo(fs, ssp, 0); 703 1.39 dholland lfs_ss_setninos(fs, ssp, 0); 704 1.39 dholland lfs_ss_setmagic(fs, ssp, SS_MAGIC); 705 1.1 perseant 706 1.1 perseant /* Set pointer to first FINFO, initialize it. */ 707 1.39 dholland sp->fip = SEGSUM_FINFOBASE(fs, ssp); 708 1.40 dholland lfs_fi_setnblocks(fs, sp->fip, 0); 709 1.40 dholland lfs_blocks_fromfinfo(fs, &sp->start_lbp, sp->fip); 710 1.40 dholland lfs_fi_setlastlength(fs, sp->fip, 0); 711 1.1 perseant 712 1.32 dholland sp->seg_bytes_left -= lfs_sb_getsumsize(fs); 713 1.32 dholland sp->sum_bytes_left = lfs_sb_getsumsize(fs) - SEGSUM_SIZE(fs); 714 1.1 perseant 715 1.1 perseant LFS_LOCK_BUF(sbp); 716 1.16 ad brelse(sbp, 0); 717 1.1 perseant return repeat; 718 1.1 perseant } 719 1.1 perseant 720 1.1 perseant /* 721 1.1 perseant * Return the next segment to write. 722 1.1 perseant */ 723 1.1 perseant void 724 1.1 perseant lfs_newseg(struct lfs * fs) 725 1.1 perseant { 726 1.1 perseant CLEANERINFO *cip; 727 1.1 perseant SEGUSE *sup; 728 1.1 perseant struct ubuf *bp; 729 1.1 perseant int curseg, isdirty, sn; 730 1.1 perseant 731 1.32 dholland LFS_SEGENTRY(sup, fs, lfs_dtosn(fs, lfs_sb_getnextseg(fs)), bp); 732 1.1 perseant sup->su_flags |= SEGUSE_DIRTY | SEGUSE_ACTIVE; 733 1.1 perseant sup->su_nbytes = 0; 734 1.1 perseant sup->su_nsums = 0; 735 1.1 perseant sup->su_ninos = 0; 736 1.32 dholland LFS_WRITESEGENTRY(sup, fs, lfs_dtosn(fs, lfs_sb_getnextseg(fs)), bp); 737 1.1 perseant 738 1.1 perseant LFS_CLEANERINFO(cip, fs, bp); 739 1.37 dholland lfs_ci_shiftcleantodirty(fs, cip, 1); 740 1.37 dholland lfs_sb_setnclean(fs, lfs_ci_getclean(fs, cip)); 741 1.1 perseant LFS_SYNC_CLEANERINFO(cip, fs, bp, 1); 742 1.1 perseant 743 1.32 dholland lfs_sb_setlastseg(fs, lfs_sb_getcurseg(fs)); 744 1.32 dholland lfs_sb_setcurseg(fs, lfs_sb_getnextseg(fs)); 745 1.32 dholland for (sn = curseg = lfs_dtosn(fs, lfs_sb_getcurseg(fs)) + lfs_sb_getinterleave(fs);;) { 746 1.33 dholland sn = (sn + 1) % lfs_sb_getnseg(fs); 747 1.1 perseant if (sn == curseg) 748 1.30 christos errx(EXIT_FAILURE, "%s: no clean segments", __func__); 749 1.1 perseant LFS_SEGENTRY(sup, fs, sn, bp); 750 1.1 perseant isdirty = sup->su_flags & SEGUSE_DIRTY; 751 1.16 ad brelse(bp, 0); 752 1.1 perseant 753 1.1 perseant if (!isdirty) 754 1.1 perseant break; 755 1.1 perseant } 756 1.1 perseant 757 1.1 perseant ++fs->lfs_nactive; 758 1.32 dholland lfs_sb_setnextseg(fs, lfs_sntod(fs, sn)); 759 1.1 perseant } 760 1.1 perseant 761 1.1 perseant 762 1.1 perseant int 763 1.1 perseant lfs_writeseg(struct lfs * fs, struct segment * sp) 764 1.1 perseant { 765 1.1 perseant struct ubuf **bpp, *bp; 766 1.1 perseant SEGUSE *sup; 767 1.1 perseant SEGSUM *ssp; 768 1.1 perseant char *datap, *dp; 769 1.1 perseant int i; 770 1.1 perseant int do_again, nblocks, byteoffset; 771 1.1 perseant size_t el_size; 772 1.1 perseant u_short ninos; 773 1.39 dholland size_t sumstart; 774 1.1 perseant struct uvnode *devvp; 775 1.1 perseant 776 1.1 perseant /* 777 1.1 perseant * If there are no buffers other than the segment summary to write 778 1.1 perseant * and it is not a checkpoint, don't do anything. On a checkpoint, 779 1.1 perseant * even if there aren't any buffers, you need to write the superblock. 