1 /* $NetBSD: resize_ffs.c,v 1.55 2020/05/24 14:41:26 jmcneill Exp $ */ 2 /* From sources sent on February 17, 2003 */ 3 /*- 4 * As its sole author, I explicitly place this code in the public 5 * domain. Anyone may use it for any purpose (though I would 6 * appreciate credit where it is due). 7 * 8 * der Mouse 9 * 10 * mouse@rodents.montreal.qc.ca 11 * 7D C8 61 52 5D E7 2D 39 4E F1 31 3E E8 B3 27 4B 12 */ 13 /* 14 * resize_ffs: 15 * 16 * Resize a file system. Is capable of both growing and shrinking. 17 * 18 * Usage: resize_ffs [-s newsize] [-y] file_system 19 * 20 * Example: resize_ffs -s 29574 /dev/rsd1e 21 * 22 * newsize is in DEV_BSIZE units (ie, disk sectors, usually 512 bytes 23 * each). 24 * 25 * Note: this currently requires gcc to build, since it is written 26 * depending on gcc-specific features, notably nested function 27 * definitions (which in at least a few cases depend on the lexical 28 * scoping gcc provides, so they can't be trivially moved outside). 29 * 30 * Many thanks go to John Kohl <jtk@NetBSD.org> for finding bugs: the 31 * one responsible for the "realloccgblk: can't find blk in cyl" 32 * problem and a more minor one which left fs_dsize wrong when 33 * shrinking. (These actually indicate bugs in fsck too - it should 34 * have caught and fixed them.) 35 * 36 */ 37 38 #include <sys/cdefs.h> 39 __RCSID("$NetBSD: resize_ffs.c,v 1.55 2020/05/24 14:41:26 jmcneill Exp $"); 40 41 #include <sys/disk.h> 42 #include <sys/disklabel.h> 43 #include <sys/dkio.h> 44 #include <sys/ioctl.h> 45 #include <sys/stat.h> 46 #include <sys/mman.h> 47 #include <sys/param.h> /* MAXFRAG */ 48 #include <ufs/ffs/fs.h> 49 #include <ufs/ffs/ffs_extern.h> 50 #include <ufs/ufs/dir.h> 51 #include <ufs/ufs/dinode.h> 52 #include <ufs/ufs/ufs_bswap.h> /* ufs_rw32 */ 53 54 #include <err.h> 55 #include <errno.h> 56 #include <fcntl.h> 57 #include <stdio.h> 58 #include <stdlib.h> 59 #include <strings.h> 60 #include <unistd.h> 61 #include <util.h> 62 63 #include "progress.h" 64 65 /* new size of file system, in sectors */ 66 static int64_t newsize; 67 68 /* fd open onto disk device or file */ 69 static int fd; 70 71 /* disk device or file path */ 72 const char *special; 73 74 /* must we break up big I/O operations - see checksmallio() */ 75 static int smallio; 76 77 /* size of a cg, in bytes, rounded up to a frag boundary */ 78 static int cgblksz; 79 80 /* possible superblock localtions */ 81 static int search[] = SBLOCKSEARCH; 82 /* location of the superblock */ 83 static off_t where; 84 85 /* Superblocks. */ 86 static struct fs *oldsb; /* before we started */ 87 static struct fs *newsb; /* copy to work with */ 88 /* Buffer to hold the above. Make sure it's aligned correctly. */ 89 static char sbbuf[2 * SBLOCKSIZE] 90 __attribute__((__aligned__(__alignof__(struct fs)))); 91 92 union dinode { 93 struct ufs1_dinode dp1; 94 struct ufs2_dinode dp2; 95 }; 96 #define DIP(dp, field) \ 97 ((is_ufs2) ? \ 98 (dp)->dp2.field : (dp)->dp1.field) 99 100 #define DIP_ASSIGN(dp, field, value) \ 101 do { \ 102 if (is_ufs2) \ 103 (dp)->dp2.field = (value); \ 104 else \ 105 (dp)->dp1.field = (value); \ 106 } while (0) 107 108 /* a cg's worth of brand new squeaky-clean inodes */ 109 static struct ufs1_dinode *zinodes1; 110 static struct ufs2_dinode *zinodes2; 111 112 /* pointers to the in-core cgs, read off disk and possibly modified */ 113 static struct cg **cgs; 114 115 /* pointer to csum array - the stuff pointed to on-disk by fs_csaddr */ 116 static struct csum *csums; 117 118 /* per-cg flags, indexed by cg number */ 119 static unsigned char *cgflags; 120 #define CGF_DIRTY 0x01 /* needs to be written to disk */ 121 #define CGF_BLKMAPS 0x02 /* block bitmaps need rebuilding */ 122 #define CGF_INOMAPS 0x04 /* inode bitmaps need rebuilding */ 123 124 /* when shrinking, these two arrays record how we want blocks to move. */ 125 /* if blkmove[i] is j, the frag that started out as frag #i should end */ 126 /* up as frag #j. inomove[i]=j means, similarly, that the inode that */ 127 /* started out as inode i should end up as inode j. */ 128 static unsigned int *blkmove; 129 static unsigned int *inomove; 130 131 /* in-core copies of all inodes in the fs, indexed by inumber */ 132 union dinode *inodes; 133 134 void *ibuf; /* ptr to fs block-sized buffer for reading/writing inodes */ 135 136 /* byteswapped inodes */ 137 union dinode *sinodes; 138 139 /* per-inode flags, indexed by inumber */ 140 static unsigned char *iflags; 141 #define IF_DIRTY 0x01 /* needs to be written to disk */ 142 #define IF_BDIRTY 0x02 /* like DIRTY, but is set on first inode in a 143 * block of inodes, and applies to the whole 144 * block. */ 145 146 /* resize_ffs works directly on dinodes, adapt blksize() */ 147 #define dblksize(fs, dip, lbn, filesize) \ 148 (((lbn) >= UFS_NDADDR || (uint64_t)(filesize) >= ffs_lblktosize(fs, (lbn) + 1)) \ 149 ? (fs)->fs_bsize \ 150 : (ffs_fragroundup(fs, ffs_blkoff(fs, (filesize))))) 151 152 153 /* 154 * Number of disk sectors per block/fragment 155 */ 156 #define NSPB(fs) (FFS_FSBTODB((fs),1) << (fs)->fs_fragshift) 157 #define NSPF(fs) (FFS_FSBTODB((fs),1)) 158 159 /* global flags */ 160 int is_ufs2 = 0; 161 int needswap = 0; 162 int verbose = 0; 163 int progress = 0; 164 165 static void usage(void) __dead; 166 167 /* 168 * See if we need to break up large I/O operations. This should never 169 * be needed, but under at least one <version,platform> combination, 170 * large enough disk transfers to the raw device hang. So if we're 171 * talking to a character special device, play it safe; in this case, 172 * readat() and writeat() break everything up into pieces no larger 173 * than 8K, doing multiple syscalls for larger operations. 174 */ 175 static void 176 checksmallio(void) 177 { 178 struct stat stb; 179 180 fstat(fd, &stb); 181 smallio = ((stb.st_mode & S_IFMT) == S_IFCHR); 182 } 183 184 static int 185 isplainfile(void) 186 { 187 struct stat stb; 188 189 fstat(fd, &stb); 190 return S_ISREG(stb.st_mode); 191 } 192 /* 193 * Read size bytes starting at blkno into buf. blkno is in DEV_BSIZE 194 * units, ie, after FFS_FSBTODB(); size is in bytes. 195 */ 196 static void 197 readat(off_t blkno, void *buf, int size) 198 { 199 /* Seek to the correct place. */ 200 if (lseek(fd, blkno * DEV_BSIZE, L_SET) < 0) 201 err(EXIT_FAILURE, "lseek failed"); 202 203 /* See if we have to break up the transfer... */ 204 if (smallio) { 205 char *bp; /* pointer into buf */ 206 int left; /* bytes left to go */ 207 int n; /* number to do this time around */ 208 int rv; /* syscall return value */ 209 bp = buf; 210 left = size; 211 while (left > 0) { 212 n = (left > 8192) ? 8192 : left; 213 rv = read(fd, bp, n); 214 if (rv < 0) 215 err(EXIT_FAILURE, "read failed"); 216 if (rv != n) 217 errx(EXIT_FAILURE, 218 "read: wanted %d, got %d", n, rv); 219 bp += n; 220 left -= n; 221 } 222 } else { 223 int rv; 224 rv = read(fd, buf, size); 225 if (rv < 0) 226 err(EXIT_FAILURE, "read failed"); 227 if (rv != size) 228 errx(EXIT_FAILURE, "read: wanted %d, got %d", 229 size, rv); 230 } 231 } 232 /* 233 * Write size bytes from buf starting at blkno. blkno is in DEV_BSIZE 234 * units, ie, after FFS_FSBTODB(); size is in bytes. 235 */ 236 static void 237 writeat(off_t blkno, const void *buf, int size) 238 { 239 /* Seek to the correct place. */ 240 if (lseek(fd, blkno * DEV_BSIZE, L_SET) < 0) 241 err(EXIT_FAILURE, "lseek failed"); 242 /* See if we have to break up the transfer... */ 243 if (smallio) { 244 const char *bp; /* pointer into buf */ 245 int left; /* bytes left to go */ 246 int n; /* number to do this time around */ 247 int rv; /* syscall return value */ 248 bp = buf; 249 left = size; 250 while (left > 0) { 251 n = (left > 8192) ? 8192 : left; 252 rv = write(fd, bp, n); 253 if (rv < 0) 254 err(EXIT_FAILURE, "write failed"); 255 if (rv != n) 256 errx(EXIT_FAILURE, 257 "write: wanted %d, got %d", n, rv); 258 bp += n; 259 left -= n; 260 } 261 } else { 262 int rv; 263 rv = write(fd, buf, size); 264 if (rv < 0) 265 err(EXIT_FAILURE, "write failed"); 266 if (rv != size) 267 errx(EXIT_FAILURE, 268 "write: wanted %d, got %d", size, rv); 269 } 270 } 271 /* 272 * Never-fail versions of malloc() and realloc(), and an allocation 273 * routine (which also never fails) for allocating memory that will 274 * never be freed until exit. 275 */ 276 277 /* 278 * Never-fail malloc. 279 */ 280 static void * 281 nfmalloc(size_t nb, const char *tag) 282 { 283 void *rv; 284 285 rv = malloc(nb); 286 if (rv) 287 return (rv); 288 err(EXIT_FAILURE, "Can't allocate %lu bytes for %s", 289 (unsigned long int) nb, tag); 290 } 291 /* 292 * Never-fail realloc. 293 */ 294 static void * 295 nfrealloc(void *blk, size_t nb, const char *tag) 296 { 297 void *rv; 298 299 rv = realloc(blk, nb); 300 if (rv) 301 return (rv); 302 err(EXIT_FAILURE, "Can't re-allocate %lu bytes for %s", 303 (unsigned long int) nb, tag); 304 } 305 /* 306 * Allocate memory that will never be freed or reallocated. Arguably 307 * this routine should handle small allocations by chopping up pages, 308 * but that's not worth the bother; it's not called more than a 309 * handful of times per run, and if the allocations are that small the 310 * waste in giving each one its own page is ignorable. 