source: mainline/uspace/lib/ext4/libext4_extent.c@ ca47f656

lfn serial ticket/834-toolchain-update topic/msim-upgrade topic/simplify-dev-export
Last change on this file since ca47f656 was 79b5bc9, checked in by Frantisek Princ <frantisek.princ@…>, 13 years ago

very malicious bug in binary search algorithm

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File size: 28.5 KB
Line 
1/*
2 * Copyright (c) 2012 Frantisek Princ
3 * All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 *
9 * - Redistributions of source code must retain the above copyright
10 * notice, this list of conditions and the following disclaimer.
11 * - Redistributions in binary form must reproduce the above copyright
12 * notice, this list of conditions and the following disclaimer in the
13 * documentation and/or other materials provided with the distribution.
14 * - The name of the author may not be used to endorse or promote products
15 * derived from this software without specific prior written permission.
16 *
17 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
18 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
19 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
20 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
21 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
22 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
23 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
24 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
25 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
26 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27 */
28
29/** @addtogroup libext4
30 * @{
31 */
32
33/**
34 * @file libext4_extent.c
35 * @brief Ext4 extent structures operations.
36 */
37
38#include <byteorder.h>
39#include <errno.h>
40#include <malloc.h>
41#include "libext4.h"
42
43/** Get logical number of the block covered by extent.
44 *
45 * @param extent extent to load number from
46 * @return logical number of the first block covered by extent
47 */
48uint32_t ext4_extent_get_first_block(ext4_extent_t *extent)
49{
50 return uint32_t_le2host(extent->first_block);
51}
52
53/** Set logical number of the first block covered by extent.
54 *
55 * @param extent extent to set number to
56 * @param iblock logical number of the first block covered by extent
57 */
58void ext4_extent_set_first_block(ext4_extent_t *extent, uint32_t iblock)
59{
60 extent->first_block = host2uint32_t_le(iblock);
61}
62
63/** Get number of blocks covered by extent.
64 *
65 * @param extent extent to load count from
66 * @return number of blocks covered by extent
67 */
68uint16_t ext4_extent_get_block_count(ext4_extent_t *extent)
69{
70 return uint16_t_le2host(extent->block_count);
71}
72
73/** Set number of blocks covered by extent.
74 *
75 * @param extent extent to load count from
76 * @param count number of blocks covered by extent
77 */
78void ext4_extent_set_block_count(ext4_extent_t *extent, uint16_t count)
79{
80 extent->block_count = host2uint16_t_le(count);
81}
82
83/** Get physical number of the first block covered by extent.
84 *
85 * @param extent extent to load number
86 * @return physical number of the first block covered by extent
87 */
88uint64_t ext4_extent_get_start(ext4_extent_t *extent)
89{
90 return ((uint64_t)uint16_t_le2host(extent->start_hi)) << 32 |
91 ((uint64_t)uint32_t_le2host(extent->start_lo));
92}
93
94/** Set physical number of the first block covered by extent.
95 *
96 * @param extent extent to load number
97 * @param fblock physical number of the first block covered by extent
98 */
99void ext4_extent_set_start(ext4_extent_t *extent, uint64_t fblock)
100{
101 extent->start_lo = host2uint32_t_le((fblock << 32) >> 32);
102 extent->start_hi = host2uint16_t_le((uint16_t)(fblock >> 32));
103}
104
105/** Get logical number of the block covered by extent index.
106 *
107 * @param index extent index to load number from
108 * @return logical number of the first block covered by extent index
109 */
110uint32_t ext4_extent_index_get_first_block(ext4_extent_index_t *index)
111{
112 return uint32_t_le2host(index->first_block);
113}
114
115/** Set logical number of the block covered by extent index.
116 *
117 * @param index extent index to set number to
118 * @param iblock logical number of the first block covered by extent index
119 */
120void ext4_extent_index_set_first_block(ext4_extent_index_t *index,
121 uint32_t iblock)
122{
123 index->first_block = host2uint32_t_le(iblock);
124}
125
126/** Get physical number of block where the child node is located.
127 *
128 * @param index extent index to load number from
129 * @return physical number of the block with child node
130 */
131uint64_t ext4_extent_index_get_leaf(ext4_extent_index_t *index)
132{
133 return ((uint64_t)uint16_t_le2host(index->leaf_hi)) << 32 |
134 ((uint64_t)uint32_t_le2host(index->leaf_lo));
135}
136
137/** Set physical number of block where the child node is located.
