1 /* 2 * This file is part of UBIFS. 3 * 4 * Copyright (C) 2006-2008 Nokia Corporation. 5 * 6 * This program is free software; you can redistribute it and/or modify it 7 * under the terms of the GNU General Public License version 2 as published by 8 * the Free Software Foundation. 9 * 10 * This program is distributed in the hope that it will be useful, but WITHOUT 11 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or 12 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for 13 * more details. 14 * 15 * You should have received a copy of the GNU General Public License along with 16 * this program; if not, write to the Free Software Foundation, Inc., 51 17 * Franklin St, Fifth Floor, Boston, MA 02110-1301 USA 18 * 19 * Authors: Artem Bityutskiy (Битюцкий Артём) 20 * Adrian Hunter 21 */ 22 23 /* 24 * This file implements UBIFS journal. 25 * 26 * The journal consists of 2 parts - the log and bud LEBs. The log has fixed 27 * length and position, while a bud logical eraseblock is any LEB in the main 28 * area. Buds contain file system data - data nodes, inode nodes, etc. The log 29 * contains only references to buds and some other stuff like commit 30 * start node. The idea is that when we commit the journal, we do 31 * not copy the data, the buds just become indexed. Since after the commit the 32 * nodes in bud eraseblocks become leaf nodes of the file system index tree, we 33 * use term "bud". Analogy is obvious, bud eraseblocks contain nodes which will 34 * become leafs in the future. 35 * 36 * The journal is multi-headed because we want to write data to the journal as 37 * optimally as possible. It is nice to have nodes belonging to the same inode 38 * in one LEB, so we may write data owned by different inodes to different 39 * journal heads, although at present only one data head is used. 40 * 41 * For recovery reasons, the base head contains all inode nodes, all directory 42 * entry nodes and all truncate nodes. This means that the other heads contain 43 * only data nodes. 44 * 45 * Bud LEBs may be half-indexed. For example, if the bud was not full at the 46 * time of commit, the bud is retained to continue to be used in the journal, 47 * even though the "front" of the LEB is now indexed. In that case, the log 48 * reference contains the offset where the bud starts for the purposes of the 49 * journal. 50 * 51 * The journal size has to be limited, because the larger is the journal, the 52 * longer it takes to mount UBIFS (scanning the journal) and the more memory it 53 * takes (indexing in the TNC). 54 * 55 * All the journal write operations like 'ubifs_jnl_update()' here, which write 56 * multiple UBIFS nodes to the journal at one go, are atomic with respect to 57 * unclean reboots. Should the unclean reboot happen, the recovery code drops 58 * all the nodes. 59 */ 60 61 #include "ubifs.h" 62 63 /** 64 * zero_ino_node_unused - zero out unused fields of an on-flash inode node. 65 * @ino: the inode to zero out 66 */ 67 static inline void zero_ino_node_unused(struct ubifs_ino_node *ino) 68 { 69 memset(ino->padding1, 0, 4); 70 memset(ino->padding2, 0, 26); 71 } 72 73 /** 74 * zero_dent_node_unused - zero out unused fields of an on-flash directory 75 * entry node. 76 * @dent: the directory entry to zero out 77 */ 78 static inline void zero_dent_node_unused(struct ubifs_dent_node *dent) 79 { 80 dent->padding1 = 0; 81 memset(dent->padding2, 0, 4); 82 } 83 84 /** 85 * zero_data_node_unused - zero out unused fields of an on-flash data node. 86 * @data: the data node to zero out 87 */ 88 static inline void zero_data_node_unused(struct ubifs_data_node *data) 89 { 90 memset(data->padding, 0, 2); 91 } 92 93 /** 94 * zero_trun_node_unused - zero out unused fields of an on-flash truncation 95 * node. 96 * @trun: the truncation node to zero out 97 */ 98 static inline void zero_trun_node_unused(struct ubifs_trun_node *trun) 99 { 100 memset(trun->padding, 0, 12); 101 } 102 103 /** 104 * reserve_space - reserve space in the journal. 105 * @c: UBIFS file-system description object 106 * @jhead: journal head number 107 * @len: node length 108 * 109 * This function reserves space in journal head @head. If the reservation 110 * succeeded, the journal head stays locked and later has to be unlocked using 111 * 'release_head()'. 'write_node()' and 'write_head()' functions also unlock 112 * it. Returns zero in case of success, %-EAGAIN if commit has to be done, and 113 * other negative error codes in case of other failures. 114 */ 115 static int reserve_space(struct ubifs_info *c, int jhead, int len) 116 { 117 int err = 0, err1, retries = 0, avail, lnum, offs, squeeze; 118 struct ubifs_wbuf *wbuf = &c->jheads[jhead].wbuf; 119 120 /* 121 * Typically, the base head has smaller nodes written to it, so it is 122 * better to try to allocate space at the ends of eraseblocks. This is 123 * what the squeeze parameter does. 124 */ 125 ubifs_assert(!c->ro_media && !c->ro_mount); 126 squeeze = (jhead == BASEHD); 127 again: 128 mutex_lock_nested(&wbuf->io_mutex, wbuf->jhead); 129 130 if (c->ro_error) { 131 err = -EROFS; 132 goto out_unlock; 133 } 134 135 avail = c->leb_size - wbuf->offs - wbuf->used; 136 if (wbuf->lnum != -1 && avail >= len) 137 return 0; 138 139 /* 140 * Write buffer wasn't seek'ed or there is no enough space - look for an 141 * LEB with some empty space. 142 */ 143 lnum = ubifs_find_free_space(c, len, &offs, squeeze); 144 if (lnum >= 0) 145 goto out; 146 147 err = lnum; 148 if (err != -ENOSPC) 149 goto out_unlock; 150 151 /* 152 * No free space, we have to run garbage collector to make 153 * some. But the write-buffer mutex has to be unlocked because 154 * GC also takes it. 155 */ 156 dbg_jnl("no free space in jhead %s, run GC", dbg_jhead(jhead)); 157 mutex_unlock(&wbuf->io_mutex); 158 159 lnum = ubifs_garbage_collect(c, 0); 160 if (lnum < 0) { 161 err = lnum; 162 if (err != -ENOSPC) 163 return err; 164 165 /* 166 * GC could not make a free LEB. But someone else may 167 * have allocated new bud for this journal head, 168 * because we dropped @wbuf->io_mutex, so try once 169 * again. 