1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Copyright (c) 2000-2002,2005 Silicon Graphics, Inc. 4 * All Rights Reserved. 5 */ 6 #include "xfs_platform.h" 7 #include "xfs_fs.h" 8 #include "xfs_shared.h" 9 #include "xfs_format.h" 10 #include "xfs_log_format.h" 11 #include "xfs_trans_resv.h" 12 #include "xfs_mount.h" 13 #include "xfs_inode.h" 14 #include "xfs_trans.h" 15 #include "xfs_inode_item.h" 16 #include "xfs_trace.h" 17 #include "xfs_trans_priv.h" 18 #include "xfs_buf_item.h" 19 #include "xfs_log.h" 20 #include "xfs_log_priv.h" 21 #include "xfs_ag.h" 22 #include "xfs_error.h" 23 #include "xfs_rtbitmap.h" 24 25 #include <linux/iversion.h> 26 27 struct kmem_cache *xfs_ili_cache; /* inode log item */ 28 29 static inline struct xfs_inode_log_item *INODE_ITEM(struct xfs_log_item *lip) 30 { 31 return container_of(lip, struct xfs_inode_log_item, ili_item); 32 } 33 34 static uint64_t 35 xfs_inode_item_sort( 36 struct xfs_log_item *lip) 37 { 38 return I_INO(INODE_ITEM(lip)->ili_inode); 39 } 40 41 #ifdef DEBUG_EXPENSIVE 42 static void 43 xfs_inode_item_precommit_check( 44 struct xfs_inode *ip) 45 { 46 struct xfs_mount *mp = ip->i_mount; 47 struct xfs_dinode *dip; 48 xfs_failaddr_t fa; 49 50 dip = kzalloc(mp->m_sb.sb_inodesize, GFP_KERNEL | GFP_NOFS); 51 if (!dip) { 52 ASSERT(dip != NULL); 53 return; 54 } 55 56 xfs_inode_to_disk(ip, dip, 0); 57 xfs_dinode_calc_crc(mp, dip); 58 fa = xfs_dinode_verify(mp, I_INO(ip), dip); 59 if (fa) { 60 xfs_inode_verifier_error(ip, -EFSCORRUPTED, __func__, dip, 61 sizeof(*dip), fa); 62 xfs_force_shutdown(mp, SHUTDOWN_CORRUPT_INCORE); 63 ASSERT(fa == NULL); 64 } 65 kfree(dip); 66 } 67 #else 68 # define xfs_inode_item_precommit_check(ip) ((void)0) 69 #endif 70 71 /* 72 * Prior to finally logging the inode, we have to ensure that all the 73 * per-modification inode state changes are applied. This includes VFS inode 74 * state updates, format conversions, verifier state synchronisation and 75 * ensuring the inode buffer remains in memory whilst the inode is dirty. 76 * 77 * We have to be careful when we grab the inode cluster buffer due to lock 78 * ordering constraints. The unlinked inode modifications (xfs_iunlink_item) 79 * require AGI -> inode cluster buffer lock order. The inode cluster buffer is 80 * not locked until ->precommit, so it happens after everything else has been 81 * modified. 82 * 83 * Further, we have AGI -> AGF lock ordering, and with O_TMPFILE handling we 84 * have AGI -> AGF -> iunlink item -> inode cluster buffer lock order. Hence we 85 * cannot safely lock the inode cluster buffer in xfs_trans_log_inode() because 86 * it can be called on a inode (e.g. via bumplink/droplink) before we take the 87 * AGF lock modifying directory blocks. 88 * 89 * Rather than force a complete rework of all the transactions to call 90 * xfs_trans_log_inode() once and once only at the end of every transaction, we 91 * move the pinning of the inode cluster buffer to a ->precommit operation. This 92 * matches how the xfs_iunlink_item locks the inode cluster buffer, and it 93 * ensures that the inode cluster buffer locking is always done last in a 94 * transaction. i.e. we ensure the lock order is always AGI -> AGF -> inode 95 * cluster buffer. 96 * 97 * If we return the inode number as the precommit sort key then we'll also 98 * guarantee that the order all inode cluster buffer locking is the same all the 99 * inodes and unlink items in the transaction. 100 */ 101 static int 102 xfs_inode_item_precommit( 103 struct xfs_trans *tp, 104 struct xfs_log_item *lip) 105 { 106 struct xfs_inode_log_item *iip = INODE_ITEM(lip); 107 struct xfs_inode *ip = iip->ili_inode; 108 struct xfs_mount *mp = ip->i_mount; 109 struct inode *inode = VFS_I(ip); 110 unsigned int flags = iip->ili_dirty_flags; 111 112 /* 113 * Don't bother with i_lock for the I_DIRTY_TIME check here, as races 114 * don't matter - we either will need an extra transaction in 24 hours 115 * to log the timestamps, or will clear already cleared fields in the 116 * worst case. 117 */ 118 if (inode_state_read_once(inode) & I_DIRTY_TIME) { 119 spin_lock(&inode->i_lock); 120 inode_state_clear(inode, I_DIRTY_TIME); 121 spin_unlock(&inode->i_lock); 122 } 123 124 /* 125 * If we're updating the inode core or the timestamps and it's possible 126 * to upgrade this inode to bigtime format, do so now. 127 */ 128 if ((flags & (XFS_ILOG_CORE | XFS_ILOG_TIMESTAMP)) && 129 xfs_has_bigtime(mp) && !xfs_inode_has_bigtime(ip)) { 130 ip->i_diflags2 |= XFS_DIFLAG2_BIGTIME; 131 flags |= XFS_ILOG_CORE; 132 } 133 134 /* 135 * Inode verifiers do not check that the extent size hints are an 136 * integer multiple of the rt extent size on a directory with 137 * rtinherit flags set. If we're logging a directory that is 138 * misconfigured in this way, clear the bad hints. 