1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Copyright (c) 2000-2005 Silicon Graphics, Inc.
4 * Copyright (c) 2013 Red Hat, Inc.
5 * All Rights Reserved.
6 */
7 #include "xfs_platform.h"
8 #include "xfs_fs.h"
9 #include "xfs_shared.h"
10 #include "xfs_format.h"
11 #include "xfs_log_format.h"
12 #include "xfs_trans_resv.h"
13 #include "xfs_bit.h"
14 #include "xfs_mount.h"
15 #include "xfs_inode.h"
16 #include "xfs_dir2.h"
17 #include "xfs_dir2_priv.h"
18 #include "xfs_trans.h"
19 #include "xfs_bmap.h"
20 #include "xfs_attr_leaf.h"
21 #include "xfs_error.h"
22 #include "xfs_trace.h"
23 #include "xfs_buf_item.h"
24 #include "xfs_log.h"
25 #include "xfs_errortag.h"
26 #include "xfs_health.h"
27
28 /*
29 * xfs_da_btree.c
30 *
31 * Routines to implement directories as Btrees of hashed names.
32 */
33
34 /*========================================================================
35 * Function prototypes for the kernel.
36 *========================================================================*/
37
38 /*
39 * Routines used for growing the Btree.
40 */
41 STATIC int xfs_da3_root_split(xfs_da_state_t *state,
42 xfs_da_state_blk_t *existing_root,
43 xfs_da_state_blk_t *new_child);
44 STATIC int xfs_da3_node_split(xfs_da_state_t *state,
45 xfs_da_state_blk_t *existing_blk,
46 xfs_da_state_blk_t *split_blk,
47 xfs_da_state_blk_t *blk_to_add,
48 int treelevel,
49 int *result);
50 STATIC void xfs_da3_node_rebalance(xfs_da_state_t *state,
51 xfs_da_state_blk_t *node_blk_1,
52 xfs_da_state_blk_t *node_blk_2);
53 STATIC void xfs_da3_node_add(xfs_da_state_t *state,
54 xfs_da_state_blk_t *old_node_blk,
55 xfs_da_state_blk_t *new_node_blk);
56
57 /*
58 * Routines used for shrinking the Btree.
59 */
60 STATIC int xfs_da3_root_join(xfs_da_state_t *state,
61 xfs_da_state_blk_t *root_blk);
62 STATIC int xfs_da3_node_toosmall(xfs_da_state_t *state, int *retval);
63 STATIC void xfs_da3_node_remove(xfs_da_state_t *state,
64 xfs_da_state_blk_t *drop_blk);
65 STATIC void xfs_da3_node_unbalance(xfs_da_state_t *state,
66 xfs_da_state_blk_t *src_node_blk,
67 xfs_da_state_blk_t *dst_node_blk);
68
69 /*
70 * Utility routines.
71 */
72 STATIC int xfs_da3_blk_unlink(xfs_da_state_t *state,
73 xfs_da_state_blk_t *drop_blk,
74 xfs_da_state_blk_t *save_blk);
75
76
77 struct kmem_cache *xfs_da_state_cache; /* anchor for dir/attr state */
78
79 /*
80 * Allocate a dir-state structure.
81 * We don't put them on the stack since they're large.
82 */
83 struct xfs_da_state *
xfs_da_state_alloc(struct xfs_da_args * args)84 xfs_da_state_alloc(
85 struct xfs_da_args *args)
86 {
87 struct xfs_da_state *state;
88
89 state = kmem_cache_zalloc(xfs_da_state_cache,
90 GFP_KERNEL | __GFP_NOLOCKDEP | __GFP_NOFAIL);
91 state->args = args;
92 state->mp = args->dp->i_mount;
93 return state;
94 }
95
96 /*
97 * Kill the altpath contents of a da-state structure.
98 */
99 STATIC void
xfs_da_state_kill_altpath(xfs_da_state_t * state)100 xfs_da_state_kill_altpath(xfs_da_state_t *state)
101 {
102 int i;
103
104 for (i = 0; i < state->altpath.active; i++)
105 state->altpath.blk[i].bp = NULL;
106 state->altpath.active = 0;
107 }
108
109 /*
110 * Free a da-state structure.
111 */
112 void
xfs_da_state_free(xfs_da_state_t * state)113 xfs_da_state_free(xfs_da_state_t *state)
114 {
115 xfs_da_state_kill_altpath(state);
116 #ifdef DEBUG
117 memset((char *)state, 0, sizeof(*state));
118 #endif /* DEBUG */
119 kmem_cache_free(xfs_da_state_cache, state);
120 }
121
122 void
xfs_da_state_reset(struct xfs_da_state * state,struct xfs_da_args * args)123 xfs_da_state_reset(
124 struct xfs_da_state *state,
125 struct xfs_da_args *args)
126 {
127 xfs_da_state_kill_altpath(state);
128 memset(state, 0, sizeof(struct xfs_da_state));
129 state->args = args;
130 state->mp = state->args->dp->i_mount;
131 }
132
xfs_dabuf_nfsb(struct xfs_mount * mp,int whichfork)133 static inline int xfs_dabuf_nfsb(struct xfs_mount *mp, int whichfork)
134 {
135 if (whichfork == XFS_DATA_FORK)
136 return mp->m_dir_geo->fsbcount;
137 return mp->m_attr_geo->fsbcount;
138 }
139
140 void
xfs_da3_node_hdr_from_disk(struct xfs_mount * mp,struct xfs_da3_icnode_hdr * to,struct xfs_da_intnode * from)141 xfs_da3_node_hdr_from_disk(
142 struct xfs_mount *mp,
143 struct xfs_da3_icnode_hdr *to,
144 struct xfs_da_intnode *from)
145 {
146 if (xfs_has_crc(mp)) {
147 struct xfs_da3_intnode *from3 = (struct xfs_da3_intnode *)from;
148
149 to->forw = be32_to_cpu(from3->hdr.info.hdr.forw);
150 to->back = be32_to_cpu(from3->hdr.info.hdr.back);
151 to->magic = be16_to_cpu(from3->hdr.info.hdr.magic);
152 to->count = be16_to_cpu(from3->hdr.__count);
153 to->level = be16_to_cpu(from3->hdr.__level);
154 to->btree = from3->__btree;
155 ASSERT(to->magic == XFS_DA3_NODE_MAGIC);
156 } else {
157 to->forw = be32_to_cpu(from->hdr.info.forw);
158 to->back = be32_to_cpu(from->hdr.info.back);
159 to->magic = be16_to_cpu(from->hdr.info.magic);
160 to->count = be16_to_cpu(from->hdr.__count);
161 to->level = be16_to_cpu(from->hdr.__level);
162 to->btree = from->__btree;
163 ASSERT(to->magic == XFS_DA_NODE_MAGIC);
164 }
165 }
166
167 void
xfs_da3_node_hdr_to_disk(struct xfs_mount * mp,struct xfs_da_intnode * to,struct xfs_da3_icnode_hdr * from)168 xfs_da3_node_hdr_to_disk(
169 struct xfs_mount *mp,
170 struct xfs_da_intnode *to,
171 struct xfs_da3_icnode_hdr *from)
172 {
173 if (xfs_has_crc(mp)) {
174 struct xfs_da3_intnode *to3 = (struct xfs_da3_intnode *)to;
175
176 ASSERT(from->magic == XFS_DA3_NODE_MAGIC);
177 to3->hdr.info.hdr.forw = cpu_to_be32(from->forw);
178 to3->hdr.info.hdr.back = cpu_to_be32(from->back);
179 to3->hdr.info.hdr.magic = cpu_to_be16(from->magic);
180 to3->hdr.__count = cpu_to_be16(from->count);
181 to3->hdr.__level = cpu_to_be16(from->level);
182 } else {
183 ASSERT(from->magic == XFS_DA_NODE_MAGIC);
184 to->hdr.info.forw = cpu_to_be32(from->forw);
185 to->hdr.info.back = cpu_to_be32(from->back);
186 to->hdr.info.magic = cpu_to_be16(from->magic);
187 to->hdr.__count = cpu_to_be16(from->count);
188 to->hdr.__level = cpu_to_be16(from->level);
189 }
190 }
191
192 /*
193 * Verify an xfs_da3_blkinfo structure. Note that the da3 fields are only
194 * accessible on v5 filesystems. This header format is common across da node,
195 * attr leaf and dir leaf blocks.
196 */
197 xfs_failaddr_t
xfs_da3_blkinfo_verify(struct xfs_buf * bp,struct xfs_da3_blkinfo * hdr3)198 xfs_da3_blkinfo_verify(
199 struct xfs_buf *bp,
200 struct xfs_da3_blkinfo *hdr3)
201 {
202 struct xfs_mount *mp = bp->b_mount;
203 struct xfs_da_blkinfo *hdr = &hdr3->hdr;
204
205 if (!xfs_verify_magic16(bp, hdr->magic))
206 return __this_address;
207
208 if (xfs_has_crc(mp)) {
209 if (!uuid_equal(&hdr3->uuid, &mp->m_sb.sb_meta_uuid))
210 return __this_address;
211 if (be64_to_cpu(hdr3->blkno) != xfs_buf_daddr(bp))
212 return __this_address;
213 if (!xfs_log_check_lsn(mp, be64_to_cpu(hdr3->lsn)))
214 return __this_address;
215 }
216
217 return NULL;
218 }
219
220 static xfs_failaddr_t
xfs_da3_node_verify(struct xfs_buf * bp)221 xfs_da3_node_verify(
222 struct xfs_buf *bp)
223 {
224 struct xfs_mount *mp = bp->b_mount;
225 struct xfs_da_intnode *hdr = bp->b_addr;
226 struct xfs_da3_icnode_hdr ichdr;
227 xfs_failaddr_t fa;
228
229 xfs_da3_node_hdr_from_disk(mp, &ichdr, hdr);
230
231 fa = xfs_da3_blkinfo_verify(bp, bp->b_addr);
232 if (fa)
233 return fa;
234
235 if (ichdr.level == 0)
236 return __this_address;
237 if (ichdr.level > XFS_DA_NODE_MAXDEPTH)
238 return __this_address;
239 if (ichdr.count == 0)
240 return __this_address;
241
242 /*
243 * we don't know if the node is for and attribute or directory tree,
244 * so only fail if the count is outside both bounds
245 */
246 if (ichdr.count > mp->m_dir_geo->node_ents &&
247 ichdr.count > mp->m_attr_geo->node_ents)
248 return __this_address;
249
250 /* XXX: hash order check? */
251
252 return NULL;
253 }
254
255 xfs_failaddr_t
xfs_da3_node_header_check(struct xfs_buf * bp,xfs_ino_t owner)256 xfs_da3_node_header_check(
257 struct xfs_buf *bp,
258 xfs_ino_t owner)
259 {
260 struct xfs_mount *mp = bp->b_mount;
261
262 if (xfs_has_crc(mp)) {
263 struct xfs_da3_blkinfo *hdr3 = bp->b_addr;
264
265 if (hdr3->hdr.magic != cpu_to_be16(XFS_DA3_NODE_MAGIC))
266 return __this_address;
267
268 if (be64_to_cpu(hdr3->owner) != owner)
269 return __this_address;
270 }
271
272 return NULL;
273 }
274
275 xfs_failaddr_t
xfs_da3_header_check(struct xfs_buf * bp,xfs_ino_t owner)276 xfs_da3_header_check(
277 struct xfs_buf *bp,
278 xfs_ino_t owner)
279 {
280 struct xfs_mount *mp = bp->b_mount;
281 struct xfs_da_blkinfo *hdr = bp->b_addr;
282
283 if (!xfs_has_crc(mp))
284 return NULL;
285
286 switch (hdr->magic) {
287 case cpu_to_be16(XFS_ATTR3_LEAF_MAGIC):
288 return xfs_attr3_leaf_header_check(bp, owner);
289 case cpu_to_be16(XFS_DA3_NODE_MAGIC):
290 return xfs_da3_node_header_check(bp, owner);
291 case cpu_to_be16(XFS_DIR3_LEAF1_MAGIC):
292 case cpu_to_be16(XFS_DIR3_LEAFN_MAGIC):
293 return xfs_dir3_leaf_header_check(bp, owner);
294 }
295
296 ASSERT(0);
297 return NULL;
298 }
299
300 static void
xfs_da3_node_write_verify(struct xfs_buf * bp)301 xfs_da3_node_write_verify(
302 struct xfs_buf *bp)
303 {
304 struct xfs_mount *mp = bp->b_mount;
305 struct xfs_buf_log_item *bip = bp->b_log_item;
306 struct xfs_da3_node_hdr *hdr3 = bp->b_addr;
307 xfs_failaddr_t fa;
308
309 fa = xfs_da3_node_verify(bp);
310 if (fa) {
311 xfs_verifier_error(bp, -EFSCORRUPTED, fa);
312 return;
313 }
314
315 if (!xfs_has_crc(mp))
316 return;
317
318 if (bip)
319 hdr3->info.lsn = cpu_to_be64(bip->bli_item.li_lsn);
320
321 xfs_buf_update_cksum(bp, XFS_DA3_NODE_CRC_OFF);
322 }
323
324 /*
325 * leaf/node format detection on trees is sketchy, so a node read can be done on
326 * leaf level blocks when detection identifies the tree as a node format tree
327 * incorrectly. In this case, we need to swap the verifier to match the correct
328 * format of the block being read.