138 *
139 * @param index extent index to set number to
140 * @param fblock physical number of the block with child node
141 */
142void ext4_extent_index_set_leaf(ext4_extent_index_t *index, uint64_t fblock)
143{
144 index->leaf_lo = host2uint32_t_le((fblock << 32) >> 32);
145 index->leaf_hi = host2uint16_t_le((uint16_t)(fblock >> 32));
146}
147
148/** Get magic value from extent header.
149 *
150 * @param header extent header to load value from
151 * @return magic value of extent header
152 */
153uint16_t ext4_extent_header_get_magic(ext4_extent_header_t *header)
154{
155 return uint16_t_le2host(header->magic);
156}
157
158/** Set magic value to extent header.
159 *
160 * @param header extent header to set value to
161 * @param magic magic value of extent header
162 */
163void ext4_extent_header_set_magic(ext4_extent_header_t *header, uint16_t magic)
164{
165 header->magic = host2uint16_t_le(magic);
166}
167
168/** Get number of entries from extent header
169 *
170 * @param header extent header to get value from
171 * @return number of entries covered by extent header
172 */
173uint16_t ext4_extent_header_get_entries_count(ext4_extent_header_t *header)
174{
175 return uint16_t_le2host(header->entries_count);
176}
177
178/** Set number of entries to extent header
179 *
180 * @param header extent header to set value to
181 * @param count number of entries covered by extent header
182 */
183void ext4_extent_header_set_entries_count(ext4_extent_header_t *header,
184 uint16_t count)
185{
186 header->entries_count = host2uint16_t_le(count);
187}
188
189/** Get maximum number of entries from extent header
190 *
191 * @param header extent header to get value from
192 * @return maximum number of entries covered by extent header
193 */
194uint16_t ext4_extent_header_get_max_entries_count(ext4_extent_header_t *header)
195{
196 return uint16_t_le2host(header->max_entries_count);
197}
198
199/** Set maximum number of entries to extent header
200 *
201 * @param header extent header to set value to
202 * @param max_count maximum number of entries covered by extent header
203 */
204void ext4_extent_header_set_max_entries_count(ext4_extent_header_t *header,
205 uint16_t max_count)
206{
207 header->max_entries_count = host2uint16_t_le(max_count);
208}
209
210/** Get depth of extent subtree.
211 *
212 * @param header extent header to get value from
213 * @return depth of extent subtree
214 */
215uint16_t ext4_extent_header_get_depth(ext4_extent_header_t *header)
216{
217 return uint16_t_le2host(header->depth);
218}
219
220/** Set depth of extent subtree.
221 *
222 * @param header extent header to set value to
223 * @param depth depth of extent subtree
224 */
225void ext4_extent_header_set_depth(ext4_extent_header_t *header, uint16_t depth)
226{
227 header->depth = host2uint16_t_le(depth);
228}
229
230/** Get generation from extent header
231 *
232 * @param header extent header to get value from
233 * @return generation
234 */
235uint32_t ext4_extent_header_get_generation(ext4_extent_header_t *header)
236{
237 return uint32_t_le2host(header->generation);
238}
239
240/** Set generation to extent header
241 *
242 * @param header extent header to set value to
243 * @param generation generation
244 */
245void ext4_extent_header_set_generation(ext4_extent_header_t *header,
246 uint32_t generation)
247{
248 header->generation = host2uint32_t_le(generation);
249}
250
251/** Binary search in extent index node.
252 *
253 * @param header extent header of index node
254 * @param index output value - found index will be set here
255 * @param iblock logical block number to find in index node
256 */
257static void ext4_extent_binsearch_idx(ext4_extent_header_t *header,
258 ext4_extent_index_t **index, uint32_t iblock)
259{
260 ext4_extent_index_t *r, *l, *m;
261
262 uint16_t entries_count = ext4_extent_header_get_entries_count(header);
263
264 // Initialize bounds
265 l = EXT4_EXTENT_FIRST_INDEX(header) + 1;
266 r = EXT4_EXTENT_FIRST_INDEX(header) + entries_count - 1;
267
268 // Do binary search
269 while (l <= r) {
270 m = l + (r - l) / 2;
271 uint32_t first_block = ext4_extent_index_get_first_block(m);
272 if (iblock < first_block) {
273 r = m - 1;
274 } else {
275 l = m + 1;
276 }
277 }
278
279 // Set output value
280 *index = l - 1;
281}
282
283/** Binary search in extent leaf node.