311 */ 312 static void * 313 alloconce(size_t nb, const char *tag) 314 { 315 void *rv; 316 317 rv = mmap(0, nb, PROT_READ | PROT_WRITE, MAP_ANON | MAP_PRIVATE, -1, 0); 318 if (rv != MAP_FAILED) 319 return (rv); 320 err(EXIT_FAILURE, "Can't map %lu bytes for %s", 321 (unsigned long int) nb, tag); 322 } 323 /* 324 * Load the cgs and csums off disk. Also allocates the space to load 325 * them into and initializes the per-cg flags. 326 */ 327 static void 328 loadcgs(void) 329 { 330 int cg; 331 char *cgp; 332 333 cgblksz = roundup(oldsb->fs_cgsize, oldsb->fs_fsize); 334 cgs = nfmalloc(oldsb->fs_ncg * sizeof(*cgs), "cg pointers"); 335 cgp = alloconce(oldsb->fs_ncg * cgblksz, "cgs"); 336 cgflags = nfmalloc(oldsb->fs_ncg, "cg flags"); 337 csums = nfmalloc(oldsb->fs_cssize, "cg summary"); 338 for (cg = 0; cg < oldsb->fs_ncg; cg++) { 339 cgs[cg] = (struct cg *) cgp; 340 readat(FFS_FSBTODB(oldsb, cgtod(oldsb, cg)), cgp, cgblksz); 341 if (needswap) 342 ffs_cg_swap(cgs[cg],cgs[cg],oldsb); 343 cgflags[cg] = 0; 344 cgp += cgblksz; 345 } 346 readat(FFS_FSBTODB(oldsb, oldsb->fs_csaddr), csums, oldsb->fs_cssize); 347 if (needswap) 348 ffs_csum_swap(csums,csums,oldsb->fs_cssize); 349 } 350 /* 351 * Set n bits, starting with bit #base, in the bitmap pointed to by 352 * bitvec (which is assumed to be large enough to include bits base 353 * through base+n-1). 354 */ 355 static void 356 set_bits(unsigned char *bitvec, unsigned int base, unsigned int n) 357 { 358 if (n < 1) 359 return; /* nothing to do */ 360 if (base & 7) { /* partial byte at beginning */ 361 if (n <= 8 - (base & 7)) { /* entirely within one byte */ 362 bitvec[base >> 3] |= (~((~0U) << n)) << (base & 7); 363 return; 364 } 365 bitvec[base >> 3] |= (~0U) << (base & 7); 366 n -= 8 - (base & 7); 367 base = (base & ~7) + 8; 368 } 369 if (n >= 8) { /* do full bytes */ 370 memset(bitvec + (base >> 3), 0xff, n >> 3); 371 base += n & ~7; 372 n &= 7; 373 } 374 if (n) { /* partial byte at end */ 375 bitvec[base >> 3] |= ~((~0U) << n); 376 } 377 } 378 /* 379 * Clear n bits, starting with bit #base, in the bitmap pointed to by 380 * bitvec (which is assumed to be large enough to include bits base 381 * through base+n-1). Code parallels set_bits(). 382 */ 383 static void 384 clr_bits(unsigned char *bitvec, int base, int n) 385 { 386 if (n < 1) 387 return; 388 if (base & 7) { 389 if (n <= 8 - (base & 7)) { 390 bitvec[base >> 3] &= ~((~((~0U) << n)) << (base & 7)); 391 return; 392 } 393 bitvec[base >> 3] &= ~((~0U) << (base & 7)); 394 n -= 8 - (base & 7); 395 base = (base & ~7) + 8; 396 } 397 if (n >= 8) { 398 memset(bitvec + (base >> 3), 0, n >> 3); 399 base += n & ~7; 400 n &= 7; 401 } 402 if (n) { 403 bitvec[base >> 3] &= (~0U) << n; 404 } 405 } 406 /* 407 * Test whether bit #bit is set in the bitmap pointed to by bitvec. 408 */ 409 static int 410 bit_is_set(unsigned char *bitvec, int bit) 411 { 412 return (bitvec[bit >> 3] & (1 << (bit & 7))); 413 } 414 /* 415 * Test whether bit #bit is clear in the bitmap pointed to by bitvec. 416 */ 417 static int 418 bit_is_clr(unsigned char *bitvec, int bit) 419 { 420 return (!bit_is_set(bitvec, bit)); 421 } 422 /* 423 * Test whether a whole block of bits is set in a bitmap. This is 424 * designed for testing (aligned) disk blocks in a bit-per-frag 425 * bitmap; it has assumptions wired into it based on that, essentially 426 * that the entire block fits into a single byte. This returns true 427 * iff _all_ the bits are set; it is not just the complement of 428 * blk_is_clr on the same arguments (unless blkfrags==1). 429 */ 430 static int 431 blk_is_set(unsigned char *bitvec, int blkbase, int blkfrags) 432 { 433 unsigned int mask; 434 435 mask = (~((~0U) << blkfrags)) << (blkbase & 7); 436 return ((bitvec[blkbase >> 3] & mask) == mask); 437 } 438 /* 439 * Test whether a whole block of bits is clear in a bitmap. See 440 * blk_is_set (above) for assumptions. This returns true iff _all_ 441 * the bits are clear; it is not just the complement of blk_is_set on 442 * the same arguments (unless blkfrags==1). 443 */ 444 static int 445 blk_is_clr(unsigned char *bitvec, int blkbase, int blkfrags) 446 { 447 unsigned int mask; 448 449 mask = (~((~0U) << blkfrags)) << (blkbase & 7); 450 return ((bitvec[blkbase >> 3] & mask) == 0); 451 } 452 /* 453 * Initialize a new cg. Called when growing. Assumes memory has been 454 * allocated but not otherwise set up. This code sets the fields of 455 * the cg, initializes the bitmaps (and cluster summaries, if 456 * applicable), updates both per-cylinder summary info and the global 457 * summary info in newsb; it also writes out new inodes for the cg. 458 * 459 * This code knows it can never be called for cg 0, which makes it a 460 * bit simpler than it would otherwise be. 461 */ 462 static void 463 initcg(int cgn) 464 { 465 struct cg *cg; /* The in-core cg, of course */ 466 int64_t base; /* Disk address of cg base */ 467 int64_t dlow; /* Size of pre-cg data area */ 468 int64_t dhigh; /* Offset of post-inode data area, from base */ 469 int64_t dmax; /* Offset of end of post-inode data area */ 470 int i; /* Generic loop index */ 471 int n; /* Generic count */ 472 int start; /* start of cg maps */ 473 474 cg = cgs[cgn]; 475 /* Place the data areas */ 476 base = cgbase(newsb, cgn); 477 dlow = cgsblock(newsb, cgn) - base; 478 dhigh = cgdmin(newsb, cgn) - base; 479 dmax = newsb->fs_size - base; 480 if (dmax > newsb->fs_fpg) 481 dmax = newsb->fs_fpg; 482 start = (unsigned char *)&cg->cg_space[0] - (unsigned char *) cg; 483 /* 484 * Clear out the cg - assumes all-0-bytes is the correct way 485 * to initialize fields we don't otherwise touch, which is 486 * perhaps not the right thing to do, but it's what fsck and 487 * mkfs do. 488 */ 489 memset(cg, 0, newsb->fs_cgsize); 490 if (newsb->fs_old_flags & FS_FLAGS_UPDATED) 491 cg->cg_time = newsb->fs_time; 492 cg->cg_magic = CG_MAGIC; 493 cg->cg_cgx = cgn; 494 cg->cg_niblk = newsb->fs_ipg; 495 cg->cg_ndblk = dmax; 496 497 if (is_ufs2) { 498 cg->cg_time = newsb->fs_time; 499 cg->cg_initediblk = newsb->fs_ipg < 2 * FFS_INOPB(newsb) ? 500 newsb->fs_ipg : 2 * FFS_INOPB(newsb); 501 cg->cg_iusedoff = start; 502 } else { 503 cg->cg_old_time = newsb->fs_time; 504 cg->cg_old_niblk = cg->cg_niblk; 505 cg->cg_niblk = 0; 506 cg->cg_initediblk = 0; 507 508 509 cg->cg_old_ncyl = newsb->fs_old_cpg; 510 /* Update the cg_old_ncyl value for the last cylinder. */ 511 if (cgn == newsb->fs_ncg - 1) { 512 if ((newsb->fs_old_flags & FS_FLAGS_UPDATED) == 0) 513 cg->cg_old_ncyl = newsb->fs_old_ncyl % 514 newsb->fs_old_cpg; 515 } 516 517 /* Set up the bitmap pointers. We have to be careful 518 * to lay out the cg _exactly_ the way mkfs and fsck 519 * do it, since fsck compares the _entire_ cg against 520 * a recomputed cg, and whines if there is any 521 * mismatch, including the bitmap offsets. */ 522 /* XXX update this comment when fsck is fixed */ 523 cg->cg_old_btotoff = start; 524 cg->cg_old_boff = cg->cg_old_btotoff 525 + (newsb->fs_old_cpg * sizeof(int32_t)); 526 cg->cg_iusedoff = cg->cg_old_boff + 527 (newsb->fs_old_cpg * newsb->fs_old_nrpos * sizeof(int16_t)); 528 } 529 cg->cg_freeoff = cg->cg_iusedoff + howmany(newsb->fs_ipg, NBBY); 530 if (newsb->fs_contigsumsize > 0) { 531 cg->cg_nclusterblks = cg->cg_ndblk / newsb->fs_frag; 532 cg->cg_clustersumoff = cg->cg_freeoff + 533 howmany(newsb->fs_fpg, NBBY) - sizeof(int32_t); 534 cg->cg_clustersumoff = 535 roundup(cg->cg_clustersumoff, sizeof(int32_t)); 536 cg->cg_clusteroff = cg->cg_clustersumoff + 537 ((newsb->fs_contigsumsize + 1) * sizeof(int32_t)); 538 cg->cg_nextfreeoff = cg->cg_clusteroff + 539 howmany(ffs_fragstoblks(newsb,newsb->fs_fpg), NBBY); 540 n = dlow / newsb->fs_frag; 541 if (n > 0) { 542 set_bits(cg_clustersfree(cg, 0), 0, n); 543 cg_clustersum(cg, 0)[(n > newsb->fs_contigsumsize) ? 544 newsb->fs_contigsumsize : n]++; 545 } 546 } else { 547 cg->cg_nextfreeoff = cg->cg_freeoff + 548 howmany(newsb->fs_fpg, NBBY); 549 } 550 /* Mark the data areas as free; everything else is marked busy by the 551 * memset() up at the top. */ 552 set_bits(cg_blksfree(cg, 0), 0, dlow); 553 set_bits(cg_blksfree(cg, 0), dhigh, dmax - dhigh); 554 /* Initialize summary info */ 555 cg->cg_cs.cs_ndir = 0; 556 cg->cg_cs.cs_nifree = newsb->fs_ipg; 557 cg->cg_cs.cs_nbfree = dlow / newsb->fs_frag; 558 cg->cg_cs.cs_nffree = 0; 559 560 /* This is the simplest way of doing this; we perhaps could 561 * compute the correct cg_blktot()[] and cg_blks()[] values 562 * other ways, but it would be complicated and hardly seems 563 * worth the effort. (The reason there isn't 564 * frag-at-beginning and frag-at-end code here, like the code 565 * below for the post-inode data area, is that the pre-sb data 566 * area always starts at 0, and thus is block-aligned, and 567 * always ends at the sb, which is block-aligned.) */ 568 if ((newsb->fs_old_flags & FS_FLAGS_UPDATED) == 0) { 569 int64_t di; 570 571 for (di = 0; di < dlow; di += newsb->fs_frag) { 572 old_cg_blktot(cg, 0)[old_cbtocylno(newsb, di)]++; 573 old_cg_blks(newsb, cg, 574 old_cbtocylno(newsb, di), 575 0)[old_cbtorpos(newsb, di)]++; 576 } 577 } 578 579 /* Deal with a partial block at the beginning of the post-inode area. 580 * I'm not convinced this can happen - I think the inodes are always 581 * block-aligned and always an integral number of blocks - but it's 582 * cheap to do the right thing just in case. */ 583 if (dhigh % newsb->fs_frag) { 584 n = newsb->fs_frag - (dhigh % newsb->fs_frag); 585 cg->cg_frsum[n]++; 586 cg->cg_cs.cs_nffree += n; 587 dhigh += n; 588 } 589 n = (dmax - dhigh) / newsb->fs_frag; 590 /* We have n full-size blocks in the post-inode data area. */ 591 if (n > 0) { 592 cg->cg_cs.cs_nbfree += n; 593 if (newsb->fs_contigsumsize > 0) { 594 i = dhigh / newsb->fs_frag; 595 set_bits(cg_clustersfree(cg, 0), i, n); 596 cg_clustersum(cg, 0)[(n > newsb->fs_contigsumsize) ? 