329 */
330 static void
xfs_da3_node_read_verify(struct xfs_buf * bp)331 xfs_da3_node_read_verify(
332 struct xfs_buf *bp)
333 {
334 struct xfs_da_blkinfo *info = bp->b_addr;
335 xfs_failaddr_t fa;
336
337 switch (be16_to_cpu(info->magic)) {
338 case XFS_DA3_NODE_MAGIC:
339 if (!xfs_buf_verify_cksum(bp, XFS_DA3_NODE_CRC_OFF)) {
340 xfs_verifier_error(bp, -EFSBADCRC,
341 __this_address);
342 break;
343 }
344 fallthrough;
345 case XFS_DA_NODE_MAGIC:
346 fa = xfs_da3_node_verify(bp);
347 if (fa)
348 xfs_verifier_error(bp, -EFSCORRUPTED, fa);
349 return;
350 case XFS_ATTR_LEAF_MAGIC:
351 case XFS_ATTR3_LEAF_MAGIC:
352 bp->b_ops = &xfs_attr3_leaf_buf_ops;
353 bp->b_ops->verify_read(bp);
354 return;
355 case XFS_DIR2_LEAFN_MAGIC:
356 case XFS_DIR3_LEAFN_MAGIC:
357 bp->b_ops = &xfs_dir3_leafn_buf_ops;
358 bp->b_ops->verify_read(bp);
359 return;
360 default:
361 xfs_verifier_error(bp, -EFSCORRUPTED, __this_address);
362 break;
363 }
364 }
365
366 /* Verify the structure of a da3 block. */
367 static xfs_failaddr_t
xfs_da3_node_verify_struct(struct xfs_buf * bp)368 xfs_da3_node_verify_struct(
369 struct xfs_buf *bp)
370 {
371 struct xfs_da_blkinfo *info = bp->b_addr;
372
373 switch (be16_to_cpu(info->magic)) {
374 case XFS_DA3_NODE_MAGIC:
375 case XFS_DA_NODE_MAGIC:
376 return xfs_da3_node_verify(bp);
377 case XFS_ATTR_LEAF_MAGIC:
378 case XFS_ATTR3_LEAF_MAGIC:
379 bp->b_ops = &xfs_attr3_leaf_buf_ops;
380 return bp->b_ops->verify_struct(bp);
381 case XFS_DIR2_LEAFN_MAGIC:
382 case XFS_DIR3_LEAFN_MAGIC:
383 bp->b_ops = &xfs_dir3_leafn_buf_ops;
384 return bp->b_ops->verify_struct(bp);
385 default:
386 return __this_address;
387 }
388 }
389
390 const struct xfs_buf_ops xfs_da3_node_buf_ops = {
391 .name = "xfs_da3_node",
392 .magic16 = { cpu_to_be16(XFS_DA_NODE_MAGIC),
393 cpu_to_be16(XFS_DA3_NODE_MAGIC) },
394 .verify_read = xfs_da3_node_read_verify,
395 .verify_write = xfs_da3_node_write_verify,
396 .verify_struct = xfs_da3_node_verify_struct,
397 };
398
399 static int
xfs_da3_node_set_type(struct xfs_trans * tp,struct xfs_inode * dp,int whichfork,struct xfs_buf * bp)400 xfs_da3_node_set_type(
401 struct xfs_trans *tp,
402 struct xfs_inode *dp,
403 int whichfork,
404 struct xfs_buf *bp)
405 {
406 struct xfs_da_blkinfo *info = bp->b_addr;
407
408 switch (be16_to_cpu(info->magic)) {
409 case XFS_DA_NODE_MAGIC:
410 case XFS_DA3_NODE_MAGIC:
411 xfs_trans_buf_set_type(tp, bp, XFS_BLFT_DA_NODE_BUF);
412 return 0;
413 case XFS_ATTR_LEAF_MAGIC:
414 case XFS_ATTR3_LEAF_MAGIC:
415 xfs_trans_buf_set_type(tp, bp, XFS_BLFT_ATTR_LEAF_BUF);
416 return 0;
417 case XFS_DIR2_LEAFN_MAGIC:
418 case XFS_DIR3_LEAFN_MAGIC:
419 xfs_trans_buf_set_type(tp, bp, XFS_BLFT_DIR_LEAFN_BUF);
420 return 0;
421 default:
422 XFS_CORRUPTION_ERROR(__func__, XFS_ERRLEVEL_LOW, tp->t_mountp,
423 info, sizeof(*info));
424 xfs_trans_brelse(tp, bp);
425 xfs_dirattr_mark_sick(dp, whichfork);
426 return -EFSCORRUPTED;
427 }
428 }
429
430 int
xfs_da3_node_read(struct xfs_trans * tp,struct xfs_inode * dp,xfs_dablk_t bno,struct xfs_buf ** bpp,int whichfork)431 xfs_da3_node_read(
432 struct xfs_trans *tp,
433 struct xfs_inode *dp,
434 xfs_dablk_t bno,
435 struct xfs_buf **bpp,
436 int whichfork)
437 {
438 int error;
439
440 error = xfs_da_read_buf(tp, dp, bno, 0, bpp, whichfork,
441 &xfs_da3_node_buf_ops);
442 if (error || !*bpp || !tp)
443 return error;
444 return xfs_da3_node_set_type(tp, dp, whichfork, *bpp);
445 }
446
447 int
xfs_da3_node_read_mapped(struct xfs_trans * tp,struct xfs_inode * dp,xfs_daddr_t mappedbno,struct xfs_buf ** bpp,int whichfork)448 xfs_da3_node_read_mapped(
449 struct xfs_trans *tp,
450 struct xfs_inode *dp,
451 xfs_daddr_t mappedbno,
452 struct xfs_buf **bpp,
453 int whichfork)
454 {
455 struct xfs_mount *mp = dp->i_mount;
456 int error;
457
458 error = xfs_trans_read_buf(mp, tp, mp->m_ddev_targp, mappedbno,
459 XFS_FSB_TO_BB(mp, xfs_dabuf_nfsb(mp, whichfork)), 0,
460 bpp, &xfs_da3_node_buf_ops);
461 if (xfs_metadata_is_sick(error))
462 xfs_dirattr_mark_sick(dp, whichfork);
463 if (error || !*bpp)
464 return error;
465
466 if (whichfork == XFS_ATTR_FORK)
467 xfs_buf_set_ref(*bpp, XFS_ATTR_BTREE_REF);
468 else
469 xfs_buf_set_ref(*bpp, XFS_DIR_BTREE_REF);
470
471 if (!tp)
472 return 0;
473 return xfs_da3_node_set_type(tp, dp, whichfork, *bpp);
474 }
475
476 /*
477 * Copy src directory/attr leaf/node buffer to the dst.
478 * For v5 file systems make sure the right blkno is stamped in.
479 */
480 void
xfs_da_buf_copy(struct xfs_buf * dst,struct xfs_buf * src,size_t size)481 xfs_da_buf_copy(
482 struct xfs_buf *dst,
483 struct xfs_buf *src,
484 size_t size)
485 {
486 struct xfs_da3_blkinfo *da3 = dst->b_addr;
487
488 memcpy(dst->b_addr, src->b_addr, size);
489 dst->b_ops = src->b_ops;
490 xfs_trans_buf_copy_type(dst, src);
491 if (xfs_has_crc(dst->b_mount))
492 da3->blkno = cpu_to_be64(xfs_buf_daddr(dst));
493 }
494
495 /*========================================================================
496 * Routines used for growing the Btree.
497 *========================================================================*/
498
499 /*
500 * Create the initial contents of an intermediate node.
501 */
502 int
xfs_da3_node_create(struct xfs_da_args * args,xfs_dablk_t blkno,int level,struct xfs_buf ** bpp,int whichfork)503 xfs_da3_node_create(
504 struct xfs_da_args *args,
505 xfs_dablk_t blkno,
506 int level,
507 struct xfs_buf **bpp,
508 int whichfork)
509 {
510 struct xfs_da_intnode *node;
511 struct xfs_trans *tp = args->trans;
512 struct xfs_mount *mp = tp->t_mountp;
513 struct xfs_da3_icnode_hdr ichdr = {0};
514 struct xfs_buf *bp;
515 int error;
516 struct xfs_inode *dp = args->dp;
517
518 trace_xfs_da_node_create(args);
519 ASSERT(level <= XFS_DA_NODE_MAXDEPTH);
520
521 error = xfs_da_get_buf(tp, dp, blkno, &bp, whichfork);
522 if (error)
523 return error;
524 bp->b_ops = &xfs_da3_node_buf_ops;
525 xfs_trans_buf_set_type(tp, bp, XFS_BLFT_DA_NODE_BUF);
526 node = bp->b_addr;
527
528 if (xfs_has_crc(mp)) {
529 struct xfs_da3_node_hdr *hdr3 = bp->b_addr;
530
531 memset(hdr3, 0, sizeof(struct xfs_da3_node_hdr));
532 ichdr.magic = XFS_DA3_NODE_MAGIC;
533 hdr3->info.blkno = cpu_to_be64(xfs_buf_daddr(bp));
534 hdr3->info.owner = cpu_to_be64(args->owner);
535 uuid_copy(&hdr3->info.uuid, &mp->m_sb.sb_meta_uuid);
536 } else {
537 ichdr.magic = XFS_DA_NODE_MAGIC;
538 }
539 ichdr.level = level;
540
541 xfs_da3_node_hdr_to_disk(dp->i_mount, node, &ichdr);
542 xfs_trans_log_buf(tp, bp,
543 XFS_DA_LOGRANGE(node, &node->hdr, args->geo->node_hdr_size));
544
545 *bpp = bp;
546 return 0;
547 }
548
549 /*
550 * Split a leaf node, rebalance, then possibly split
551 * intermediate nodes, rebalance, etc.
552 */
553 int /* error */
xfs_da3_split(struct xfs_da_state * state)554 xfs_da3_split(
555 struct xfs_da_state *state)
556 {
557 struct xfs_da_state_blk *oldblk;
558 struct xfs_da_state_blk *newblk;
559 struct xfs_da_state_blk *addblk;
560 struct xfs_da_intnode *node;
561 int max;
562 int action = 0;
563 int error;
564 int i;
565
566 trace_xfs_da_split(state->args);
567
568 if (XFS_TEST_ERROR(state->mp, XFS_ERRTAG_DA_LEAF_SPLIT))
569 return -EIO;
570
571 /*
572 * Walk back up the tree splitting/inserting/adjusting as necessary.
573 * If we need to insert and there isn't room, split the node, then
574 * decide which fragment to insert the new block from below into.
575 * Note that we may split the root this way, but we need more fixup.
576 */
577 max = state->path.active - 1;
578 ASSERT((max >= 0) && (max < XFS_DA_NODE_MAXDEPTH));
579 ASSERT(state->path.blk[max].magic == XFS_ATTR_LEAF_MAGIC ||
580 state->path.blk[max].magic == XFS_DIR2_LEAFN_MAGIC);
581
582 addblk = &state->path.blk[max]; /* initial dummy value */
583 for (i = max; (i >= 0) && addblk; state->path.active--, i--) {
584 oldblk = &state->path.blk[i];
585 newblk = &state->altpath.blk[i];
586
587 /*
588 * If a leaf node then
589 * Allocate a new leaf node, then rebalance across them.
590 * else if an intermediate node then
591 * We split on the last layer, must we split the node?
592 */
593 switch (oldblk->magic) {
594 case XFS_ATTR_LEAF_MAGIC:
595 error = xfs_attr3_leaf_split(state, oldblk, newblk);
596 if (error < 0)
597 return error; /* GROT: attr is inconsistent */
598 if (!error) {
599 addblk = newblk;
600 break;
601 }
602 /*
603 * Entry wouldn't fit, split the leaf again. The new
604 * extrablk will be consumed by xfs_da3_node_split if
605 * the node is split.
606 */
607 state->extravalid = 1;
608 if (state->inleaf) {
609 state->extraafter = 0; /* before newblk */
610 trace_xfs_attr_leaf_split_before(state->args);
611 error = xfs_attr3_leaf_split(state, oldblk,
612 &state->extrablk);
613 } else {
614 state->extraafter = 1; /* after newblk */
615 trace_xfs_attr_leaf_split_after(state->args);
616 error = xfs_attr3_leaf_split(state, newblk,
617 &state->extrablk);
618 }
619 if (error == 1)
620 return -ENOSPC;
621 if (error)
622 return error; /* GROT: attr inconsistent */
623 addblk = newblk;
624 break;
625 case XFS_DIR2_LEAFN_MAGIC:
626 error = xfs_dir2_leafn_split(state, oldblk, newblk);
627 if (error)
628 return error;
629 addblk = newblk;
630 break;
631 case XFS_DA_NODE_MAGIC:
632 error = xfs_da3_node_split(state, oldblk, newblk, addblk,
633 max - i, &action);
634 addblk->bp = NULL;
635 if (error)
636 return error; /* GROT: dir is inconsistent */
637 /*
638 * Record the newly split block for the next time thru?
639 */
640 if (action)
641 addblk = newblk;
642 else
643 addblk = NULL;
644 break;
645 }
646
647 /*
648 * Update the btree to show the new hashval for this child.
649 */
650 xfs_da3_fixhashpath(state, &state->path);
651 }
652 if (!addblk)
653 return 0;
654
655 /*
656 * xfs_da3_node_split() should have consumed any extra blocks we added
657 * during a double leaf split in the attr fork. This is guaranteed as
658 * we can't be here if the attr fork only has a single leaf block.
659 */
660 ASSERT(state->extravalid == 0 ||
661 state->path.blk[max].magic == XFS_DIR2_LEAFN_MAGIC);
662
663 /*
664 * Split the root node.
665 */
666 ASSERT(state->path.active == 0);
667 oldblk = &state->path.blk[0];
668 error = xfs_da3_root_split(state, oldblk, addblk);
669 if (error)
670 goto out;
671
672 /*
673 * Update pointers to the node which used to be block 0 and just got
674 * bumped because of the addition of a new root node. Note that the
675 * original block 0 could be at any position in the list of blocks in
676 * the tree.
677 *
678 * Note: the magic numbers and sibling pointers are in the same physical
679 * place for both v2 and v3 headers (by design). Hence it doesn't matter
680 * which version of the xfs_da_intnode structure we use here as the
681 * result will be the same using either structure.
682 */
683 node = oldblk->bp->b_addr;
684 if (node->hdr.info.forw) {
685 if (be32_to_cpu(node->hdr.info.forw) != addblk->blkno) {
686 xfs_buf_mark_corrupt(oldblk->bp);
687 xfs_da_mark_sick(state->args);
688 error = -EFSCORRUPTED;
689 goto out;
690 }
691 node = addblk->bp->b_addr;
692 node->hdr.info.back = cpu_to_be32(oldblk->blkno);
693 xfs_trans_log_buf(state->args->trans, addblk->bp,
694 XFS_DA_LOGRANGE(node, &node->hdr.info,
695 sizeof(node->hdr.info)));
696 }
697 node = oldblk->bp->b_addr;
698 if (node->hdr.info.back) {
699 if (be32_to_cpu(node->hdr.info.back) != addblk->blkno) {
700 xfs_buf_mark_corrupt(oldblk->bp);
701 xfs_da_mark_sick(state->args);
702 error = -EFSCORRUPTED;
703 goto out;
704 }
705 node = addblk->bp->b_addr;
706 node->hdr.info.forw = cpu_to_be32(oldblk->blkno);
707 xfs_trans_log_buf(state->args->trans, addblk->bp,
708 XFS_DA_LOGRANGE(node, &node->hdr.info,
709 sizeof(node->hdr.info)));
710 }
711 out:
712 addblk->bp = NULL;
713 return error;
714 }
715
716 /*
717 * Split the root. We have to create a new root and point to the two
718 * parts (the split old root) that we just created. Copy block zero to
719 * the EOF, extending the inode in process.