139 */ 140 if (ip->i_diflags & XFS_DIFLAG_RTINHERIT) { 141 if ((ip->i_diflags & XFS_DIFLAG_EXTSZINHERIT) && 142 xfs_extlen_to_rtxmod(mp, ip->i_extsize) > 0) { 143 ip->i_diflags &= ~(XFS_DIFLAG_EXTSIZE | 144 XFS_DIFLAG_EXTSZINHERIT); 145 ip->i_extsize = 0; 146 flags |= XFS_ILOG_CORE; 147 } 148 if ((ip->i_diflags2 & XFS_DIFLAG2_COWEXTSIZE) && 149 xfs_extlen_to_rtxmod(mp, ip->i_cowextsize) > 0) { 150 ip->i_diflags2 &= ~XFS_DIFLAG2_COWEXTSIZE; 151 ip->i_cowextsize = 0; 152 flags |= XFS_ILOG_CORE; 153 } 154 } 155 156 spin_lock(&iip->ili_lock); 157 if (!iip->ili_item.li_buf) { 158 struct xfs_perag *pag; 159 struct xfs_buf *bp; 160 int error; 161 162 /* 163 * We hold the ILOCK here, so this inode is not going to be 164 * flushed while we are here. Further, because there is no 165 * buffer attached to the item, we know that there is no IO in 166 * progress, so nothing will clear the ili_fields while we read 167 * in the buffer. Hence we can safely drop the spin lock and 168 * read the buffer knowing that the state will not change from 169 * here. 170 */ 171 spin_unlock(&iip->ili_lock); 172 pag = xfs_perag_get(mp, XFS_INODE_TO_AGNO(ip)); 173 error = xfs_read_icluster(pag, tp, ip->i_imap.im_agbno, &bp); 174 xfs_perag_put(pag); 175 if (error) 176 return error; 177 178 /* 179 * We need an explicit buffer reference for the log item but 180 * don't want the buffer to remain attached to the transaction. 181 * Hold the buffer but release the transaction reference once 182 * we've attached the inode log item to the buffer log item 183 * list. 184 */ 185 xfs_buf_hold(bp); 186 spin_lock(&iip->ili_lock); 187 iip->ili_item.li_buf = bp; 188 bp->b_iodone = xfs_buf_inode_iodone; 189 list_add_tail(&iip->ili_item.li_bio_list, &bp->b_li_list); 190 xfs_trans_brelse(tp, bp); 191 } 192 193 /* 194 * Store the dirty flags back into the inode item as this state is used 195 * later on in xfs_inode_item_committing() to determine whether the 196 * transaction is relevant to fsync state or not. 197 */ 198 iip->ili_dirty_flags = flags; 199 200 /* 201 * Convert the flags on-disk fields that have been modified in the 202 * transaction so that ili_fields tracks the changes correctly. 203 */ 204 if (flags & XFS_ILOG_IVERSION) 205 flags = ((flags & ~XFS_ILOG_IVERSION) | XFS_ILOG_CORE); 206 207 /* 208 * Always OR in the bits from the ili_last_fields field. This is to 209 * coordinate with the xfs_iflush() and xfs_buf_inode_iodone() routines 210 * in the eventual clearing of the ili_fields bits. See the big comment 211 * in xfs_iflush() for an explanation of this coordination mechanism. 212 */ 213 iip->ili_fields |= (flags | iip->ili_last_fields); 214 spin_unlock(&iip->ili_lock); 215 216 xfs_inode_item_precommit_check(ip); 217 return 0; 218 } 219 220 /* 221 * The logged size of an inode fork is always the current size of the inode 222 * fork. This means that when an inode fork is relogged, the size of the logged 223 * region is determined by the current state, not the combination of the 224 * previously logged state + the current state. This is different relogging 225 * behaviour to most other log items which will retain the size of the 226 * previously logged changes when smaller regions are relogged. 227 * 228 * Hence operations that remove data from the inode fork (e.g. shortform 229 * dir/attr remove, extent form extent removal, etc), the size of the relogged 230 * inode gets -smaller- rather than stays the same size as the previously logged 231 * size and this can result in the committing transaction reducing the amount of 232 * space being consumed by the CIL. 233 */ 234 STATIC void 235 xfs_inode_item_data_fork_size( 236 struct xfs_inode_log_item *iip, 237 int *nvecs, 238 int *nbytes) 239 { 240 struct xfs_inode *ip = iip->ili_inode; 241 242 switch (ip->i_df.if_format) { 243 case XFS_DINODE_FMT_EXTENTS: 244 if ((iip->ili_fields & XFS_ILOG_DEXT) && 245 ip->i_df.if_nextents > 0 && 246 ip->i_df.if_bytes > 0) { 247 /* worst case, doesn't subtract delalloc extents */ 248 *nbytes += xfs_inode_data_fork_size(ip); 249 *nvecs += 1; 250 } 251 break; 252 case XFS_DINODE_FMT_BTREE: 253 case XFS_DINODE_FMT_META_BTREE: 254 if ((iip->ili_fields & XFS_ILOG_DBROOT) && 255 ip->i_df.if_broot_bytes > 0) { 256 *nbytes += ip->i_df.if_broot_bytes; 257 *nvecs += 1; 258 } 259 break; 260 case XFS_DINODE_FMT_LOCAL: 261 if ((iip->ili_fields & XFS_ILOG_DDATA) && 262 ip->i_df.if_bytes > 0) { 263 *nbytes += xlog_calc_iovec_len(ip->i_df.if_bytes); 264 *nvecs += 1; 265 } 266 break; 267 268 case XFS_DINODE_FMT_DEV: 269 break; 270 default: 271 ASSERT(0); 272 break; 273 } 274 } 275 276 STATIC void 277 xfs_inode_item_attr_fork_size( 278 struct xfs_inode_log_item *iip, 279 int *nvecs, 280 int *nbytes) 281 { 282 struct xfs_inode *ip = iip->ili_inode; 283 284 switch (ip->i_af.if_format) { 285 case XFS_DINODE_FMT_EXTENTS: 286 if ((iip->ili_fields & XFS_ILOG_AEXT) && 287 ip->i_af.if_nextents > 0 && 288 ip->i_af.if_bytes > 0) { 289 /* worst case, doesn't subtract unused space */ 290 *nbytes += xfs_inode_attr_fork_size(ip); 291 *nvecs += 1; 292 } 293 break; 294 case XFS_DINODE_FMT_BTREE: 295 if ((iip->ili_fields & XFS_ILOG_ABROOT) && 296 ip->i_af.if_broot_bytes > 