170 */ 171 dbg_jnl("GC couldn't make a free LEB for jhead %s", 172 dbg_jhead(jhead)); 173 if (retries++ < 2) { 174 dbg_jnl("retry (%d)", retries); 175 goto again; 176 } 177 178 dbg_jnl("return -ENOSPC"); 179 return err; 180 } 181 182 mutex_lock_nested(&wbuf->io_mutex, wbuf->jhead); 183 dbg_jnl("got LEB %d for jhead %s", lnum, dbg_jhead(jhead)); 184 avail = c->leb_size - wbuf->offs - wbuf->used; 185 186 if (wbuf->lnum != -1 && avail >= len) { 187 /* 188 * Someone else has switched the journal head and we have 189 * enough space now. This happens when more than one process is 190 * trying to write to the same journal head at the same time. 191 */ 192 dbg_jnl("return LEB %d back, already have LEB %d:%d", 193 lnum, wbuf->lnum, wbuf->offs + wbuf->used); 194 err = ubifs_return_leb(c, lnum); 195 if (err) 196 goto out_unlock; 197 return 0; 198 } 199 200 offs = 0; 201 202 out: 203 /* 204 * Make sure we synchronize the write-buffer before we add the new bud 205 * to the log. Otherwise we may have a power cut after the log 206 * reference node for the last bud (@lnum) is written but before the 207 * write-buffer data are written to the next-to-last bud 208 * (@wbuf->lnum). And the effect would be that the recovery would see 209 * that there is corruption in the next-to-last bud. 210 */ 211 err = ubifs_wbuf_sync_nolock(wbuf); 212 if (err) 213 goto out_return; 214 err = ubifs_add_bud_to_log(c, jhead, lnum, offs); 215 if (err) 216 goto out_return; 217 err = ubifs_wbuf_seek_nolock(wbuf, lnum, offs); 218 if (err) 219 goto out_unlock; 220 221 return 0; 222 223 out_unlock: 224 mutex_unlock(&wbuf->io_mutex); 225 return err; 226 227 out_return: 228 /* An error occurred and the LEB has to be returned to lprops */ 229 ubifs_assert(err < 0); 230 err1 = ubifs_return_leb(c, lnum); 231 if (err1 && err == -EAGAIN) 232 /* 233 * Return original error code only if it is not %-EAGAIN, 234 * which is not really an error. Otherwise, return the error 235 * code of 'ubifs_return_leb()'. 236 */ 237 err = err1; 238 mutex_unlock(&wbuf->io_mutex); 239 return err; 240 } 241 242 /** 243 * write_node - write node to a journal head. 244 * @c: UBIFS file-system description object 245 * @jhead: journal head 246 * @node: node to write 247 * @len: node length 248 * @lnum: LEB number written is returned here 249 * @offs: offset written is returned here 250 * 251 * This function writes a node to reserved space of journal head @jhead. 252 * Returns zero in case of success and a negative error code in case of 253 * failure. 254 */ 255 static int write_node(struct ubifs_info *c, int jhead, void *node, int len, 256 int *lnum, int *offs) 257 { 258 struct ubifs_wbuf *wbuf = &c->jheads[jhead].wbuf; 259 260 ubifs_assert(jhead != GCHD); 261 262 *lnum = c->jheads[jhead].wbuf.lnum; 263 *offs = c->jheads[jhead].wbuf.offs + c->jheads[jhead].wbuf.used; 264 265 dbg_jnl("jhead %s, LEB %d:%d, len %d", 266 dbg_jhead(jhead), *lnum, *offs, len); 267 ubifs_prepare_node(c, node, len, 0); 268 269 return ubifs_wbuf_write_nolock(wbuf, node, len); 270 } 271 272 /** 273 * write_head - write data to a journal head. 274 * @c: UBIFS file-system description object 275 * @jhead: journal head 276 * @buf: buffer to write 277 * @len: length to write 278 * @lnum: LEB number written is returned here 279 * @offs: offset written is returned here 280 * @sync: non-zero if the write-buffer has to by synchronized 281 * 282 * This function is the same as 'write_node()' but it does not assume the 283 * buffer it is writing is a node, so it does not prepare it (which means 284 * initializing common header and calculating CRC). 285 */ 286 static int write_head(struct ubifs_info *c, int jhead, void *buf, int len, 287 int *lnum, int *offs, int sync) 288 { 289 int err; 290 struct ubifs_wbuf *wbuf = &c->jheads[jhead].wbuf; 291 292 ubifs_assert(jhead != GCHD); 293 294 *lnum = c->jheads[jhead].wbuf.lnum; 295 *offs = c->jheads[jhead].wbuf.offs + c->jheads[jhead].wbuf.used; 296 dbg_jnl("jhead %s, LEB %d:%d, len %d", 297 dbg_jhead(jhead), *lnum, *offs, len); 298 299 err = ubifs_wbuf_write_nolock(wbuf, buf, len); 300 if (err) 301 return err; 302 if (sync) 303 err = ubifs_wbuf_sync_nolock(wbuf); 304 return err; 305 } 306 307 /** 308 * make_reservation - reserve journal space. 309 * @c: UBIFS file-system description object 310 * @jhead: journal head 311 * @len: how many bytes to reserve 312 * 313 * This function makes space reservation in journal head @jhead. The function 314 * takes the commit lock and locks the journal head, and the caller has to 315 * unlock the head and finish the reservation with 'finish_reservation()'. 316 * Returns zero in case of success and a negative error code in case of 317 * failure. 318 * 319 * Note, the journal head may be unlocked as soon as the data is written, while 320 * the commit lock has to be released after the data has been added to the 321 * TNC. 322 */ 323 static int make_reservation(struct ubifs_info *c, int jhead, int len) 324 { 325 int err, cmt_retries = 0, nospc_retries = 0; 326 327 again: 328 down_read(&c->commit_sem); 329 err = reserve_space(c, jhead, len); 330 if (!err) 331 return 0; 332 up_read(&c->commit_sem); 333 334 if (err == -ENOSPC) { 335 /* 336 * GC could not make any progress. We should try to commit 337 * once because it could make some dirty space and GC would 338 * make progress, so make the error -EAGAIN so that the below 339 * will commit and re-try. 340 */ 341 if (nospc_retries++ < 2) { 342 dbg_jnl("no space, retry"); 343 err = -EAGAIN; 344 } 345 346 /* 347 * This means that the budgeting is incorrect. We always have 348 * to be able to write to the media, because all operations are 349 * budgeted. Deletions are not budgeted, though, but we reserve 350 * an extra LEB for them. 351 */ 352 } 353 354 if (err != -EAGAIN) 355 goto out; 356 357 /* 358 * -EAGAIN means that the journal is full or too large, or the above 359 * code wants to do one commit. Do this and re-try. 360 */ 361 if (cmt_retries > 128) { 362 /* 363 * This should not happen unless the journal size limitations 364 * are too tough. 