720 */
721 STATIC int /* error */
xfs_da3_root_split(struct xfs_da_state * state,struct xfs_da_state_blk * blk1,struct xfs_da_state_blk * blk2)722 xfs_da3_root_split(
723 struct xfs_da_state *state,
724 struct xfs_da_state_blk *blk1,
725 struct xfs_da_state_blk *blk2)
726 {
727 struct xfs_da_intnode *node;
728 struct xfs_da_intnode *oldroot;
729 struct xfs_da_node_entry *btree;
730 struct xfs_da3_icnode_hdr nodehdr;
731 struct xfs_da_args *args;
732 struct xfs_buf *bp;
733 struct xfs_inode *dp;
734 struct xfs_trans *tp;
735 struct xfs_dir2_leaf *leaf;
736 xfs_dablk_t blkno;
737 int level;
738 int error;
739 int size;
740
741 trace_xfs_da_root_split(state->args);
742
743 /*
744 * Copy the existing (incorrect) block from the root node position
745 * to a free space somewhere.
746 */
747 args = state->args;
748 error = xfs_da_grow_inode(args, &blkno);
749 if (error)
750 return error;
751
752 dp = args->dp;
753 tp = args->trans;
754 error = xfs_da_get_buf(tp, dp, blkno, &bp, args->whichfork);
755 if (error)
756 return error;
757 node = bp->b_addr;
758 oldroot = blk1->bp->b_addr;
759 if (oldroot->hdr.info.magic == cpu_to_be16(XFS_DA_NODE_MAGIC) ||
760 oldroot->hdr.info.magic == cpu_to_be16(XFS_DA3_NODE_MAGIC)) {
761 struct xfs_da3_icnode_hdr icnodehdr;
762
763 xfs_da3_node_hdr_from_disk(dp->i_mount, &icnodehdr, oldroot);
764 btree = icnodehdr.btree;
765 size = (int)((char *)&btree[icnodehdr.count] - (char *)oldroot);
766 level = icnodehdr.level;
767 } else {
768 struct xfs_dir3_icleaf_hdr leafhdr;
769
770 leaf = (xfs_dir2_leaf_t *)oldroot;
771 xfs_dir2_leaf_hdr_from_disk(dp->i_mount, &leafhdr, leaf);
772
773 ASSERT(leafhdr.magic == XFS_DIR2_LEAFN_MAGIC ||
774 leafhdr.magic == XFS_DIR3_LEAFN_MAGIC);
775 size = (int)((char *)&leafhdr.ents[leafhdr.count] -
776 (char *)leaf);
777 level = 0;
778 }
779
780 /*
781 * Copy old root to new buffer and log it.
782 */
783 xfs_da_buf_copy(bp, blk1->bp, size);
784 xfs_trans_log_buf(tp, bp, 0, size - 1);
785
786 /*
787 * Update blk1 to point to new buffer.
788 */
789 blk1->bp = bp;
790 blk1->blkno = blkno;
791
792 /*
793 * Set up the new root node.
794 */
795 error = xfs_da3_node_create(args,
796 (args->whichfork == XFS_DATA_FORK) ? args->geo->leafblk : 0,
797 level + 1, &bp, args->whichfork);
798 if (error)
799 return error;
800
801 node = bp->b_addr;
802 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr, node);
803 btree = nodehdr.btree;
804 btree[0].hashval = cpu_to_be32(blk1->hashval);
805 btree[0].before = cpu_to_be32(blk1->blkno);
806 btree[1].hashval = cpu_to_be32(blk2->hashval);
807 btree[1].before = cpu_to_be32(blk2->blkno);
808 nodehdr.count = 2;
809 xfs_da3_node_hdr_to_disk(dp->i_mount, node, &nodehdr);
810
811 #ifdef DEBUG
812 if (oldroot->hdr.info.magic == cpu_to_be16(XFS_DIR2_LEAFN_MAGIC) ||
813 oldroot->hdr.info.magic == cpu_to_be16(XFS_DIR3_LEAFN_MAGIC)) {
814 ASSERT(blk1->blkno >= args->geo->leafblk &&
815 blk1->blkno < args->geo->freeblk);
816 ASSERT(blk2->blkno >= args->geo->leafblk &&
817 blk2->blkno < args->geo->freeblk);
818 }
819 #endif
820
821 /* Header is already logged by xfs_da_node_create */
822 xfs_trans_log_buf(tp, bp,
823 XFS_DA_LOGRANGE(node, btree, sizeof(xfs_da_node_entry_t) * 2));
824
825 return 0;
826 }
827
828 /*
829 * Split the node, rebalance, then add the new entry.
830 */
831 STATIC int /* error */
xfs_da3_node_split(struct xfs_da_state * state,struct xfs_da_state_blk * oldblk,struct xfs_da_state_blk * newblk,struct xfs_da_state_blk * addblk,int treelevel,int * result)832 xfs_da3_node_split(
833 struct xfs_da_state *state,
834 struct xfs_da_state_blk *oldblk,
835 struct xfs_da_state_blk *newblk,
836 struct xfs_da_state_blk *addblk,
837 int treelevel,
838 int *result)
839 {
840 struct xfs_da_intnode *node;
841 struct xfs_da3_icnode_hdr nodehdr;
842 xfs_dablk_t blkno;
843 int newcount;
844 int error;
845 int useextra;
846 struct xfs_inode *dp = state->args->dp;
847
848 trace_xfs_da_node_split(state->args);
849
850 node = oldblk->bp->b_addr;
851 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr, node);
852
853 /*
854 * With V2 dirs the extra block is data or freespace.
855 */
856 useextra = state->extravalid && state->args->whichfork == XFS_ATTR_FORK;
857 newcount = 1 + useextra;
858 /*
859 * Do we have to split the node?
860 */
861 if (nodehdr.count + newcount > state->args->geo->node_ents) {
862 /*
863 * Allocate a new node, add to the doubly linked chain of
864 * nodes, then move some of our excess entries into it.
865 */
866 error = xfs_da_grow_inode(state->args, &blkno);
867 if (error)
868 return error; /* GROT: dir is inconsistent */
869
870 error = xfs_da3_node_create(state->args, blkno, treelevel,
871 &newblk->bp, state->args->whichfork);
872 if (error)
873 return error; /* GROT: dir is inconsistent */
874 newblk->blkno = blkno;
875 newblk->magic = XFS_DA_NODE_MAGIC;
876 xfs_da3_node_rebalance(state, oldblk, newblk);
877 error = xfs_da3_blk_link(state, oldblk, newblk);
878 if (error)
879 return error;
880 *result = 1;
881 } else {
882 *result = 0;
883 }
884
885 /*
886 * Insert the new entry(s) into the correct block
887 * (updating last hashval in the process).
888 *
889 * xfs_da3_node_add() inserts BEFORE the given index,
890 * and as a result of using node_lookup_int() we always
891 * point to a valid entry (not after one), but a split
892 * operation always results in a new block whose hashvals
893 * FOLLOW the current block.
894 *
895 * If we had double-split op below us, then add the extra block too.
896 */
897 node = oldblk->bp->b_addr;
898 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr, node);
899 if (oldblk->index <= nodehdr.count) {
900 oldblk->index++;
901 xfs_da3_node_add(state, oldblk, addblk);
902 if (useextra) {
903 if (state->extraafter)
904 oldblk->index++;
905 xfs_da3_node_add(state, oldblk, &state->extrablk);
906 state->extravalid = 0;
907 }
908 } else {
909 newblk->index++;
910 xfs_da3_node_add(state, newblk, addblk);
911 if (useextra) {
912 if (state->extraafter)
913 newblk->index++;
914 xfs_da3_node_add(state, newblk, &state->extrablk);
915 state->extravalid = 0;
916 }
917 }
918
919 return 0;
920 }
921
922 /*
923 * Balance the btree elements between two intermediate nodes,
924 * usually one full and one empty.
925 *
926 * NOTE: if blk2 is empty, then it will get the upper half of blk1.
927 */
928 STATIC void
xfs_da3_node_rebalance(struct xfs_da_state * state,struct xfs_da_state_blk * blk1,struct xfs_da_state_blk * blk2)929 xfs_da3_node_rebalance(
930 struct xfs_da_state *state,
931 struct xfs_da_state_blk *blk1,
932 struct xfs_da_state_blk *blk2)
933 {
934 struct xfs_da_intnode *node1;
935 struct xfs_da_intnode *node2;
936 struct xfs_da_node_entry *btree1;
937 struct xfs_da_node_entry *btree2;
938 struct xfs_da_node_entry *btree_s;
939 struct xfs_da_node_entry *btree_d;
940 struct xfs_da3_icnode_hdr nodehdr1;
941 struct xfs_da3_icnode_hdr nodehdr2;
942 struct xfs_trans *tp;
943 int count;
944 int tmp;
945 int swap = 0;
946 struct xfs_inode *dp = state->args->dp;
947
948 trace_xfs_da_node_rebalance(state->args);
949
950 node1 = blk1->bp->b_addr;
951 node2 = blk2->bp->b_addr;
952 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr1, node1);
953 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr2, node2);
954 btree1 = nodehdr1.btree;
955 btree2 = nodehdr2.btree;
956
957 /*
958 * Figure out how many entries need to move, and in which direction.
959 * Swap the nodes around if that makes it simpler.
960 */
961 if (nodehdr1.count > 0 && nodehdr2.count > 0 &&
962 ((be32_to_cpu(btree2[0].hashval) < be32_to_cpu(btree1[0].hashval)) ||
963 (be32_to_cpu(btree2[nodehdr2.count - 1].hashval) <
964 be32_to_cpu(btree1[nodehdr1.count - 1].hashval)))) {
965 swap(node1, node2);
966 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr1, node1);
967 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr2, node2);
968 btree1 = nodehdr1.btree;
969 btree2 = nodehdr2.btree;
970 swap = 1;
971 }
972
973 count = (nodehdr1.count - nodehdr2.count) / 2;
974 if (count == 0)
975 return;
976 tp = state->args->trans;
977 /*
978 * Two cases: high-to-low and low-to-high.
979 */
980 if (count > 0) {
981 /*
982 * Move elements in node2 up to make a hole.
983 */
984 tmp = nodehdr2.count;
985 if (tmp > 0) {
986 tmp *= (uint)sizeof(xfs_da_node_entry_t);
987 btree_s = &btree2[0];
988 btree_d = &btree2[count];
989 memmove(btree_d, btree_s, tmp);
990 }
991
992 /*
993 * Move the req'd B-tree elements from high in node1 to
994 * low in node2.
995 */
996 nodehdr2.count += count;
997 tmp = count * (uint)sizeof(xfs_da_node_entry_t);
998 btree_s = &btree1[nodehdr1.count - count];
999 btree_d = &btree2[0];
1000 memcpy(btree_d, btree_s, tmp);
1001 nodehdr1.count -= count;
1002 } else {
1003 /*
1004 * Move the req'd B-tree elements from low in node2 to
1005 * high in node1.
1006 */
1007 count = -count;
1008 tmp = count * (uint)sizeof(xfs_da_node_entry_t);
1009 btree_s = &btree2[0];
1010 btree_d = &btree1[nodehdr1.count];
1011 memcpy(btree_d, btree_s, tmp);
1012 nodehdr1.count += count;
1013
1014 xfs_trans_log_buf(tp, blk1->bp,
1015 XFS_DA_LOGRANGE(node1, btree_d, tmp));
1016
1017 /*
1018 * Move elements in node2 down to fill the hole.
1019 */
1020 tmp = nodehdr2.count - count;
1021 tmp *= (uint)sizeof(xfs_da_node_entry_t);
1022 btree_s = &btree2[count];
1023 btree_d = &btree2[0];
1024 memmove(btree_d, btree_s, tmp);
1025 nodehdr2.count -= count;
1026 }
1027
1028 /*
1029 * Log header of node 1 and all current bits of node 2.
1030 */
1031 xfs_da3_node_hdr_to_disk(dp->i_mount, node1, &nodehdr1);
1032 xfs_trans_log_buf(tp, blk1->bp,
1033 XFS_DA_LOGRANGE(node1, &node1->hdr,
1034 state->args->geo->node_hdr_size));
1035
1036 xfs_da3_node_hdr_to_disk(dp->i_mount, node2, &nodehdr2);
1037 xfs_trans_log_buf(tp, blk2->bp,
1038 XFS_DA_LOGRANGE(node2, &node2->hdr,
1039 state->args->geo->node_hdr_size +
1040 (sizeof(btree2[0]) * nodehdr2.count)));
1041
1042 /*
1043 * Record the last hashval from each block for upward propagation.
1044 * (note: don't use the swapped node pointers)
1045 */
1046 if (swap) {
1047 node1 = blk1->bp->b_addr;
1048 node2 = blk2->bp->b_addr;
1049 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr1, node1);
1050 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr2, node2);
1051 btree1 = nodehdr1.btree;
1052 btree2 = nodehdr2.btree;
1053 }
1054 blk1->hashval = be32_to_cpu(btree1[nodehdr1.count - 1].hashval);
1055 blk2->hashval = be32_to_cpu(btree2[nodehdr2.count - 1].hashval);
1056
1057 /*
1058 * Adjust the expected index for insertion.
1059 */
1060 if (blk1->index >= nodehdr1.count) {
1061 blk2->index = blk1->index - nodehdr1.count;
1062 blk1->index = nodehdr1.count + 1; /* make it invalid */
1063 }
1064 }
1065
1066 /*
1067 * Add a new entry to an intermediate node.