780 1.1 perseant */ 781 1.13 perseant nblocks = sp->cbpp - sp->bpp; 782 1.13 perseant #if 0 783 1.13 perseant printf("write %d blocks at 0x%x\n", 784 1.26 christos nblocks, (int)LFS_DBTOFSB(fs, (*sp->bpp)->b_blkno)); 785 1.13 perseant #endif 786 1.13 perseant if (nblocks == 1) 787 1.1 perseant return 0; 788 1.1 perseant 789 1.8 perseant devvp = fs->lfs_devvp; 790 1.1 perseant 791 1.1 perseant /* Update the segment usage information. */ 792 1.1 perseant LFS_SEGENTRY(sup, fs, sp->seg_number, bp); 793 1.13 perseant sup->su_flags |= SEGUSE_DIRTY | SEGUSE_ACTIVE; 794 1.1 perseant 795 1.1 perseant /* Loop through all blocks, except the segment summary. */ 796 1.1 perseant for (bpp = sp->bpp; ++bpp < sp->cbpp;) { 797 1.1 perseant if ((*bpp)->b_vp != devvp) { 798 1.1 perseant sup->su_nbytes += (*bpp)->b_bcount; 799 1.1 perseant } 800 1.26 christos assert(lfs_dtosn(fs, LFS_DBTOFSB(fs, (*bpp)->b_blkno)) == sp->seg_number); 801 1.1 perseant } 802 1.1 perseant 803 1.1 perseant ssp = (SEGSUM *) sp->segsum; 804 1.39 dholland lfs_ss_setflags(fs, ssp, lfs_ss_getflags(fs, ssp) | SS_RFW); 805 1.1 perseant 806 1.39 dholland ninos = (lfs_ss_getninos(fs, ssp) + LFS_INOPB(fs) - 1) / LFS_INOPB(fs); 807 1.41 dholland sup->su_nbytes += lfs_ss_getninos(fs, ssp) * DINOSIZE(fs); 808 1.1 perseant 809 1.35 dholland if (lfs_sb_getversion(fs) == 1) 810 1.1 perseant sup->su_olastmod = write_time; 811 1.1 perseant else 812 1.1 perseant sup->su_lastmod = write_time; 813 1.1 perseant sup->su_ninos += ninos; 814 1.1 perseant ++sup->su_nsums; 815 1.33 dholland lfs_sb_adddmeta(fs, (lfs_btofsb(fs, lfs_sb_getsumsize(fs)) + lfs_btofsb(fs, ninos * 816 1.33 dholland lfs_sb_getibsize(fs)))); 817 1.32 dholland lfs_sb_subavail(fs, lfs_btofsb(fs, lfs_sb_getsumsize(fs))); 818 1.1 perseant 819 1.1 perseant do_again = !(bp->b_flags & B_GATHERED); 820 1.1 perseant LFS_WRITESEGENTRY(sup, fs, sp->seg_number, bp); /* Ifile */ 821 1.1 perseant 822 1.1 perseant /* 823 1.1 perseant * Compute checksum across data and then across summary; the first 824 1.1 perseant * block (the summary block) is skipped. Set the create time here 825 1.1 perseant * so that it's guaranteed to be later than the inode mod times. 826 1.1 perseant */ 827 1.35 dholland if (lfs_sb_getversion(fs) == 1) 828 1.1 perseant el_size = sizeof(u_long); 829 1.1 perseant else 830 1.1 perseant el_size = sizeof(u_int32_t); 831 1.15 christos datap = dp = emalloc(nblocks * el_size); 832 1.1 perseant for (bpp = sp->bpp, i = nblocks - 1; i--;) { 833 1.1 perseant ++bpp; 834 1.1 perseant /* Loop through gop_write cluster blocks */ 835 1.1 perseant for (byteoffset = 0; byteoffset < (*bpp)->b_bcount; 836 1.32 dholland