284 * @param header extent header of leaf node
285 * @param extent output value - found extent will be set here,
286 * or NULL if node is empty
287 * @param iblock logical block number to find in leaf node
288 *
289 */
290static void ext4_extent_binsearch(ext4_extent_header_t *header,
291 ext4_extent_t **extent, uint32_t iblock)
292{
293 ext4_extent_t *r, *l, *m;
294
295 uint16_t entries_count = ext4_extent_header_get_entries_count(header);
296
297 if (entries_count == 0) {
298 // this leaf is empty
299 *extent = NULL;
300 return;
301 }
302
303 // Initialize bounds
304 l = EXT4_EXTENT_FIRST(header) + 1;
305 r = EXT4_EXTENT_FIRST(header) + entries_count - 1;
306
307 // Do binary search
308 while (l <= r) {
309 m = l + (r - l) / 2;
310 uint32_t first_block = ext4_extent_get_first_block(m);
311 if (iblock < first_block) {
312 r = m - 1;
313 } else {
314 l = m + 1;
315 }
316 }
317
318 // Set output value
319 *extent = l - 1;
320}
321
322/** Find physical block in the extent tree by logical block number.
323 *
324 * There is no need to save path in the tree during this algorithm.
325 *
326 * @param inode_ref i-node to load block from
327 * @param iblock logical block number to find
328 * @param fblock output value for physical block number
329 * @return error code
330 */
331int ext4_extent_find_block(ext4_inode_ref_t *inode_ref,
332 uint32_t iblock, uint32_t *fblock)
333{
334 int rc;
335
336 // Compute bound defined by i-node size
337 uint64_t inode_size = ext4_inode_get_size(
338 inode_ref->fs->superblock, inode_ref->inode);
339
340 uint32_t block_size = ext4_superblock_get_block_size(
341 inode_ref->fs->superblock);
342
343 uint32_t last_idx = (inode_size - 1) / block_size;
344
345 // Check if requested iblock is not over size of i-node
346 if (iblock > last_idx) {
347 *fblock = 0;
348 return EOK;
349 }
350
351 block_t* block = NULL;
352
353 // Walk through extent tree
354 ext4_extent_header_t *header = ext4_inode_get_extent_header(inode_ref->inode);
355
356// EXT4FS_DBG("inode = \%u", inode_ref->index);
357// EXT4FS_DBG("count = \%u", ext4_extent_header_get_entries_count(header));
358
359 while (ext4_extent_header_get_depth(header) != 0) {
360
361 // Search index in node
362 ext4_extent_index_t *index;
363 ext4_extent_binsearch_idx(header, &index, iblock);
364
365 // Load child node and set values for the next iteration
366 uint64_t child = ext4_extent_index_get_leaf(index);
367
368 if (block != NULL) {
369 block_put(block);
370 }
371
372 rc = block_get(&block, inode_ref->fs->device, child, BLOCK_FLAGS_NONE);
373 if (rc != EOK) {
374 return rc;
375 }
376
377 header = (ext4_extent_header_t *)block->data;
378 }
379
380 // Search extent in the leaf block
381 ext4_extent_t* extent = NULL;
382 ext4_extent_binsearch(header, &extent, iblock);
383
384 // Prevent empty leaf
385 if (extent == NULL) {
386 *fblock = 0;
387 } else {
388
389// EXT4FS_DBG("required = \%u, first = \%u, start = \%u, count = \%u", iblock, ext4_extent_get_first_block(extent), (uint32_t)ext4_extent_get_start(extent), ext4_extent_get_block_count(extent));
390
391 // Compute requested physical block address
392 uint32_t phys_block;
393 uint32_t first = ext4_extent_get_first_block(extent);
394 phys_block = ext4_extent_get_start(extent) + iblock - first;
395
396// phys_block = ext4_extent_get_start(extent) + iblock;
397// phys_block -= ext4_extent_get_first_block(extent);
398
399 *fblock = phys_block;
400 }
401
402 // Cleanup
403 if (block != NULL) {
404 block_put(block);
405 }
406
407 return EOK;
408}
409
410
411/** Find extent for specified iblock.
412 *
413 * This function is used for finding block in the extent tree with
414 * saving the path through the tree for possible future modifications.