1068 */
1069 STATIC void
xfs_da3_node_add(struct xfs_da_state * state,struct xfs_da_state_blk * oldblk,struct xfs_da_state_blk * newblk)1070 xfs_da3_node_add(
1071 struct xfs_da_state *state,
1072 struct xfs_da_state_blk *oldblk,
1073 struct xfs_da_state_blk *newblk)
1074 {
1075 struct xfs_da_intnode *node;
1076 struct xfs_da3_icnode_hdr nodehdr;
1077 struct xfs_da_node_entry *btree;
1078 int tmp;
1079 struct xfs_inode *dp = state->args->dp;
1080
1081 trace_xfs_da_node_add(state->args);
1082
1083 node = oldblk->bp->b_addr;
1084 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr, node);
1085 btree = nodehdr.btree;
1086
1087 ASSERT(oldblk->index >= 0 && oldblk->index <= nodehdr.count);
1088 ASSERT(newblk->blkno != 0);
1089 if (state->args->whichfork == XFS_DATA_FORK)
1090 ASSERT(newblk->blkno >= state->args->geo->leafblk &&
1091 newblk->blkno < state->args->geo->freeblk);
1092
1093 /*
1094 * We may need to make some room before we insert the new node.
1095 */
1096 tmp = 0;
1097 if (oldblk->index < nodehdr.count) {
1098 tmp = (nodehdr.count - oldblk->index) * (uint)sizeof(*btree);
1099 memmove(&btree[oldblk->index + 1], &btree[oldblk->index], tmp);
1100 }
1101 btree[oldblk->index].hashval = cpu_to_be32(newblk->hashval);
1102 btree[oldblk->index].before = cpu_to_be32(newblk->blkno);
1103 xfs_trans_log_buf(state->args->trans, oldblk->bp,
1104 XFS_DA_LOGRANGE(node, &btree[oldblk->index],
1105 tmp + sizeof(*btree)));
1106
1107 nodehdr.count += 1;
1108 xfs_da3_node_hdr_to_disk(dp->i_mount, node, &nodehdr);
1109 xfs_trans_log_buf(state->args->trans, oldblk->bp,
1110 XFS_DA_LOGRANGE(node, &node->hdr,
1111 state->args->geo->node_hdr_size));
1112
1113 /*
1114 * Copy the last hash value from the oldblk to propagate upwards.
1115 */
1116 oldblk->hashval = be32_to_cpu(btree[nodehdr.count - 1].hashval);
1117 }
1118
1119 /*========================================================================
1120 * Routines used for shrinking the Btree.
1121 *========================================================================*/
1122
1123 /*
1124 * Deallocate an empty leaf node, remove it from its parent,
1125 * possibly deallocating that block, etc...
1126 */
1127 int
xfs_da3_join(struct xfs_da_state * state)1128 xfs_da3_join(
1129 struct xfs_da_state *state)
1130 {
1131 struct xfs_da_state_blk *drop_blk;
1132 struct xfs_da_state_blk *save_blk;
1133 int action = 0;
1134 int error;
1135
1136 trace_xfs_da_join(state->args);
1137
1138 drop_blk = &state->path.blk[ state->path.active-1 ];
1139 save_blk = &state->altpath.blk[ state->path.active-1 ];
1140 ASSERT(state->path.blk[0].magic == XFS_DA_NODE_MAGIC);
1141 ASSERT(drop_blk->magic == XFS_ATTR_LEAF_MAGIC ||
1142 drop_blk->magic == XFS_DIR2_LEAFN_MAGIC);
1143
1144 /*
1145 * Walk back up the tree joining/deallocating as necessary.
1146 * When we stop dropping blocks, break out.
1147 */
1148 for ( ; state->path.active >= 2; drop_blk--, save_blk--,
1149 state->path.active--) {
1150 /*
1151 * See if we can combine the block with a neighbor.
1152 * (action == 0) => no options, just leave
1153 * (action == 1) => coalesce, then unlink
1154 * (action == 2) => block empty, unlink it
1155 */
1156 switch (drop_blk->magic) {
1157 case XFS_ATTR_LEAF_MAGIC:
1158 error = xfs_attr3_leaf_toosmall(state, &action);
1159 if (error)
1160 return error;
1161 if (action == 0)
1162 return 0;
1163 xfs_attr3_leaf_unbalance(state, drop_blk, save_blk);
1164 break;
1165 case XFS_DIR2_LEAFN_MAGIC:
1166 error = xfs_dir2_leafn_toosmall(state, &action);
1167 if (error)
1168 return error;
1169 if (action == 0)
1170 return 0;
1171 xfs_dir2_leafn_unbalance(state, drop_blk, save_blk);
1172 break;
1173 case XFS_DA_NODE_MAGIC:
1174 /*
1175 * Remove the offending node, fixup hashvals,
1176 * check for a toosmall neighbor.
1177 */
1178 xfs_da3_node_remove(state, drop_blk);
1179 xfs_da3_fixhashpath(state, &state->path);
1180 error = xfs_da3_node_toosmall(state, &action);
1181 if (error)
1182 return error;
1183 if (action == 0)
1184 return 0;
1185 xfs_da3_node_unbalance(state, drop_blk, save_blk);
1186 break;
1187 }
1188 xfs_da3_fixhashpath(state, &state->altpath);
1189 error = xfs_da3_blk_unlink(state, drop_blk, save_blk);
1190 xfs_da_state_kill_altpath(state);
1191 if (error)
1192 return error;
1193 error = xfs_da_shrink_inode(state->args, drop_blk->blkno,
1194 drop_blk->bp);
1195 drop_blk->bp = NULL;
1196 if (error)
1197 return error;
1198 }
1199 /*
1200 * We joined all the way to the top. If it turns out that
1201 * we only have one entry in the root, make the child block
1202 * the new root.
1203 */
1204 xfs_da3_node_remove(state, drop_blk);
1205 xfs_da3_fixhashpath(state, &state->path);
1206 error = xfs_da3_root_join(state, &state->path.blk[0]);
1207 return error;
1208 }
1209
1210 #ifdef DEBUG
1211 static void
xfs_da_blkinfo_onlychild_validate(struct xfs_da_blkinfo * blkinfo,__u16 level)1212 xfs_da_blkinfo_onlychild_validate(struct xfs_da_blkinfo *blkinfo, __u16 level)
1213 {
1214 __be16 magic = blkinfo->magic;
1215
1216 if (level == 1) {
1217 ASSERT(magic == cpu_to_be16(XFS_DIR2_LEAFN_MAGIC) ||
1218 magic == cpu_to_be16(XFS_DIR3_LEAFN_MAGIC) ||
1219 magic == cpu_to_be16(XFS_ATTR_LEAF_MAGIC) ||
1220 magic == cpu_to_be16(XFS_ATTR3_LEAF_MAGIC));
1221 } else {
1222 ASSERT(magic == cpu_to_be16(XFS_DA_NODE_MAGIC) ||
1223 magic == cpu_to_be16(XFS_DA3_NODE_MAGIC));
1224 }
1225 ASSERT(!blkinfo->forw);
1226 ASSERT(!blkinfo->back);
1227 }
1228 #else /* !DEBUG */
1229 #define xfs_da_blkinfo_onlychild_validate(blkinfo, level)
1230 #endif /* !DEBUG */
1231
1232 /*
1233 * We have only one entry in the root. Copy the only remaining child of
1234 * the old root to block 0 as the new root node.
1235 */
1236 STATIC int
xfs_da3_root_join(struct xfs_da_state * state,struct xfs_da_state_blk * root_blk)1237 xfs_da3_root_join(
1238 struct xfs_da_state *state,
1239 struct xfs_da_state_blk *root_blk)
1240 {
1241 struct xfs_da_intnode *oldroot;
1242 struct xfs_da_args *args;
1243 xfs_dablk_t child;
1244 struct xfs_buf *bp;
1245 struct xfs_da3_icnode_hdr oldroothdr;
1246 int error;
1247 struct xfs_inode *dp = state->args->dp;
1248 xfs_failaddr_t fa;
1249
1250 trace_xfs_da_root_join(state->args);
1251
1252 ASSERT(root_blk->magic == XFS_DA_NODE_MAGIC);
1253
1254 args = state->args;
1255 oldroot = root_blk->bp->b_addr;
1256 xfs_da3_node_hdr_from_disk(dp->i_mount, &oldroothdr, oldroot);
1257 ASSERT(oldroothdr.forw == 0);
1258 ASSERT(oldroothdr.back == 0);
1259
1260 /*
1261 * If the root has more than one child, then don't do anything.
1262 */
1263 if (oldroothdr.count > 1)
1264 return 0;
1265
1266 /*
1267 * Read in the (only) child block, then copy those bytes into
1268 * the root block's buffer and free the original child block.
1269 */
1270 child = be32_to_cpu(oldroothdr.btree[0].before);
1271 ASSERT(child != 0);
1272 error = xfs_da3_node_read(args->trans, dp, child, &bp, args->whichfork);
1273 if (error)
1274 return error;
1275 fa = xfs_da3_header_check(bp, args->owner);
1276 if (fa) {
1277 __xfs_buf_mark_corrupt(bp, fa);
1278 xfs_trans_brelse(args->trans, bp);
1279 xfs_da_mark_sick(args);
1280 return -EFSCORRUPTED;
1281 }
1282 xfs_da_blkinfo_onlychild_validate(bp->b_addr, oldroothdr.level);
1283
1284 /*
1285 * Copy child to root buffer and log it.
1286 */
1287 xfs_da_buf_copy(root_blk->bp, bp, args->geo->blksize);
1288 xfs_trans_log_buf(args->trans, root_blk->bp, 0,
1289 args->geo->blksize - 1);
1290 /*
1291 * Now we can drop the child buffer.
1292 */
1293 error = xfs_da_shrink_inode(args, child, bp);
1294 return error;
1295 }
1296
1297 /*
1298 * Check a node block and its neighbors to see if the block should be
1299 * collapsed into one or the other neighbor. Always keep the block
1300 * with the smaller block number.
1301 * If the current block is over 50% full, don't try to join it, return 0.
1302 * If the block is empty, fill in the state structure and return 2.
1303 * If it can be collapsed, fill in the state structure and return 1.
1304 * If nothing can be done, return 0.
1305 */
1306 STATIC int
xfs_da3_node_toosmall(struct xfs_da_state * state,int * action)1307 xfs_da3_node_toosmall(
1308 struct xfs_da_state *state,
1309 int *action)
1310 {
1311 struct xfs_da_intnode *node;
1312 struct xfs_da_state_blk *blk;
1313 struct xfs_da_blkinfo *info;
1314 xfs_dablk_t blkno;
1315 struct xfs_buf *bp;
1316 xfs_failaddr_t fa;
1317 struct xfs_da3_icnode_hdr nodehdr;
1318 int count;
1319 int forward;
1320 int error;
1321 int retval;
1322 int i;
1323 struct xfs_inode *dp = state->args->dp;
1324
1325 trace_xfs_da_node_toosmall(state->args);
1326
1327 /*
1328 * Check for the degenerate case of the block being over 50% full.
1329 * If so, it's not worth even looking to see if we might be able
1330 * to coalesce with a sibling.
1331 */
1332 blk = &state->path.blk[ state->path.active-1 ];
1333 info = blk->bp->b_addr;
1334 node = (xfs_da_intnode_t *)info;
1335 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr, node);
1336 if (nodehdr.count > (state->args->geo->node_ents >> 1)) {
1337 *action = 0; /* blk over 50%, don't try to join */
1338 return 0; /* blk over 50%, don't try to join */
1339 }
1340
1341 /*
1342 * Check for the degenerate case of the block being empty.
1343 * If the block is empty, we'll simply delete it, no need to
1344 * coalesce it with a sibling block. We choose (arbitrarily)
1345 * to merge with the forward block unless it is NULL.
1346 */
1347 if (nodehdr.count == 0) {
1348 /*
1349 * Make altpath point to the block we want to keep and
1350 * path point to the block we want to drop (this one).
1351 */
1352 forward = (info->forw != 0);
1353 memcpy(&state->altpath, &state->path, sizeof(state->path));
1354 error = xfs_da3_path_shift(state, &state->altpath, forward,
1355 0, &retval);
1356 if (error)
1357 return error;
1358 if (retval) {
1359 *action = 0;
1360 } else {
1361 *action = 2;
1362 }
1363 return 0;
1364 }
1365
1366 /*
1367 * Examine each sibling block to see if we can coalesce with
1368 * at least 25% free space to spare. We need to figure out
1369 * whether to merge with the forward or the backward block.
1370 * We prefer coalescing with the lower numbered sibling so as
1371 * to shrink a directory over time.
1372 */
1373 count = state->args->geo->node_ents;
1374 count -= state->args->geo->node_ents >> 2;
1375 count -= nodehdr.count;
1376
1377 /* start with smaller blk num */
1378 forward = nodehdr.forw < nodehdr.back;
1379 for (i = 0; i < 2; forward = !forward, i++) {
1380 struct xfs_da3_icnode_hdr thdr;
1381 if (forward)
1382 blkno = nodehdr.forw;
1383 else
1384 blkno = nodehdr.back;
1385 if (blkno == 0)
1386 continue;
1387 error = xfs_da3_node_read(state->args->trans, dp, blkno, &bp,
1388 state->args->whichfork);
1389 if (error)
1390 return error;
1391 fa = xfs_da3_node_header_check(bp, state->args->owner);
1392 if (fa) {
1393 __xfs_buf_mark_corrupt(bp, fa);
1394 xfs_trans_brelse(state->args->trans, bp);
1395 xfs_da_mark_sick(state->args);
1396 return -EFSCORRUPTED;
1397 }
1398
1399 node = bp->b_addr;
1400 xfs_da3_node_hdr_from_disk(dp->i_mount, &thdr, node);
1401 xfs_trans_brelse(state->args->trans, bp);
1402
1403 if (count - thdr.count >= 0)
1404 break; /* fits with at least 25% to spare */
1405 }
1406 if (i >= 2) {
1407 *action = 0;
1408 return 0;
1409 }
1410
1411 /*
1412 * Make altpath point to the block we want to keep (the lower
1413 * numbered block) and path point to the block we want to drop.
1414 */
1415 memcpy(&state->altpath, &state->path, sizeof(state->path));
1416 if (blkno < blk->blkno) {
1417 error = xfs_da3_path_shift(state, &state->altpath, forward,
1418 0, &retval);
1419 } else {
1420 error = xfs_da3_path_shift(state, &state->path, forward,
1421 0, &retval);
1422 }
1423 if (error)
1424 return error;
1425 if (retval) {
1426 *action = 0;
1427 return 0;
1428 }
1429 *action = 1;
1430 return 0;
1431 }
1432
1433 /*
1434 * Pick up the last hashvalue from an intermediate node.