597 newsb->fs_contigsumsize : n]++; 598 } 599 for (i = n; i > 0; i--) { 600 if (is_ufs2 == 0) { 601 old_cg_blktot(cg, 0)[old_cbtocylno(newsb, 602 dhigh)]++; 603 old_cg_blks(newsb, cg, 604 old_cbtocylno(newsb, dhigh), 605 0)[old_cbtorpos(newsb, 606 dhigh)]++; 607 } 608 dhigh += newsb->fs_frag; 609 } 610 } 611 /* Deal with any leftover frag at the end of the cg. */ 612 i = dmax - dhigh; 613 if (i) { 614 cg->cg_frsum[i]++; 615 cg->cg_cs.cs_nffree += i; 616 } 617 /* Update the csum info. */ 618 csums[cgn] = cg->cg_cs; 619 newsb->fs_cstotal.cs_nffree += cg->cg_cs.cs_nffree; 620 newsb->fs_cstotal.cs_nbfree += cg->cg_cs.cs_nbfree; 621 newsb->fs_cstotal.cs_nifree += cg->cg_cs.cs_nifree; 622 if (is_ufs2) { 623 /* Write out the cleared inodes. */ 624 writeat(FFS_FSBTODB(newsb, cgimin(newsb, cgn)), zinodes2, 625 cg->cg_initediblk * sizeof(*zinodes2)); 626 } else { 627 /* Write out the cleared inodes. */ 628 writeat(FFS_FSBTODB(newsb, cgimin(newsb, cgn)), zinodes1, 629 newsb->fs_ipg * sizeof(*zinodes1)); 630 } 631 /* Dirty the cg. */ 632 cgflags[cgn] |= CGF_DIRTY; 633 } 634 /* 635 * Find free space, at least nfrags consecutive frags of it. Pays no 636 * attention to block boundaries, but refuses to straddle cg 637 * boundaries, even if the disk blocks involved are in fact 638 * consecutive. Return value is the frag number of the first frag of 639 * the block, or -1 if no space was found. Uses newsb for sb values, 640 * and assumes the cgs[] structures correctly describe the area to be 641 * searched. 642 * 643 * XXX is there a bug lurking in the ignoring of block boundaries by 644 * the routine used by fragmove() in evict_data()? Can an end-of-file 645 * frag legally straddle a block boundary? If not, this should be 646 * cloned and fixed to stop at block boundaries for that use. The 647 * current one may still be needed for csum info motion, in case that 648 * takes up more than a whole block (is the csum info allowed to begin 649 * partway through a block and continue into the following block?). 650 * 651 * If we wrap off the end of the file system back to the beginning, we 652 * can end up searching the end of the file system twice. I ignore 653 * this inefficiency, since if that happens we're going to croak with 654 * a no-space error anyway, so it happens at most once. 655 */ 656 static int 657 find_freespace(unsigned int nfrags) 658 { 659 static int hand = 0; /* hand rotates through all frags in the fs */ 660 int cgsize; /* size of the cg hand currently points into */ 661 int cgn; /* number of cg hand currently points into */ 662 int fwc; /* frag-within-cg number of frag hand points 663 * to */ 664 unsigned int run; /* length of run of free frags seen so far */ 665 int secondpass; /* have we wrapped from end of fs to 666 * beginning? */ 667 unsigned char *bits; /* cg_blksfree()[] for cg hand points into */ 668 669 cgn = dtog(newsb, hand); 670 fwc = dtogd(newsb, hand); 671 secondpass = (hand == 0); 672 run = 0; 673 bits = cg_blksfree(cgs[cgn], 0); 674 cgsize = cgs[cgn]->cg_ndblk; 675 while (1) { 676 if (bit_is_set(bits, fwc)) { 677 run++; 678 if (run >= nfrags) 679 return (hand + 1 - run); 680 } else { 681 run = 0; 682 } 683 hand++; 684 fwc++; 685 if (fwc >= cgsize) { 686 fwc = 0; 687 cgn++; 688 if (cgn >= newsb->fs_ncg) { 689 hand = 0; 690 if (secondpass) 691 return (-1); 692 secondpass = 1; 693 cgn = 0; 694 } 695 bits = cg_blksfree(cgs[cgn], 0); 696 cgsize = cgs[cgn]->cg_ndblk; 697 run = 0; 698 } 699 } 700 } 701 /* 702 * Find a free block of disk space. Finds an entire block of frags, 703 * all of which are free. Return value is the frag number of the 704 * first frag of the block, or -1 if no space was found. Uses newsb 705 * for sb values, and assumes the cgs[] structures correctly describe 706 * the area to be searched. 707 * 708 * See find_freespace(), above, for remarks about hand wrapping around. 709 */ 710 static int 711 find_freeblock(void) 712 { 713 static int hand = 0; /* hand rotates through all frags in fs */ 714 int cgn; /* cg number of cg hand points into */ 715 int fwc; /* frag-within-cg number of frag hand points 716 * to */ 717 int cgsize; /* size of cg hand points into */ 718 int secondpass; /* have we wrapped from end to beginning? */ 719 unsigned char *bits; /* cg_blksfree()[] for cg hand points into */ 720 721 cgn = dtog(newsb, hand); 722 fwc = dtogd(newsb, hand); 723 secondpass = (hand == 0); 724 bits = cg_blksfree(cgs[cgn], 0); 725 cgsize = ffs_blknum(newsb, cgs[cgn]->cg_ndblk); 726 while (1) { 727 if (blk_is_set(bits, fwc, newsb->fs_frag)) 728 return (hand); 729 fwc += newsb->fs_frag; 730 hand += newsb->fs_frag; 731 if (fwc >= cgsize) { 732 fwc = 0; 733 cgn++; 734 if (cgn >= newsb->fs_ncg) { 735 hand = 0; 736 if (secondpass) 737 return (-1); 738 secondpass = 1; 739 cgn = 0; 740 } 741 bits = cg_blksfree(cgs[cgn], 0); 742 cgsize = ffs_blknum(newsb, cgs[cgn]->cg_ndblk); 743 } 744 } 745 } 746 /* 747 * Find a free inode, returning its inumber or -1 if none was found. 748 * Uses newsb for sb values, and assumes the cgs[] structures 749 * correctly describe the area to be searched. 750 * 751 * See find_freespace(), above, for remarks about hand wrapping around. 752 */ 753 static int 754 find_freeinode(void) 755 { 756 static int hand = 0; /* hand rotates through all inodes in fs */ 757 int cgn; /* cg number of cg hand points into */ 758 int iwc; /* inode-within-cg number of inode hand points 759 * to */ 760 int secondpass; /* have we wrapped from end to beginning? */ 761 unsigned char *bits; /* cg_inosused()[] for cg hand points into */ 762 763 cgn = hand / newsb->fs_ipg; 764 iwc = hand % newsb->fs_ipg; 765 secondpass = (hand == 0); 766 bits = cg_inosused(cgs[cgn], 0); 767 while (1) { 768 if (bit_is_clr(bits, iwc)) 769 return (hand); 770 hand++; 771 iwc++; 772 if (iwc >= newsb->fs_ipg) { 773 iwc = 0; 774 cgn++; 775 if (cgn >= newsb->fs_ncg) { 776 hand = 0; 777 if (secondpass) 778 return (-1); 779 secondpass = 1; 780 cgn = 0; 781 } 782 bits = cg_inosused(cgs[cgn], 0); 783 } 784 } 785 } 786 /* 787 * Mark a frag as free. Sets the frag's bit in the cg_blksfree bitmap 788 * for the appropriate cg, and marks the cg as dirty. 789 */ 790 static void 791 free_frag(int fno) 792 { 793 int cgn; 794 795 cgn = dtog(newsb, fno); 796 set_bits(cg_blksfree(cgs[cgn], 0), dtogd(newsb, fno), 1); 797 cgflags[cgn] |= CGF_DIRTY | CGF_BLKMAPS; 798 } 799 /* 800 * Allocate a frag. Clears the frag's bit in the cg_blksfree bitmap 801 * for the appropriate cg, and marks the cg as dirty. 802 */ 803 static void 804 alloc_frag(int fno) 805 { 806 int cgn; 807 808 cgn = dtog(newsb, fno); 809 clr_bits(cg_blksfree(cgs[cgn], 0), dtogd(newsb, fno), 1); 810 cgflags[cgn] |= CGF_DIRTY | CGF_BLKMAPS; 811 } 812 /* 813 * Fix up the csum array. If shrinking, this involves freeing zero or 814 * more frags; if growing, it involves allocating them, or if the 815 * frags being grown into aren't free, finding space elsewhere for the 816 * csum info. (If the number of occupied frags doesn't change, 817 * nothing happens here.) 818 */ 819 static void 820 csum_fixup(void) 821 { 822 int nold; /* # frags in old csum info */ 823 int ntot; /* # frags in new csum info */ 824 int nnew; /* ntot-nold */ 825 int newloc; /* new location for csum info, if necessary */ 826 int i; /* generic loop index */ 827 int j; /* generic loop index */ 828 int f; /* "from" frag number, if moving */ 829 int t; /* "to" frag number, if moving */ 830 int cgn; /* cg number, used when shrinking */ 831 832 ntot = howmany(newsb->fs_cssize, newsb->fs_fsize); 833 nold = howmany(oldsb->fs_cssize, newsb->fs_fsize); 834 nnew = ntot - nold; 835 /* First, if there's no change in frag counts, it's easy. */ 836 if (nnew == 0) 837 return; 838 /* Next, if we're shrinking, it's almost as easy. Just free up any 839 * frags in the old area we no longer need. */ 840 if (nnew < 0) { 841 for ((i = newsb->fs_csaddr + ntot - 1), (j = nnew); 842 j < 0; 843 i--, j++) { 844 free_frag(i); 845 } 846 return; 847 } 848 /* We must be growing. Check to see that the new csum area fits 849 * within the file system. I think this can never happen, since for 850 * the csum area to grow, we must be adding at least one cg, so the 851 * old csum area can't be this close to the end of the new file system. 