byteoffset += lfs_sb_getbsize(fs)) { 837 1.1 perseant memcpy(dp, (*bpp)->b_data + byteoffset, el_size); 838 1.1 perseant dp += el_size; 839 1.1 perseant } 840 1.2 perseant bremfree(*bpp); 841 1.1 perseant (*bpp)->b_flags |= B_BUSY; 842 1.1 perseant } 843 1.35 dholland if (lfs_sb_getversion(fs) == 1) 844 1.39 dholland lfs_ss_setocreate(fs, ssp, write_time); 845 1.1 perseant else { 846 1.39 dholland lfs_ss_setcreate(fs, ssp, write_time); 847 1.32 dholland lfs_sb_addserial(fs, 1); 848 1.39 dholland lfs_ss_setserial(fs, ssp, lfs_sb_getserial(fs)); 849 1.39 dholland lfs_ss_setident(fs, ssp, lfs_sb_getident(fs)); 850 1.1 perseant } 851 1.1 perseant /* Set the summary block busy too */ 852 1.1 perseant bremfree(*(sp->bpp)); 853 1.1 perseant (*(sp->bpp))->b_flags |= B_BUSY; 854 1.1 perseant 855 1.39 dholland lfs_ss_setdatasum(fs, ssp, cksum(datap, (nblocks - 1) * el_size)); 856 1.39 dholland sumstart = lfs_ss_getsumstart(fs); 857 1.39 dholland lfs_ss_setsumsum(fs, ssp, 858 1.39 dholland cksum((char *)ssp + sumstart, lfs_sb_getsumsize(fs) - sumstart)); 859 1.1 perseant free(datap); 860 1.1 perseant datap = dp = NULL; 861 1.32 dholland lfs_sb_subbfree(fs, (lfs_btofsb(fs, ninos * lfs_sb_getibsize(fs)) + 862 1.32 dholland lfs_btofsb(fs, lfs_sb_getsumsize(fs)))); 863 1.1 perseant 864 1.1 perseant if (devvp == NULL) 865 1.30 christos errx(EXIT_FAILURE, "devvp is NULL"); 866 1.1 perseant for (bpp = sp->bpp, i = nblocks; i; bpp++, i--) { 867 1.1 perseant bp = *bpp; 868 1.1 perseant #if 0 869 1.2 perseant printf("i = %d, bp = %p, flags %lx, bn = %" PRIx64 "\n", 870 1.1 perseant nblocks - i, bp, bp->b_flags, bp->b_blkno); 871 1.1 perseant printf(" vp = %p\n", bp->b_vp); 872 1.8 perseant if (bp->b_vp != fs->lfs_devvp) 873 1.1 perseant printf(" ino = %d lbn = %" PRId64 "\n", 874 1.1 perseant VTOI(bp->b_vp)->i_number, bp->b_lblkno); 875 1.1 perseant #endif 876 1.8 perseant if (bp->b_vp == fs->lfs_devvp) 877 1.1 perseant written_dev += bp->b_bcount; 878 1.1 perseant else { 879 1.1 perseant if (bp->b_lblkno >= 0) 880 1.1 perseant written_data += bp->b_bcount; 881 1.1 perseant else 882 1.1 perseant written_indir += bp->b_bcount; 883 1.1 perseant } 884 1.2 perseant bp->b_flags &= ~(B_DELWRI | B_READ | B_GATHERED | B_ERROR | 885 1.2 perseant B_LOCKED); 886 1.1 perseant bwrite(bp); 887 1.1 perseant written_bytes += bp->b_bcount; 888 1.1 perseant } 889 1.1 perseant written_inodes += ninos; 890 1.1 perseant 891 1.1 perseant return (lfs_initseg(fs) || do_again); 892 1.1 perseant } 893 1.1 perseant 894 1.1 perseant /* 895 1.1 perseant * Our own copy of shellsort. XXX use qsort or heapsort. 