1435 */
1436 STATIC uint
xfs_da3_node_lasthash(struct xfs_inode * dp,struct xfs_buf * bp,int * count)1437 xfs_da3_node_lasthash(
1438 struct xfs_inode *dp,
1439 struct xfs_buf *bp,
1440 int *count)
1441 {
1442 struct xfs_da3_icnode_hdr nodehdr;
1443
1444 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr, bp->b_addr);
1445 if (count)
1446 *count = nodehdr.count;
1447 if (!nodehdr.count)
1448 return 0;
1449 return be32_to_cpu(nodehdr.btree[nodehdr.count - 1].hashval);
1450 }
1451
1452 /*
1453 * Walk back up the tree adjusting hash values as necessary,
1454 * when we stop making changes, return.
1455 */
1456 void
xfs_da3_fixhashpath(struct xfs_da_state * state,struct xfs_da_state_path * path)1457 xfs_da3_fixhashpath(
1458 struct xfs_da_state *state,
1459 struct xfs_da_state_path *path)
1460 {
1461 struct xfs_da_state_blk *blk;
1462 struct xfs_da_intnode *node;
1463 struct xfs_da_node_entry *btree;
1464 xfs_dahash_t lasthash=0;
1465 int level;
1466 int count;
1467 struct xfs_inode *dp = state->args->dp;
1468
1469 trace_xfs_da_fixhashpath(state->args);
1470
1471 level = path->active-1;
1472 blk = &path->blk[ level ];
1473 switch (blk->magic) {
1474 case XFS_ATTR_LEAF_MAGIC:
1475 lasthash = xfs_attr_leaf_lasthash(blk->bp, &count);
1476 if (count == 0)
1477 return;
1478 break;
1479 case XFS_DIR2_LEAFN_MAGIC:
1480 lasthash = xfs_dir2_leaf_lasthash(dp, blk->bp, &count);
1481 if (count == 0)
1482 return;
1483 break;
1484 case XFS_DA_NODE_MAGIC:
1485 lasthash = xfs_da3_node_lasthash(dp, blk->bp, &count);
1486 if (count == 0)
1487 return;
1488 break;
1489 }
1490 for (blk--, level--; level >= 0; blk--, level--) {
1491 struct xfs_da3_icnode_hdr nodehdr;
1492
1493 node = blk->bp->b_addr;
1494 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr, node);
1495 btree = nodehdr.btree;
1496 if (be32_to_cpu(btree[blk->index].hashval) == lasthash)
1497 break;
1498 blk->hashval = lasthash;
1499 btree[blk->index].hashval = cpu_to_be32(lasthash);
1500 xfs_trans_log_buf(state->args->trans, blk->bp,
1501 XFS_DA_LOGRANGE(node, &btree[blk->index],
1502 sizeof(*btree)));
1503
1504 lasthash = be32_to_cpu(btree[nodehdr.count - 1].hashval);
1505 }
1506 }
1507
1508 /*
1509 * Internal implementation to remove an entry from an intermediate node.
1510 */
1511 STATIC void
__xfs_da3_node_remove(struct xfs_trans * tp,struct xfs_inode * dp,struct xfs_da_geometry * geo,struct xfs_da_state_blk * drop_blk)1512 __xfs_da3_node_remove(
1513 struct xfs_trans *tp,
1514 struct xfs_inode *dp,
1515 struct xfs_da_geometry *geo,
1516 struct xfs_da_state_blk *drop_blk)
1517 {
1518 struct xfs_da_intnode *node;
1519 struct xfs_da3_icnode_hdr nodehdr;
1520 struct xfs_da_node_entry *btree;
1521 int index;
1522 int tmp;
1523
1524 node = drop_blk->bp->b_addr;
1525 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr, node);
1526 ASSERT(drop_blk->index < nodehdr.count);
1527 ASSERT(drop_blk->index >= 0);
1528
1529 /*
1530 * Copy over the offending entry, or just zero it out.
1531 */
1532 index = drop_blk->index;
1533 btree = nodehdr.btree;
1534 if (index < nodehdr.count - 1) {
1535 tmp = nodehdr.count - index - 1;
1536 tmp *= (uint)sizeof(xfs_da_node_entry_t);
1537 memmove(&btree[index], &btree[index + 1], tmp);
1538 xfs_trans_log_buf(tp, drop_blk->bp,
1539 XFS_DA_LOGRANGE(node, &btree[index], tmp));
1540 index = nodehdr.count - 1;
1541 }
1542 memset(&btree[index], 0, sizeof(xfs_da_node_entry_t));
1543 xfs_trans_log_buf(tp, drop_blk->bp,
1544 XFS_DA_LOGRANGE(node, &btree[index], sizeof(btree[index])));
1545 nodehdr.count -= 1;
1546 xfs_da3_node_hdr_to_disk(dp->i_mount, node, &nodehdr);
1547 xfs_trans_log_buf(tp, drop_blk->bp,
1548 XFS_DA_LOGRANGE(node, &node->hdr, geo->node_hdr_size));
1549
1550 /*
1551 * Copy the last hash value from the block to propagate upwards.
1552 */
1553 drop_blk->hashval = be32_to_cpu(btree[index - 1].hashval);
1554 }
1555
1556 /*
1557 * Remove an entry from an intermediate node.
1558 */
1559 STATIC void
xfs_da3_node_remove(struct xfs_da_state * state,struct xfs_da_state_blk * drop_blk)1560 xfs_da3_node_remove(
1561 struct xfs_da_state *state,
1562 struct xfs_da_state_blk *drop_blk)
1563 {
1564 trace_xfs_da_node_remove(state->args);
1565
1566 __xfs_da3_node_remove(state->args->trans, state->args->dp,
1567 state->args->geo, drop_blk);
1568 }
1569
1570 /*
1571 * Remove an entry from an intermediate attr node at the specified index.
1572 */
1573 void
xfs_attr3_node_entry_remove(struct xfs_trans * tp,struct xfs_inode * dp,struct xfs_buf * bp,int index)1574 xfs_attr3_node_entry_remove(
1575 struct xfs_trans *tp,
1576 struct xfs_inode *dp,
1577 struct xfs_buf *bp,
1578 int index)
1579 {
1580 struct xfs_da_state_blk blk = {
1581 .index = index,
1582 .bp = bp,
1583 };
1584
1585 __xfs_da3_node_remove(tp, dp, dp->i_mount->m_attr_geo, &blk);
1586 }
1587
1588 /*
1589 * Unbalance the elements between two intermediate nodes,
1590 * move all Btree elements from one node into another.
1591 */
1592 STATIC void
xfs_da3_node_unbalance(struct xfs_da_state * state,struct xfs_da_state_blk * drop_blk,struct xfs_da_state_blk * save_blk)1593 xfs_da3_node_unbalance(
1594 struct xfs_da_state *state,
1595 struct xfs_da_state_blk *drop_blk,
1596 struct xfs_da_state_blk *save_blk)
1597 {
1598 struct xfs_da_intnode *drop_node;
1599 struct xfs_da_intnode *save_node;
1600 struct xfs_da_node_entry *drop_btree;
1601 struct xfs_da_node_entry *save_btree;
1602 struct xfs_da3_icnode_hdr drop_hdr;
1603 struct xfs_da3_icnode_hdr save_hdr;
1604 struct xfs_trans *tp;
1605 int sindex;
1606 int tmp;
1607 struct xfs_inode *dp = state->args->dp;
1608
1609 trace_xfs_da_node_unbalance(state->args);
1610
1611 drop_node = drop_blk->bp->b_addr;
1612 save_node = save_blk->bp->b_addr;
1613 xfs_da3_node_hdr_from_disk(dp->i_mount, &drop_hdr, drop_node);
1614 xfs_da3_node_hdr_from_disk(dp->i_mount, &save_hdr, save_node);
1615 drop_btree = drop_hdr.btree;
1616 save_btree = save_hdr.btree;
1617 tp = state->args->trans;
1618
1619 /*
1620 * If the dying block has lower hashvals, then move all the
1621 * elements in the remaining block up to make a hole.
1622 */
1623 if ((be32_to_cpu(drop_btree[0].hashval) <
1624 be32_to_cpu(save_btree[0].hashval)) ||
1625 (be32_to_cpu(drop_btree[drop_hdr.count - 1].hashval) <
1626 be32_to_cpu(save_btree[save_hdr.count - 1].hashval))) {
1627 /* XXX: check this - is memmove dst correct? */
1628 tmp = save_hdr.count * sizeof(xfs_da_node_entry_t);
1629 memmove(&save_btree[drop_hdr.count], &save_btree[0], tmp);
1630
1631 sindex = 0;
1632 xfs_trans_log_buf(tp, save_blk->bp,
1633 XFS_DA_LOGRANGE(save_node, &save_btree[0],
1634 (save_hdr.count + drop_hdr.count) *
1635 sizeof(xfs_da_node_entry_t)));
1636 } else {
1637 sindex = save_hdr.count;
1638 xfs_trans_log_buf(tp, save_blk->bp,
1639 XFS_DA_LOGRANGE(save_node, &save_btree[sindex],
1640 drop_hdr.count * sizeof(xfs_da_node_entry_t)));
1641 }
1642
1643 /*
1644 * Move all the B-tree elements from drop_blk to save_blk.
1645 */
1646 tmp = drop_hdr.count * (uint)sizeof(xfs_da_node_entry_t);
1647 memcpy(&save_btree[sindex], &drop_btree[0], tmp);
1648 save_hdr.count += drop_hdr.count;
1649
1650 xfs_da3_node_hdr_to_disk(dp->i_mount, save_node, &save_hdr);
1651 xfs_trans_log_buf(tp, save_blk->bp,
1652 XFS_DA_LOGRANGE(save_node, &save_node->hdr,
1653 state->args->geo->node_hdr_size));
1654
1655 /*
1656 * Save the last hashval in the remaining block for upward propagation.
1657 */
1658 save_blk->hashval = be32_to_cpu(save_btree[save_hdr.count - 1].hashval);
1659 }
1660
1661 /*========================================================================
1662 * Routines used for finding things in the Btree.
1663 *========================================================================*/
1664
1665 /*
1666 * Walk down the Btree looking for a particular filename, filling
1667 * in the state structure as we go.
1668 *
1669 * We will set the state structure to point to each of the elements
1670 * in each of the nodes where either the hashval is or should be.
1671 *
1672 * We support duplicate hashval's so for each entry in the current
1673 * node that could contain the desired hashval, descend. This is a
1674 * pruned depth-first tree search.
1675 */
1676 int /* error */
xfs_da3_node_lookup_int(struct xfs_da_state * state,int * result)1677 xfs_da3_node_lookup_int(
1678 struct xfs_da_state *state,
1679 int *result)
1680 {
1681 struct xfs_da_state_blk *blk;
1682 struct xfs_da_blkinfo *curr;
1683 struct xfs_da_intnode *node;
1684 struct xfs_da_node_entry *btree;
1685 struct xfs_da3_icnode_hdr nodehdr;
1686 struct xfs_da_args *args;
1687 xfs_failaddr_t fa;
1688 xfs_dablk_t blkno;
1689 xfs_dahash_t hashval;
1690 xfs_dahash_t btreehashval;
1691 int probe;
1692 int span;
1693 int max;
1694 int error;
1695 int retval;
1696 unsigned int expected_level = 0;
1697 uint16_t magic;
1698 struct xfs_inode *dp = state->args->dp;
1699
1700 args = state->args;
1701
1702 /*
1703 * Descend thru the B-tree searching each level for the right
1704 * node to use, until the right hashval is found.
1705 */
1706 blkno = args->geo->leafblk;
1707 for (blk = &state->path.blk[0], state->path.active = 1;
1708 state->path.active <= XFS_DA_NODE_MAXDEPTH;
1709 blk++, state->path.active++) {
1710 /*
1711 * Read the next node down in the tree.
1712 */
1713 blk->blkno = blkno;
1714 error = xfs_da3_node_read(args->trans, args->dp, blkno,
1715 &blk->bp, args->whichfork);
1716 if (error) {
1717 blk->blkno = 0;
1718 state->path.active--;
1719 return error;
1720 }
1721 curr = blk->bp->b_addr;
1722 magic = be16_to_cpu(curr->magic);
1723
1724 if (magic == XFS_ATTR_LEAF_MAGIC ||
1725 magic == XFS_ATTR3_LEAF_MAGIC) {
1726 fa = xfs_attr3_leaf_header_check(blk->bp, args->owner);
1727 if (fa) {
1728 __xfs_buf_mark_corrupt(blk->bp, fa);
1729 xfs_da_mark_sick(args);
1730 return -EFSCORRUPTED;
1731 }
1732 blk->magic = XFS_ATTR_LEAF_MAGIC;
1733 blk->hashval = xfs_attr_leaf_lasthash(blk->bp, NULL);
1734 break;
1735 }
1736
1737 if (magic == XFS_DIR2_LEAFN_MAGIC ||
1738 magic == XFS_DIR3_LEAFN_MAGIC) {
1739 fa = xfs_dir3_leaf_header_check(blk->bp, args->owner);
1740 if (fa) {
1741 __xfs_buf_mark_corrupt(blk->bp, fa);
1742 xfs_da_mark_sick(args);
1743 return -EFSCORRUPTED;
1744 }
1745 blk->magic = XFS_DIR2_LEAFN_MAGIC;
1746 blk->hashval = xfs_dir2_leaf_lasthash(args->dp,
1747 blk->bp, NULL);
1748 break;
1749 }
1750
1751 if (magic != XFS_DA_NODE_MAGIC && magic != XFS_DA3_NODE_MAGIC) {
1752 xfs_buf_mark_corrupt(blk->bp);
1753 xfs_da_mark_sick(args);
1754 return -EFSCORRUPTED;
1755 }
1756
1757 fa = xfs_da3_node_header_check(blk->bp, args->owner);
1758 if (fa) {
1759 __xfs_buf_mark_corrupt(blk->bp, fa);
1760 xfs_da_mark_sick(args);
1761 return -EFSCORRUPTED;
1762 }
1763
1764 blk->magic = XFS_DA_NODE_MAGIC;
1765
1766 /*
1767 * Search an intermediate node for a match.