0) { 297 *nbytes += ip->i_af.if_broot_bytes; 298 *nvecs += 1; 299 } 300 break; 301 case XFS_DINODE_FMT_LOCAL: 302 if ((iip->ili_fields & XFS_ILOG_ADATA) && 303 ip->i_af.if_bytes > 0) { 304 *nbytes += xlog_calc_iovec_len(ip->i_af.if_bytes); 305 *nvecs += 1; 306 } 307 break; 308 default: 309 ASSERT(0); 310 break; 311 } 312 } 313 314 /* 315 * This returns the number of iovecs needed to log the given inode item. 316 * 317 * We need one iovec for the inode log format structure, one for the 318 * inode core, and possibly one for the inode data/extents/b-tree root 319 * and one for the inode attribute data/extents/b-tree root. 320 */ 321 STATIC void 322 xfs_inode_item_size( 323 struct xfs_log_item *lip, 324 int *nvecs, 325 int *nbytes) 326 { 327 struct xfs_inode_log_item *iip = INODE_ITEM(lip); 328 struct xfs_inode *ip = iip->ili_inode; 329 330 *nvecs += 2; 331 *nbytes += sizeof(struct xfs_inode_log_format) + 332 xfs_log_dinode_size(ip->i_mount); 333 334 xfs_inode_item_data_fork_size(iip, nvecs, nbytes); 335 if (xfs_inode_has_attr_fork(ip)) 336 xfs_inode_item_attr_fork_size(iip, nvecs, nbytes); 337 } 338 339 STATIC void 340 xfs_inode_item_format_data_fork( 341 struct xfs_inode_log_item *iip, 342 struct xfs_inode_log_format *ilf, 343 struct xlog_format_buf *lfb) 344 { 345 struct xfs_inode *ip = iip->ili_inode; 346 size_t data_bytes; 347 348 switch (ip->i_df.if_format) { 349 case XFS_DINODE_FMT_EXTENTS: 350 iip->ili_fields &= 351 ~(XFS_ILOG_DDATA | XFS_ILOG_DBROOT | XFS_ILOG_DEV); 352 353 if ((iip->ili_fields & XFS_ILOG_DEXT) && 354 ip->i_df.if_nextents > 0 && 355 ip->i_df.if_bytes > 0) { 356 struct xfs_bmbt_rec *p; 357 358 ASSERT(xfs_iext_count(&ip->i_df) > 0); 359 360 p = xlog_format_start(lfb, XLOG_REG_TYPE_IEXT); 361 data_bytes = xfs_iextents_copy(ip, p, XFS_DATA_FORK); 362 xlog_format_commit(lfb, data_bytes); 363 364 ASSERT(data_bytes <= ip->i_df.if_bytes); 365 366 ilf->ilf_dsize = data_bytes; 367 ilf->ilf_size++; 368 } else { 369 iip->ili_fields &= ~XFS_ILOG_DEXT; 370 } 371 break; 372 case XFS_DINODE_FMT_BTREE: 373 case XFS_DINODE_FMT_META_BTREE: 374 iip->ili_fields &= 375 ~(XFS_ILOG_DDATA | XFS_ILOG_DEXT | XFS_ILOG_DEV); 376 377 if ((iip->ili_fields & XFS_ILOG_DBROOT) && 378 ip->i_df.if_broot_bytes > 0) { 379 ASSERT(ip->i_df.if_broot != NULL); 380 xlog_format_copy(lfb, XLOG_REG_TYPE_IBROOT, 381 ip->i_df.if_broot, 382 ip->i_df.if_broot_bytes); 383 ilf->ilf_dsize = ip->i_df.if_broot_bytes; 384 ilf->ilf_size++; 385 } else { 386 ASSERT(!(iip->ili_fields & 387 XFS_ILOG_DBROOT)); 388 iip->ili_fields &= ~XFS_ILOG_DBROOT; 389 } 390 break; 391 case XFS_DINODE_FMT_LOCAL: 392 iip->ili_fields &= 393 ~(XFS_ILOG_DEXT | XFS_ILOG_DBROOT | XFS_ILOG_DEV); 394 if ((iip->ili_fields & XFS_ILOG_DDATA) && 395 ip->i_df.if_bytes > 0) { 396 ASSERT(ip->i_df.if_data != NULL); 397 ASSERT(ip->i_disk_size > 0); 398 xlog_format_copy(lfb, XLOG_REG_TYPE_ILOCAL, 399 ip->i_df.if_data, 400 ip->i_df.if_bytes); 401 ilf->ilf_dsize = (unsigned)ip->i_df.if_bytes; 402 ilf->ilf_size++; 403 } else { 404 iip->ili_fields &= ~XFS_ILOG_DDATA; 405 } 406 break; 407 case XFS_DINODE_FMT_DEV: 408 iip->ili_fields &= 409 ~(XFS_ILOG_DDATA | XFS_ILOG_DBROOT | XFS_ILOG_DEXT); 410 if (iip->ili_fields & XFS_ILOG_DEV) 411 ilf->ilf_u.ilfu_rdev = sysv_encode_dev(VFS_I(ip)->i_rdev); 412 break; 413 default: 414 ASSERT(0); 415 break; 416 } 417 } 418 419 STATIC void 420 xfs_inode_item_format_attr_fork( 421 struct xfs_inode_log_item *iip, 422 struct xfs_inode_log_format *ilf, 423 struct xlog_format_buf *lfb) 424 { 425 struct xfs_inode *ip = iip->ili_inode; 426 size_t data_bytes; 427 428 switch (ip->i_af.if_format) { 429 case XFS_DINODE_FMT_EXTENTS: 430 iip->ili_fields &= 431 ~(XFS_ILOG_ADATA | XFS_ILOG_ABROOT); 432 433 if ((iip->ili_fields & XFS_ILOG_AEXT) && 434 ip->i_af.if_nextents > 0 && 435 ip->i_af.if_bytes > 0) { 436 struct xfs_bmbt_rec *p; 437 438 ASSERT(xfs_iext_count(&ip->i_af) == 439 ip->i_af.if_nextents); 440 441 p = xlog_format_start(lfb, XLOG_REG_TYPE_IATTR_EXT); 442 data_bytes = xfs_iextents_copy(ip, p, XFS_ATTR_FORK); 443 xlog_format_commit(lfb, data_bytes); 444 445 ilf->ilf_asize = data_bytes; 446 ilf->ilf_size++; 447 } else { 448 iip->ili_fields &= ~XFS_ILOG_AEXT; 449 } 450 break; 451 case XFS_DINODE_FMT_BTREE: 452 iip->ili_fields &= 453 ~(XFS_ILOG_ADATA | XFS_ILOG_AEXT); 454 455 if ((iip->ili_fields & XFS_ILOG_ABROOT) && 456 ip->i_af.if_broot_bytes > 0) { 457 ASSERT(ip->i_af.if_broot != NULL); 458 459 xlog_format_copy(lfb, XLOG_REG_TYPE_IATTR_BROOT, 460 ip->i_af.if_broot, 461 ip->i_af.if_broot_bytes); 462 ilf->ilf_asize = ip->i_af.if_broot_bytes; 463 ilf->ilf_size++; 464 } else { 465 iip->ili_fields &= ~XFS_ILOG_ABROOT; 466 } 467 break; 468 case XFS_DINODE_FMT_LOCAL: 469 iip->ili_fields &= 470 ~(XFS_ILOG_AEXT | XFS_ILOG_ABROOT); 471 472 if ((iip->ili_fields & XFS_ILOG_ADATA) && 473 ip->i_af.if_bytes > 0) { 474 ASSERT(ip->i_af.if_data != NULL); 475 xlog_format_copy(lfb, XLOG_REG_TYPE_IATTR_LOCAL, 476 ip->i_af.if_data, 477 ip->i_af.if_bytes); 478 ilf->ilf_asize = (unsigned)ip->i_af.if_bytes; 479 ilf->ilf_size++; 480 } else { 481 iip->ili_fields &= ~XFS_ILOG_ADATA; 482 } 483 break; 484 default: 485 ASSERT(0); 486 break; 487 } 488 } 489 490 /* 491 * Convert an incore timestamp to a log timestamp. Note that the log format 492 * specifies host endian format! 