852 * But it's a cheap check. */ 853 /* XXX what if csum info is at end of cg and grows into next cg, what 854 * if it spills over onto the next cg's backup superblock? Can this 855 * happen? */ 856 if (newsb->fs_csaddr + ntot <= newsb->fs_size) { 857 /* Okay, it fits - now, see if the space we want is free. */ 858 for ((i = newsb->fs_csaddr + nold), (j = nnew); 859 j > 0; 860 i++, j--) { 861 cgn = dtog(newsb, i); 862 if (bit_is_clr(cg_blksfree(cgs[cgn], 0), 863 dtogd(newsb, i))) 864 break; 865 } 866 if (j <= 0) { 867 /* Win win - all the frags we want are free. Allocate 868 * 'em and we're all done. */ 869 for ((i = newsb->fs_csaddr + ntot - nnew), 870 (j = nnew); j > 0; i++, j--) { 871 alloc_frag(i); 872 } 873 return; 874 } 875 } 876 /* We have to move the csum info, sigh. Look for new space, free old 877 * space, and allocate new. Update fs_csaddr. We don't copy anything 878 * on disk at this point; the csum info will be written to the 879 * then-current fs_csaddr as part of the final flush. */ 880 newloc = find_freespace(ntot); 881 if (newloc < 0) 882 errx(EXIT_FAILURE, "Sorry, no space available for new csums"); 883 for (i = 0, f = newsb->fs_csaddr, t = newloc; i < ntot; i++, f++, t++) { 884 if (i < nold) { 885 free_frag(f); 886 } 887 alloc_frag(t); 888 } 889 newsb->fs_csaddr = newloc; 890 } 891 /* 892 * Recompute newsb->fs_dsize. Just scans all cgs, adding the number of 893 * data blocks in that cg to the total. 894 */ 895 static void 896 recompute_fs_dsize(void) 897 { 898 int i; 899 900 newsb->fs_dsize = 0; 901 for (i = 0; i < newsb->fs_ncg; i++) { 902 int64_t dlow; /* size of before-sb data area */ 903 int64_t dhigh; /* offset of post-inode data area */ 904 int64_t dmax; /* total size of cg */ 905 int64_t base; /* base of cg, since cgsblock() etc add it in */ 906 base = cgbase(newsb, i); 907 dlow = cgsblock(newsb, i) - base; 908 dhigh = cgdmin(newsb, i) - base; 909 dmax = newsb->fs_size - base; 910 if (dmax > newsb->fs_fpg) 911 dmax = newsb->fs_fpg; 912 newsb->fs_dsize += dlow + dmax - dhigh; 913 } 914 /* Space in cg 0 before cgsblock is boot area, not free space! */ 915 newsb->fs_dsize -= cgsblock(newsb, 0) - cgbase(newsb, 0); 916 /* And of course the csum info takes up space. */ 917 newsb->fs_dsize -= howmany(newsb->fs_cssize, newsb->fs_fsize); 918 } 919 /* 920 * Return the current time. We call this and assign, rather than 921 * calling time() directly, as insulation against OSes where fs_time 922 * is not a time_t. 923 */ 924 static time_t 925 timestamp(void) 926 { 927 time_t t; 928 929 time(&t); 930 return (t); 931 } 932 933 /* 934 * Calculate new filesystem geometry 935 * return 0 if geometry actually changed 936 */ 937 static int 938 makegeometry(int chatter) 939 { 940 941 /* Update the size. */ 942 newsb->fs_size = FFS_DBTOFSB(newsb, newsize); 943 if (is_ufs2) 944 newsb->fs_ncg = howmany(newsb->fs_size, newsb->fs_fpg); 945 else { 946 /* Update fs_old_ncyl and fs_ncg. */ 947 newsb->fs_old_ncyl = howmany(newsb->fs_size * NSPF(newsb), 948 newsb->fs_old_spc); 949 newsb->fs_ncg = howmany(newsb->fs_old_ncyl, newsb->fs_old_cpg); 950 } 951 952 /* Does the last cg end before the end of its inode area? There is no 953 * reason why this couldn't be handled, but it would complicate a lot 954 * of code (in all file system code - fsck, kernel, etc) because of the 955 * potential partial inode area, and the gain in space would be 956 * minimal, at most the pre-sb data area. */ 957 if (cgdmin(newsb, newsb->fs_ncg - 1) > newsb->fs_size) { 958 newsb->fs_ncg--; 959 if (is_ufs2) 960 newsb->fs_size = newsb->fs_ncg * newsb->fs_fpg; 961 else { 962 newsb->fs_old_ncyl = newsb->fs_ncg * newsb->fs_old_cpg; 963 newsb->fs_size = (newsb->fs_old_ncyl * 964 newsb->fs_old_spc) / NSPF(newsb); 965 } 966 if (chatter || verbose) { 967 printf("Warning: last cylinder group is too small;\n"); 968 printf(" dropping it. New size = %lu.\n", 969 (unsigned long int) FFS_FSBTODB(newsb, newsb->fs_size)); 970 } 971 } 972 973 /* Did we actually not grow? (This can happen if newsize is less than 974 * a frag larger than the old size - unlikely, but no excuse to 975 * misbehave if it happens.) */ 976 if (newsb->fs_size == oldsb->fs_size) 977 return 1; 978 979 return 0; 980 } 981 982 983 /* 984 * Grow the file system. 985 */ 986 static void 987 grow(void) 988 { 989 int i; 990 991 if (makegeometry(1)) { 992 printf("New fs size %"PRIu64" = old fs size %"PRIu64 993 ", not growing.\n", newsb->fs_size, oldsb->fs_size); 994 return; 995 } 996 997 if (verbose) { 998 printf("Growing fs from %"PRIu64" blocks to %"PRIu64 999 " blocks.\n", oldsb->fs_size, newsb->fs_size); 1000 } 1001 1002 /* Update the timestamp. */ 1003 newsb->fs_time = timestamp(); 1004 /* Allocate and clear the new-inode area, in case we add any cgs. */ 1005 if (is_ufs2) { 1006 zinodes2 = alloconce(newsb->fs_ipg * sizeof(*zinodes2), 1007 "zeroed inodes"); 1008 memset(zinodes2, 0, newsb->fs_ipg * sizeof(*zinodes2)); 1009 } else { 1010 zinodes1 = alloconce(newsb->fs_ipg * sizeof(*zinodes1), 1011 "zeroed inodes"); 1012 memset(zinodes1, 0, newsb->fs_ipg * sizeof(*zinodes1)); 1013 } 1014 1015 /* Check that the new last sector (frag, actually) is writable. Since 1016 * it's at least one frag larger than it used to be, we know we aren't 1017 * overwriting anything important by this. (The choice of sbbuf as 1018 * what to write is irrelevant; it's just something handy that's known 1019 * to be at least one frag in size.) */ 1020 writeat(FFS_FSBTODB(newsb,newsb->fs_size - 1), &sbbuf, newsb->fs_fsize); 1021 1022 /* Find out how big the csum area is, and realloc csums if bigger. */ 1023 newsb->fs_cssize = ffs_fragroundup(newsb, 1024 newsb->fs_ncg * sizeof(struct csum)); 1025 if (newsb->fs_cssize > oldsb->fs_cssize) 1026 csums = nfrealloc(csums, newsb->fs_cssize, "new cg summary"); 1027 /* If we're adding any cgs, realloc structures and set up the new 1028 cgs. */ 1029 if (newsb->fs_ncg > oldsb->fs_ncg) { 1030 char *cgp; 1031 cgs = nfrealloc(cgs, newsb->fs_ncg * sizeof(*cgs), 1032 "cg pointers"); 1033 cgflags = nfrealloc(cgflags, newsb->fs_ncg, "cg flags"); 1034 memset(cgflags + oldsb->fs_ncg, 0, 1035 newsb->fs_ncg - oldsb->fs_ncg); 1036 cgp = alloconce((newsb->fs_ncg - oldsb->fs_ncg) * cgblksz, 1037 "cgs"); 1038 for (i = oldsb->fs_ncg; i < newsb->fs_ncg; i++) { 1039 cgs[i] = (struct cg *) cgp; 1040 progress_bar(special, "grow cg", 1041 i - oldsb->fs_ncg, newsb->fs_ncg - oldsb->fs_ncg); 1042 initcg(i); 1043 cgp += cgblksz; 1044 } 1045 cgs[oldsb->fs_ncg - 1]->cg_old_ncyl = oldsb->fs_old_cpg; 1046 cgflags[oldsb->fs_ncg - 1] |= CGF_DIRTY; 1047 } 1048 /* If the old fs ended partway through a cg, we have to update the old 1049 * last cg (though possibly not to a full cg!). */ 1050 if (oldsb->fs_size % oldsb->fs_fpg) { 1051 struct cg *cg; 1052 int64_t newcgsize; 1053 int64_t prevcgtop; 1054 int64_t oldcgsize; 1055 cg = cgs[oldsb->fs_ncg - 1]; 1056 cgflags[oldsb->fs_ncg - 1] |= CGF_DIRTY | CGF_BLKMAPS; 1057 prevcgtop = oldsb->fs_fpg * (oldsb->fs_ncg - 1); 1058 newcgsize = newsb->fs_size - prevcgtop; 1059 if (newcgsize > newsb->fs_fpg) 1060 newcgsize = newsb->fs_fpg; 1061 oldcgsize = oldsb->fs_size % oldsb->fs_fpg; 1062 set_bits(cg_blksfree(cg, 0), oldcgsize, newcgsize - oldcgsize); 1063 cg->cg_old_ncyl = oldsb->fs_old_cpg; 1064 cg->cg_ndblk = newcgsize; 1065 } 1066 /* Fix up the csum info, if necessary. */ 1067 csum_fixup(); 1068 /* Make fs_dsize match the new reality. */ 1069 recompute_fs_dsize(); 1070 1071 progress_done(); 1072 } 1073 /* 1074 * Call (*fn)() for each inode, passing the inode and its inumber. The 1075 * number of cylinder groups is pased in, so this can be used to map 1076 * over either the old or the new file system's set of inodes. 1077 */ 1078 static void 1079 map_inodes(void (*fn) (union dinode * di, unsigned int, void *arg), 1080 int ncg, void *cbarg) { 1081 int i; 1082 int ni; 1083 1084 ni = oldsb->fs_ipg * ncg; 1085 for (i = 0; i < ni; i++) 1086 (*fn) (inodes + i, i, cbarg); 1087 } 1088 /* Values for the third argument to the map function for 1089 * map_inode_data_blocks. MDB_DATA indicates the block is contains 1090 * file data; MDB_INDIR_PRE and MDB_INDIR_POST indicate that it's an 1091 * indirect block. The MDB_INDIR_PRE call is made before the indirect 1092 * block pointers are followed and the pointed-to blocks scanned, 1093 * MDB_INDIR_POST after. 