1768 */
1769 node = blk->bp->b_addr;
1770 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr, node);
1771 btree = nodehdr.btree;
1772
1773 /* Tree taller than we can handle; bail out! */
1774 if (nodehdr.level >= XFS_DA_NODE_MAXDEPTH) {
1775 xfs_buf_mark_corrupt(blk->bp);
1776 xfs_da_mark_sick(args);
1777 return -EFSCORRUPTED;
1778 }
1779
1780 /* Check the level from the root. */
1781 if (blkno == args->geo->leafblk)
1782 expected_level = nodehdr.level - 1;
1783 else if (expected_level != nodehdr.level) {
1784 xfs_buf_mark_corrupt(blk->bp);
1785 xfs_da_mark_sick(args);
1786 return -EFSCORRUPTED;
1787 } else
1788 expected_level--;
1789
1790 max = nodehdr.count;
1791 blk->hashval = be32_to_cpu(btree[max - 1].hashval);
1792
1793 /*
1794 * Binary search. (note: small blocks will skip loop)
1795 */
1796 probe = span = max / 2;
1797 hashval = args->hashval;
1798 while (span > 4) {
1799 span /= 2;
1800 btreehashval = be32_to_cpu(btree[probe].hashval);
1801 if (btreehashval < hashval)
1802 probe += span;
1803 else if (btreehashval > hashval)
1804 probe -= span;
1805 else
1806 break;
1807 }
1808 ASSERT((probe >= 0) && (probe < max));
1809 ASSERT((span <= 4) ||
1810 (be32_to_cpu(btree[probe].hashval) == hashval));
1811
1812 /*
1813 * Since we may have duplicate hashval's, find the first
1814 * matching hashval in the node.
1815 */
1816 while (probe > 0 &&
1817 be32_to_cpu(btree[probe].hashval) >= hashval) {
1818 probe--;
1819 }
1820 while (probe < max &&
1821 be32_to_cpu(btree[probe].hashval) < hashval) {
1822 probe++;
1823 }
1824
1825 /*
1826 * Pick the right block to descend on.
1827 */
1828 if (probe == max) {
1829 blk->index = max - 1;
1830 blkno = be32_to_cpu(btree[max - 1].before);
1831 } else {
1832 blk->index = probe;
1833 blkno = be32_to_cpu(btree[probe].before);
1834 }
1835
1836 /* We can't point back to the root. */
1837 if (XFS_IS_CORRUPT(dp->i_mount, blkno == args->geo->leafblk)) {
1838 xfs_da_mark_sick(args);
1839 return -EFSCORRUPTED;
1840 }
1841 }
1842
1843 if (XFS_IS_CORRUPT(dp->i_mount, expected_level != 0)) {
1844 xfs_da_mark_sick(args);
1845 return -EFSCORRUPTED;
1846 }
1847
1848 /*
1849 * A leaf block that ends in the hashval that we are interested in
1850 * (final hashval == search hashval) means that the next block may
1851 * contain more entries with the same hashval, shift upward to the
1852 * next leaf and keep searching.
1853 */
1854 for (;;) {
1855 if (blk->magic == XFS_DIR2_LEAFN_MAGIC) {
1856 retval = xfs_dir2_leafn_lookup_int(blk->bp, args,
1857 &blk->index, state);
1858 } else if (blk->magic == XFS_ATTR_LEAF_MAGIC) {
1859 retval = xfs_attr3_leaf_lookup_int(blk->bp, args);
1860 blk->index = args->index;
1861 args->blkno = blk->blkno;
1862 } else {
1863 ASSERT(0);
1864 xfs_da_mark_sick(args);
1865 return -EFSCORRUPTED;
1866 }
1867 if (((retval == -ENOENT) || (retval == -ENOATTR)) &&
1868 (blk->hashval == args->hashval)) {
1869 error = xfs_da3_path_shift(state, &state->path, 1, 1,
1870 &retval);
1871 if (error)
1872 return error;
1873 if (retval == 0) {
1874 continue;
1875 } else if (blk->magic == XFS_ATTR_LEAF_MAGIC) {
1876 /* path_shift() gives ENOENT */
1877 retval = -ENOATTR;
1878 }
1879 }
1880 break;
1881 }
1882 *result = retval;
1883 return 0;
1884 }
1885
1886 /*========================================================================
1887 * Utility routines.
1888 *========================================================================*/
1889
1890 /*
1891 * Compare two intermediate nodes for "order".
1892 */
1893 STATIC int
xfs_da3_node_order(struct xfs_inode * dp,struct xfs_buf * node1_bp,struct xfs_buf * node2_bp)1894 xfs_da3_node_order(
1895 struct xfs_inode *dp,
1896 struct xfs_buf *node1_bp,
1897 struct xfs_buf *node2_bp)
1898 {
1899 struct xfs_da_intnode *node1;
1900 struct xfs_da_intnode *node2;
1901 struct xfs_da_node_entry *btree1;
1902 struct xfs_da_node_entry *btree2;
1903 struct xfs_da3_icnode_hdr node1hdr;
1904 struct xfs_da3_icnode_hdr node2hdr;
1905
1906 node1 = node1_bp->b_addr;
1907 node2 = node2_bp->b_addr;
1908 xfs_da3_node_hdr_from_disk(dp->i_mount, &node1hdr, node1);
1909 xfs_da3_node_hdr_from_disk(dp->i_mount, &node2hdr, node2);
1910 btree1 = node1hdr.btree;
1911 btree2 = node2hdr.btree;
1912
1913 if (node1hdr.count > 0 && node2hdr.count > 0 &&
1914 ((be32_to_cpu(btree2[0].hashval) < be32_to_cpu(btree1[0].hashval)) ||
1915 (be32_to_cpu(btree2[node2hdr.count - 1].hashval) <
1916 be32_to_cpu(btree1[node1hdr.count - 1].hashval)))) {
1917 return 1;
1918 }
1919 return 0;
1920 }
1921
1922 /*
1923 * Link a new block into a doubly linked list of blocks (of whatever type).
1924 */
1925 int /* error */
xfs_da3_blk_link(struct xfs_da_state * state,struct xfs_da_state_blk * old_blk,struct xfs_da_state_blk * new_blk)1926 xfs_da3_blk_link(
1927 struct xfs_da_state *state,
1928 struct xfs_da_state_blk *old_blk,
1929 struct xfs_da_state_blk *new_blk)
1930 {
1931 struct xfs_da_blkinfo *old_info;
1932 struct xfs_da_blkinfo *new_info;
1933 struct xfs_da_blkinfo *tmp_info;
1934 struct xfs_da_args *args;
1935 struct xfs_buf *bp;
1936 xfs_failaddr_t fa;
1937 int before = 0;
1938 int error;
1939 struct xfs_inode *dp = state->args->dp;
1940
1941 /*
1942 * Set up environment.
1943 */
1944 args = state->args;
1945 ASSERT(args != NULL);
1946 old_info = old_blk->bp->b_addr;
1947 new_info = new_blk->bp->b_addr;
1948 ASSERT(old_blk->magic == XFS_DA_NODE_MAGIC ||
1949 old_blk->magic == XFS_DIR2_LEAFN_MAGIC ||
1950 old_blk->magic == XFS_ATTR_LEAF_MAGIC);
1951
1952 switch (old_blk->magic) {
1953 case XFS_ATTR_LEAF_MAGIC:
1954 before = xfs_attr_leaf_order(old_blk->bp, new_blk->bp);
1955 break;
1956 case XFS_DIR2_LEAFN_MAGIC:
1957 before = xfs_dir2_leafn_order(dp, old_blk->bp, new_blk->bp);
1958 break;
1959 case XFS_DA_NODE_MAGIC:
1960 before = xfs_da3_node_order(dp, old_blk->bp, new_blk->bp);
1961 break;
1962 }
1963
1964 /*
1965 * Link blocks in appropriate order.
1966 */
1967 if (before) {
1968 /*
1969 * Link new block in before existing block.
1970 */
1971 trace_xfs_da_link_before(args);
1972 new_info->forw = cpu_to_be32(old_blk->blkno);
1973 new_info->back = old_info->back;
1974 if (old_info->back) {
1975 error = xfs_da3_node_read(args->trans, dp,
1976 be32_to_cpu(old_info->back),
1977 &bp, args->whichfork);
1978 if (error)
1979 return error;
1980 fa = xfs_da3_header_check(bp, args->owner);
1981 if (fa) {
1982 __xfs_buf_mark_corrupt(bp, fa);
1983 xfs_trans_brelse(args->trans, bp);
1984 xfs_da_mark_sick(args);
1985 return -EFSCORRUPTED;
1986 }
1987 ASSERT(bp != NULL);
1988 tmp_info = bp->b_addr;
1989 ASSERT(tmp_info->magic == old_info->magic);
1990 ASSERT(be32_to_cpu(tmp_info->forw) == old_blk->blkno);
1991 tmp_info->forw = cpu_to_be32(new_blk->blkno);
1992 xfs_trans_log_buf(args->trans, bp, 0, sizeof(*tmp_info)-1);
1993 }
1994 old_info->back = cpu_to_be32(new_blk->blkno);
1995 } else {
1996 /*
1997 * Link new block in after existing block.
1998 */
1999 trace_xfs_da_link_after(args);
2000 new_info->forw = old_info->forw;
2001 new_info->back = cpu_to_be32(old_blk->blkno);
2002 if (old_info->forw) {
2003 error = xfs_da3_node_read(args->trans, dp,
2004 be32_to_cpu(old_info->forw),
2005 &bp, args->whichfork);
2006 if (error)
2007 return error;
2008 fa = xfs_da3_header_check(bp, args->owner);
2009 if (fa) {
2010 __xfs_buf_mark_corrupt(bp, fa);
2011 xfs_trans_brelse(args->trans, bp);
2012 xfs_da_mark_sick(args);
2013 return -EFSCORRUPTED;
2014 }
2015 ASSERT(bp != NULL);
2016 tmp_info = bp->b_addr;
2017 ASSERT(tmp_info->magic == old_info->magic);
2018 ASSERT(be32_to_cpu(tmp_info->back) == old_blk->blkno);
2019 tmp_info->back = cpu_to_be32(new_blk->blkno);
2020 xfs_trans_log_buf(args->trans, bp, 0, sizeof(*tmp_info)-1);
2021 }
2022 old_info->forw = cpu_to_be32(new_blk->blkno);
2023 }
2024
2025 xfs_trans_log_buf(args->trans, old_blk->bp, 0, sizeof(*tmp_info) - 1);
2026 xfs_trans_log_buf(args->trans, new_blk->bp, 0, sizeof(*tmp_info) - 1);
2027 return 0;
2028 }
2029
2030 /*
2031 * Unlink a block from a doubly linked list of blocks.
2032 */
2033 STATIC int /* error */
xfs_da3_blk_unlink(struct xfs_da_state * state,struct xfs_da_state_blk * drop_blk,struct xfs_da_state_blk * save_blk)2034 xfs_da3_blk_unlink(
2035 struct xfs_da_state *state,
2036 struct xfs_da_state_blk *drop_blk,
2037 struct xfs_da_state_blk *save_blk)
2038 {
2039 struct xfs_da_blkinfo *drop_info;
2040 struct xfs_da_blkinfo *save_info;
2041 struct xfs_da_blkinfo *tmp_info;
2042 struct xfs_da_args *args;
2043 struct xfs_buf *bp;
2044 xfs_failaddr_t fa;
2045 int error;
2046
2047 /*
2048 * Set up environment.
2049 */
2050 args = state->args;
2051 ASSERT(args != NULL);
2052 save_info = save_blk->bp->b_addr;
2053 drop_info = drop_blk->bp->b_addr;
2054 ASSERT(save_blk->magic == XFS_DA_NODE_MAGIC ||
2055 save_blk->magic == XFS_DIR2_LEAFN_MAGIC ||
2056 save_blk->magic == XFS_ATTR_LEAF_MAGIC);
2057 ASSERT(save_blk->magic == drop_blk->magic);
2058 ASSERT((be32_to_cpu(save_info->forw) == drop_blk->blkno) ||
2059 (be32_to_cpu(save_info->back) == drop_blk->blkno));
2060 ASSERT((be32_to_cpu(drop_info->forw) == save_blk->blkno) ||
2061 (be32_to_cpu(drop_info->back) == save_blk->blkno));
2062
2063 /*
2064 * Unlink the leaf block from the doubly linked chain of leaves.
2065 */
2066 if (be32_to_cpu(save_info->back) == drop_blk->blkno) {
2067 trace_xfs_da_unlink_back(args);
2068 save_info->back = drop_info->back;
2069 if (drop_info->back) {
2070 error = xfs_da3_node_read(args->trans, args->dp,
2071 be32_to_cpu(drop_info->back),
2072 &bp, args->whichfork);
2073 if (error)
2074 return error;
2075 fa = xfs_da3_header_check(bp, args->owner);
2076 if (fa) {
2077 __xfs_buf_mark_corrupt(bp, fa);
2078 xfs_trans_brelse(args->trans, bp);
2079 xfs_da_mark_sick(args);
2080 return -EFSCORRUPTED;
2081 }
2082 ASSERT(bp != NULL);
2083 tmp_info = bp->b_addr;
2084 ASSERT(tmp_info->magic == save_info->magic);
2085 ASSERT(be32_to_cpu(tmp_info->forw) == drop_blk->blkno);
2086 tmp_info->forw = cpu_to_be32(save_blk->blkno);
2087 xfs_trans_log_buf(args->trans, bp, 0,
2088 sizeof(*tmp_info) - 1);
2089 }
2090 } else {
2091 trace_xfs_da_unlink_forward(args);
2092 save_info->forw = drop_info->forw;
2093 if (drop_info->forw) {
2094 error = xfs_da3_node_read(args->trans, args->dp,
2095 be32_to_cpu(drop_info->forw),
2096 &bp, args->whichfork);
2097 if (error)
2098 return error;
2099 fa = xfs_da3_header_check(bp, args->owner);
2100 if (fa) {
2101 __xfs_buf_mark_corrupt(bp, fa);
2102 xfs_trans_brelse(args->trans, bp);
2103 xfs_da_mark_sick(args);
2104 return -EFSCORRUPTED;
2105 }
2106 ASSERT(bp != NULL);
2107 tmp_info = bp->b_addr;
2108 ASSERT(tmp_info->magic == save_info->magic);
2109 ASSERT(be32_to_cpu(tmp_info->back) == drop_blk->blkno);
2110 tmp_info->back = cpu_to_be32(save_blk->blkno);
2111 xfs_trans_log_buf(args->trans, bp, 0,
2112 sizeof(*tmp_info) - 1);
2113 }
2114 }
2115
2116 xfs_trans_log_buf(args->trans, save_blk->bp, 0, sizeof(*save_info) - 1);
2117 return 0;
2118 }
2119
2120 /*
2121 * Move a path "forward" or "!forward" one block at the current level.