493 */ 494 static inline xfs_log_timestamp_t 495 xfs_inode_to_log_dinode_ts( 496 struct xfs_inode *ip, 497 const struct timespec64 tv) 498 { 499 struct xfs_log_legacy_timestamp *lits; 500 xfs_log_timestamp_t its; 501 502 if (xfs_inode_has_bigtime(ip)) 503 return xfs_inode_encode_bigtime(tv); 504 505 lits = (struct xfs_log_legacy_timestamp *)&its; 506 lits->t_sec = tv.tv_sec; 507 lits->t_nsec = tv.tv_nsec; 508 509 return its; 510 } 511 512 /* 513 * The legacy DMAPI fields are only present in the on-disk and in-log inodes, 514 * but not in the in-memory one. But we are guaranteed to have an inode buffer 515 * in memory when logging an inode, so we can just copy it from the on-disk 516 * inode to the in-log inode here so that recovery of file system with these 517 * fields set to non-zero values doesn't lose them. For all other cases we zero 518 * the fields. 519 */ 520 static void 521 xfs_copy_dm_fields_to_log_dinode( 522 struct xfs_inode *ip, 523 struct xfs_log_dinode *to) 524 { 525 struct xfs_dinode *dip; 526 527 dip = xfs_buf_offset(ip->i_itemp->ili_item.li_buf, 528 ip->i_imap.im_boffset); 529 530 if (xfs_iflags_test(ip, XFS_IPRESERVE_DM_FIELDS)) { 531 to->di_dmevmask = be32_to_cpu(dip->di_dmevmask); 532 to->di_dmstate = be16_to_cpu(dip->di_dmstate); 533 } else { 534 to->di_dmevmask = 0; 535 to->di_dmstate = 0; 536 } 537 } 538 539 static inline void 540 xfs_inode_to_log_dinode_iext_counters( 541 struct xfs_inode *ip, 542 struct xfs_log_dinode *to) 543 { 544 if (xfs_inode_has_large_extent_counts(ip)) { 545 to->di_big_nextents = xfs_ifork_nextents(&ip->i_df); 546 to->di_big_anextents = xfs_ifork_nextents(&ip->i_af); 547 to->di_nrext64_pad = 0; 548 } else { 549 to->di_nextents = xfs_ifork_nextents(&ip->i_df); 550 to->di_anextents = xfs_ifork_nextents(&ip->i_af); 551 } 552 } 553 554 static void 555 xfs_inode_to_log_dinode( 556 struct xfs_inode *ip, 557 struct xfs_log_dinode *to, 558 xfs_lsn_t lsn) 559 { 560 struct inode *inode = VFS_I(ip); 561 562 to->di_magic = XFS_DINODE_MAGIC; 563 to->di_format = xfs_ifork_format(&ip->i_df); 564 to->di_uid = i_uid_read(inode); 565 to->di_gid = i_gid_read(inode); 566 to->di_projid_lo = ip->i_projid & 0xffff; 567 to->di_projid_hi = ip->i_projid >> 16; 568 569 to->di_atime = xfs_inode_to_log_dinode_ts(ip, inode_get_atime(inode)); 570 to->di_mtime = xfs_inode_to_log_dinode_ts(ip, inode_get_mtime(inode)); 571 to->di_ctime = xfs_inode_to_log_dinode_ts(ip, inode_get_ctime(inode)); 572 to->di_nlink = inode->i_nlink; 573 to->di_gen = inode->i_generation; 574 to->di_mode = inode->i_mode; 575 576 to->di_size = ip->i_disk_size; 577 to->di_nblocks = ip->i_nblocks; 578 to->di_extsize = ip->i_extsize; 579 to->di_forkoff = ip->i_forkoff; 580 to->di_aformat = xfs_ifork_format(&ip->i_af); 581 to->di_flags = ip->i_diflags; 582 583 xfs_copy_dm_fields_to_log_dinode(ip, to); 584 585 /* log a dummy value to ensure log structure is fully initialised */ 586 to->di_next_unlinked = NULLAGINO; 587 588 if (xfs_has_v3inodes(ip->i_mount)) { 589 to->di_version = 3; 590 to->di_changecount = inode_peek_iversion(inode); 591 to->di_crtime = xfs_inode_to_log_dinode_ts(ip, ip->i_crtime); 592 to->di_flags2 = ip->i_diflags2; 593 /* also covers the di_used_blocks union arm: */ 594 to->di_cowextsize = ip->i_cowextsize; 595 to->di_ino = I_INO(ip); 596 to->di_lsn = lsn; 597 memset(to->di_pad2, 0, sizeof(to->di_pad2)); 598 uuid_copy(&to->di_uuid, &ip->i_mount->m_sb.sb_meta_uuid); 599 to->di_v3_pad = 0; 600 601 /* dummy value for initialisation */ 602 to->di_crc = 0; 603 604 if (xfs_is_metadir_inode(ip)) 605 to->di_metatype = ip->i_metatype; 606 else 607 to->di_metatype = 0; 608 } else { 609 to->di_version = 2; 610 to->di_flushiter = ip->i_flushiter; 611 memset(to->di_v2_pad, 0, sizeof(to->di_v2_pad)); 612 to->di_metatype = 0; 613 } 614 615 xfs_inode_to_log_dinode_iext_counters(ip, to); 616 } 617 618 /* 619 * Format the inode core. Current timestamp data is only in the VFS inode 620 * fields, so we need to grab them from there. Hence rather than just copying 621 * the XFS inode core structure, format the fields directly into the iovec. 