415 *
416 * @param inode_ref i-node to read extent tree from
417 * @param iblock iblock to find extent for
418 * @param ret_path output value for loaded path from extent tree
419 * @return error code
420 */
421static int ext4_extent_find_extent(ext4_inode_ref_t *inode_ref,
422 uint32_t iblock, ext4_extent_path_t **ret_path)
423{
424 int rc;
425
426 ext4_extent_header_t *eh =
427 ext4_inode_get_extent_header(inode_ref->inode);
428
429 uint16_t depth = ext4_extent_header_get_depth(eh);
430
431 ext4_extent_path_t *tmp_path;
432
433 // Added 2 for possible tree growing
434 tmp_path = malloc(sizeof(ext4_extent_path_t) * (depth + 2));
435 if (tmp_path == NULL) {
436 return ENOMEM;
437 }
438
439 // Initialize structure for algorithm start
440 tmp_path[0].block = inode_ref->block;
441 tmp_path[0].header = eh;
442
443 // Walk through the extent tree
444 uint16_t pos = 0;
445 while (ext4_extent_header_get_depth(eh) != 0) {
446
447 // Search index in index node by iblock
448 ext4_extent_binsearch_idx(tmp_path[pos].header, &tmp_path[pos].index, iblock);
449
450 tmp_path[pos].depth = depth;
451 tmp_path[pos].extent = NULL;
452
453 assert(tmp_path[pos].index != NULL);
454
455 // Load information for the next iteration
456 uint64_t fblock = ext4_extent_index_get_leaf(tmp_path[pos].index);
457
458 block_t *block;
459 rc = block_get(&block, inode_ref->fs->device, fblock, BLOCK_FLAGS_NONE);
460 if (rc != EOK) {
461 goto cleanup;
462 }
463
464 pos++;
465
466 eh = (ext4_extent_header_t *)block->data;
467 tmp_path[pos].block = block;
468 tmp_path[pos].header = eh;
469
470 }
471
472 tmp_path[pos].depth = 0;
473 tmp_path[pos].extent = NULL;
474 tmp_path[pos].index = NULL;
475
476 // Find extent in the leaf node
477 ext4_extent_binsearch(tmp_path[pos].header, &tmp_path[pos].extent, iblock);
478
479 *ret_path = tmp_path;
480
481 return EOK;
482
483cleanup:
484 // Put loaded blocks
485 // From 1 -> 0 is a block with inode data
486 for (uint16_t i = 1; i < tmp_path->depth; ++i) {
487 if (tmp_path[i].block) {
488 block_put(tmp_path[i].block);
489 }
490 }
491
492 // Destroy temporary data structure
493 free(tmp_path);
494
495 return rc;
496}
497
498/** Release extent and all data blocks covered by the extent.
499 *
500 * @param inode_ref i-node to release extent and block from
501 * @param extent extent to release
502 * @return error code
503 */
504static int ext4_extent_release(
505 ext4_inode_ref_t *inode_ref, ext4_extent_t *extent)
506{
507 int rc;
508
509 // Compute number of the first physical block to release
510 uint64_t start = ext4_extent_get_start(extent);
511 uint16_t block_count = ext4_extent_get_block_count(extent);
512
513 rc = ext4_balloc_free_blocks(inode_ref, start, block_count);
514 if (rc != EOK) {
515 EXT4FS_DBG("Error in releasing data blocks");
516 return rc;
517 }
518
519 return EOK;
520}
521
522/** Recursively release the whole branch of the extent tree.
523 *
524 * For each entry of the node release the subbranch and finally release
525 * the node. In the leaf node all extents will be released.
526 *
527 * @param inode_ref i-node where the branch is released
528 * @param index index in the non-leaf node to be released
529 * with the whole subtree
530 * @return error code
531 */
532static int ext4_extent_release_branch(ext4_inode_ref_t *inode_ref,
533 ext4_extent_index_t *index)
534{
535 int rc;
536
537 block_t* block;
538
539 uint32_t fblock = ext4_extent_index_get_leaf(index);
540
541 rc = block_get(&block, inode_ref->fs->device, fblock, BLOCK_FLAGS_NOREAD);
542 if (rc != EOK) {
543 EXT4FS_DBG("ERROR get_block");
544 return rc;
545 }
546
547 ext4_extent_header_t *header = block->data;
548
549 if (ext4_extent_header_get_depth(header)) {
550
551 // The node is non-leaf, do recursion
552
553 ext4_extent_index_t *idx = EXT4_EXTENT_FIRST_INDEX(header);
554
555 // Release all subbranches
556 for (uint32_t i = 0; i < ext4_extent_header_get_entries_count(header); ++i, ++idx) {
557 rc = ext4_extent_release_branch(inode_ref, idx);
558 if (rc != EOK) {
559 EXT4FS_DBG("error recursion");
560 return rc;
561 }
562 }
563 } else {
564
565 // Leaf node reached
566 ext4_extent_t *ext = EXT4_EXTENT_FIRST(header);
567
568 // Release all extents and stop recursion
569
570 for (uint32_t i = 0; i < ext4_extent_header_get_entries_count(header); ++i, ++ext) {
571 rc = ext4_extent_release(inode_ref, ext);
572 if (rc != EOK) {
573 EXT4FS_DBG("error recursion");
574 return rc;
575 }
576 }
577 }
578
579 // Release data block where the node was stored
580
581 rc = block_put(block);
582 if (rc != EOK) {
583 EXT4FS_DBG("ERROR put_block");
584 return rc;
585 }
586
587 ext4_balloc_free_block(inode_ref, fblock);
588
589 return EOK;
590}
591
592/** Release all data blocks starting from specified logical block.