896 1.1 perseant */ 897 1.40 dholland static void 898 1.40 dholland lfs_shellsort(struct lfs *fs, 899 1.40 dholland struct ubuf ** bp_array, union lfs_blocks *lb_array, int nmemb, int size) 900 1.1 perseant { 901 1.1 perseant static int __rsshell_increments[] = {4, 1, 0}; 902 1.1 perseant int incr, *incrp, t1, t2; 903 1.1 perseant struct ubuf *bp_temp; 904 1.1 perseant 905 1.1 perseant for (incrp = __rsshell_increments; (incr = *incrp++) != 0;) 906 1.1 perseant for (t1 = incr; t1 < nmemb; ++t1) 907 1.1 perseant for (t2 = t1 - incr; t2 >= 0;) 908 1.1 perseant if ((u_int32_t) bp_array[t2]->b_lblkno > 909 1.1 perseant (u_int32_t) bp_array[t2 + incr]->b_lblkno) { 910 1.1 perseant bp_temp = bp_array[t2]; 911 1.1 perseant bp_array[t2] = bp_array[t2 + incr]; 912 1.1 perseant bp_array[t2 + incr] = bp_temp; 913 1.1 perseant t2 -= incr; 914 1.1 perseant } else 915 1.1 perseant break; 916 1.1 perseant 917 1.1 perseant /* Reform the list of logical blocks */ 918 1.1 perseant incr = 0; 919 1.1 perseant for (t1 = 0; t1 < nmemb; t1++) { 920 1.1 perseant for (t2 = 0; t2 * size < bp_array[t1]->b_bcount; t2++) { 921 1.40 dholland lfs_blocks_set(fs, lb_array, incr++, 922 1.40 dholland bp_array[t1]->b_lblkno + t2); 923 1.1 perseant } 924 1.1 perseant } 925 1.1 perseant } 926 1.1 perseant 927 1.1 perseant 928 1.1 perseant /* 929 1.1 perseant * lfs_seglock -- 930 1.1 perseant * Single thread the segment writer. 931 1.1 perseant */ 932 1.1 perseant int 933 1.1 perseant lfs_seglock(struct lfs * fs, unsigned long flags) 934 1.1 perseant { 935 1.1 perseant struct segment *sp; 936 1.32 dholland size_t allocsize; 937 1.1 perseant 938 1.1 perseant if (fs->lfs_seglock) { 939 1.1 perseant ++fs->lfs_seglock; 940 1.1 perseant fs->lfs_sp->seg_flags |= flags; 941 1.1 perseant return 0; 942 1.1 perseant } 943 1.1 perseant fs->lfs_seglock = 1; 944 1.1 perseant 945 1.15 christos sp = fs->lfs_sp = emalloc(sizeof(*sp)); 946 1.32 dholland allocsize = lfs_sb_getssize(fs) * sizeof(struct ubuf *); 947 1.32 dholland sp->bpp = emalloc(allocsize); 948 1.6 heas if (!sp->bpp) 949 1.32 dholland err(!preen, "Could not allocate %zu bytes", allocsize); 950 1.1 perseant sp->seg_flags = flags; 951 1.1 perseant sp->vp = NULL; 952 1.1 perseant sp->seg_iocount = 0; 953 1.1 perseant (void) lfs_initseg(fs); 954 1.1 perseant 955 1.1 perseant return 0; 956 1.1 perseant } 957 1.1 perseant 958 1.1 perseant /* 959 1.1 perseant * lfs_segunlock -- 960 1.1 perseant * Single thread the segment writer. 961 1.1 perseant */ 962 1.1 perseant void 963 1.1 perseant lfs_segunlock(struct lfs * fs) 964 1.1 perseant { 965 1.1 perseant struct segment *sp; 966 1.1 perseant struct ubuf *bp; 967 1.1 perseant 968 1.1 perseant sp = fs->lfs_sp; 969 1.1 perseant 970 1.1 perseant if (fs->lfs_seglock == 1) { 971 1.1 perseant if (sp->bpp != sp->cbpp) { 972 1.1 perseant /* Free allocated segment summary */ 973 1.32 dholland lfs_sb_suboffset(fs, lfs_btofsb(fs, lfs_sb_getsumsize(fs))); 974 1.1 perseant bp = *sp->bpp; 975 1.1 perseant bremfree(bp); 976 1.1 perseant bp->b_flags |= B_DONE | B_INVAL; 977 1.1 perseant bp->b_flags &= ~B_DELWRI; 978 1.1 perseant reassignbuf(bp, bp->b_vp); 979 1.1 perseant bp->b_flags |= B_BUSY; /* XXX */ 980 1.16 ad brelse(bp, 0); 981 1.1 perseant } else 982 1.1 perseant