622 */ 623 static void 624 xfs_inode_item_format_core( 625 struct xfs_inode *ip, 626 struct xlog_format_buf *lfb) 627 { 628 struct xfs_log_dinode *dic; 629 630 dic = xlog_format_start(lfb, XLOG_REG_TYPE_ICORE); 631 xfs_inode_to_log_dinode(ip, dic, ip->i_itemp->ili_item.li_lsn); 632 xlog_format_commit(lfb, xfs_log_dinode_size(ip->i_mount)); 633 } 634 635 /* 636 * This is called to fill in the vector of log iovecs for the given inode 637 * log item. It fills the first item with an inode log format structure, 638 * the second with the on-disk inode structure, and a possible third and/or 639 * fourth with the inode data/extents/b-tree root and inode attributes 640 * data/extents/b-tree root. 641 * 642 * Note: Always use the 64 bit inode log format structure so we don't 643 * leave an uninitialised hole in the format item on 64 bit systems. Log 644 * recovery on 32 bit systems handles this just fine, so there's no reason 645 * for not using an initialising the properly padded structure all the time. 646 */ 647 STATIC void 648 xfs_inode_item_format( 649 struct xfs_log_item *lip, 650 struct xlog_format_buf *lfb) 651 { 652 struct xfs_inode_log_item *iip = INODE_ITEM(lip); 653 struct xfs_inode *ip = iip->ili_inode; 654 struct xfs_mount *mp = ip->i_mount; 655 struct xfs_inode_log_format *ilf; 656 657 ilf = xlog_format_start(lfb, XLOG_REG_TYPE_IFORMAT); 658 ilf->ilf_type = XFS_LI_INODE; 659 ilf->ilf_ino = I_INO(ip); 660 ilf->ilf_blkno = XFS_AGB_TO_DADDR(mp, XFS_INODE_TO_AGNO(ip), 661 ip->i_imap.im_agbno); 662 ilf->ilf_len = XFS_FSB_TO_BB(mp, M_IGEO(mp)->blocks_per_cluster); 663 ilf->ilf_boffset = ip->i_imap.im_boffset; 664 ilf->ilf_fields = XFS_ILOG_CORE; 665 ilf->ilf_size = 2; /* format + core */ 666 667 /* 668 * make sure we don't leak uninitialised data into the log in the case 669 * when we don't log every field in the inode. 670 */ 671 ilf->ilf_dsize = 0; 672 ilf->ilf_asize = 0; 673 ilf->ilf_pad = 0; 674 memset(&ilf->ilf_u, 0, sizeof(ilf->ilf_u)); 675 xlog_format_commit(lfb, sizeof(*ilf)); 676 677 xfs_inode_item_format_core(ip, lfb); 678 xfs_inode_item_format_data_fork(iip, ilf, lfb); 679 if (xfs_inode_has_attr_fork(ip)) { 680 xfs_inode_item_format_attr_fork(iip, ilf, lfb); 681 } else { 682 iip->ili_fields &= 683 ~(XFS_ILOG_ADATA | XFS_ILOG_ABROOT | XFS_ILOG_AEXT); 684 } 685 686 /* update the format with the exact fields we actually logged */ 687 ilf->ilf_fields |= (iip->ili_fields & ~XFS_ILOG_TIMESTAMP); 688 } 689 690 /* 691 * This is called to pin the inode associated with the inode log 692 * item in memory so it cannot be written out. 693 */ 694 STATIC void 695 xfs_inode_item_pin( 696 struct xfs_log_item *lip) 697 { 698 struct xfs_inode *ip = INODE_ITEM(lip)->ili_inode; 699 700 xfs_assert_ilocked(ip, XFS_ILOCK_EXCL); 701 ASSERT(lip->li_buf); 702 703 trace_xfs_inode_pin(ip, _RET_IP_); 704 atomic_inc(&ip->i_pincount); 705 } 706 707 708 /* 709 * This is called to unpin the inode associated with the inode log 710 * item which was previously pinned with a call to xfs_inode_item_pin(). 711 * 712 * Also wake up anyone in xfs_iunpin_wait() if the count goes to 0. 713 * 714 * Note that unpin can race with inode cluster buffer freeing marking the buffer 715 * stale. In that case, flush completions are run from the buffer unpin call, 716 * which may happen before the inode is unpinned. If we lose the race, there 717 * will be no buffer attached to the log item, but the inode will be marked 718 * XFS_ISTALE. 719 */ 720 STATIC void 721 xfs_inode_item_unpin( 722 struct xfs_log_item *lip, 723 int remove) 724 { 725 struct xfs_inode_log_item *iip = INODE_ITEM(lip); 726 struct xfs_inode *ip = iip->ili_inode; 727 728 trace_xfs_inode_unpin(ip, _RET_IP_); 729 ASSERT(lip->li_buf || xfs_iflags_test(ip, XFS_ISTALE)); 730 ASSERT(atomic_read(&ip->i_pincount) > 0); 731 732 /* 733 * If this is the last unpin, then the inode no longer needs a journal 734 * flush to persist it. Hence we can clear the commit sequence numbers 735 * as a fsync/fdatasync operation on the inode at this point is a no-op. 736 */ 737 if (atomic_dec_and_lock(&ip->i_pincount, &iip->ili_lock)) { 738 iip->ili_commit_seq = 0; 739 iip->ili_datasync_seq = 0; 740 spin_unlock(&iip->ili_lock); 741 wake_up_bit(&ip->i_flags, __XFS_IPINNED_BIT); 742 } 743 } 744 745 STATIC uint 746 xfs_inode_item_push( 747 struct xfs_log_item *lip, 748 struct list_head *buffer_list) 749 __releases(&lip->li_ailp->ail_lock) 750 __acquires(&lip->li_ailp->ail_lock) 751 { 752 struct xfs_inode_log_item *iip = INODE_ITEM(lip); 753 struct xfs_inode *ip = iip->ili_inode; 754 struct xfs_buf *bp = lip->li_buf; 755 struct xfs_ail *ailp = lip->li_ailp; 756 uint rval = XFS_ITEM_SUCCESS; 757 int error; 758 759 if (!bp || (ip->i_flags & XFS_ISTALE)) { 760 /* 761 * Inode item/buffer is being aborted due to cluster 762 * buffer deletion. Trigger a log force to have that operation 763 * completed and items removed from the AIL before the next push 764 * attempt. 765 */ 766 trace_xfs_inode_push_stale(ip, _RET_IP_); 767 return XFS_ITEM_PINNED; 768 } 769 770 if (xfs_ipincount(ip) > 0 || xfs_buf_ispinned(bp)) { 771 trace_xfs_inode_push_pinned(ip, _RET_IP_); 772 return XFS_ITEM_PINNED; 773 } 774 775 if (xfs_iflags_test(ip, XFS_IFLUSHING)) 776 return XFS_ITEM_FLUSHING; 777 778 if (!xfs_buf_trylock(bp)) 779 return XFS_ITEM_LOCKED; 780 781 spin_unlock(&ailp->ail_lock); 782 783 /* 784 * We need to hold a reference for flushing the cluster buffer as it may 785 * fail the buffer without IO submission. In which case, we better get a 786 * reference for that completion because otherwise we don't get a 787 * reference for IO until we queue the buffer for delwri submission. 