2122 *
2123 * This routine will adjust a "path" to point to the next block
2124 * "forward" (higher hashvalues) or "!forward" (lower hashvals) in the
2125 * Btree, including updating pointers to the intermediate nodes between
2126 * the new bottom and the root.
2127 */
2128 int /* error */
xfs_da3_path_shift(struct xfs_da_state * state,struct xfs_da_state_path * path,int forward,int release,int * result)2129 xfs_da3_path_shift(
2130 struct xfs_da_state *state,
2131 struct xfs_da_state_path *path,
2132 int forward,
2133 int release,
2134 int *result)
2135 {
2136 struct xfs_da_state_blk *blk;
2137 struct xfs_da_blkinfo *info;
2138 struct xfs_da_args *args;
2139 struct xfs_da_node_entry *btree;
2140 struct xfs_da3_icnode_hdr nodehdr;
2141 struct xfs_buf *bp;
2142 xfs_failaddr_t fa;
2143 xfs_dablk_t blkno = 0;
2144 int level;
2145 int error;
2146 struct xfs_inode *dp = state->args->dp;
2147
2148 trace_xfs_da_path_shift(state->args);
2149
2150 /*
2151 * Roll up the Btree looking for the first block where our
2152 * current index is not at the edge of the block. Note that
2153 * we skip the bottom layer because we want the sibling block.
2154 */
2155 args = state->args;
2156 ASSERT(args != NULL);
2157 ASSERT(path != NULL);
2158 ASSERT((path->active > 0) && (path->active < XFS_DA_NODE_MAXDEPTH));
2159 level = (path->active-1) - 1; /* skip bottom layer in path */
2160 for (; level >= 0; level--) {
2161 blk = &path->blk[level];
2162 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr,
2163 blk->bp->b_addr);
2164
2165 if (forward && (blk->index < nodehdr.count - 1)) {
2166 blk->index++;
2167 blkno = be32_to_cpu(nodehdr.btree[blk->index].before);
2168 break;
2169 } else if (!forward && (blk->index > 0)) {
2170 blk->index--;
2171 blkno = be32_to_cpu(nodehdr.btree[blk->index].before);
2172 break;
2173 }
2174 }
2175 if (level < 0) {
2176 *result = -ENOENT; /* we're out of our tree */
2177 ASSERT(args->op_flags & XFS_DA_OP_OKNOENT);
2178 return 0;
2179 }
2180
2181 /*
2182 * Roll down the edge of the subtree until we reach the
2183 * same depth we were at originally.
2184 */
2185 for (blk++, level++; level < path->active; blk++, level++) {
2186 /*
2187 * Read the next child block into a local buffer.
2188 */
2189 error = xfs_da3_node_read(args->trans, dp, blkno, &bp,
2190 args->whichfork);
2191 if (error)
2192 return error;
2193
2194 /*
2195 * Release the old block (if it's dirty, the trans doesn't
2196 * actually let go) and swap the local buffer into the path
2197 * structure. This ensures failure of the above read doesn't set
2198 * a NULL buffer in an active slot in the path.
2199 */
2200 if (release)
2201 xfs_trans_brelse(args->trans, blk->bp);
2202 blk->blkno = blkno;
2203 blk->bp = bp;
2204
2205 info = blk->bp->b_addr;
2206 ASSERT(info->magic == cpu_to_be16(XFS_DA_NODE_MAGIC) ||
2207 info->magic == cpu_to_be16(XFS_DA3_NODE_MAGIC) ||
2208 info->magic == cpu_to_be16(XFS_DIR2_LEAFN_MAGIC) ||
2209 info->magic == cpu_to_be16(XFS_DIR3_LEAFN_MAGIC) ||
2210 info->magic == cpu_to_be16(XFS_ATTR_LEAF_MAGIC) ||
2211 info->magic == cpu_to_be16(XFS_ATTR3_LEAF_MAGIC));
2212
2213
2214 /*
2215 * Note: we flatten the magic number to a single type so we
2216 * don't have to compare against crc/non-crc types elsewhere.
2217 */
2218 switch (be16_to_cpu(info->magic)) {
2219 case XFS_DA_NODE_MAGIC:
2220 case XFS_DA3_NODE_MAGIC:
2221 fa = xfs_da3_node_header_check(blk->bp, args->owner);
2222 if (fa) {
2223 __xfs_buf_mark_corrupt(blk->bp, fa);
2224 xfs_da_mark_sick(args);
2225 return -EFSCORRUPTED;
2226 }
2227 blk->magic = XFS_DA_NODE_MAGIC;
2228 xfs_da3_node_hdr_from_disk(dp->i_mount, &nodehdr,
2229 bp->b_addr);
2230 btree = nodehdr.btree;
2231 blk->hashval = be32_to_cpu(btree[nodehdr.count - 1].hashval);
2232 if (forward)
2233 blk->index = 0;
2234 else
2235 blk->index = nodehdr.count - 1;
2236 blkno = be32_to_cpu(btree[blk->index].before);
2237 break;
2238 case XFS_ATTR_LEAF_MAGIC:
2239 case XFS_ATTR3_LEAF_MAGIC:
2240 fa = xfs_attr3_leaf_header_check(blk->bp, args->owner);
2241 if (fa) {
2242 __xfs_buf_mark_corrupt(blk->bp, fa);
2243 xfs_da_mark_sick(args);
2244 return -EFSCORRUPTED;
2245 }
2246 blk->magic = XFS_ATTR_LEAF_MAGIC;
2247 ASSERT(level == path->active-1);
2248 blk->index = 0;
2249 blk->hashval = xfs_attr_leaf_lasthash(blk->bp, NULL);
2250 break;
2251 case XFS_DIR2_LEAFN_MAGIC:
2252 case XFS_DIR3_LEAFN_MAGIC:
2253 fa = xfs_dir3_leaf_header_check(blk->bp, args->owner);
2254 if (fa) {
2255 __xfs_buf_mark_corrupt(blk->bp, fa);
2256 xfs_da_mark_sick(args);
2257 return -EFSCORRUPTED;
2258 }
2259 blk->magic = XFS_DIR2_LEAFN_MAGIC;
2260 ASSERT(level == path->active-1);
2261 blk->index = 0;
2262 blk->hashval = xfs_dir2_leaf_lasthash(args->dp,
2263 blk->bp, NULL);
2264 break;
2265 default:
2266 ASSERT(0);
2267 break;
2268 }
2269 }
2270 *result = 0;
2271 return 0;
2272 }
2273
2274
2275 /*========================================================================
2276 * Utility routines.
2277 *========================================================================*/
2278
2279 /*
2280 * Implement a simple hash on a character string.
2281 * Rotate the hash value by 7 bits, then XOR each character in.
2282 * This is implemented with some source-level loop unrolling.
2283 */
2284 xfs_dahash_t
xfs_da_hashname(const uint8_t * name,int namelen)2285 xfs_da_hashname(const uint8_t *name, int namelen)
2286 {
2287 xfs_dahash_t hash;
2288
2289 /*
2290 * Do four characters at a time as long as we can.
2291 */
2292 for (hash = 0; namelen >= 4; namelen -= 4, name += 4)
2293 hash = (name[0] << 21) ^ (name[1] << 14) ^ (name[2] << 7) ^
2294 (name[3] << 0) ^ rol32(hash, 7 * 4);
2295
2296 /*
2297 * Now do the rest of the characters.
2298 */
2299 switch (namelen) {
2300 case 3:
2301 return (name[0] << 14) ^ (name[1] << 7) ^ (name[2] << 0) ^
2302 rol32(hash, 7 * 3);
2303 case 2:
2304 return (name[0] << 7) ^ (name[1] << 0) ^ rol32(hash, 7 * 2);
2305 case 1:
2306 return (name[0] << 0) ^ rol32(hash, 7 * 1);
2307 default: /* case 0: */
2308 return hash;
2309 }
2310 }
2311
2312 enum xfs_dacmp
xfs_da_compname(struct xfs_da_args * args,const unsigned char * name,int len)2313 xfs_da_compname(
2314 struct xfs_da_args *args,
2315 const unsigned char *name,
2316 int len)
2317 {
2318 return (args->namelen == len && memcmp(args->name, name, len) == 0) ?
2319 XFS_CMP_EXACT : XFS_CMP_DIFFERENT;
2320 }
2321
2322 int
xfs_da_grow_inode_int(struct xfs_da_args * args,xfs_fileoff_t * bno,int count)2323 xfs_da_grow_inode_int(
2324 struct xfs_da_args *args,
2325 xfs_fileoff_t *bno,
2326 int count)
2327 {
2328 struct xfs_trans *tp = args->trans;
2329 struct xfs_inode *dp = args->dp;
2330 int w = args->whichfork;
2331 xfs_rfsblock_t nblks = dp->i_nblocks;
2332 struct xfs_bmbt_irec map, *mapp = ↦
2333 int nmap, error, got, i, mapi = 1;
2334
2335 /*
2336 * Find a spot in the file space to put the new block.
2337 */
2338 error = xfs_bmap_first_unused(tp, dp, count, bno, w);
2339 if (error)
2340 return error;
2341
2342 /*
2343 * Try mapping it in one filesystem block.
2344 */
2345 nmap = 1;
2346 error = xfs_bmapi_write(tp, dp, *bno, count,
2347 xfs_bmapi_aflag(w)|XFS_BMAPI_METADATA|XFS_BMAPI_CONTIG,
2348 args->total, &map, &nmap);
2349 if (error == -ENOSPC && count > 1) {
2350 xfs_fileoff_t b;
2351 int c;
2352
2353 /*
2354 * If we didn't get it and the block might work if fragmented,
2355 * try without the CONTIG flag. Loop until we get it all.
2356 */
2357 mapp = kmalloc(sizeof(*mapp) * count,
2358 GFP_KERNEL | __GFP_NOFAIL);
2359 for (b = *bno, mapi = 0; b < *bno + count; ) {
2360 c = (int)(*bno + count - b);
2361 nmap = min(XFS_BMAP_MAX_NMAP, c);
2362 error = xfs_bmapi_write(tp, dp, b, c,
2363 xfs_bmapi_aflag(w)|XFS_BMAPI_METADATA,
2364 args->total, &mapp[mapi], &nmap);
2365 if (error)
2366 goto out_free_map;
2367 mapi += nmap;
2368 b = mapp[mapi - 1].br_startoff +
2369 mapp[mapi - 1].br_blockcount;
2370 }
2371 }
2372 if (error)
2373 goto out_free_map;
2374
2375 /*
2376 * Count the blocks we got, make sure it matches the total.
2377 */
2378 for (i = 0, got = 0; i < mapi; i++)
2379 got += mapp[i].br_blockcount;
2380 if (got != count || mapp[0].br_startoff != *bno ||
2381 mapp[mapi - 1].br_startoff + mapp[mapi - 1].br_blockcount !=
2382 *bno + count) {
2383 error = -ENOSPC;
2384 goto out_free_map;
2385 }
2386
2387 /* account for newly allocated blocks in reserved blocks total */
2388 args->total -= dp->i_nblocks - nblks;
2389
2390 out_free_map:
2391 if (mapp != &map)
2392 kfree(mapp);
2393 return error;
2394 }
2395
2396 /*
2397 * Add a block to the btree ahead of the file.
2398 * Return the new block number to the caller.
2399 */
2400 int
xfs_da_grow_inode(struct xfs_da_args * args,xfs_dablk_t * new_blkno)2401 xfs_da_grow_inode(
2402 struct xfs_da_args *args,
2403 xfs_dablk_t *new_blkno)
2404 {
2405 xfs_fileoff_t bno;
2406 int error;
2407
2408 trace_xfs_da_grow_inode(args);
2409
2410 bno = args->geo->leafblk;
2411 error = xfs_da_grow_inode_int(args, &bno, args->geo->fsbcount);
2412 if (!error)
2413 *new_blkno = (xfs_dablk_t)bno;
2414 return error;
2415 }
2416
2417 /*
2418 * Ick. We need to always be able to remove a btree block, even
2419 * if there's no space reservation because the filesystem is full.
2420 * This is called if xfs_bunmapi on a btree block fails due to ENOSPC.
2421 * It swaps the target block with the last block in the file. The
2422 * last block in the file can always be removed since it can't cause
2423 * a bmap btree split to do that.
2424 */
2425 STATIC int
xfs_da3_swap_lastblock(struct xfs_da_args * args,xfs_dablk_t * dead_blknop,struct xfs_buf ** dead_bufp)2426 xfs_da3_swap_lastblock(
2427 struct xfs_da_args *args,
2428 xfs_dablk_t *dead_blknop,
2429 struct xfs_buf **dead_bufp)
2430 {
2431 struct xfs_da_blkinfo *dead_info;
2432 struct xfs_da_blkinfo *sib_info;
2433 struct xfs_da_intnode *par_node;
2434 struct xfs_da_intnode *dead_node;
2435 struct xfs_dir2_leaf *dead_leaf2;
2436 struct xfs_da_node_entry *btree;
2437 struct xfs_da3_icnode_hdr par_hdr;
2438 struct xfs_inode *dp;
2439 struct xfs_trans *tp;
2440 struct xfs_mount *mp;
2441 struct xfs_buf *dead_buf;
2442 struct xfs_buf *last_buf;
2443 struct xfs_buf *sib_buf;
2444 struct xfs_buf *par_buf;
2445 xfs_failaddr_t fa;
2446 xfs_dahash_t dead_hash;
2447 xfs_fileoff_t lastoff;
2448 xfs_dablk_t dead_blkno;
2449 xfs_dablk_t last_blkno;
2450 xfs_dablk_t sib_blkno;
2451 xfs_dablk_t par_blkno;
2452 int error;
2453 int w;
2454 int entno;
2455 int level;
2456 int dead_level;
2457
2458 trace_xfs_da_swap_lastblock(args);
2459
2460 dead_buf = *dead_bufp;
2461 dead_blkno = *dead_blknop;
2462 tp = args->trans;
2463 dp = args->dp;
2464 w = args->whichfork;
2465 ASSERT(w == XFS_DATA_FORK);
2466 mp = dp->i_mount;
2467 lastoff = args->geo->freeblk;
2468 error = xfs_bmap_last_before(tp, dp, &lastoff, w);
2469 if (error)
2470 return error;
2471 if (XFS_IS_CORRUPT(mp, lastoff == 0)) {
2472 xfs_da_mark_sick(args);
2473 return -EFSCORRUPTED;
2474 }
2475 /*
2476 * Read the last block in the btree space.