593 *
594 * @param inode_ref i-node to release blocks from
595 * @param iblock_from first logical block to release
596 */
597int ext4_extent_release_blocks_from(ext4_inode_ref_t *inode_ref,
598 uint32_t iblock_from)
599{
600 int rc = EOK;
601
602 // Find the first extent to modify
603 ext4_extent_path_t *path;
604 rc = ext4_extent_find_extent(inode_ref, iblock_from, &path);
605 if (rc != EOK) {
606 return rc;
607 }
608
609 // Jump to last item of the path (extent)
610 ext4_extent_path_t *path_ptr = path;
611 while (path_ptr->depth != 0) {
612 path_ptr++;
613 }
614
615 assert(path_ptr->extent != NULL);
616
617 // First extent maybe released partially
618 uint32_t first_fblock;
619 first_fblock = ext4_extent_get_start(path_ptr->extent) + iblock_from;
620 first_fblock -= ext4_extent_get_first_block(path_ptr->extent);
621
622 uint16_t block_count = ext4_extent_get_block_count(path_ptr->extent);
623
624 uint16_t delete_count = block_count - first_fblock +
625 ext4_extent_get_start(path_ptr->extent);
626
627 // Release all blocks
628 rc = ext4_balloc_free_blocks(inode_ref, first_fblock, delete_count);
629 if (rc != EOK) {
630 goto cleanup;
631 }
632
633 // Correct counter
634 block_count -= delete_count;
635 ext4_extent_set_block_count(path_ptr->extent, block_count);
636
637 // Initialize the following loop
638 uint16_t entries = ext4_extent_header_get_entries_count(path_ptr->header);
639 ext4_extent_t *tmp_ext = path_ptr->extent + 1;
640 ext4_extent_t *stop_ext = EXT4_EXTENT_FIRST(path_ptr->header) + entries;
641
642 // If first extent empty, release it
643 if (block_count == 0) {
644 entries--;
645 ext4_extent_header_set_entries_count(path_ptr->header, entries);
646 }
647
648 // Release all successors of the first extent in the same node
649 while (tmp_ext < stop_ext) {
650 first_fblock = ext4_extent_get_start(tmp_ext);
651 delete_count = ext4_extent_get_block_count(tmp_ext);
652
653 rc = ext4_balloc_free_blocks(inode_ref, first_fblock, delete_count);
654 if (rc != EOK) {
655 goto cleanup;
656 }
657
658 entries--;
659 ext4_extent_header_set_entries_count(path_ptr->header, entries);
660
661 tmp_ext++;
662 }
663
664 // If leaf node is empty, the whole tree must be checked and the node will be released
665 bool remove_parent_record = false;
666
667 // Don't release root block (including inode data) !!!