365 */ 366 ubifs_err("stuck in space allocation"); 367 err = -ENOSPC; 368 goto out; 369 } else if (cmt_retries > 32) 370 ubifs_warn("too many space allocation re-tries (%d)", 371 cmt_retries); 372 373 dbg_jnl("-EAGAIN, commit and retry (retried %d times)", 374 cmt_retries); 375 cmt_retries += 1; 376 377 err = ubifs_run_commit(c); 378 if (err) 379 return err; 380 goto again; 381 382 out: 383 ubifs_err("cannot reserve %d bytes in jhead %d, error %d", 384 len, jhead, err); 385 if (err == -ENOSPC) { 386 /* This are some budgeting problems, print useful information */ 387 down_write(&c->commit_sem); 388 dump_stack(); 389 ubifs_dump_budg(c, &c->bi); 390 ubifs_dump_lprops(c); 391 cmt_retries = dbg_check_lprops(c); 392 up_write(&c->commit_sem); 393 } 394 return err; 395 } 396 397 /** 398 * release_head - release a journal head. 399 * @c: UBIFS file-system description object 400 * @jhead: journal head 401 * 402 * This function releases journal head @jhead which was locked by 403 * the 'make_reservation()' function. It has to be called after each successful 404 * 'make_reservation()' invocation. 405 */ 406 static inline void release_head(struct ubifs_info *c, int jhead) 407 { 408 mutex_unlock(&c->jheads[jhead].wbuf.io_mutex); 409 } 410 411 /** 412 * finish_reservation - finish a reservation. 413 * @c: UBIFS file-system description object 414 * 415 * This function finishes journal space reservation. It must be called after 416 * 'make_reservation()'. 417 */ 418 static void finish_reservation(struct ubifs_info *c) 419 { 420 up_read(&c->commit_sem); 421 } 422 423 /** 424 * get_dent_type - translate VFS inode mode to UBIFS directory entry type. 425 * @mode: inode mode 426 */ 427 static int get_dent_type(int mode) 428 { 429 switch (mode & S_IFMT) { 430 case S_IFREG: 431 return UBIFS_ITYPE_REG; 432 case S_IFDIR: 433 return UBIFS_ITYPE_DIR; 434 case S_IFLNK: 435 return UBIFS_ITYPE_LNK; 436 case S_IFBLK: 437 return UBIFS_ITYPE_BLK; 438 case S_IFCHR: 439 return UBIFS_ITYPE_CHR; 440 case S_IFIFO: 441 return UBIFS_ITYPE_FIFO; 442 case S_IFSOCK: 443 return UBIFS_ITYPE_SOCK; 444 default: 445 BUG(); 446 } 447 return 0; 448 } 449 450 /** 451 * pack_inode - pack an inode node. 452 * @c: UBIFS file-system description object 453 * @ino: buffer in which to pack inode node 454 * @inode: inode to pack 455 * @last: indicates the last node of the group 456 */ 457 static void pack_inode(struct ubifs_info *c, struct ubifs_ino_node *ino, 458 const struct inode *inode, int last) 459 { 460 int data_len = 0, last_reference = !inode->i_nlink; 461 struct ubifs_inode *ui = ubifs_inode(inode); 462 463 ino->ch.node_type = UBIFS_INO_NODE; 464 ino_key_init_flash(c, &ino->key, inode->i_ino); 465 ino->creat_sqnum = cpu_to_le64(ui->creat_sqnum); 466 ino->atime_sec = cpu_to_le64(inode->i_atime.tv_sec); 467 ino->atime_nsec = cpu_to_le32(inode->i_atime.tv_nsec); 468 ino->ctime_sec = cpu_to_le64(inode->i_ctime.tv_sec); 469 ino->ctime_nsec = cpu_to_le32(inode->i_ctime.tv_nsec); 470 ino->mtime_sec = cpu_to_le64(inode->i_mtime.tv_sec); 471 ino->mtime_nsec = cpu_to_le32(inode->i_mtime.tv_nsec); 472 ino->uid = cpu_to_le32(i_uid_read(inode)); 473 ino->gid = cpu_to_le32(i_gid_read(inode)); 474 ino->mode = cpu_to_le32(inode->i_mode); 475 ino->flags = cpu_to_le32(ui->flags); 476 ino->size = cpu_to_le64(ui->ui_size); 477 ino->nlink = cpu_to_le32(inode->i_nlink); 478 ino->compr_type = cpu_to_le16(ui->compr_type); 479 ino->data_len = cpu_to_le32(ui->data_len); 480 ino->xattr_cnt = cpu_to_le32(ui->xattr_cnt); 481 ino->xattr_size = cpu_to_le32(ui->xattr_size); 482 ino->xattr_names = cpu_to_le32(ui->xattr_names); 483 zero_ino_node_unused(ino); 484 485 /* 486 * Drop the attached data if this is a deletion inode, the data is not 487 * needed anymore. 488 */ 489 if (!last_reference) { 490 memcpy(ino->data, ui->data, ui->data_len); 491 data_len = ui->data_len; 492 } 493 494 ubifs_prep_grp_node(c, ino, UBIFS_INO_NODE_SZ + data_len, last); 495 } 496 497 /** 498 * mark_inode_clean - mark UBIFS inode as clean. 499 * @c: UBIFS file-system description object 500 * @ui: UBIFS inode to mark as clean 501 * 502 * This helper function marks UBIFS inode @ui as clean by cleaning the 503 * @ui->dirty flag and releasing its budget. Note, VFS may still treat the 504 * inode as dirty and try to write it back, but 'ubifs_write_inode()' would 505 * just do nothing. 506 */ 507 static void mark_inode_clean(struct ubifs_info *c, struct ubifs_inode *ui) 508 { 509 if (ui->dirty) 510 ubifs_release_dirty_inode_budget(c, ui); 511 ui->dirty = 0; 512 } 513 514 /** 515 * ubifs_jnl_update - update inode. 516 * @c: UBIFS file-system description object 517 * @dir: parent inode or host inode in case of extended attributes 518 * @nm: directory entry name 519 * @inode: inode to update 520 * @deletion: indicates a directory entry deletion i.e unlink or rmdir 521 * @xent: non-zero if the directory entry is an extended attribute entry 522 * 523 * This function updates an inode by writing a directory entry (or extended 524 * attribute entry), the inode itself, and the parent directory inode (or the 525 * host inode) to the journal. 526 * 527 * The function writes the host inode @dir last, which is important in case of 528 * extended attributes. Indeed, then we guarantee that if the host inode gets 529 * synchronized (with 'fsync()'), and the write-buffer it sits in gets flushed, 530 * the extended attribute inode gets flushed too. And this is exactly what the 531 * user expects - synchronizing the host inode synchronizes its extended 532 * attributes. Similarly, this guarantees that if @dir is synchronized, its 533 * directory entry corresponding to @nm gets synchronized too. 534 * 535 * If the inode (@inode) or the parent directory (@dir) are synchronous, this 536 * function synchronizes the write-buffer. 