1094 */ 1095 #define MDB_DATA 1 1096 #define MDB_INDIR_PRE 2 1097 #define MDB_INDIR_POST 3 1098 1099 typedef void (*mark_callback_t) (off_t blocknum, unsigned int nfrags, 1100 unsigned int blksize, int opcode); 1101 1102 /* Helper function - handles a data block. Calls the callback 1103 * function and returns number of bytes occupied in file (actually, 1104 * rounded up to a frag boundary). The name is historical. */ 1105 static int 1106 markblk(mark_callback_t fn, union dinode * di, off_t bn, off_t o) 1107 { 1108 int sz; 1109 int nb; 1110 off_t filesize; 1111 1112 filesize = DIP(di,di_size); 1113 if (o >= filesize) 1114 return (0); 1115 sz = dblksize(newsb, di, ffs_lblkno(newsb, o), filesize); 1116 nb = (sz > filesize - o) ? filesize - o : sz; 1117 if (bn) 1118 (*fn) (bn, ffs_numfrags(newsb, sz), nb, MDB_DATA); 1119 return (sz); 1120 } 1121 /* Helper function - handles an indirect block. Makes the 1122 * MDB_INDIR_PRE callback for the indirect block, loops over the 1123 * pointers and recurses, and makes the MDB_INDIR_POST callback. 1124 * Returns the number of bytes occupied in file, as does markblk(). 1125 * For the sake of update_for_data_move(), we read the indirect block 1126 * _after_ making the _PRE callback. The name is historical. */ 1127 static off_t 1128 markiblk(mark_callback_t fn, union dinode * di, off_t bn, off_t o, int lev) 1129 { 1130 int i; 1131 unsigned k; 1132 off_t j, tot; 1133 static int32_t indirblk1[howmany(MAXBSIZE, sizeof(int32_t))]; 1134 static int32_t indirblk2[howmany(MAXBSIZE, sizeof(int32_t))]; 1135 static int32_t indirblk3[howmany(MAXBSIZE, sizeof(int32_t))]; 1136 static int32_t *indirblks[3] = { 1137 &indirblk1[0], &indirblk2[0], &indirblk3[0] 1138 }; 1139 1140 if (lev < 0) 1141 return (markblk(fn, di, bn, o)); 1142 if (bn == 0) { 1143 for (j = newsb->fs_bsize; 1144 lev >= 0; 1145 j *= FFS_NINDIR(newsb), lev--); 1146 return (j); 1147 } 1148 (*fn) (bn, newsb->fs_frag, newsb->fs_bsize, MDB_INDIR_PRE); 1149 readat(FFS_FSBTODB(newsb, bn), indirblks[lev], newsb->fs_bsize); 1150 if (needswap) 1151 for (k = 0; k < howmany(MAXBSIZE, sizeof(int32_t)); k++) 1152 indirblks[lev][k] = bswap32(indirblks[lev][k]); 1153 tot = 0; 1154 for (i = 0; i < FFS_NINDIR(newsb); i++) { 1155 j = markiblk(fn, di, indirblks[lev][i], o, lev - 1); 1156 if (j == 0) 1157 break; 1158 o += j; 1159 tot += j; 1160 } 1161 (*fn) (bn, newsb->fs_frag, newsb->fs_bsize, MDB_INDIR_POST); 1162 return (tot); 1163 } 1164 1165 1166 /* 1167 * Call (*fn)() for each data block for an inode. This routine assumes 1168 * the inode is known to be of a type that has data blocks (file, 1169 * directory, or non-fast symlink). The called function is: 1170 * 1171 * (*fn)(unsigned int blkno, unsigned int nf, unsigned int nb, int op) 1172 * 1173 * where blkno is the frag number, nf is the number of frags starting 1174 * at blkno (always <= fs_frag), nb is the number of bytes that belong 1175 * to the file (usually nf*fs_frag, often less for the last block/frag 1176 * of a file). 1177 */ 1178 static void 1179 map_inode_data_blocks(union dinode * di, mark_callback_t fn) 1180 { 1181 off_t o; /* offset within inode */ 1182 off_t inc; /* increment for o */ 1183 int b; /* index within di_db[] and di_ib[] arrays */ 1184 1185 /* Scan the direct blocks... */ 1186 o = 0; 1187 for (b = 0; b < UFS_NDADDR; b++) { 1188 inc = markblk(fn, di, DIP(di,di_db[b]), o); 1189 if (inc == 0) 1190 break; 1191 o += inc; 1192 } 1193 /* ...and the indirect blocks. */ 1194 if (inc) { 1195 for (b = 0; b < UFS_NIADDR; b++) { 1196 inc = markiblk(fn, di, DIP(di,di_ib[b]), o, b); 1197 if (inc == 0) 1198 return; 1199 o += inc; 1200 } 1201 } 1202 } 1203 1204 static void 1205 dblk_callback(union dinode * di, unsigned int inum, void *arg) 1206 { 1207 mark_callback_t fn; 1208 off_t filesize; 1209 1210 filesize = DIP(di,di_size); 1211 fn = (mark_callback_t) arg; 1212 switch (DIP(di,di_mode) & IFMT) { 1213 case IFLNK: 1214 if (filesize <= newsb->fs_maxsymlinklen) { 1215 break; 1216 } 1217 /* FALLTHROUGH */ 1218 case IFDIR: 1219 case IFREG: 1220 map_inode_data_blocks(di, fn); 1221 break; 1222 } 1223 } 1224 /* 1225 * Make a callback call, a la map_inode_data_blocks, for all data 1226 * blocks in the entire fs. This is used only once, in 1227 * update_for_data_move, but it's out at top level because the complex 1228 * downward-funarg nesting that would otherwise result seems to give 1229 * gcc gastric distress. 1230 */ 1231 static void 1232 map_data_blocks(mark_callback_t fn, int ncg) 1233 { 1234 map_inodes(&dblk_callback, ncg, (void *) fn); 1235 } 1236 /* 1237 * Initialize the blkmove array. 1238 */ 1239 static void 1240 blkmove_init(void) 1241 { 1242 int i; 1243 1244 blkmove = alloconce(oldsb->fs_size * sizeof(*blkmove), "blkmove"); 1245 for (i = 0; i < oldsb->fs_size; i++) 1246 blkmove[i] = i; 1247 } 1248 /* 1249 * Load the inodes off disk. Allocates the structures and initializes 1250 * them - the inodes from disk, the flags to zero. 1251 */ 1252 static void 1253 loadinodes(void) 1254 { 1255 int imax, ino, i, j; 1256 struct ufs1_dinode *dp1 = NULL; 1257 struct ufs2_dinode *dp2 = NULL; 1258 1259 /* read inodes one fs block at a time and copy them */ 1260 1261 inodes = alloconce(oldsb->fs_ncg * oldsb->fs_ipg * 1262 sizeof(union dinode), "inodes"); 1263 iflags = alloconce(oldsb->fs_ncg * oldsb->fs_ipg, "inode flags"); 1264 memset(iflags, 0, oldsb->fs_ncg * oldsb->fs_ipg); 1265 1266 ibuf = nfmalloc(oldsb->fs_bsize,"inode block buf"); 1267 if (is_ufs2) 1268 dp2 = (struct ufs2_dinode *)ibuf; 1269 else 1270 dp1 = (struct ufs1_dinode *)ibuf; 1271 1272 for (ino = 0,imax = oldsb->fs_ipg * oldsb->fs_ncg; ino < imax; ) { 1273 readat(FFS_FSBTODB(oldsb, ino_to_fsba(oldsb, ino)), ibuf, 1274 oldsb->fs_bsize); 1275 1276 for (i = 0; i < oldsb->fs_inopb; i++) { 1277 if (is_ufs2) { 1278 if (needswap) { 1279 ffs_dinode2_swap(&(dp2[i]), &(dp2[i])); 1280 for (j = 0; j < UFS_NDADDR; j++) 1281 dp2[i].di_db[j] = 1282 bswap32(dp2[i].di_db[j]); 1283 for (j = 0; j < UFS_NIADDR; j++) 1284 dp2[i].di_ib[j] = 1285 bswap32(dp2[i].di_ib[j]); 1286 } 1287 memcpy(&inodes[ino].dp2, &dp2[i], 1288 sizeof(inodes[ino].dp2)); 1289 } else { 1290 if (needswap) { 1291 ffs_dinode1_swap(&(dp1[i]), &(dp1[i])); 1292 for (j = 0; j < UFS_NDADDR; j++) 1293 dp1[i].di_db[j] = 1294 bswap32(dp1[i].di_db[j]); 1295 for (j = 0; j < UFS_NIADDR; j++) 1296 dp1[i].di_ib[j] = 1297 bswap32(dp1[i].di_ib[j]); 1298 } 1299 memcpy(&inodes[ino].dp1, &dp1[i], 1300 sizeof(inodes[ino].dp1)); 1301 } 1302 if (++ino > imax) 1303 errx(EXIT_FAILURE, 1304 "Exceeded number of inodes"); 1305 } 1306 1307 } 1308 } 1309 /* 1310 * Report a file-system-too-full problem. 1311 */ 1312 __dead static void 1313 toofull(void) 1314 { 1315 errx(EXIT_FAILURE, "Sorry, would run out of data blocks"); 1316 } 1317 /* 1318 * Record a desire to move "n" frags from "from" to "to". 1319 */ 1320 static void 1321 mark_move(unsigned int from, unsigned int to, unsigned int n) 1322 { 1323 for (; n > 0; n--) 1324 blkmove[from++] = to++; 1325 } 1326 /* Helper function - evict n frags, starting with start (cg-relative). 1327 * The free bitmap is scanned, unallocated frags are ignored, and 1328 * each block of consecutive allocated frags is moved as a unit. 1329 */ 1330 static void 1331 fragmove(struct cg * cg, int64_t base, unsigned int start, unsigned int n) 1332 { 1333 unsigned int i; 1334 int run; 1335 1336 run = 0; 1337 for (i = 0; i <= n; i++) { 1338 if ((i < n) && bit_is_clr(cg_blksfree(cg, 0), start + i)) { 1339 run++; 1340 } else { 1341 if (run > 0) { 1342 int off; 1343 off = find_freespace(run); 1344 if (off < 0) 1345 toofull(); 1346 mark_move(base + start + i - run, off, run); 1347 set_bits(cg_blksfree(cg, 0), start + i - run, 1348 run); 1349 clr_bits(cg_blksfree(cgs[dtog(oldsb, off)], 0), 1350 dtogd(oldsb, off), run); 1351 } 1352 run = 0; 1353 } 1354 } 1355 } 1356 /* 1357 * Evict all data blocks from the given cg, starting at minfrag (based 1358 * at the beginning of the cg), for length nfrag. The eviction is 1359 * assumed to be entirely data-area; this should not be called with a 1360 * range overlapping the metadata structures in the cg. It also 1361 * assumes minfrag points into the given cg; it will misbehave if this 1362 * is not true. 1363 * 1364 * See the comment header on find_freespace() for one possible bug 1365 * lurking here. 1366 */ 1367 static void 1368 evict_data(struct cg * cg, unsigned int minfrag, int nfrag) 1369 { 1370 int64_t base; /* base of cg (in frags from beginning of fs) */ 1371 1372 base = cgbase(oldsb, cg->cg_cgx); 1373 /* Does the boundary fall in the middle of a block? To avoid 1374 * breaking between frags allocated as consecutive, we always 1375 * evict the whole block in this case, though one could argue 1376 * we should check to see if the frag before or after the 1377 * break is unallocated. */ 1378 if (minfrag % oldsb->fs_frag) { 1379 int n; 1380 n = minfrag % oldsb->fs_frag; 1381 minfrag -= n; 1382 nfrag += n; 1383 } 1384 /* Do whole blocks. If a block is wholly free, skip it; if 1385 * wholly allocated, move it in toto. If neither, call 1386 * fragmove() to move the frags to new locations. */ 1387 while (nfrag >= oldsb->fs_frag) { 1388 if (!blk_is_set(cg_blksfree(cg, 0), minfrag, oldsb->fs_frag)) { 1389 if (blk_is_clr(cg_blksfree(cg, 0), minfrag, 1390 oldsb->fs_frag)) { 1391 int off; 1392 off = find_freeblock(); 1393 if (off < 0) 1394 toofull(); 1395 mark_move(base + minfrag, off, oldsb->fs_frag); 1396 set_bits(cg_blksfree(cg, 0), minfrag, 1397 