668 if ((path_ptr != path) && (entries == 0)) {
669 rc = ext4_balloc_free_block(inode_ref, path_ptr->block->lba);
670 if (rc != EOK) {
671 goto cleanup;
672 }
673 remove_parent_record = true;
674 }
675
676 // Jump to the parent
677 --path_ptr;
678
679 // release all successors in all tree levels
680 while (path_ptr >= path) {
681 entries = ext4_extent_header_get_entries_count(path_ptr->header);
682 ext4_extent_index_t *index = path_ptr->index + 1;
683 ext4_extent_index_t *stop =
684 EXT4_EXTENT_FIRST_INDEX(path_ptr->header) + entries;
685
686 // Correct entry because of changes in the previous iteration
687 if (remove_parent_record) {
688 entries--;
689 }
690
691 // Iterate over all entries and release the whole subtrees
692 while (index < stop) {
693 rc = ext4_extent_release_branch(inode_ref, index);
694 if (rc != EOK) {
695 goto cleanup;
696 }
697 ++index;
698 --entries;
699 }
700
701 ext4_extent_header_set_entries_count(path_ptr->header, entries);
702
703 path_ptr->block->dirty = true;
704
705 // Free the node if it is empty
706 if ((entries == 0) && (path_ptr != path)) {
707 rc = ext4_balloc_free_block(inode_ref, path_ptr->block->lba);
708 if (rc != EOK) {
709 goto cleanup;
710 }
711
712 // Mark parent to be checked
713 remove_parent_record = true;
714 } else {
715 remove_parent_record = false;
716 }
717
718 --path_ptr;
719 }
720
721
722cleanup:
723 // Put loaded blocks
724 // From 1 -> 0 is a block with inode data
725 for (uint16_t i = 1; i <= path->depth; ++i) {
726 if (path[i].block) {
727 block_put(path[i].block);
728 }
729 }
730
731 // Destroy temporary data structure
732 free(path);
733
734 return rc;
735}
736
737
738/** Append new extent to the i-node and do some splitting if necessary.
739 *
740 * @param inode_ref i-node to append extent to
741 * @param path path in the extent tree for possible splitting
742 * @param last_path_item input/output parameter for pointer to the last
743 * valid item in the extent tree path
744 * @param iblock logical index of block to append extent for
745 * @return error code
746 */
747static int ext4_extent_append_extent(ext4_inode_ref_t *inode_ref,
748 ext4_extent_path_t *path, ext4_extent_path_t **last_path_item,
749 uint32_t iblock)
750{
751 EXT4FS_DBG("");
752 int rc;
753
754 ext4_extent_path_t *path_ptr = *last_path_item;
755
756 uint16_t entries = ext4_extent_header_get_entries_count(path_ptr->header);
757 uint16_t limit = ext4_extent_header_get_max_entries_count(path_ptr->header);
758
759 // Trivial way - no splitting
760 if (entries < limit) {
761 EXT4FS_DBG("adding extent entry");
762
763 ext4_extent_header_set_entries_count(path_ptr->header, entries + 1);
764 path_ptr->extent = EXT4_EXTENT_FIRST(path_ptr->header) + entries;
765 ext4_extent_set_block_count(path_ptr->extent, 0);
766 ext4_extent_set_first_block(path_ptr->extent, iblock);
767 ext4_extent_set_start(path_ptr->extent, 0);
768 path_ptr->block->dirty = true;
769
770 return EOK;
771 }
772
773 uint32_t block_size =
774 ext4_superblock_get_block_size(inode_ref->fs->superblock);
775
776 // Trivial tree - grow (extents were in root node)
777 if (path_ptr == path) {
778
779 uint32_t new_fblock;
780 rc = ext4_balloc_alloc_block(inode_ref, &new_fblock);
781 if (rc != EOK) {
782 EXT4FS_DBG("error in block allocation");
783 return rc;
784 }
785
786 block_t *block;
787 rc = block_get(&block, inode_ref->fs->device,
788 new_fblock, BLOCK_FLAGS_NOREAD);
789 if (rc != EOK) {
790 EXT4FS_DBG("error in block_get");
791 return rc;
792 }
793
794 memset(block->data, 0, block_size);
795
796 // Move data from root to the new block
797 memcpy(block->data, inode_ref->inode->blocks,
798 EXT4_INODE_BLOCKS * sizeof(uint32_t));
799
800 path_ptr++;
801 path_ptr->block = block;
802 path_ptr->header = (ext4_extent_header_t *)block->data;