537 * 538 * This function marks the @dir and @inode inodes as clean and returns zero on 539 * success. In case of failure, a negative error code is returned. 540 */ 541 int ubifs_jnl_update(struct ubifs_info *c, const struct inode *dir, 542 const struct qstr *nm, const struct inode *inode, 543 int deletion, int xent) 544 { 545 int err, dlen, ilen, len, lnum, ino_offs, dent_offs; 546 int aligned_dlen, aligned_ilen, sync = IS_DIRSYNC(dir); 547 int last_reference = !!(deletion && inode->i_nlink == 0); 548 struct ubifs_inode *ui = ubifs_inode(inode); 549 struct ubifs_inode *host_ui = ubifs_inode(dir); 550 struct ubifs_dent_node *dent; 551 struct ubifs_ino_node *ino; 552 union ubifs_key dent_key, ino_key; 553 554 dbg_jnl("ino %lu, dent '%.*s', data len %d in dir ino %lu", 555 inode->i_ino, nm->len, nm->name, ui->data_len, dir->i_ino); 556 ubifs_assert(mutex_is_locked(&host_ui->ui_mutex)); 557 558 dlen = UBIFS_DENT_NODE_SZ + nm->len + 1; 559 ilen = UBIFS_INO_NODE_SZ; 560 561 /* 562 * If the last reference to the inode is being deleted, then there is 563 * no need to attach and write inode data, it is being deleted anyway. 564 * And if the inode is being deleted, no need to synchronize 565 * write-buffer even if the inode is synchronous. 566 */ 567 if (!last_reference) { 568 ilen += ui->data_len; 569 sync |= IS_SYNC(inode); 570 } 571 572 aligned_dlen = ALIGN(dlen, 8); 573 aligned_ilen = ALIGN(ilen, 8); 574 len = aligned_dlen + aligned_ilen + UBIFS_INO_NODE_SZ; 575 dent = kmalloc(len, GFP_NOFS); 576 if (!dent) 577 return -ENOMEM; 578 579 /* Make reservation before allocating sequence numbers */ 580 err = make_reservation(c, BASEHD, len); 581 if (err) 582 goto out_free; 583 584 if (!xent) { 585 dent->ch.node_type = UBIFS_DENT_NODE; 586 dent_key_init(c, &dent_key, dir->i_ino, nm); 587 } else { 588 dent->ch.node_type = UBIFS_XENT_NODE; 589 xent_key_init(c, &dent_key, dir->i_ino, nm); 590 } 591 592 key_write(c, &dent_key, dent->key); 593 dent->inum = deletion ? 0 : cpu_to_le64(inode->i_ino); 594 dent->type = get_dent_type(inode->i_mode); 595 dent->nlen = cpu_to_le16(nm->len); 596 memcpy(dent->name, nm->name, nm->len); 597 dent->name[nm->len] = '\0'; 598 zero_dent_node_unused(dent); 599 ubifs_prep_grp_node(c, dent, dlen, 0); 600 601 ino = (void *)dent + aligned_dlen; 602 pack_inode(c, ino, inode, 0); 603 ino = (void *)ino + aligned_ilen; 604 pack_inode(c, ino, dir, 1); 605 606 if (last_reference) { 607 err = ubifs_add_orphan(c, inode->i_ino); 608 if (err) { 609 release_head(c, BASEHD); 610 goto out_finish; 611 } 612 ui->del_cmtno = c->cmt_no; 613 } 614 615 err = write_head(c, BASEHD, dent, len, &lnum, &dent_offs, sync); 616 if (err) 617 goto out_release; 618 if (!sync) { 619 struct ubifs_wbuf *wbuf = &c->jheads[BASEHD].wbuf; 620 621 ubifs_wbuf_add_ino_nolock(wbuf, inode->i_ino); 622 ubifs_wbuf_add_ino_nolock(wbuf, dir->i_ino); 623 } 624 release_head(c, BASEHD); 625 kfree(dent); 626 627 if (deletion) { 628 err = ubifs_tnc_remove_nm(c, &dent_key, nm); 629 if (err) 630 goto out_ro; 631 err = ubifs_add_dirt(c, lnum, dlen); 632 } else 633 err = ubifs_tnc_add_nm(c, &dent_key, lnum, dent_offs, dlen, nm); 634 if (err) 635 goto out_ro; 636 637 /* 638 * Note, we do not remove the inode from TNC even if the last reference 639 * to it has just been deleted, because the inode may still be opened. 640 * Instead, the inode has been added to orphan lists and the orphan 641 * subsystem will take further care about it. 642 */ 643 ino_key_init(c, &ino_key, inode->i_ino); 644 ino_offs = dent_offs + aligned_dlen; 645 err = ubifs_tnc_add(c, &ino_key, lnum, ino_offs, ilen); 646 if (err) 647 goto out_ro; 648 649 ino_key_init(c, &ino_key, dir->i_ino); 650 ino_offs += aligned_ilen; 651 err = ubifs_tnc_add(c, &ino_key, lnum, ino_offs, UBIFS_INO_NODE_SZ); 652 if (err) 653 goto out_ro; 654 655 finish_reservation(c); 656 spin_lock(&ui->ui_lock); 657 ui->synced_i_size = ui->ui_size; 658 spin_unlock(&ui->ui_lock); 659 mark_inode_clean(c, ui); 660 mark_inode_clean(c, host_ui); 661 return 0; 662 663 out_finish: 664 finish_reservation(c); 665 out_free: 666 kfree(dent); 667 return err; 668 669 out_release: 670 release_head(c, BASEHD); 671 kfree(dent); 672 out_ro: 673 ubifs_ro_mode(c, err); 674 if (last_reference) 675 ubifs_delete_orphan(c, inode->i_ino); 676 finish_reservation(c); 677 return err; 678 } 679 680 /** 681 * ubifs_jnl_write_data - write a data node to the journal. 682 * @c: UBIFS file-system description object 683 * @inode: inode the data node belongs to 684 * @key: node key 685 * @buf: buffer to write 686 * @len: data length (must not exceed %UBIFS_BLOCK_SIZE) 687 * 688 * This function writes a data node to the journal. Returns %0 if the data node 689 * was successfully written, and a negative error code in case of failure. 690 */ 691 int ubifs_jnl_write_data(struct ubifs_info *c, const struct inode *inode, 692 const union ubifs_key *key, const void *buf, int len) 693 { 694 struct ubifs_data_node *data; 695 int err, lnum, offs, compr_type, out_len; 696 int dlen = COMPRESSED_DATA_NODE_BUF_SZ, allocated = 1; 697 struct ubifs_inode *ui = ubifs_inode(inode); 698 699 dbg_jnlk(key, "ino %lu, blk %u, len %d, key ", 700 (unsigned long)key_inum(c, key), key_block(c, key), len); 701 ubifs_assert(len <= UBIFS_BLOCK_SIZE); 702 703 data = kmalloc(dlen, GFP_NOFS | __GFP_NOWARN); 704 if (!data) { 705 /* 706 * Fall-back to the write reserve buffer. Note, we might be 707 * currently on the memory reclaim path, when the kernel is 708 * trying to free some memory by writing out dirty pages. The 709 * write reserve buffer helps us to guarantee that we are 710 * always able to write the data. 711 */ 712 allocated = 0; 713 mutex_lock(&c->write_reserve_mutex); 714 data = c->write_reserve_buf; 715 } 716 717 data->ch.node_type = UBIFS_DATA_NODE; 718 key_write(c, key, &data->key); 719 data->size = cpu_to_le32(len); 720 zero_data_node_unused(data); 721 722 if (!