oldsb->fs_frag); 1398 clr_bits(cg_blksfree(cgs[dtog(oldsb, off)], 0), 1399 dtogd(oldsb, off), oldsb->fs_frag); 1400 } else { 1401 fragmove(cg, base, minfrag, oldsb->fs_frag); 1402 } 1403 } 1404 minfrag += oldsb->fs_frag; 1405 nfrag -= oldsb->fs_frag; 1406 } 1407 /* Clean up any sub-block amount left over. */ 1408 if (nfrag) { 1409 fragmove(cg, base, minfrag, nfrag); 1410 } 1411 } 1412 /* 1413 * Move all data blocks according to blkmove. We have to be careful, 1414 * because we may be updating indirect blocks that will themselves be 1415 * getting moved, or inode int32_t arrays that point to indirect 1416 * blocks that will be moved. We call this before 1417 * update_for_data_move, and update_for_data_move does inodes first, 1418 * then indirect blocks in preorder, so as to make sure that the 1419 * file system is self-consistent at all points, for better crash 1420 * tolerance. (We can get away with this only because all the writes 1421 * done by perform_data_move() are writing into space that's not used 1422 * by the old file system.) If we crash, some things may point to the 1423 * old data and some to the new, but both copies are the same. The 1424 * only wrong things should be csum info and free bitmaps, which fsck 1425 * is entirely capable of cleaning up. 1426 * 1427 * Since blkmove_init() initializes all blocks to move to their current 1428 * locations, we can have two blocks marked as wanting to move to the 1429 * same location, but only two and only when one of them is the one 1430 * that was already there. So if blkmove[i]==i, we ignore that entry 1431 * entirely - for unallocated blocks, we don't want it (and may be 1432 * putting something else there), and for allocated blocks, we don't 1433 * want to copy it anywhere. 1434 */ 1435 static void 1436 perform_data_move(void) 1437 { 1438 int i; 1439 int run; 1440 int maxrun; 1441 char buf[65536]; 1442 1443 maxrun = sizeof(buf) / newsb->fs_fsize; 1444 run = 0; 1445 for (i = 0; i < oldsb->fs_size; i++) { 1446 if ((blkmove[i] == (unsigned)i /*XXX cast*/) || 1447 (run >= maxrun) || 1448 ((run > 0) && 1449 (blkmove[i] != blkmove[i - 1] + 1))) { 1450 if (run > 0) { 1451 readat(FFS_FSBTODB(oldsb, i - run), &buf[0], 1452 run << oldsb->fs_fshift); 1453 writeat(FFS_FSBTODB(oldsb, blkmove[i - run]), 1454 &buf[0], run << oldsb->fs_fshift); 1455 } 1456 run = 0; 1457 } 1458 if (blkmove[i] != (unsigned)i /*XXX cast*/) 1459 run++; 1460 } 1461 if (run > 0) { 1462 readat(FFS_FSBTODB(oldsb, i - run), &buf[0], 1463 run << oldsb->fs_fshift); 1464 writeat(FFS_FSBTODB(oldsb, blkmove[i - run]), &buf[0], 1465 run << oldsb->fs_fshift); 1466 } 1467 } 1468 /* 1469 * This modifies an array of int32_t, according to blkmove. This is 1470 * used to update inode block arrays and indirect blocks to point to 1471 * the new locations of data blocks. 1472 * 1473 * Return value is the number of int32_ts that needed updating; in 1474 * particular, the return value is zero iff nothing was modified. 1475 */ 1476 static int 1477 movemap_blocks(int32_t * vec, int n) 1478 { 1479 int rv; 1480 1481 rv = 0; 1482 for (; n > 0; n--, vec++) { 1483 if (blkmove[*vec] != (unsigned)*vec /*XXX cast*/) { 1484 *vec = blkmove[*vec]; 1485 rv++; 1486 } 1487 } 1488 return (rv); 1489 } 1490 static void 1491 moveblocks_callback(union dinode * di, unsigned int inum, void *arg) 1492 { 1493 int32_t *dblkptr, *iblkptr; 1494 1495 switch (DIP(di,di_mode) & IFMT) { 1496 case IFLNK: 1497 if ((off_t)DIP(di,di_size) <= oldsb->fs_maxsymlinklen) { 1498 break; 1499 } 1500 /* FALLTHROUGH */ 1501 case IFDIR: 1502 case IFREG: 1503 if (is_ufs2) { 1504 /* XXX these are not int32_t and this is WRONG! */ 1505 dblkptr = (void *) &(di->dp2.di_db[0]); 1506 iblkptr = (void *) &(di->dp2.di_ib[0]); 1507 } else { 1508 dblkptr = &(di->dp1.di_db[0]); 1509 iblkptr = &(di->dp1.di_ib[0]); 1510 } 1511 /* 1512 * Don't || these two calls; we need their 1513 * side-effects. 1514 */ 1515 if (movemap_blocks(dblkptr, UFS_NDADDR)) { 1516 iflags[inum] |= IF_DIRTY; 1517 } 1518 if (movemap_blocks(iblkptr, UFS_NIADDR)) { 1519 iflags[inum] |= IF_DIRTY; 1520 } 1521 break; 1522 } 1523 } 1524 1525 static void 1526 moveindir_callback(off_t off, unsigned int nfrag, unsigned int nbytes, 1527 int kind) 1528 { 1529 unsigned int i; 1530 1531 if (kind == MDB_INDIR_PRE) { 1532 int32_t blk[howmany(MAXBSIZE, sizeof(int32_t))]; 1533 readat(FFS_FSBTODB(oldsb, off), &blk[0], oldsb->fs_bsize); 1534 if (needswap) 1535 for (i = 0; i < howmany(MAXBSIZE, sizeof(int32_t)); i++) 1536 blk[i] = bswap32(blk[i]); 1537 if (movemap_blocks(&blk[0], FFS_NINDIR(oldsb))) { 1538 if (needswap) 1539 for (i = 0; i < howmany(MAXBSIZE, 1540 sizeof(int32_t)); i++) 1541 blk[i] = bswap32(blk[i]); 1542 writeat(FFS_FSBTODB(oldsb, off), &blk[0], oldsb->fs_bsize); 1543 } 1544 } 1545 } 1546 /* 1547 * Update all inode data arrays and indirect blocks to point to the new 1548 * locations of data blocks. See the comment header on 1549 * perform_data_move for some ordering considerations. 1550 */ 1551 static void 1552 update_for_data_move(void) 1553 { 1554 map_inodes(&moveblocks_callback, oldsb->fs_ncg, NULL); 1555 map_data_blocks(&moveindir_callback, oldsb->fs_ncg); 1556 } 1557 /* 1558 * Initialize the inomove array. 1559 */ 1560 static void 1561 inomove_init(void) 1562 { 1563 int i; 1564 1565 inomove = alloconce(oldsb->fs_ipg * oldsb->fs_ncg * sizeof(*inomove), 1566 "inomove"); 1567 for (i = (oldsb->fs_ipg * oldsb->fs_ncg) - 1; i >= 0; i--) 1568 inomove[i] = i; 1569 } 1570 /* 1571 * Flush all dirtied inodes to disk. Scans the inode flags array; for 1572 * each dirty inode, it sets the BDIRTY bit on the first inode in the 1573 * block containing the dirty inode. Then it scans by blocks, and for 1574 * each marked block, writes it. 1575 */ 1576 static void 1577 flush_inodes(void) 1578 { 1579 int i, j, k, ni, m; 1580 struct ufs1_dinode *dp1 = NULL; 1581 struct ufs2_dinode *dp2 = NULL; 1582 1583 ni = newsb->fs_ipg * newsb->fs_ncg; 1584 m = FFS_INOPB(newsb) - 1; 1585 for (i = 0; i < ni; i++) { 1586 if (iflags[i] & IF_DIRTY) { 1587 iflags[i & ~m] |= IF_BDIRTY; 1588 } 1589 } 1590 m++; 1591 1592 if (is_ufs2) 1593 dp2 = (struct ufs2_dinode *)ibuf; 1594 else 1595 dp1 = (struct ufs1_dinode *)ibuf; 1596 1597 for (i = 0; i < ni; i += m) { 1598 if ((iflags[i] & IF_BDIRTY) == 0) 1599 continue; 1600 if (is_ufs2) 1601 for (j = 0; j < m; j++) { 1602 dp2[j] = inodes[i + j].dp2; 1603 if (needswap) { 1604 for (k = 0; k < UFS_NDADDR; k++) 1605 dp2[j].di_db[k] = 1606 bswap32(dp2[j].di_db[k]); 1607 for (k = 0; k < UFS_NIADDR; k++) 1608 dp2[j].di_ib[k] = 1609 bswap32(dp2[j].di_ib[k]); 1610 ffs_dinode2_swap(&dp2[j], 1611 &dp2[j]); 1612 } 1613 } 1614 else 1615 for (j = 0; j < m; j++) { 1616 dp1[j] = inodes[i + j].dp1; 1617 if (needswap) { 1618 for (k = 0; k < UFS_NDADDR; k++) 1619 dp1[j].di_db[k]= 1620 bswap32(dp1[j].di_db[k]); 1621 for (k = 0; k < UFS_NIADDR; k++) 1622 dp1[j].di_ib[k]= 1623 bswap32(dp1[j].di_ib[k]); 1624 ffs_dinode1_swap(&dp1[j], 1625 &dp1[j]); 1626 } 1627 } 1628 1629 writeat(FFS_FSBTODB(newsb, ino_to_fsba(newsb, i)), 1630 ibuf, newsb->fs_bsize); 1631 } 1632 } 1633 /* 1634 * Evict all inodes from the specified cg. shrink() already checked 1635 * that there were enough free inodes, so the no-free-inodes check is 1636 * a can't-happen. If it does trip, the file system should be in good 1637 * enough shape for fsck to fix; see the comment on perform_data_move 1638 * for the considerations in question. 1639 */ 1640 static void 1641 evict_inodes(struct cg * cg) 1642 { 1643 int inum; 1644 int i; 1645 int fi; 1646 1647 inum = newsb->fs_ipg * cg->cg_cgx; 1648 for (i = 0; i < newsb->fs_ipg; i++, inum++) { 1649 if (DIP(inodes + inum,di_mode) != 0) { 1650 fi = find_freeinode(); 1651 if (fi < 0) 1652 errx(EXIT_FAILURE, "Sorry, inodes evaporated - " 1653 "file system probably needs fsck"); 1654 inomove[inum] = fi; 1655 clr_bits(cg_inosused(cg, 0), i, 1); 1656 set_bits(cg_inosused(cgs[ino_to_cg(newsb, fi)], 0), 1657 fi % newsb->fs_ipg, 1); 1658 } 1659 } 1660 } 1661 /* 1662 * Move inodes from old locations to new. Does not actually write 1663 * anything to disk; just copies in-core and sets dirty bits. 1664 * 1665 * We have to be careful here for reasons similar to those mentioned in 1666 * the comment header on perform_data_move, above: for the sake of 1667 * crash tolerance, we want to make sure everything is present at both 1668 * old and new locations before we update pointers. So we call this 1669 * first, then flush_inodes() to get them out on disk, then update 1670 * directories to match. 1671 */ 1672 static void 1673 perform_inode_move(void) 1674 { 1675 unsigned int i; 1676 unsigned int ni; 1677 1678 ni = oldsb->fs_ipg * oldsb->fs_ncg; 1679 for (i = 0; i < ni; i++) { 1680 if (inomove[i] != i) { 1681 inodes[inomove[i]] = inodes[i]; 1682 iflags[inomove[i]] = iflags[i] | IF_DIRTY; 1683 } 1684 } 1685 } 1686 /* 1687 * Update the directory contained in the nb bytes at buf, to point to 1688 * inodes' new locations. 