803 path_ptr->depth = ext4_extent_header_get_depth(path_ptr->header);
804 path_ptr->index = NULL;
805
806 uint16_t entries = ext4_extent_header_get_entries_count(path_ptr->header);
807 path_ptr->extent = EXT4_EXTENT_FIRST(path_ptr->header) + entries;
808 ext4_extent_header_set_entries_count(path_ptr->header, entries + 1);
809 uint16_t limit = (block_size - sizeof(ext4_extent_header_t)) /
810 sizeof(ext4_extent_t);
811 ext4_extent_header_set_max_entries_count(path_ptr->header, limit);
812
813 // Modify root (in inode)
814 path->depth = 1;
815 path->extent = NULL;
816 path->index = EXT4_EXTENT_FIRST_INDEX(path->header);
817
818 ext4_extent_header_set_depth(path->header, path_ptr->depth + 1);
819 ext4_extent_header_set_entries_count(path->header, 1);
820
821 ext4_extent_index_set_first_block(path->index, 0);
822 ext4_extent_index_set_leaf(path->index, new_fblock);
823
824 path_ptr->block->dirty = true;
825 path->block->dirty = true;
826
827 *last_path_item = path_ptr;
828
829 return EOK;
830 }
831
832 assert(false);
833
834 // start splitting
835 uint32_t fblock = 0;
836 while (path_ptr > path) {
837
838 // TODO
839
840 rc = ext4_balloc_alloc_block(inode_ref, &fblock);
841 if (rc != EOK) {
842 return rc;
843 }
844
845 block_t *block;
846 rc = block_get(&block, inode_ref->fs->device, fblock, BLOCK_FLAGS_NOREAD);
847 if (rc != EOK) {
848 ext4_balloc_free_block(inode_ref, fblock);
849 return rc;
850 }
851
852 // Init block
853 memset(block->data, 0, block_size);
854
855 // Not modified
856 block_put(path_ptr->block);
857 path_ptr->block = block;
858
859 path_ptr->header = block->data;
860
861 if (path_ptr->depth) {
862 path_ptr->index = EXT4_EXTENT_FIRST_INDEX(path_ptr->header);
863 } else {
864 path_ptr->extent = EXT4_EXTENT_FIRST(path_ptr->header);
865 }
866
867 path_ptr--;
868 }
869
870 // If splitting reached root node
871 if (path_ptr == path) {
872
873 uint32_t new_fblock;
874 rc = ext4_balloc_alloc_block(inode_ref, &new_fblock);
875 if (rc != EOK) {
876 EXT4FS_DBG("error in block allocation");
877 return rc;
878 }
879
880 block_t *block;
881 rc = block_get(&block, inode_ref->fs->device,
882 new_fblock, BLOCK_FLAGS_NOREAD);
883 if (rc != EOK) {
884 EXT4FS_DBG("error in block_get");
885 return rc;
886 }
887
888 memset(block->data, 0, block_size);
889
890 // Move data from root to the new block
891 memcpy(block->data, inode_ref->inode->blocks,
892 EXT4_INODE_BLOCKS * sizeof(uint32_t));
893
894 path_ptr++;
895 path_ptr->block = block;
896 path_ptr->header = (ext4_extent_header_t *)block->data;
897 path_ptr->depth = ext4_extent_header_get_depth(path_ptr->header);
898 path_ptr->index = NULL;
899
900 uint16_t entries = ext4_extent_header_get_entries_count(path_ptr->header);
901 path_ptr->extent = EXT4_EXTENT_FIRST(path_ptr->header) + entries;
902 ext4_extent_header_set_entries_count(path_ptr->header, entries + 1);
903 uint16_t limit = (block_size - sizeof(ext4_extent_header_t)) /
904 sizeof(ext4_extent_t);
905 ext4_extent_header_set_max_entries_count(path_ptr->header, limit);
906
907 // Modify root (in inode)
908 path->depth = 1;
909 path->extent = NULL;
910 path->index = EXT4_EXTENT_FIRST_INDEX(path->header);
911
912 ext4_extent_header_set_depth(path->header, path_ptr->depth + 1);
913 ext4_extent_header_set_entries_count(path->header, 1);
914
915 ext4_extent_index_set_first_block(path->index, 0);
916 ext4_extent_index_set_leaf(path->index, new_fblock);
917
918 path_ptr->block->dirty = true;
919 path->block->dirty = true;
920
921 *last_path_item = path_ptr;
922
923 return EOK;
924 }
925
926 return EOK;
927}
928
929/** Append data block to the i-node.
930 *
931 * This function allocates data block, tries to append it
932 * to some existing extent or creates new extents.
933 * It includes possible extent tree modifications (splitting).