(ui->flags & UBIFS_COMPR_FL)) 723 /* Compression is disabled for this inode */ 724 compr_type = UBIFS_COMPR_NONE; 725 else 726 compr_type = ui->compr_type; 727 728 out_len = dlen - UBIFS_DATA_NODE_SZ; 729 ubifs_compress(buf, len, &data->data, &out_len, &compr_type); 730 ubifs_assert(out_len <= UBIFS_BLOCK_SIZE); 731 732 dlen = UBIFS_DATA_NODE_SZ + out_len; 733 data->compr_type = cpu_to_le16(compr_type); 734 735 /* Make reservation before allocating sequence numbers */ 736 err = make_reservation(c, DATAHD, dlen); 737 if (err) 738 goto out_free; 739 740 err = write_node(c, DATAHD, data, dlen, &lnum, &offs); 741 if (err) 742 goto out_release; 743 ubifs_wbuf_add_ino_nolock(&c->jheads[DATAHD].wbuf, key_inum(c, key)); 744 release_head(c, DATAHD); 745 746 err = ubifs_tnc_add(c, key, lnum, offs, dlen); 747 if (err) 748 goto out_ro; 749 750 finish_reservation(c); 751 if (!allocated) 752 mutex_unlock(&c->write_reserve_mutex); 753 else 754 kfree(data); 755 return 0; 756 757 out_release: 758 release_head(c, DATAHD); 759 out_ro: 760 ubifs_ro_mode(c, err); 761 finish_reservation(c); 762 out_free: 763 if (!allocated) 764 mutex_unlock(&c->write_reserve_mutex); 765 else 766 kfree(data); 767 return err; 768 } 769 770 /** 771 * ubifs_jnl_write_inode - flush inode to the journal. 772 * @c: UBIFS file-system description object 773 * @inode: inode to flush 774 * 775 * This function writes inode @inode to the journal. If the inode is 776 * synchronous, it also synchronizes the write-buffer. Returns zero in case of 777 * success and a negative error code in case of failure. 778 */ 779 int ubifs_jnl_write_inode(struct ubifs_info *c, const struct inode *inode) 780 { 781 int err, lnum, offs; 782 struct ubifs_ino_node *ino; 783 struct ubifs_inode *ui = ubifs_inode(inode); 784 int sync = 0, len = UBIFS_INO_NODE_SZ, last_reference = !inode->i_nlink; 785 786 dbg_jnl("ino %lu, nlink %u", inode->i_ino, inode->i_nlink); 787 788 /* 789 * If the inode is being deleted, do not write the attached data. No 790 * need to synchronize the write-buffer either. 791 */ 792 if (!last_reference) { 793 len += ui->data_len; 794 sync = IS_SYNC(inode); 795 } 796 ino = kmalloc(len, GFP_NOFS); 797 if (!ino) 798 return -ENOMEM; 799 800 /* Make reservation before allocating sequence numbers */ 801 err = make_reservation(c, BASEHD, len); 802 if (err) 803 goto out_free; 804 805 pack_inode(c, ino, inode, 1); 806 err = write_head(c, BASEHD, ino, len, &lnum, &offs, sync); 807 if (err) 808 goto out_release; 809 if (!sync) 810 ubifs_wbuf_add_ino_nolock(&c->jheads[BASEHD].wbuf, 811 inode->i_ino); 812 release_head(c, BASEHD); 813 814 if (last_reference) { 815 err = ubifs_tnc_remove_ino(c, inode->i_ino); 816 if (err) 817 goto out_ro; 818 ubifs_delete_orphan(c, inode->i_ino); 819 err = ubifs_add_dirt(c, lnum, len); 820 } else { 821 union ubifs_key key; 822 823 ino_key_init(c, &key, inode->i_ino); 824 err = ubifs_tnc_add(c, &key, lnum, offs, len); 825 } 826 if (err) 827 goto out_ro; 828 829 finish_reservation(c); 830 spin_lock(&ui->ui_lock); 831 ui->synced_i_size = ui->ui_size; 832 spin_unlock(&ui->ui_lock); 833 kfree(ino); 834 return 0; 835 836 out_release: 837 release_head(c, BASEHD); 838 out_ro: 839 ubifs_ro_mode(c, err); 840 finish_reservation(c); 841 out_free: 842 kfree(ino); 843 return err; 844 } 845 846 /** 847 * ubifs_jnl_delete_inode - delete an inode. 848 * @c: UBIFS file-system description object 849 * @inode: inode to delete 850 * 851 * This function deletes inode @inode which includes removing it from orphans, 852 * deleting it from TNC and, in some cases, writing a deletion inode to the 853 * journal. 854 * 855 * When regular file inodes are unlinked or a directory inode is removed, the 856 * 'ubifs_jnl_update()' function writes a corresponding deletion inode and 857 * direntry to the media, and adds the inode to orphans. After this, when the 858 * last reference to this inode has been dropped, this function is called. In 859 * general, it has to write one more deletion inode to the media, because if 860 * a commit happened between 'ubifs_jnl_update()' and 861 * 'ubifs_jnl_delete_inode()', the deletion inode is not in the journal 862 * anymore, and in fact it might not be on the flash anymore, because it might 863 * have been garbage-collected already. And for optimization reasons UBIFS does 864 * not read the orphan area if it has been unmounted cleanly, so it would have 865 * no indication in the journal that there is a deleted inode which has to be 866 * removed from TNC. 867 * 868 * However, if there was no commit between 'ubifs_jnl_update()' and 869 * 'ubifs_jnl_delete_inode()', then there is no need to write the deletion 870 * inode to the media for the second time. And this is quite a typical case. 871 * 872 * This function returns zero in case of success and a negative error code in 873 * case of failure. 874 */ 875 int ubifs_jnl_delete_inode(struct ubifs_info *c, const struct inode *inode) 876 { 877 int err; 878 struct ubifs_inode *ui = ubifs_inode(inode); 879 880 ubifs_assert(inode->i_nlink == 0); 881 882 if (ui->del_cmtno != c->cmt_no) 883 /* A commit happened for sure */ 884 return ubifs_jnl_write_inode(c, inode); 885 886 down_read(&c->commit_sem); 887 /* 888 * Check commit number again, because the first test has been done 889 * without @c->commit_sem, so a commit might have happened. 890 */ 891 if (ui->del_cmtno != c->cmt_no) { 892 up_read(&c->commit_sem); 893 return ubifs_jnl_write_inode(c, inode); 894 } 895 896 err = ubifs_tnc_remove_ino(c, inode->i_ino); 897 if (err) 898 ubifs_ro_mode(c, err); 899 else 900 ubifs_delete_orphan(c, inode->i_ino); 901 up_read(&c->commit_sem); 902 return err; 903 } 904 905 /** 906 * ubifs_jnl_rename - rename a directory entry. 