788 */ 789 xfs_buf_hold(bp); 790 error = xfs_iflush_cluster(bp); 791 if (!error) { 792 if (!xfs_buf_delwri_queue(bp, buffer_list)) 793 rval = XFS_ITEM_FLUSHING; 794 xfs_buf_relse(bp); 795 } else { 796 /* 797 * Release the buffer if we were unable to flush anything. On 798 * any other error, the buffer has already been released. 799 */ 800 if (error == -EAGAIN) 801 xfs_buf_relse(bp); 802 rval = XFS_ITEM_LOCKED; 803 } 804 805 /* 806 * The buffer no longer protects the log item from reclaim, so 807 * do not reference lip after this point. 808 */ 809 spin_lock(&ailp->ail_lock); 810 return rval; 811 } 812 813 /* 814 * Unlock the inode associated with the inode log item. 815 */ 816 STATIC void 817 xfs_inode_item_release( 818 struct xfs_log_item *lip) 819 { 820 struct xfs_inode_log_item *iip = INODE_ITEM(lip); 821 struct xfs_inode *ip = iip->ili_inode; 822 unsigned short lock_flags; 823 824 ASSERT(ip->i_itemp != NULL); 825 xfs_assert_ilocked(ip, XFS_ILOCK_EXCL); 826 827 lock_flags = iip->ili_lock_flags; 828 iip->ili_lock_flags = 0; 829 if (lock_flags) 830 xfs_iunlock(ip, lock_flags); 831 } 832 833 /* 834 * This is called to find out where the oldest active copy of the inode log 835 * item in the on disk log resides now that the last log write of it completed 836 * at the given lsn. Since we always re-log all dirty data in an inode, the 837 * latest copy in the on disk log is the only one that matters. Therefore, 838 * simply return the given lsn. 839 * 840 * If the inode has been marked stale because the cluster is being freed, we 841 * don't want to (re-)insert this inode into the AIL. There is a race condition 842 * where the cluster buffer may be unpinned before the inode is inserted into 843 * the AIL during transaction committed processing. If the buffer is unpinned 844 * before the inode item has been committed and inserted, then it is possible 845 * for the buffer to be written and IO completes before the inode is inserted 846 * into the AIL. In that case, we'd be inserting a clean, stale inode into the 847 * AIL which will never get removed. It will, however, get reclaimed which 848 * triggers an assert in xfs_inode_free() complaining about freein an inode 849 * still in the AIL. 850 * 851 * To avoid this, just unpin the inode directly and return a LSN of -1 so the 852 * transaction committed code knows that it does not need to do any further 853 * processing on the item. 854 */ 855 STATIC xfs_lsn_t 856 xfs_inode_item_committed( 857 struct xfs_log_item *lip, 858 xfs_lsn_t lsn) 859 { 860 struct xfs_inode_log_item *iip = INODE_ITEM(lip); 861 struct xfs_inode *ip = iip->ili_inode; 862 863 if (xfs_iflags_test(ip, XFS_ISTALE)) { 864 xfs_inode_item_unpin(lip, 0); 865 return -1; 866 } 867 return lsn; 868 } 869 870 /* 871 * The modification is now complete, so before we unlock the inode we need to 872 * update the commit sequence numbers for data integrity journal flushes. We 873 * always record the commit sequence number (ili_commit_seq) so that anything 874 * that needs a full journal sync will capture all of this modification. 875 * 876 * We then 877 * check if the changes will impact a datasync (O_DSYNC) journal flush. If the 878 * changes will require a datasync flush, then we also record the sequence in 879 * ili_datasync_seq. 880 * 881 * These commit sequence numbers will get cleared atomically with the inode being 882 * unpinned (i.e. pin count goes to zero), and so it will only be set when the 883 * inode is dirty in the journal. This removes the need for checking if the 884 * inode is pinned to determine if a journal flush is necessary, and hence 885 * removes the need for holding the ILOCK_SHARED in xfs_file_fsync() to 886 * serialise pin counts against commit sequence number updates. 887 * 888 */ 889 STATIC void 890 xfs_inode_item_committing( 891 struct xfs_log_item *lip, 892 xfs_csn_t seq) 893 { 894 struct xfs_inode_log_item *iip = INODE_ITEM(lip); 895 896 spin_lock(&iip->ili_lock); 897 iip->ili_commit_seq = seq; 898 if (iip->ili_dirty_flags & ~(XFS_ILOG_IVERSION | XFS_ILOG_TIMESTAMP)) 899 iip->ili_datasync_seq = seq; 900 spin_unlock(&iip->ili_lock); 901 902 /* 903 * Clear the per-transaction dirty flags now that we have finished 904 * recording the transaction's inode modifications in the CIL and are 905 * about to release and (maybe) unlock the inode. 906 */ 907 iip->ili_dirty_flags = 0; 908 909 return xfs_inode_item_release(lip); 910 } 911 912 static const struct xfs_item_ops xfs_inode_item_ops = { 913 .iop_sort = xfs_inode_item_sort, 914 .iop_precommit = xfs_inode_item_precommit, 915 .iop_size = xfs_inode_item_size, 916 .iop_format = xfs_inode_item_format, 917 .iop_pin = xfs_inode_item_pin, 918 .iop_unpin = xfs_inode_item_unpin, 919 .iop_release = xfs_inode_item_release, 920 .iop_committed = xfs_inode_item_committed, 921 .iop_push = xfs_inode_item_push, 922 .iop_committing = xfs_inode_item_committing, 923 }; 924 925 926 /* 927 * Initialize the inode log item for a newly allocated (in-core) inode. 