1689 */ 1690 static int 1691 update_dirents(char *buf, int nb) 1692 { 1693 int rv; 1694 #define d ((struct direct *)buf) 1695 #define s32(x) (needswap?bswap32((x)):(x)) 1696 #define s16(x) (needswap?bswap16((x)):(x)) 1697 1698 rv = 0; 1699 while (nb > 0) { 1700 if (inomove[s32(d->d_ino)] != s32(d->d_ino)) { 1701 rv++; 1702 d->d_ino = s32(inomove[s32(d->d_ino)]); 1703 } 1704 nb -= s16(d->d_reclen); 1705 buf += s16(d->d_reclen); 1706 } 1707 return (rv); 1708 #undef d 1709 #undef s32 1710 #undef s16 1711 } 1712 /* 1713 * Callback function for map_inode_data_blocks, for updating a 1714 * directory to point to new inode locations. 1715 */ 1716 static void 1717 update_dir_data(off_t bn, unsigned int size, unsigned int nb, int kind) 1718 { 1719 if (kind == MDB_DATA) { 1720 union { 1721 struct direct d; 1722 char ch[MAXBSIZE]; 1723 } buf; 1724 readat(FFS_FSBTODB(oldsb, bn), &buf, size << oldsb->fs_fshift); 1725 if (update_dirents((char *) &buf, nb)) { 1726 writeat(FFS_FSBTODB(oldsb, bn), &buf, 1727 size << oldsb->fs_fshift); 1728 } 1729 } 1730 } 1731 static void 1732 dirmove_callback(union dinode * di, unsigned int inum, void *arg) 1733 { 1734 switch (DIP(di,di_mode) & IFMT) { 1735 case IFDIR: 1736 map_inode_data_blocks(di, &update_dir_data); 1737 break; 1738 } 1739 } 1740 /* 1741 * Update directory entries to point to new inode locations. 1742 */ 1743 static void 1744 update_for_inode_move(void) 1745 { 1746 map_inodes(&dirmove_callback, newsb->fs_ncg, NULL); 1747 } 1748 /* 1749 * Shrink the file system. 1750 */ 1751 static void 1752 shrink(void) 1753 { 1754 int i; 1755 1756 if (makegeometry(1)) { 1757 printf("New fs size %"PRIu64" = old fs size %"PRIu64 1758 ", not shrinking.\n", newsb->fs_size, oldsb->fs_size); 1759 return; 1760 } 1761 1762 /* Let's make sure we're not being shrunk into oblivion. */ 1763 if (newsb->fs_ncg < 1) 1764 errx(EXIT_FAILURE, "Size too small - file system would " 1765 "have no cylinders"); 1766 1767 if (verbose) { 1768 printf("Shrinking fs from %"PRIu64" blocks to %"PRIu64 1769 " blocks.\n", oldsb->fs_size, newsb->fs_size); 1770 } 1771 1772 /* Load the inodes off disk - we'll need 'em. */ 1773 loadinodes(); 1774 1775 /* Update the timestamp. */ 1776 newsb->fs_time = timestamp(); 1777 1778 /* Initialize for block motion. */ 1779 blkmove_init(); 1780 /* Update csum size, then fix up for the new size */ 1781 newsb->fs_cssize = ffs_fragroundup(newsb, 1782 newsb->fs_ncg * sizeof(struct csum)); 1783 csum_fixup(); 1784 /* Evict data from any cgs being wholly eliminated */ 1785 for (i = newsb->fs_ncg; i < oldsb->fs_ncg; i++) { 1786 int64_t base; 1787 int64_t dlow; 1788 int64_t dhigh; 1789 int64_t dmax; 1790 base = cgbase(oldsb, i); 1791 dlow = cgsblock(oldsb, i) - base; 1792 dhigh = cgdmin(oldsb, i) - base; 1793 dmax = oldsb->fs_size - base; 1794 if (dmax > cgs[i]->cg_ndblk) 1795 dmax = cgs[i]->cg_ndblk; 1796 evict_data(cgs[i], 0, dlow); 1797 evict_data(cgs[i], dhigh, dmax - dhigh); 1798 newsb->fs_cstotal.cs_ndir -= cgs[i]->cg_cs.cs_ndir; 1799 newsb->fs_cstotal.cs_nifree -= cgs[i]->cg_cs.cs_nifree; 1800 newsb->fs_cstotal.cs_nffree -= cgs[i]->cg_cs.cs_nffree; 1801 newsb->fs_cstotal.cs_nbfree -= cgs[i]->cg_cs.cs_nbfree; 1802 } 1803 /* Update the new last cg. */ 1804 cgs[newsb->fs_ncg - 1]->cg_ndblk = newsb->fs_size - 1805 ((newsb->fs_ncg - 1) * newsb->fs_fpg); 1806 /* Is the new last cg partial? If so, evict any data from the part 1807 * being shrunken away. */ 1808 if (newsb->fs_size % newsb->fs_fpg) { 1809 struct cg *cg; 1810 int oldcgsize; 1811 int newcgsize; 1812 cg = cgs[newsb->fs_ncg - 1]; 1813 newcgsize = newsb->fs_size % newsb->fs_fpg; 1814 oldcgsize = oldsb->fs_size - ((newsb->fs_ncg - 1) & 1815 oldsb->fs_fpg); 1816 if (oldcgsize > oldsb->fs_fpg) 1817 oldcgsize = oldsb->fs_fpg; 1818 evict_data(cg, newcgsize, oldcgsize - newcgsize); 1819 clr_bits(cg_blksfree(cg, 0), newcgsize, oldcgsize - newcgsize); 1820 } 1821 /* Find out whether we would run out of inodes. (Note we 1822 * haven't actually done anything to the file system yet; all 1823 * those evict_data calls just update blkmove.) */ 1824 { 1825 int slop; 1826 slop = 0; 1827 for (i = 0; i < newsb->fs_ncg; i++) 1828 slop += cgs[i]->cg_cs.cs_nifree; 1829 for (; i < oldsb->fs_ncg; i++) 1830 slop -= oldsb->fs_ipg - cgs[i]->cg_cs.cs_nifree; 1831 if (slop < 0) 1832 errx(EXIT_FAILURE, "Sorry, would run out of inodes"); 1833 } 1834 /* Copy data, then update pointers to data. See the comment 1835 * header on perform_data_move for ordering considerations. */ 1836 perform_data_move(); 1837 update_for_data_move(); 1838 /* Now do inodes. Initialize, evict, move, update - see the 1839 * comment header on perform_inode_move. */ 1840 inomove_init(); 1841 for (i = newsb->fs_ncg; i < oldsb->fs_ncg; i++) 1842 evict_inodes(cgs[i]); 1843 perform_inode_move(); 1844 flush_inodes(); 1845 update_for_inode_move(); 1846 /* Recompute all the bitmaps; most of them probably need it anyway, 1847 * the rest are just paranoia and not wanting to have to bother 1848 * keeping track of exactly which ones require it. */ 1849 for (i = 0; i < newsb->fs_ncg; i++) 1850 cgflags[i] |= CGF_DIRTY | CGF_BLKMAPS | CGF_INOMAPS; 1851 /* Update the cg_old_ncyl value for the last cylinder. */ 1852 if ((newsb->fs_old_flags & FS_FLAGS_UPDATED) == 0) 1853 cgs[newsb->fs_ncg - 1]->cg_old_ncyl = 1854 newsb->fs_old_ncyl % newsb->fs_old_cpg; 1855 /* Make fs_dsize match the new reality. */ 1856 recompute_fs_dsize(); 1857 } 1858 /* 1859 * Recompute the block totals, block cluster summaries, and rotational 1860 * position summaries, for a given cg (specified by number), based on 1861 * its free-frag bitmap (cg_blksfree()[]). 1862 */ 1863 static void 1864 rescan_blkmaps(int cgn) 1865 { 1866 struct cg *cg; 1867 int f; 1868 int b; 1869 int blkfree; 1870 int blkrun; 1871 int fragrun; 1872 int fwb; 1873 1874 cg = cgs[cgn]; 1875 /* Subtract off the current totals from the sb's summary info */ 1876 newsb->fs_cstotal.cs_nffree -= cg->cg_cs.cs_nffree; 1877 newsb->fs_cstotal.cs_nbfree -= cg->cg_cs.cs_nbfree; 1878 /* Clear counters and bitmaps. */ 1879 cg->cg_cs.cs_nffree = 0; 1880 cg->cg_cs.cs_nbfree = 0; 1881 memset(&cg->cg_frsum[0], 0, MAXFRAG * sizeof(cg->cg_frsum[0])); 1882 memset(&old_cg_blktot(cg, 0)[0], 0, 1883 newsb->fs_old_cpg * sizeof(old_cg_blktot(cg, 0)[0])); 1884 memset(&old_cg_blks(newsb, cg, 0, 0)[0], 0, 1885 newsb->fs_old_cpg * newsb->fs_old_nrpos * 1886 sizeof(old_cg_blks(newsb, cg, 0, 0)[0])); 1887 if (newsb->fs_contigsumsize > 0) { 1888 cg->cg_nclusterblks = cg->cg_ndblk / newsb->fs_frag; 1889 memset(&cg_clustersum(cg, 0)[1], 0, 1890 newsb->fs_contigsumsize * 1891 sizeof(cg_clustersum(cg, 0)[1])); 1892 if (is_ufs2) 1893 memset(&cg_clustersfree(cg, 0)[0], 0, 1894 howmany(newsb->fs_fpg / NSPB(newsb), NBBY)); 1895 else 1896 memset(&cg_clustersfree(cg, 0)[0], 0, 1897 howmany((newsb->fs_old_cpg * newsb->fs_old_spc) / 1898 NSPB(newsb), NBBY)); 1899 } 1900 /* Scan the free-frag bitmap. Runs of free frags are kept 1901 * track of with fragrun, and recorded into cg_frsum[] and 1902 * cg_cs.cs_nffree; on each block boundary, entire free blocks 1903 * are recorded as well. */ 1904 blkfree = 1; 1905 blkrun = 0; 1906 fragrun = 0; 1907 f = 0; 1908 b = 0; 1909 fwb = 0; 1910 while (f < cg->cg_ndblk) { 1911 if (bit_is_set(cg_blksfree(cg, 0), f)) { 1912 fragrun++; 1913 } else { 1914 blkfree = 0; 1915 if (fragrun > 0) { 1916 cg->cg_frsum[fragrun]++; 1917 cg->cg_cs.cs_nffree += fragrun; 1918 } 1919 fragrun = 0; 1920 } 1921 f++; 1922 fwb++; 1923 if (fwb >= newsb->fs_frag) { 1924 if (blkfree) { 1925 cg->cg_cs.cs_nbfree++; 1926 if (newsb->fs_contigsumsize > 0) 1927 set_bits(cg_clustersfree(cg, 0), b, 1); 1928 if (is_ufs2 == 0) { 1929 old_cg_blktot(cg, 0)[ 1930 old_cbtocylno(newsb, 1931 f - newsb->fs_frag)]++; 1932 old_cg_blks(newsb, cg, 1933 old_cbtocylno(newsb, 1934 f - newsb->fs_frag), 1935 0)[old_cbtorpos(newsb, 1936 f - newsb->fs_frag)]++; 1937 } 1938 blkrun++; 1939 } else { 1940 if (fragrun > 0) { 1941 cg->cg_frsum[fragrun]++; 1942 cg->cg_cs.cs_nffree += fragrun; 1943 } 1944 if (newsb->fs_contigsumsize > 0) { 1945 if (blkrun > 0) { 1946 cg_clustersum(cg, 0)[(blkrun 1947 > newsb->fs_contigsumsize) 1948 ? newsb->fs_contigsumsize 1949 : blkrun]++; 1950 } 1951 } 1952 blkrun = 0; 1953 } 1954 fwb = 0; 1955 b++; 1956 blkfree = 1; 1957 fragrun = 0; 1958 } 1959 } 1960 if (fragrun > 0) { 1961 cg->cg_frsum[fragrun]++; 1962 cg->cg_cs.cs_nffree += fragrun; 1963 } 1964 if ((blkrun > 0) && (newsb->fs_contigsumsize > 0)) { 1965 cg_clustersum(cg, 0)[(blkrun > newsb->fs_contigsumsize) ? 1966 newsb->fs_contigsumsize : blkrun]++; 1967 } 1968 /* 1969 * Put the updated summary info back into csums, and add it 1970 * back into the sb's summary info. Then mark the cg dirty. 