907 * @c: UBIFS file-system description object 908 * @old_dir: parent inode of directory entry to rename 909 * @old_dentry: directory entry to rename 910 * @new_dir: parent inode of directory entry to rename 911 * @new_dentry: new directory entry (or directory entry to replace) 912 * @sync: non-zero if the write-buffer has to be synchronized 913 * 914 * This function implements the re-name operation which may involve writing up 915 * to 3 inodes and 2 directory entries. It marks the written inodes as clean 916 * and returns zero on success. In case of failure, a negative error code is 917 * returned. 918 */ 919 int ubifs_jnl_rename(struct ubifs_info *c, const struct inode *old_dir, 920 const struct dentry *old_dentry, 921 const struct inode *new_dir, 922 const struct dentry *new_dentry, int sync) 923 { 924 void *p; 925 union ubifs_key key; 926 struct ubifs_dent_node *dent, *dent2; 927 int err, dlen1, dlen2, ilen, lnum, offs, len; 928 const struct inode *old_inode = old_dentry->d_inode; 929 const struct inode *new_inode = new_dentry->d_inode; 930 int aligned_dlen1, aligned_dlen2, plen = UBIFS_INO_NODE_SZ; 931 int last_reference = !!(new_inode && new_inode->i_nlink == 0); 932 int move = (old_dir != new_dir); 933 struct ubifs_inode *uninitialized_var(new_ui); 934 935 dbg_jnl("dent '%pd' in dir ino %lu to dent '%pd' in dir ino %lu", 936 old_dentry, old_dir->i_ino, new_dentry, new_dir->i_ino); 937 ubifs_assert(ubifs_inode(old_dir)->data_len == 0); 938 ubifs_assert(ubifs_inode(new_dir)->data_len == 0); 939 ubifs_assert(mutex_is_locked(&ubifs_inode(old_dir)->ui_mutex)); 940 ubifs_assert(mutex_is_locked(&ubifs_inode(new_dir)->ui_mutex)); 941 942 dlen1 = UBIFS_DENT_NODE_SZ + new_dentry->d_name.len + 1; 943 dlen2 = UBIFS_DENT_NODE_SZ + old_dentry->d_name.len + 1; 944 if (new_inode) { 945 new_ui = ubifs_inode(new_inode); 946 ubifs_assert(mutex_is_locked(&new_ui->ui_mutex)); 947 ilen = UBIFS_INO_NODE_SZ; 948 if (!last_reference) 949 ilen += new_ui->data_len; 950 } else 951 ilen = 0; 952 953 aligned_dlen1 = ALIGN(dlen1, 8); 954 aligned_dlen2 = ALIGN(dlen2, 8); 955 len = aligned_dlen1 + aligned_dlen2 + ALIGN(ilen, 8) + ALIGN(plen, 8); 956 if (old_dir != new_dir) 957 len += plen; 958 dent = kmalloc(len, GFP_NOFS); 959 if (!dent) 960 return -ENOMEM; 961 962 /* Make reservation before allocating sequence numbers */ 963 err = make_reservation(c, BASEHD, len); 964 if (err) 965 goto out_free; 966 967 /* Make new dent */ 968 dent->ch.node_type = UBIFS_DENT_NODE; 969 dent_key_init_flash(c, &dent->key, new_dir->i_ino, &new_dentry->d_name); 970 dent->inum = cpu_to_le64(old_inode->i_ino); 971 dent->type = get_dent_type(old_inode->i_mode); 972 dent->nlen = cpu_to_le16(new_dentry->d_name.len); 973 memcpy(dent->name, new_dentry->d_name.name, new_dentry->d_name.len); 974 dent->name[new_dentry->d_name.len] = '\0'; 975 zero_dent_node_unused(dent); 976 ubifs_prep_grp_node(c, dent, dlen1, 0); 977 978 /* Make deletion dent */ 979 dent2 = (void *)dent + aligned_dlen1; 980 dent2->ch.node_type = UBIFS_DENT_NODE; 981 dent_key_init_flash(c, &dent2->key, old_dir->i_ino, 982 &old_dentry->d_name); 983 dent2->inum = 0; 984 dent2->type = DT_UNKNOWN; 985 dent2->nlen = cpu_to_le16(old_dentry->d_name.len); 986 memcpy(dent2->name, old_dentry->d_name.name, old_dentry->d_name.len); 987 dent2->name[old_dentry->d_name.len] = '\0'; 988 zero_dent_node_unused(dent2); 989 ubifs_prep_grp_node(c, dent2, dlen2, 0); 990 991 p = (void *)dent2 + aligned_dlen2; 992 if (new_inode) { 993 pack_inode(c, p, new_inode, 0); 994 p += ALIGN(ilen, 8); 995 } 996 997 if (!move) 998 pack_inode(c, p, old_dir, 1); 999 else { 1000 pack_inode(c, p, old_dir, 0); 1001 p += ALIGN(plen, 8); 1002 pack_inode(c, p, new_dir, 1); 1003 } 1004 1005 if (last_reference) { 1006 err = ubifs_add_orphan(c, new_inode->i_ino); 1007 if (err) { 1008 release_head(c, BASEHD); 1009 goto out_finish; 1010 } 1011 new_ui->del_cmtno = c->cmt_no; 1012 } 1013 1014 err = write_head(c, BASEHD, dent, len, &lnum, &offs, sync); 1015 if (err) 1016 goto out_release; 1017 if (!sync) { 1018 struct ubifs_wbuf *wbuf = &c->jheads[BASEHD].wbuf; 1019 1020 ubifs_wbuf_add_ino_nolock(wbuf, new_dir->i_ino); 1021 ubifs_wbuf_add_ino_nolock(wbuf, old_dir->i_ino); 1022 if (new_inode) 1023 ubifs_wbuf_add_ino_nolock(&c->jheads[BASEHD].wbuf, 1024 new_inode->i_ino); 1025 } 1026 release_head(c, BASEHD); 1027 1028 dent_key_init(c, &key, new_dir->i_ino, &new_dentry->d_name); 1029 err = ubifs_tnc_add_nm(c, &key, lnum, offs, dlen1, &new_dentry->d_name); 1030 if (err) 1031 goto out_ro; 1032 1033 err = ubifs_add_dirt(c, lnum, dlen2); 1034 if (err) 1035 goto out_ro; 1036 1037 dent_key_init(c, &key, old_dir->i_ino, &old_dentry->d_name); 1038 err = ubifs_tnc_remove_nm(c, &key, &old_dentry->d_name); 1039 if (err) 1040 goto out_ro; 1041 1042 offs += aligned_dlen1 + aligned_dlen2; 1043 if (new_inode) { 1044 ino_key_init(c, &key, new_inode->i_ino); 1045 err = ubifs_tnc_add(c, &key, lnum, offs, ilen); 1046 if (err) 1047 goto out_ro; 1048 offs += ALIGN(ilen, 8); 1049 } 1050 1051 ino_key_init(c, &key, old_dir->i_ino); 1052 err = ubifs_tnc_add(c, &key, lnum, offs, plen); 1053 if (err) 1054 goto out_ro; 1055 1056 if (old_dir != new_dir) { 1057 offs += ALIGN(plen, 8); 1058 ino_key_init(c, &key, new_dir->i_ino); 1059 err = ubifs_tnc_add(c, &key, lnum, offs, plen); 1060 if (err) 1061 goto out_ro; 1062 } 1063 1064 finish_reservation(c); 1065 if (new_inode) { 1066 mark_inode_clean(c, new_ui); 1067 spin_lock(&new_ui->ui_lock); 1068 new_ui->synced_i_size = new_ui->ui_size; 1069 spin_unlock(&new_ui->ui_lock); 1070 } 1071 mark_inode_clean(c, ubifs_inode(old_dir)); 1072 if (move) 1073 mark_inode_clean(c, ubifs_inode(new_dir)); 1074 kfree(dent); 1075 return 0; 1076 1077 out_release: 1078 release_head(c, BASEHD); 1079 out_ro: 1080 ubifs_ro_mode(c, err); 1081 if (last_reference) 1082 ubifs_delete_orphan(c, new_inode->i_ino); 1083 out_finish: 1084 finish_reservation(c); 1085 out_free: 1086 kfree(dent); 1087 return err; 1088 } 1089 1090 /** 1091 * recomp_data_node - re-compress a truncated data node. 1092 * @dn: data node to re-compress 1093 * @new_len: new length 1094 * 1095 * This function is used when an inode is truncated and the last data node of 1096 * the inode has to be re-compressed and re-written. 