928 */ 929 void 930 xfs_inode_item_init( 931 struct xfs_inode *ip, 932 struct xfs_mount *mp) 933 { 934 struct xfs_inode_log_item *iip; 935 936 ASSERT(ip->i_itemp == NULL); 937 iip = ip->i_itemp = kmem_cache_zalloc(xfs_ili_cache, 938 GFP_KERNEL | __GFP_NOFAIL); 939 940 iip->ili_inode = ip; 941 spin_lock_init(&iip->ili_lock); 942 xfs_log_item_init(mp, &iip->ili_item, XFS_LI_INODE, 943 &xfs_inode_item_ops); 944 } 945 946 /* 947 * Free the inode log item and any memory hanging off of it. 948 */ 949 void 950 xfs_inode_item_destroy( 951 struct xfs_inode *ip) 952 { 953 struct xfs_inode_log_item *iip = ip->i_itemp; 954 955 ASSERT(iip->ili_item.li_buf == NULL); 956 957 ip->i_itemp = NULL; 958 kvfree(iip->ili_item.li_lv_shadow); 959 kmem_cache_free(xfs_ili_cache, iip); 960 } 961 962 963 /* 964 * We only want to pull the item from the AIL if it is actually there 965 * and its location in the log has not changed since we started the 966 * flush. Thus, we only bother if the inode's lsn has not changed. 967 */ 968 static void 969 xfs_iflush_ail_updates( 970 struct xfs_ail *ailp, 971 struct list_head *list) 972 { 973 struct xfs_log_item *lip; 974 xfs_lsn_t tail_lsn = 0; 975 976 /* this is an opencoded batch version of xfs_trans_ail_delete */ 977 spin_lock(&ailp->ail_lock); 978 list_for_each_entry(lip, list, li_bio_list) { 979 xfs_lsn_t lsn; 980 981 clear_bit(XFS_LI_FAILED, &lip->li_flags); 982 if (INODE_ITEM(lip)->ili_flush_lsn != lip->li_lsn) 983 continue; 984 985 /* 986 * dgc: Not sure how this happens, but it happens very 987 * occassionaly via generic/388. xfs_iflush_abort() also 988 * silently handles this same "under writeback but not in AIL at 989 * shutdown" condition via xfs_trans_ail_delete(). 990 */ 991 if (!test_bit(XFS_LI_IN_AIL, &lip->li_flags)) { 992 ASSERT(xlog_is_shutdown(lip->li_log)); 993 continue; 994 } 995 996 lsn = xfs_ail_delete_one(ailp, lip); 997 if (!tail_lsn && lsn) 998 tail_lsn = lsn; 999 } 1000 xfs_ail_update_finish(ailp, tail_lsn); 1001 } 1002 1003 /* 1004 * Walk the list of inodes that have completed their IOs. If they are clean 1005 * remove them from the list and dissociate them from the buffer. Buffers that 1006 * are still dirty remain linked to the buffer and on the list. Caller must 1007 * handle them appropriately. 1008 */ 1009 static void 1010 xfs_iflush_finish( 1011 struct xfs_buf *bp, 1012 struct list_head *list) 1013 { 1014 struct xfs_log_item *lip, *n; 1015 1016 list_for_each_entry_safe(lip, n, list, li_bio_list) { 1017 struct xfs_inode_log_item *iip = INODE_ITEM(lip); 1018 bool drop_buffer = false; 1019 1020 spin_lock(&iip->ili_lock); 1021 1022 /* 1023 * Remove the reference to the cluster buffer if the inode is 1024 * clean in memory and drop the buffer reference once we've 1025 * dropped the locks we hold. 1026 */ 1027 ASSERT(iip->ili_item.li_buf == bp); 1028 if (!iip->ili_fields) { 1029 iip->ili_item.li_buf = NULL; 1030 list_del_init(&lip->li_bio_list); 1031 drop_buffer = true; 1032 } 1033 iip->ili_last_fields = 0; 1034 iip->ili_flush_lsn = 0; 1035 clear_bit(XFS_LI_FLUSHING, &lip->li_flags); 1036 spin_unlock(&iip->ili_lock); 1037 xfs_iflags_clear(iip->ili_inode, XFS_IFLUSHING); 1038 if (drop_buffer) 1039 xfs_buf_rele(bp); 1040 } 1041 } 1042 1043 /* 1044 * Inode buffer IO completion routine. It is responsible for removing inodes 1045 * attached to the buffer from the AIL if they have not been re-logged and 1046 * completing the inode flush. 1047 */ 1048 void 1049 xfs_buf_inode_iodone( 1050 struct xfs_buf *bp) 1051 { 1052 struct xfs_log_item *lip, *n; 1053 LIST_HEAD(flushed_inodes); 1054 LIST_HEAD(ail_updates); 1055 1056 /* 1057 * Pull the attached inodes from the buffer one at a time and take the 1058 * appropriate action on them. 1059 */ 1060 list_for_each_entry_safe(lip, n, &bp->b_li_list, li_bio_list) { 1061 struct xfs_inode_log_item *iip = INODE_ITEM(lip); 1062 1063 if (xfs_iflags_test(iip->ili_inode, XFS_ISTALE)) { 1064 xfs_iflush_abort(iip->ili_inode); 1065 continue; 1066 } 1067 if (!iip->ili_last_fields) 1068 continue; 1069 1070 /* Do an unlocked check for needing the AIL lock. */ 1071 if (iip->ili_flush_lsn == lip->li_lsn || 1072 test_bit(XFS_LI_FAILED, &lip->li_flags)) 1073 list_move_tail(&lip->li_bio_list, &ail_updates); 1074 else 1075 list_move_tail(&lip->li_bio_list, &flushed_inodes); 1076 } 1077 1078 if (!list_empty(&ail_updates)) { 1079 xfs_iflush_ail_updates(bp->b_mount->m_ail, &ail_updates); 1080 list_splice_tail(&ail_updates, &flushed_inodes); 1081 } 1082 1083 xfs_iflush_finish(bp, &flushed_inodes); 1084 if (!list_empty(&flushed_inodes)) 1085 list_splice_tail(&flushed_inodes, &bp->b_li_list); 1086 } 1087 1088 /* 1089 * Clear the inode logging fields so no more flushes are attempted. If we are 1090 * on a buffer list, it is now safe to remove it because the buffer is 1091 * guaranteed to be locked. The caller will drop the reference to the buffer 1092 * the log item held. 1093 */ 1094 static void 1095 xfs_iflush_abort_clean( 1096 struct xfs_inode_log_item *iip) 1097 { 1098 iip->ili_last_fields = 0; 1099 iip->ili_fields = 0; 1100 iip->ili_flush_lsn = 0; 1101 iip->ili_item.li_buf = NULL; 1102 list_del_init(&iip->ili_item.li_bio_list); 1103 clear_bit(XFS_LI_FLUSHING, &iip->ili_item.li_flags); 1104 } 1105 1106 /* 1107 * Abort flushing the inode from a context holding the cluster buffer locked. 