934 *
935 * @param inode_ref i-node to append block to
936 * @param iblock output logical number of newly allocated block
937 * @param fblock output physical block address of newly allocated block
938 * @return error code
939 */
940int ext4_extent_append_block(ext4_inode_ref_t *inode_ref,
941 uint32_t *iblock, uint32_t *fblock)
942{
943 EXT4FS_DBG("");
944 int rc = EOK;
945
946 ext4_superblock_t *sb = inode_ref->fs->superblock;
947 uint64_t inode_size = ext4_inode_get_size(sb, inode_ref->inode);
948 uint32_t block_size = ext4_superblock_get_block_size(sb);
949
950 // Calculate number of new logical block
951 uint32_t new_block_idx = 0;
952 if (inode_size > 0) {
953 if ((inode_size % block_size) != 0) {
954 inode_size += block_size - (inode_size % block_size);
955 }
956 new_block_idx = inode_size / block_size;
957 }
958
959 // Load the nearest leaf (with extent)
960 ext4_extent_path_t *path;
961 rc = ext4_extent_find_extent(inode_ref, new_block_idx, &path);
962 if (rc != EOK) {
963 return rc;
964 }
965
966 // Jump to last item of the path (extent)
967 ext4_extent_path_t *path_ptr = path;
968 while (path_ptr->depth != 0) {
969 path_ptr++;
970 }
971
972 // Add new extent to the node if not present
973 if (path_ptr->extent == NULL) {
974 goto append_extent;
975 }
976
977 uint16_t block_count = ext4_extent_get_block_count(path_ptr->extent);
978 uint16_t block_limit = (1 << 15);
979
980 uint32_t phys_block = 0;
981 if (block_count < block_limit) {
982
983 // There is space for new block in the extent
984
985 if (block_count == 0) {
986
987 // Existing extent is empty
988
989 rc = ext4_balloc_alloc_block(inode_ref, &phys_block);
990 if (rc != EOK) {
991 goto finish;
992 }
993
994 // Initialize extent
995 ext4_extent_set_first_block(path_ptr->extent, new_block_idx);
996 ext4_extent_set_start(path_ptr->extent, phys_block);
997 ext4_extent_set_block_count(path_ptr->extent, 1);
998
999 // Update i-node
1000 ext4_inode_set_size(inode_ref->inode, inode_size + block_size);
1001 inode_ref->dirty = true;
1002
1003 path_ptr->block->dirty = true;
1004
1005 goto finish;
1006 } else {
1007
1008 // Existing extent contains some blocks
1009
1010 phys_block = ext4_extent_get_start(path_ptr->extent);
1011 phys_block += ext4_extent_get_block_count(path_ptr->extent);
1012
1013 // Check if the following block is free for allocation
1014 bool free;
1015 rc = ext4_balloc_try_alloc_block(inode_ref, phys_block, &free);
1016 if (rc != EOK) {
1017 goto finish;
1018 }
1019
1020 if (! free) {
1021 // target is not free, new block must be appended to new extent
1022 goto append_extent;
1023 }
1024
1025
1026 // Update extent
1027 ext4_extent_set_block_count(path_ptr->extent, block_count + 1);
1028
1029 // Update i-node
1030 ext4_inode_set_size(inode_ref->inode, inode_size + block_size);
1031 inode_ref->dirty = true;
1032
1033 path_ptr->block->dirty = true;
1034
1035 goto finish;
1036 }
1037 }
1038
1039// Append new extent to the tree
1040append_extent:
1041
1042 phys_block = 0;
1043
1044 // Allocate new data block
1045 rc = ext4_balloc_alloc_block(inode_ref, &phys_block);
1046 if (rc != EOK) {
1047 EXT4FS_DBG("error in block allocation, rc = \%d", rc);
1048 goto finish;
1049 }
1050
1051 // Append extent for new block (includes tree splitting if needed)
1052 rc = ext4_extent_append_extent(inode_ref, path, &path_ptr, new_block_idx);
1053 if (rc != EOK) {
1054 ext4_balloc_free_block(inode_ref, phys_block);
1055 goto finish;
1056 }
1057
1058 // Initialize newly created extent
1059 ext4_extent_set_block_count(path_ptr->extent, 1);
1060 ext4_extent_set_first_block(path_ptr->extent, new_block_idx);
1061 ext4_extent_set_start(path_ptr->extent, phys_block);
1062
1063 // Update i-node
1064 ext4_inode_set_size(inode_ref->inode, inode_size + block_size);
1065 inode_ref->dirty = true;
1066
1067 path_ptr->block->dirty = true;
1068
1069
1070finish:
1071 // Set return values
1072 *iblock = new_block_idx;
1073 *fblock = phys_block;
1074
1075 // Put loaded blocks
1076 // From 1 -> 0 is a block with inode data
1077 for (uint16_t i = 1; i <= path->depth; ++i) {
1078 if (path[i].block) {
1079 block_put(path[i].block);
1080 }
1081 }
1082
1083 // Destroy temporary data structure
1084 free(path);
1085
1086 return rc;
1087}
1088
1089/**
1090 * @}
1091 */
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