1097 */ 1098 static int recomp_data_node(struct ubifs_data_node *dn, int *new_len) 1099 { 1100 void *buf; 1101 int err, len, compr_type, out_len; 1102 1103 out_len = le32_to_cpu(dn->size); 1104 buf = kmalloc(out_len * WORST_COMPR_FACTOR, GFP_NOFS); 1105 if (!buf) 1106 return -ENOMEM; 1107 1108 len = le32_to_cpu(dn->ch.len) - UBIFS_DATA_NODE_SZ; 1109 compr_type = le16_to_cpu(dn->compr_type); 1110 err = ubifs_decompress(&dn->data, len, buf, &out_len, compr_type); 1111 if (err) 1112 goto out; 1113 1114 ubifs_compress(buf, *new_len, &dn->data, &out_len, &compr_type); 1115 ubifs_assert(out_len <= UBIFS_BLOCK_SIZE); 1116 dn->compr_type = cpu_to_le16(compr_type); 1117 dn->size = cpu_to_le32(*new_len); 1118 *new_len = UBIFS_DATA_NODE_SZ + out_len; 1119 out: 1120 kfree(buf); 1121 return err; 1122 } 1123 1124 /** 1125 * ubifs_jnl_truncate - update the journal for a truncation. 1126 * @c: UBIFS file-system description object 1127 * @inode: inode to truncate 1128 * @old_size: old size 1129 * @new_size: new size 1130 * 1131 * When the size of a file decreases due to truncation, a truncation node is 1132 * written, the journal tree is updated, and the last data block is re-written 1133 * if it has been affected. The inode is also updated in order to synchronize 1134 * the new inode size. 1135 * 1136 * This function marks the inode as clean and returns zero on success. In case 1137 * of failure, a negative error code is returned. 1138 */ 1139 int ubifs_jnl_truncate(struct ubifs_info *c, const struct inode *inode, 1140 loff_t old_size, loff_t new_size) 1141 { 1142 union ubifs_key key, to_key; 1143 struct ubifs_ino_node *ino; 1144 struct ubifs_trun_node *trun; 1145 struct ubifs_data_node *uninitialized_var(dn); 1146 int err, dlen, len, lnum, offs, bit, sz, sync = IS_SYNC(inode); 1147 struct ubifs_inode *ui = ubifs_inode(inode); 1148 ino_t inum = inode->i_ino; 1149 unsigned int blk; 1150 1151 dbg_jnl("ino %lu, size %lld -> %lld", 1152 (unsigned long)inum, old_size, new_size); 1153 ubifs_assert(!ui->data_len); 1154 ubifs_assert(S_ISREG(inode->i_mode)); 1155 ubifs_assert(mutex_is_locked(&ui->ui_mutex)); 1156 1157 sz = UBIFS_TRUN_NODE_SZ + UBIFS_INO_NODE_SZ + 1158 UBIFS_MAX_DATA_NODE_SZ * WORST_COMPR_FACTOR; 1159 ino = kmalloc(sz, GFP_NOFS); 1160 if (!ino) 1161 return -ENOMEM; 1162 1163 trun = (void *)ino + UBIFS_INO_NODE_SZ; 1164 trun->ch.node_type = UBIFS_TRUN_NODE; 1165 trun->inum = cpu_to_le32(inum); 1166 trun->old_size = cpu_to_le64(old_size); 1167 trun->new_size = cpu_to_le64(new_size); 1168 zero_trun_node_unused(trun); 1169 1170 dlen = new_size & (UBIFS_BLOCK_SIZE - 1); 1171 if (dlen) { 1172 /* Get last data block so it can be truncated */ 1173 dn = (void *)trun + UBIFS_TRUN_NODE_SZ; 1174 blk = new_size >> UBIFS_BLOCK_SHIFT; 1175 data_key_init(c, &key, inum, blk); 1176 dbg_jnlk(&key, "last block key "); 1177 err = ubifs_tnc_lookup(c, &key, dn); 1178 if (err == -ENOENT) 1179 dlen = 0; /* Not found (so it is a hole) */ 1180 else if (err) 1181 goto out_free; 1182 else { 1183 if (le32_to_cpu(dn->size) <= dlen) 1184 dlen = 0; /* Nothing to do */ 1185 else { 1186 int compr_type = le16_to_cpu(dn->compr_type); 1187 1188 if (compr_type != UBIFS_COMPR_NONE) { 1189 err = recomp_data_node(dn, &dlen); 1190 if (err) 1191 goto out_free; 1192 } else { 1193 dn->size = cpu_to_le32(dlen); 1194 dlen += UBIFS_DATA_NODE_SZ; 1195 } 1196 zero_data_node_unused(dn); 1197 } 1198 } 1199 } 1200 1201 /* Must make reservation before allocating sequence numbers */ 1202 len = UBIFS_TRUN_NODE_SZ + UBIFS_INO_NODE_SZ; 1203 if (dlen) 1204 len += dlen; 1205 err = make_reservation(c, BASEHD, len); 1206 if (err) 1207 goto out_free; 1208 1209 pack_inode(c, ino, inode, 0); 1210 ubifs_prep_grp_node(c, trun, UBIFS_TRUN_NODE_SZ, dlen ? 0 : 1); 1211 if (dlen) 1212 ubifs_prep_grp_node(c, dn, dlen, 1); 1213 1214 err = write_head(c, BASEHD, ino, len, &lnum, &offs, sync); 1215 if (err) 1216 goto out_release; 1217 if (!sync) 1218 ubifs_wbuf_add_ino_nolock(&c->jheads[BASEHD].wbuf, inum); 1219 release_head(c, BASEHD); 1220 1221 if (dlen) { 1222 sz = offs + UBIFS_INO_NODE_SZ + UBIFS_TRUN_NODE_SZ; 1223 err = ubifs_tnc_add(c, &key, lnum, sz, dlen); 1224 if (err) 1225 goto out_ro; 1226 } 1227 1228 ino_key_init(c, &key, inum); 1229 err = ubifs_tnc_add(c, &key, lnum, offs, UBIFS_INO_NODE_SZ); 1230 if (err) 1231 goto out_ro; 1232 1233 err = ubifs_add_dirt(c, lnum, UBIFS_TRUN_NODE_SZ); 1234 if (err) 1235 goto out_ro; 1236 1237 bit = new_size & (UBIFS_BLOCK_SIZE - 1); 1238 blk = (new_size >> UBIFS_BLOCK_SHIFT) + (bit ? 1 : 0); 1239 data_key_init(c, &key, inum, blk); 1240 1241 bit = old_size & (UBIFS_BLOCK_SIZE - 1); 1242 blk = (old_size >> UBIFS_BLOCK_SHIFT) - (bit ? 0 : 1); 1243 data_key_init(c, &to_key, inum, blk); 1244 1245 err = ubifs_tnc_remove_range(c, &key, &to_key); 1246 if (err) 1247 goto out_ro; 1248 1249 finish_reservation(c); 1250 spin_lock(&ui->ui_lock); 1251 ui->synced_i_size = ui->ui_size; 1252 spin_unlock(&ui->ui_lock); 1253 mark_inode_clean(c, ui); 1254 kfree(ino); 1255 return 0; 1256 1257 out_release: 1258 release_head(c, BASEHD); 1259 out_ro: 1260 ubifs_ro_mode(c, err); 1261 finish_reservation(c); 1262 out_free: 1263 kfree(ino); 1264 return err; 1265 } 1266 1267 1268 /** 1269 * ubifs_jnl_delete_xattr - delete an extended attribute. 1270 * @c: UBIFS file-system description object 1271 * @host: host inode 1272 * @inode: extended attribute inode 1273 * @nm: extended attribute entry name 1274 * 1275 * This function delete an extended attribute which is very similar to 1276 * un-linking regular files - it writes a deletion xentry, a deletion inode and 1277 * updates the target inode. Returns zero in case of success and a negative 1278 * error code in case of failure. 