1108 * 1109 * This is the normal runtime method of aborting writeback of an inode that is 1110 * attached to a cluster buffer. It occurs when the inode and the backing 1111 * cluster buffer have been freed (i.e. inode is XFS_ISTALE), or when cluster 1112 * flushing or buffer IO completion encounters a log shutdown situation. 1113 * 1114 * If we need to abort inode writeback and we don't already hold the buffer 1115 * locked, call xfs_iflush_shutdown_abort() instead as this should only ever be 1116 * necessary in a shutdown situation. 1117 */ 1118 void 1119 xfs_iflush_abort( 1120 struct xfs_inode *ip) 1121 { 1122 struct xfs_inode_log_item *iip = ip->i_itemp; 1123 struct xfs_buf *bp; 1124 1125 if (!iip) { 1126 /* clean inode, nothing to do */ 1127 xfs_iflags_clear(ip, XFS_IFLUSHING); 1128 return; 1129 } 1130 1131 /* 1132 * Remove the inode item from the AIL before we clear its internal 1133 * state. Whilst the inode is in the AIL, it should have a valid buffer 1134 * pointer for push operations to access - it is only safe to remove the 1135 * inode from the buffer once it has been removed from the AIL. 1136 */ 1137 xfs_trans_ail_delete(&iip->ili_item, 0); 1138 1139 /* 1140 * Grab the inode buffer so can we release the reference the inode log 1141 * item holds on it. 1142 */ 1143 spin_lock(&iip->ili_lock); 1144 bp = iip->ili_item.li_buf; 1145 xfs_iflush_abort_clean(iip); 1146 spin_unlock(&iip->ili_lock); 1147 1148 xfs_iflags_clear(ip, XFS_IFLUSHING); 1149 if (bp) 1150 xfs_buf_rele(bp); 1151 } 1152 1153 /* 1154 * Abort an inode flush in the case of a shutdown filesystem. This can be called 1155 * from anywhere with just an inode reference and does not require holding the 1156 * inode cluster buffer locked. If the inode is attached to a cluster buffer, 1157 * it will grab and lock it safely, then abort the inode flush. 1158 */ 1159 void 1160 xfs_iflush_shutdown_abort( 1161 struct xfs_inode *ip) 1162 { 1163 struct xfs_inode_log_item *iip = ip->i_itemp; 1164 struct xfs_buf *bp; 1165 1166 if (!iip) { 1167 /* clean inode, nothing to do */ 1168 xfs_iflags_clear(ip, XFS_IFLUSHING); 1169 return; 1170 } 1171 1172 spin_lock(&iip->ili_lock); 1173 bp = iip->ili_item.li_buf; 1174 if (!bp) { 1175 spin_unlock(&iip->ili_lock); 1176 xfs_iflush_abort(ip); 1177 return; 1178 } 1179 1180 /* 1181 * We have to take a reference to the buffer so that it doesn't get 1182 * freed when we drop the ili_lock and then wait to lock the buffer. 1183 * We'll clean up the extra reference after we pick up the ili_lock 1184 * again. 1185 */ 1186 xfs_buf_hold(bp); 1187 spin_unlock(&iip->ili_lock); 1188 xfs_buf_lock(bp); 1189 1190 spin_lock(&iip->ili_lock); 1191 if (!iip->ili_item.li_buf) { 1192 /* 1193 * Raced with another removal, hold the only reference 1194 * to bp now. Inode should not be in the AIL now, so just clean 1195 * up and return; 1196 */ 1197 ASSERT(list_empty(&iip->ili_item.li_bio_list)); 1198 ASSERT(!test_bit(XFS_LI_IN_AIL, &iip->ili_item.li_flags)); 1199 xfs_iflush_abort_clean(iip); 1200 spin_unlock(&iip->ili_lock); 1201 xfs_iflags_clear(ip, XFS_IFLUSHING); 1202 xfs_buf_relse(bp); 1203 return; 1204 } 1205 1206 /* 1207 * Got two references to bp. The first will get dropped by 1208 * xfs_iflush_abort() when the item is removed from the buffer list, but 1209 * we can't drop our reference until _abort() returns because we have to 1210 * unlock the buffer as well. Hence we abort and then unlock and release 1211 * our reference to the buffer. 1212 */ 1213 ASSERT(iip->ili_item.li_buf == bp); 1214 spin_unlock(&iip->ili_lock); 1215 xfs_iflush_abort(ip); 1216 xfs_buf_relse(bp); 1217 } 1218 1219 1220 /* 1221 * convert an xfs_inode_log_format struct from the old 32 bit version 1222 * (which can have different field alignments) to the native 64 bit version 1223 */ 1224 int 1225 xfs_inode_item_format_convert( 1226 struct kvec *buf, 1227 struct xfs_inode_log_format *in_f) 1228 { 1229 struct xfs_inode_log_format_32 *in_f32 = buf->iov_base; 1230 1231 if (buf->iov_len != sizeof(*in_f32)) { 1232 XFS_ERROR_REPORT(__func__, XFS_ERRLEVEL_LOW, NULL); 1233 return -EFSCORRUPTED; 1234 } 1235 1236 in_f->ilf_type = in_f32->ilf_type; 1237 in_f->ilf_size = in_f32->ilf_size; 1238 in_f->ilf_fields = in_f32->ilf_fields; 1239 in_f->ilf_asize = in_f32->ilf_asize; 1240 in_f->ilf_dsize = in_f32->ilf_dsize; 1241 in_f->ilf_ino = in_f32->ilf_ino; 1242 memcpy(&in_f->ilf_u, &in_f32->ilf_u, sizeof(in_f->ilf_u)); 1243 in_f->ilf_blkno = in_f32->ilf_blkno; 1244 in_f->ilf_len = in_f32->ilf_len; 1245 in_f->ilf_boffset = in_f32->ilf_boffset; 1246 return 0; 1247 } 1248