printf("unlock to 0 with no summary"); 983 1.1 perseant 984 1.1 perseant free(sp->bpp); 985 1.1 perseant sp->bpp = NULL; 986 1.1 perseant free(sp); 987 1.1 perseant fs->lfs_sp = NULL; 988 1.1 perseant 989 1.1 perseant fs->lfs_nactive = 0; 990 1.1 perseant 991 1.1 perseant /* Since we *know* everything's on disk, write both sbs */ 992 1.33 dholland lfs_writesuper(fs, lfs_sb_getsboff(fs, 0)); 993 1.33 dholland lfs_writesuper(fs, lfs_sb_getsboff(fs, 1)); 994 1.1 perseant 995 1.1 perseant --fs->lfs_seglock; 996 1.1 perseant fs->lfs_lockpid = 0; 997 1.1 perseant } else if (fs->lfs_seglock == 0) { 998 1.30 christos errx(EXIT_FAILURE, "Seglock not held"); 999 1.1 perseant } else { 1000 1.1 perseant --fs->lfs_seglock; 1001 1.1 perseant } 1002 1.1 perseant } 1003 1.1 perseant 1004 1.1 perseant int 1005 1.1 perseant lfs_writevnodes(struct lfs *fs, struct segment *sp, int op) 1006 1.1 perseant { 1007 1.1 perseant struct inode *ip; 1008 1.1 perseant struct uvnode *vp; 1009 1.1 perseant int inodes_written = 0; 1010 1.1 perseant 1011 1.1 perseant LIST_FOREACH(vp, &vnodelist, v_mntvnodes) { 1012 1.1 perseant if (vp->v_bmap_op != lfs_vop_bmap) 1013 1.1 perseant continue; 1014 1.1 perseant 1015 1.1 perseant ip = VTOI(vp); 1016 1.1 perseant 1017 1.17 ad if ((op == VN_DIROP && !(vp->v_uflag & VU_DIROP)) || 1018 1.17 ad (op != VN_DIROP && (vp->v_uflag & VU_DIROP))) { 1019 1.1 perseant continue; 1020 1.1 perseant } 1021 1.1 perseant /* 1022 1.1 perseant * Write the inode/file if dirty and it's not the IFILE. 1023 1.1 perseant */ 1024 1.46 pgoyette if (ip->i_state & IN_ALLMOD || !LIST_EMPTY(&vp->v_dirtyblkhd)) { 1025 1.1 perseant if (ip->i_number != LFS_IFILE_INUM) 1026 1.1 perseant lfs_writefile(fs, sp, vp); 1027 1.1 perseant (void) lfs_writeinode(fs, sp, ip); 1028 1.1 perseant inodes_written++; 1029 1.1 perseant } 1030 1.1 perseant } 1031 1.1 perseant return inodes_written; 1032 1.1 perseant } 1033 1.1 perseant 1034 1.1 perseant void 1035 1.44 dholland lfs_writesuper(struct lfs *fs, daddr_t daddr) 1036 1.1 perseant { 1037 1.1 perseant struct ubuf *bp; 1038 1.1 perseant 1039 1.1 perseant /* Set timestamp of this version of the superblock */ 1040 1.35 dholland if (lfs_sb_getversion(fs) == 1) 1041 1.32 dholland lfs_sb_setotstamp(fs, write_time); 1042 1.32 dholland lfs_sb_settstamp(fs, write_time); 1043 1.1 perseant 1044 1.36 dholland __CTASSERT(sizeof(struct dlfs) == sizeof(struct dlfs64)); 1045 1.36 dholland 1046 1.1 perseant /* Checksum the superblock and copy it into a buffer. */ 1047 1.36 dholland lfs_sb_setcksum(fs, lfs_sb_cksum(fs)); 1048 1.1 perseant assert(daddr > 0); 1049 1.26 christos bp = getblk(fs->lfs_devvp, LFS_FSBTODB(fs, daddr), LFS_SBPAD); 1050 1.36 dholland memcpy(bp->b_data, &fs->lfs_dlfs_u, sizeof(struct dlfs)); 1051 1.1 perseant memset(bp->b_data + sizeof(struct dlfs), 0, 1052 1.1 perseant LFS_SBPAD - sizeof(struct dlfs)); 1053 1.1 perseant 1054 1.1 perseant bwrite(bp); 1055 1.1 perseant } 1056