1279 */ 1280 int ubifs_jnl_delete_xattr(struct ubifs_info *c, const struct inode *host, 1281 const struct inode *inode, const struct qstr *nm) 1282 { 1283 int err, xlen, hlen, len, lnum, xent_offs, aligned_xlen; 1284 struct ubifs_dent_node *xent; 1285 struct ubifs_ino_node *ino; 1286 union ubifs_key xent_key, key1, key2; 1287 int sync = IS_DIRSYNC(host); 1288 struct ubifs_inode *host_ui = ubifs_inode(host); 1289 1290 dbg_jnl("host %lu, xattr ino %lu, name '%s', data len %d", 1291 host->i_ino, inode->i_ino, nm->name, 1292 ubifs_inode(inode)->data_len); 1293 ubifs_assert(inode->i_nlink == 0); 1294 ubifs_assert(mutex_is_locked(&host_ui->ui_mutex)); 1295 1296 /* 1297 * Since we are deleting the inode, we do not bother to attach any data 1298 * to it and assume its length is %UBIFS_INO_NODE_SZ. 1299 */ 1300 xlen = UBIFS_DENT_NODE_SZ + nm->len + 1; 1301 aligned_xlen = ALIGN(xlen, 8); 1302 hlen = host_ui->data_len + UBIFS_INO_NODE_SZ; 1303 len = aligned_xlen + UBIFS_INO_NODE_SZ + ALIGN(hlen, 8); 1304 1305 xent = kmalloc(len, GFP_NOFS); 1306 if (!xent) 1307 return -ENOMEM; 1308 1309 /* Make reservation before allocating sequence numbers */ 1310 err = make_reservation(c, BASEHD, len); 1311 if (err) { 1312 kfree(xent); 1313 return err; 1314 } 1315 1316 xent->ch.node_type = UBIFS_XENT_NODE; 1317 xent_key_init(c, &xent_key, host->i_ino, nm); 1318 key_write(c, &xent_key, xent->key); 1319 xent->inum = 0; 1320 xent->type = get_dent_type(inode->i_mode); 1321 xent->nlen = cpu_to_le16(nm->len); 1322 memcpy(xent->name, nm->name, nm->len); 1323 xent->name[nm->len] = '\0'; 1324 zero_dent_node_unused(xent); 1325 ubifs_prep_grp_node(c, xent, xlen, 0); 1326 1327 ino = (void *)xent + aligned_xlen; 1328 pack_inode(c, ino, inode, 0); 1329 ino = (void *)ino + UBIFS_INO_NODE_SZ; 1330 pack_inode(c, ino, host, 1); 1331 1332 err = write_head(c, BASEHD, xent, len, &lnum, &xent_offs, sync); 1333 if (!sync && !err) 1334 ubifs_wbuf_add_ino_nolock(&c->jheads[BASEHD].wbuf, host->i_ino); 1335 release_head(c, BASEHD); 1336 kfree(xent); 1337 if (err) 1338 goto out_ro; 1339 1340 /* Remove the extended attribute entry from TNC */ 1341 err = ubifs_tnc_remove_nm(c, &xent_key, nm); 1342 if (err) 1343 goto out_ro; 1344 err = ubifs_add_dirt(c, lnum, xlen); 1345 if (err) 1346 goto out_ro; 1347 1348 /* 1349 * Remove all nodes belonging to the extended attribute inode from TNC. 1350 * Well, there actually must be only one node - the inode itself. 1351 */ 1352 lowest_ino_key(c, &key1, inode->i_ino); 1353 highest_ino_key(c, &key2, inode->i_ino); 1354 err = ubifs_tnc_remove_range(c, &key1, &key2); 1355 if (err) 1356 goto out_ro; 1357 err = ubifs_add_dirt(c, lnum, UBIFS_INO_NODE_SZ); 1358 if (err) 1359 goto out_ro; 1360 1361 /* And update TNC with the new host inode position */ 1362 ino_key_init(c, &key1, host->i_ino); 1363 err = ubifs_tnc_add(c, &key1, lnum, xent_offs + len - hlen, hlen); 1364 if (err) 1365 goto out_ro; 1366 1367 finish_reservation(c); 1368 spin_lock(&host_ui->ui_lock); 1369 host_ui->synced_i_size = host_ui->ui_size; 1370 spin_unlock(&host_ui->ui_lock); 1371 mark_inode_clean(c, host_ui); 1372 return 0; 1373 1374 out_ro: 1375 ubifs_ro_mode(c, err); 1376 finish_reservation(c); 1377 return err; 1378 } 1379 1380 /** 1381 * ubifs_jnl_change_xattr - change an extended attribute. 1382 * @c: UBIFS file-system description object 1383 * @inode: extended attribute inode 1384 * @host: host inode 1385 * 1386 * This function writes the updated version of an extended attribute inode and 1387 * the host inode to the journal (to the base head). The host inode is written 1388 * after the extended attribute inode in order to guarantee that the extended 1389 * attribute will be flushed when the inode is synchronized by 'fsync()' and 1390 * consequently, the write-buffer is synchronized. This function returns zero 1391 * in case of success and a negative error code in case of failure. 1392 */ 1393 int ubifs_jnl_change_xattr(struct ubifs_info *c, const struct inode *inode, 1394 const struct inode *host) 1395 { 1396 int err, len1, len2, aligned_len, aligned_len1, lnum, offs; 1397 struct ubifs_inode *host_ui = ubifs_inode(host); 1398 struct ubifs_ino_node *ino; 1399 union ubifs_key key; 1400 int sync = IS_DIRSYNC(host); 1401 1402 dbg_jnl("ino %lu, ino %lu", host->i_ino, inode->i_ino); 1403 ubifs_assert(host->i_nlink > 0); 1404 ubifs_assert(inode->i_nlink > 0); 1405 ubifs_assert(mutex_is_locked(&host_ui->ui_mutex)); 1406 1407 len1 = UBIFS_INO_NODE_SZ + host_ui->data_len; 1408 len2 = UBIFS_INO_NODE_SZ + ubifs_inode(inode)->data_len; 1409 aligned_len1 = ALIGN(len1, 8); 1410 aligned_len = aligned_len1 + ALIGN(len2, 8); 1411 1412 ino = kmalloc(aligned_len, GFP_NOFS); 1413 if (!ino) 1414 return -ENOMEM; 1415 1416 /* Make reservation before allocating sequence numbers */ 1417 err = make_reservation(c, BASEHD, aligned_len); 1418 if (err) 1419 goto out_free; 1420 1421 pack_inode(c, ino, host, 0); 1422 pack_inode(c, (void *)ino + aligned_len1, inode, 1); 1423 1424 err = write_head(c, BASEHD, ino, aligned_len, &lnum, &offs, 0); 1425 if (!sync && !err) { 1426 struct ubifs_wbuf *wbuf = &c->jheads[BASEHD].wbuf; 1427 1428 ubifs_wbuf_add_ino_nolock(wbuf, host->i_ino); 1429 ubifs_wbuf_add_ino_nolock(wbuf, inode->i_ino); 1430 } 1431 release_head(c, BASEHD); 1432 if (err) 1433 goto out_ro; 1434 1435 ino_key_init(c, &key, host->i_ino); 1436 err = ubifs_tnc_add(c, &key, lnum, offs, len1); 1437 if (err) 1438 goto out_ro; 1439 1440 ino_key_init(c, &key, inode->i_ino); 1441 err = ubifs_tnc_add(c, &key, lnum, offs + aligned_len1, len2); 1442 if (err) 1443 goto out_ro; 1444 1445 finish_reservation(c); 1446 spin_lock(&host_ui->ui_lock); 1447 host_ui->synced_i_size = host_ui->ui_size; 1448 spin_unlock(&host_ui->ui_lock); 1449 mark_inode_clean(c, host_ui); 1450 kfree(ino); 1451 return 0; 1452 1453 out_ro: 1454 ubifs_ro_mode(c, err); 1455 finish_reservation(c); 1456 out_free: 1457 kfree(ino); 1458 return err; 1459 } 1460 1461