1971 */ 1972 csums[cgn] = cg->cg_cs; 1973 newsb->fs_cstotal.cs_nffree += cg->cg_cs.cs_nffree; 1974 newsb->fs_cstotal.cs_nbfree += cg->cg_cs.cs_nbfree; 1975 cgflags[cgn] |= CGF_DIRTY; 1976 } 1977 /* 1978 * Recompute the cg_inosused()[] bitmap, and the cs_nifree and cs_ndir 1979 * values, for a cg, based on the in-core inodes for that cg. 1980 */ 1981 static void 1982 rescan_inomaps(int cgn) 1983 { 1984 struct cg *cg; 1985 int inum; 1986 int iwc; 1987 1988 cg = cgs[cgn]; 1989 newsb->fs_cstotal.cs_ndir -= cg->cg_cs.cs_ndir; 1990 newsb->fs_cstotal.cs_nifree -= cg->cg_cs.cs_nifree; 1991 cg->cg_cs.cs_ndir = 0; 1992 cg->cg_cs.cs_nifree = 0; 1993 memset(&cg_inosused(cg, 0)[0], 0, howmany(newsb->fs_ipg, NBBY)); 1994 inum = cgn * newsb->fs_ipg; 1995 if (cgn == 0) { 1996 set_bits(cg_inosused(cg, 0), 0, 2); 1997 iwc = 2; 1998 inum += 2; 1999 } else { 2000 iwc = 0; 2001 } 2002 for (; iwc < newsb->fs_ipg; iwc++, inum++) { 2003 switch (DIP(inodes + inum, di_mode) & IFMT) { 2004 case 0: 2005 cg->cg_cs.cs_nifree++; 2006 break; 2007 case IFDIR: 2008 cg->cg_cs.cs_ndir++; 2009 /* FALLTHROUGH */ 2010 default: 2011 set_bits(cg_inosused(cg, 0), iwc, 1); 2012 break; 2013 } 2014 } 2015 csums[cgn] = cg->cg_cs; 2016 newsb->fs_cstotal.cs_ndir += cg->cg_cs.cs_ndir; 2017 newsb->fs_cstotal.cs_nifree += cg->cg_cs.cs_nifree; 2018 cgflags[cgn] |= CGF_DIRTY; 2019 } 2020 /* 2021 * Flush cgs to disk, recomputing anything they're marked as needing. 2022 */ 2023 static void 2024 flush_cgs(void) 2025 { 2026 int i; 2027 2028 for (i = 0; i < newsb->fs_ncg; i++) { 2029 progress_bar(special, "flush cg", 2030 i, newsb->fs_ncg - 1); 2031 if (cgflags[i] & CGF_BLKMAPS) { 2032 rescan_blkmaps(i); 2033 } 2034 if (cgflags[i] & CGF_INOMAPS) { 2035 rescan_inomaps(i); 2036 } 2037 if (cgflags[i] & CGF_DIRTY) { 2038 cgs[i]->cg_rotor = 0; 2039 cgs[i]->cg_frotor = 0; 2040 cgs[i]->cg_irotor = 0; 2041 if (needswap) 2042 ffs_cg_swap(cgs[i],cgs[i],newsb); 2043 writeat(FFS_FSBTODB(newsb, cgtod(newsb, i)), cgs[i], 2044 cgblksz); 2045 } 2046 } 2047 if (needswap) 2048 ffs_csum_swap(csums,csums,newsb->fs_cssize); 2049 writeat(FFS_FSBTODB(newsb, newsb->fs_csaddr), csums, newsb->fs_cssize); 2050 2051 progress_done(); 2052 } 2053 /* 2054 * Write the superblock, both to the main superblock and to each cg's 2055 * alternative superblock. 2056 */ 2057 static void 2058 write_sbs(void) 2059 { 2060 int i; 2061 2062 if (newsb->fs_magic == FS_UFS1_MAGIC && 2063 (newsb->fs_old_flags & FS_FLAGS_UPDATED) == 0) { 2064 newsb->fs_old_time = newsb->fs_time; 2065 newsb->fs_old_size = newsb->fs_size; 2066 /* we don't update fs_csaddr */ 2067 newsb->fs_old_dsize = newsb->fs_dsize; 2068 newsb->fs_old_cstotal.cs_ndir = newsb->fs_cstotal.cs_ndir; 2069 newsb->fs_old_cstotal.cs_nbfree = newsb->fs_cstotal.cs_nbfree; 2070 newsb->fs_old_cstotal.cs_nifree = newsb->fs_cstotal.cs_nifree; 2071 newsb->fs_old_cstotal.cs_nffree = newsb->fs_cstotal.cs_nffree; 2072 /* fill fs_old_postbl_start with 256 bytes of 0xff? */ 2073 } 2074 /* copy newsb back to oldsb, so we can use it for offsets if 2075 newsb has been swapped for writing to disk */ 2076 memcpy(oldsb, newsb, SBLOCKSIZE); 2077 if (needswap) 2078 ffs_sb_swap(newsb,newsb); 2079 writeat(where / DEV_BSIZE, newsb, SBLOCKSIZE); 2080 for (i = 0; i < oldsb->fs_ncg; i++) { 2081 progress_bar(special, "write sb", 2082 i, oldsb->fs_ncg - 1); 2083 writeat(FFS_FSBTODB(oldsb, cgsblock(oldsb, i)), newsb, SBLOCKSIZE); 2084 } 2085 2086 progress_done(); 2087 } 2088 2089 /* 2090 * Check to see whether new size changes the filesystem 2091 * return exit code 2092 */ 2093 static int 2094 checkonly(void) 2095 { 2096 if (makegeometry(0)) { 2097 if (verbose) { 2098 printf("Wouldn't change: already %" PRId64 2099 " blocks\n", (int64_t)oldsb->fs_size); 2100 } 2101 return 1; 2102 } 2103 2104 if (verbose) { 2105 printf("Would change: newsize: %" PRId64 " oldsize: %" 2106 PRId64 " fsdb: %" PRId64 "\n", FFS_DBTOFSB(oldsb, newsize), 2107 (int64_t)oldsb->fs_size, 2108 (int64_t)oldsb->fs_fsbtodb); 2109 } 2110 return 0; 2111 } 2112 2113 static off_t 2114 get_dev_size(const char *dev_name) 2115 { 2116 struct dkwedge_info dkw; 2117 struct partition *pp; 2118 struct disklabel lp; 2119 struct stat st; 2120 size_t ptn; 2121 2122 /* Get info about partition/wedge */ 2123 if (ioctl(fd, DIOCGWEDGEINFO, &dkw) != -1) 2124 return dkw.dkw_size; 2125 if (ioctl(fd, DIOCGDINFO, &lp) != -1) { 2126 ptn = strchr(dev_name, '\0')[-1] - 'a'; 2127 if (ptn >= lp.d_npartitions) 2128 return 0; 2129 pp = &lp.d_partitions[ptn]; 2130 return pp->p_size; 2131 } 2132 if (fstat(fd, &st) != -1 && S_ISREG(st.st_mode)) 2133 return st.st_size / DEV_BSIZE; 2134 2135 return 0; 2136 } 2137 2138 /* 2139 * main(). 2140 */ 2141 int 2142 main(int argc, char **argv) 2143 { 2144 int ch; 2145 int CheckOnlyFlag; 2146 int ExpertFlag; 2147 int SFlag; 2148 size_t i; 2149 char specname[MAXPATHLEN]; 2150 char rawname[MAXPATHLEN]; 2151 const char *raw; 2152 2153 char reply[5]; 2154 2155 newsize = 0; 2156 ExpertFlag = 0; 2157 SFlag = 0; 2158 CheckOnlyFlag = 0; 2159 2160 while ((ch = getopt(argc, argv, "cps:vy")) != -1) { 2161 switch (ch) { 2162 case 'c': 2163 CheckOnlyFlag = 1; 2164 break; 2165 case 'p': 2166 progress = 1; 2167 break; 2168 case 's': 2169 SFlag = 1; 2170 newsize = strtoll(optarg, NULL, 10); 2171 if(newsize < 1) { 2172 usage(); 2173 } 2174 break; 2175 case 'v': 2176 verbose = 1; 2177 break; 2178 case 'y': 2179 ExpertFlag = 1; 2180 break; 2181 case '?': 2182 /* FALLTHROUGH */ 2183 default: 2184 usage(); 2185 } 2186 } 2187 argc -= optind; 2188 argv += optind; 2189 2190 if (argc != 1) { 2191 usage(); 2192 } 2193 2194 special = getfsspecname(specname, sizeof(specname), argv[0]); 2195 if (special == NULL) 2196 err(EXIT_FAILURE, "%s: %s", argv[0], specname); 2197 raw = getdiskrawname(rawname, sizeof(rawname), special); 2198 if (raw != NULL) 2199 special = raw; 2200 2201 if (ExpertFlag == 0 && CheckOnlyFlag == 0) { 2202 printf("It's required to manually run fsck on file system " 2203 "before you can resize it\n\n" 2204 " Did you run fsck on your disk (Yes/No) ? "); 2205 fgets(reply, (int)sizeof(reply), stdin); 2206 if (strcasecmp(reply, "Yes\n")) { 2207 printf("\n Nothing done \n"); 2208 exit(EXIT_SUCCESS); 2209 } 2210 } 2211 2212 fd = open(special, O_RDWR, 0); 2213 if (fd < 0) 2214 err(EXIT_FAILURE, "Can't open `%s'", special); 2215 checksmallio(); 2216 2217 if (SFlag == 0) { 2218 newsize = get_dev_size(special); 2219 if (newsize == 0) 2220 err(EXIT_FAILURE, 2221 "Can't resize file system, newsize not known."); 2222 } 2223 2224 oldsb = (struct fs *) & sbbuf; 2225 newsb = (struct fs *) (SBLOCKSIZE + (char *) &sbbuf); 2226 for (where = search[i = 0]; search[i] != -1; where = search[++i]) { 2227 readat(where / DEV_BSIZE, oldsb, SBLOCKSIZE); 2228 switch (oldsb->fs_magic) { 2229 case FS_UFS2_MAGIC: 2230 is_ufs2 = 1; 2231 /* FALLTHROUGH */ 2232 case FS_UFS1_MAGIC: 2233 needswap = 0; 2234 break; 2235 case FS_UFS2_MAGIC_SWAPPED: 2236 is_ufs2 = 1; 2237 /* FALLTHROUGH */ 2238 case FS_UFS1_MAGIC_SWAPPED: 2239 needswap = 1; 2240 break; 2241 default: 2242 continue; 2243 } 2244 if (!is_ufs2 && where == SBLOCK_UFS2) 2245 continue; 2246 break; 2247 } 2248 if (where == (off_t)-1) 2249 errx(EXIT_FAILURE, "Bad magic number"); 2250 if (needswap) 2251 ffs_sb_swap(oldsb,oldsb); 2252 if (oldsb->fs_magic == FS_UFS1_MAGIC && 2253 (oldsb->fs_old_flags & FS_FLAGS_UPDATED) == 0) { 2254 oldsb->fs_csaddr = oldsb->fs_old_csaddr; 2255 oldsb->fs_size = oldsb->fs_old_size; 2256 oldsb->fs_dsize = oldsb->fs_old_dsize; 2257 oldsb->fs_cstotal.cs_ndir = oldsb->fs_old_cstotal.cs_ndir; 2258 oldsb->fs_cstotal.cs_nbfree = oldsb->fs_old_cstotal.cs_nbfree; 2259 oldsb->fs_cstotal.cs_nifree = oldsb->fs_old_cstotal.cs_nifree; 2260 oldsb->fs_cstotal.cs_nffree = oldsb->fs_old_cstotal.cs_nffree; 2261 /* any others? */ 2262 printf("Resizing with ffsv1 superblock\n"); 2263 } 2264 2265 oldsb->fs_qbmask = ~(int64_t) oldsb->fs_bmask; 2266 oldsb->fs_qfmask = ~(int64_t) oldsb->fs_fmask; 2267 if (oldsb->fs_ipg % FFS_INOPB(oldsb)) 2268 errx(EXIT_FAILURE, "ipg[%d] %% FFS_INOPB[%d] != 0", 2269 (int) oldsb->fs_ipg, (int) FFS_INOPB(oldsb)); 2270 /* The superblock is bigger than struct fs (there are trailing 2271 * tables, of non-fixed size); make sure we copy the whole 2272 * thing. SBLOCKSIZE may be an over-estimate, but we do this 2273 * just once, so being generous is cheap. */ 2274 memcpy(newsb, oldsb, SBLOCKSIZE); 2275 2276 if (progress) { 2277 progress_ttywidth(0); 2278 signal(SIGWINCH, progress_ttywidth); 2279 } 2280 2281 loadcgs(); 2282 2283 if (progress && !CheckOnlyFlag) { 2284 progress_switch(progress); 2285 progress_init(); 2286 } 2287 2288 if (newsize > FFS_FSBTODB(oldsb, oldsb->fs_size)) { 2289 if (CheckOnlyFlag) 2290 exit(checkonly()); 2291 grow(); 2292 } else if (newsize < FFS_FSBTODB(oldsb, oldsb->fs_size)) { 2293 if (is_ufs2) 2294 errx(EXIT_FAILURE,"shrinking not supported for ufs2"); 2295 if (CheckOnlyFlag) 2296 exit(checkonly()); 2297 shrink(); 2298 } else { 2299 if (CheckOnlyFlag) 2300 exit(checkonly()); 2301 if (verbose) 2302 printf("No change requested: already %" PRId64 2303 " blocks\n", (int64_t)oldsb->fs_size); 2304 } 2305 2306 flush_cgs(); 2307 write_sbs(); 2308 if (isplainfile()) 2309 ftruncate(fd,newsize * DEV_BSIZE); 2310 return 0; 2311 } 2312 2313 static void 2314 usage(void) 2315 { 2316 2317 (void)fprintf(stderr, "usage: %s [-cpvy] [-s size] special\n", 2318 getprogname()); 2319 exit(EXIT_FAILURE); 2320 } 2321