2477 */
2478 last_blkno = (xfs_dablk_t)lastoff - args->geo->fsbcount;
2479 error = xfs_da3_node_read(tp, dp, last_blkno, &last_buf, w);
2480 if (error)
2481 return error;
2482 fa = xfs_da3_header_check(last_buf, args->owner);
2483 if (fa) {
2484 __xfs_buf_mark_corrupt(last_buf, fa);
2485 xfs_trans_brelse(tp, last_buf);
2486 xfs_da_mark_sick(args);
2487 return -EFSCORRUPTED;
2488 }
2489
2490 /*
2491 * Copy the last block into the dead buffer and log it.
2492 */
2493 xfs_da_buf_copy(dead_buf, last_buf, args->geo->blksize);
2494 xfs_trans_log_buf(tp, dead_buf, 0, args->geo->blksize - 1);
2495 dead_info = dead_buf->b_addr;
2496
2497 /*
2498 * Get values from the moved block.
2499 */
2500 if (dead_info->magic == cpu_to_be16(XFS_DIR2_LEAFN_MAGIC) ||
2501 dead_info->magic == cpu_to_be16(XFS_DIR3_LEAFN_MAGIC)) {
2502 struct xfs_dir3_icleaf_hdr leafhdr;
2503 struct xfs_dir2_leaf_entry *ents;
2504
2505 dead_leaf2 = (xfs_dir2_leaf_t *)dead_info;
2506 xfs_dir2_leaf_hdr_from_disk(dp->i_mount, &leafhdr,
2507 dead_leaf2);
2508 ents = leafhdr.ents;
2509 dead_level = 0;
2510 dead_hash = be32_to_cpu(ents[leafhdr.count - 1].hashval);
2511 } else {
2512 struct xfs_da3_icnode_hdr deadhdr;
2513
2514 dead_node = (xfs_da_intnode_t *)dead_info;
2515 xfs_da3_node_hdr_from_disk(dp->i_mount, &deadhdr, dead_node);
2516 btree = deadhdr.btree;
2517 dead_level = deadhdr.level;
2518 dead_hash = be32_to_cpu(btree[deadhdr.count - 1].hashval);
2519 }
2520 sib_buf = par_buf = NULL;
2521 /*
2522 * If the moved block has a left sibling, fix up the pointers.
2523 */
2524 if ((sib_blkno = be32_to_cpu(dead_info->back))) {
2525 error = xfs_da3_node_read(tp, dp, sib_blkno, &sib_buf, w);
2526 if (error)
2527 goto done;
2528 fa = xfs_da3_header_check(sib_buf, args->owner);
2529 if (fa) {
2530 __xfs_buf_mark_corrupt(sib_buf, fa);
2531 xfs_da_mark_sick(args);
2532 error = -EFSCORRUPTED;
2533 goto done;
2534 }
2535 sib_info = sib_buf->b_addr;
2536 if (XFS_IS_CORRUPT(mp,
2537 be32_to_cpu(sib_info->forw) != last_blkno ||
2538 sib_info->magic != dead_info->magic)) {
2539 xfs_da_mark_sick(args);
2540 error = -EFSCORRUPTED;
2541 goto done;
2542 }
2543 sib_info->forw = cpu_to_be32(dead_blkno);
2544 xfs_trans_log_buf(tp, sib_buf,
2545 XFS_DA_LOGRANGE(sib_info, &sib_info->forw,
2546 sizeof(sib_info->forw)));
2547 sib_buf = NULL;
2548 }
2549 /*
2550 * If the moved block has a right sibling, fix up the pointers.
2551 */
2552 if ((sib_blkno = be32_to_cpu(dead_info->forw))) {
2553 error = xfs_da3_node_read(tp, dp, sib_blkno, &sib_buf, w);
2554 if (error)
2555 goto done;
2556 fa = xfs_da3_header_check(sib_buf, args->owner);
2557 if (fa) {
2558 __xfs_buf_mark_corrupt(sib_buf, fa);
2559 xfs_da_mark_sick(args);
2560 error = -EFSCORRUPTED;
2561 goto done;
2562 }
2563 sib_info = sib_buf->b_addr;
2564 if (XFS_IS_CORRUPT(mp,
2565 be32_to_cpu(sib_info->back) != last_blkno ||
2566 sib_info->magic != dead_info->magic)) {
2567 xfs_da_mark_sick(args);
2568 error = -EFSCORRUPTED;
2569 goto done;
2570 }
2571 sib_info->back = cpu_to_be32(dead_blkno);
2572 xfs_trans_log_buf(tp, sib_buf,
2573 XFS_DA_LOGRANGE(sib_info, &sib_info->back,
2574 sizeof(sib_info->back)));
2575 sib_buf = NULL;
2576 }
2577 par_blkno = args->geo->leafblk;
2578 level = -1;
2579 /*
2580 * Walk down the tree looking for the parent of the moved block.
2581 */
2582 for (;;) {
2583 error = xfs_da3_node_read(tp, dp, par_blkno, &par_buf, w);
2584 if (error)
2585 goto done;
2586 fa = xfs_da3_node_header_check(par_buf, args->owner);
2587 if (fa) {
2588 __xfs_buf_mark_corrupt(par_buf, fa);
2589 xfs_da_mark_sick(args);
2590 error = -EFSCORRUPTED;
2591 goto done;
2592 }
2593 par_node = par_buf->b_addr;
2594 xfs_da3_node_hdr_from_disk(dp->i_mount, &par_hdr, par_node);
2595 if (XFS_IS_CORRUPT(mp,
2596 level >= 0 && level != par_hdr.level + 1)) {
2597 xfs_da_mark_sick(args);
2598 error = -EFSCORRUPTED;
2599 goto done;
2600 }
2601 level = par_hdr.level;
2602 btree = par_hdr.btree;
2603 for (entno = 0;
2604 entno < par_hdr.count &&
2605 be32_to_cpu(btree[entno].hashval) < dead_hash;
2606 entno++)
2607 continue;
2608 if (XFS_IS_CORRUPT(mp, entno == par_hdr.count)) {
2609 xfs_da_mark_sick(args);
2610 error = -EFSCORRUPTED;
2611 goto done;
2612 }
2613 par_blkno = be32_to_cpu(btree[entno].before);
2614 if (level == dead_level + 1)
2615 break;
2616 xfs_trans_brelse(tp, par_buf);
2617 par_buf = NULL;
2618 }
2619 /*
2620 * We're in the right parent block.
2621 * Look for the right entry.
2622 */
2623 for (;;) {
2624 for (;
2625 entno < par_hdr.count &&
2626 be32_to_cpu(btree[entno].before) != last_blkno;
2627 entno++)
2628 continue;
2629 if (entno < par_hdr.count)
2630 break;
2631 par_blkno = par_hdr.forw;
2632 xfs_trans_brelse(tp, par_buf);
2633 par_buf = NULL;
2634 if (XFS_IS_CORRUPT(mp, par_blkno == 0)) {
2635 xfs_da_mark_sick(args);
2636 error = -EFSCORRUPTED;
2637 goto done;
2638 }
2639 error = xfs_da3_node_read(tp, dp, par_blkno, &par_buf, w);
2640 if (error)
2641 goto done;
2642 fa = xfs_da3_node_header_check(par_buf, args->owner);
2643 if (fa) {
2644 __xfs_buf_mark_corrupt(par_buf, fa);
2645 xfs_da_mark_sick(args);
2646 error = -EFSCORRUPTED;
2647 goto done;
2648 }
2649 par_node = par_buf->b_addr;
2650 xfs_da3_node_hdr_from_disk(dp->i_mount, &par_hdr, par_node);
2651 if (XFS_IS_CORRUPT(mp, par_hdr.level != level)) {
2652 xfs_da_mark_sick(args);
2653 error = -EFSCORRUPTED;
2654 goto done;
2655 }
2656 btree = par_hdr.btree;
2657 entno = 0;
2658 }
2659 /*
2660 * Update the parent entry pointing to the moved block.
2661 */
2662 btree[entno].before = cpu_to_be32(dead_blkno);
2663 xfs_trans_log_buf(tp, par_buf,
2664 XFS_DA_LOGRANGE(par_node, &btree[entno].before,
2665 sizeof(btree[entno].before)));
2666 *dead_blknop = last_blkno;
2667 *dead_bufp = last_buf;
2668 return 0;
2669 done:
2670 if (par_buf)
2671 xfs_trans_brelse(tp, par_buf);
2672 if (sib_buf)
2673 xfs_trans_brelse(tp, sib_buf);
2674 xfs_trans_brelse(tp, last_buf);
2675 return error;
2676 }
2677
2678 /*
2679 * Remove a btree block from a directory or attribute.
2680 */
2681 int
xfs_da_shrink_inode(struct xfs_da_args * args,xfs_dablk_t dead_blkno,struct xfs_buf * dead_buf)2682 xfs_da_shrink_inode(
2683 struct xfs_da_args *args,
2684 xfs_dablk_t dead_blkno,
2685 struct xfs_buf *dead_buf)
2686 {
2687 struct xfs_inode *dp;
2688 int done, error, w, count;
2689 struct xfs_trans *tp;
2690
2691 trace_xfs_da_shrink_inode(args);
2692
2693 dp = args->dp;
2694 w = args->whichfork;
2695 tp = args->trans;
2696 count = args->geo->fsbcount;
2697 for (;;) {
2698 /*
2699 * Remove extents. If we get ENOSPC for a dir we have to move
2700 * the last block to the place we want to kill.
2701 */
2702 error = xfs_bunmapi(tp, dp, dead_blkno, count,
2703 xfs_bmapi_aflag(w), 0, &done);
2704 if (error == -ENOSPC) {
2705 if (w != XFS_DATA_FORK)
2706 break;
2707 error = xfs_da3_swap_lastblock(args, &dead_blkno,
2708 &dead_buf);
2709 if (error)
2710 break;
2711 } else {
2712 break;
2713 }
2714 }
2715 xfs_trans_binval(tp, dead_buf);
2716 return error;
2717 }
2718
2719 static int
xfs_dabuf_map(struct xfs_inode * dp,xfs_dablk_t bno,unsigned int flags,int whichfork,struct xfs_buf_map ** mapp,int * nmaps)2720 xfs_dabuf_map(
2721 struct xfs_inode *dp,
2722 xfs_dablk_t bno,
2723 unsigned int flags,
2724 int whichfork,
2725 struct xfs_buf_map **mapp,
2726 int *nmaps)
2727 {
2728 struct xfs_mount *mp = dp->i_mount;
2729 int nfsb = xfs_dabuf_nfsb(mp, whichfork);
2730 struct xfs_bmbt_irec irec, *irecs = &irec;
2731 struct xfs_buf_map *map = *mapp;
2732 xfs_fileoff_t off = bno;
2733 int error = 0, nirecs, i;
2734
2735 if (nfsb > 1)
2736 irecs = kzalloc(sizeof(irec) * nfsb,
2737 GFP_KERNEL | __GFP_NOLOCKDEP | __GFP_NOFAIL);
2738
2739 nirecs = nfsb;
2740 error = xfs_bmapi_read(dp, bno, nfsb, irecs, &nirecs,
2741 xfs_bmapi_aflag(whichfork));
2742 if (error)
2743 goto out_free_irecs;
2744
2745 /*
2746 * Use the caller provided map for the single map case, else allocate a
2747 * larger one that needs to be free by the caller.
2748 */
2749 if (nirecs > 1) {
2750 map = kcalloc(nirecs, sizeof(struct xfs_buf_map),
2751 GFP_KERNEL | __GFP_NOLOCKDEP | __GFP_NOFAIL);
2752 *mapp = map;
2753 }
2754
2755 for (i = 0; i < nirecs; i++) {
2756 if (irecs[i].br_startblock == HOLESTARTBLOCK ||
2757 irecs[i].br_startblock == DELAYSTARTBLOCK)
2758 goto invalid_mapping;
2759 if (off != irecs[i].br_startoff)
2760 goto invalid_mapping;
2761
2762 map[i].bm_bn = XFS_FSB_TO_DADDR(mp, irecs[i].br_startblock);
2763 map[i].bm_len = XFS_FSB_TO_BB(mp, irecs[i].br_blockcount);
2764 off += irecs[i].br_blockcount;
2765 }
2766
2767 if (off != bno + nfsb)
2768 goto invalid_mapping;
2769
2770 *nmaps = nirecs;
2771 out_free_irecs:
2772 if (irecs != &irec)
2773 kfree(irecs);
2774 return error;
2775
2776 invalid_mapping:
2777 /* Caller ok with no mapping. */
2778 if (XFS_IS_CORRUPT(mp, !(flags & XFS_DABUF_MAP_HOLE_OK))) {
2779 xfs_dirattr_mark_sick(dp, whichfork);
2780 error = -EFSCORRUPTED;
2781 if (xfs_error_level >= XFS_ERRLEVEL_LOW) {
2782 xfs_alert(mp, "%s: bno %u inode %llu",
2783 __func__, bno, dp->i_ino);
2784
2785 for (i = 0; i < nirecs; i++) {
2786 xfs_alert(mp,
2787 "[%02d] br_startoff %lld br_startblock %lld br_blockcount %lld br_state %d",
2788 i, irecs[i].br_startoff,
2789 irecs[i].br_startblock,
2790 irecs[i].br_blockcount,
2791 irecs[i].br_state);
2792 }
2793 }
2794 } else {
2795 *nmaps = 0;
2796 }
2797 goto out_free_irecs;
2798 }
2799
2800 /*
2801 * Get a buffer for the dir/attr block.
2802 */
2803 int
xfs_da_get_buf(struct xfs_trans * tp,struct xfs_inode * dp,xfs_dablk_t bno,struct xfs_buf ** bpp,int whichfork)2804 xfs_da_get_buf(
2805 struct xfs_trans *tp,
2806 struct xfs_inode *dp,
2807 xfs_dablk_t bno,
2808 struct xfs_buf **bpp,
2809 int whichfork)
2810 {
2811 struct xfs_mount *mp = dp->i_mount;
2812 struct xfs_buf *bp;
2813 struct xfs_buf_map map, *mapp = ↦
2814 int nmap = 1;
2815 int error;
2816
2817 *bpp = NULL;
2818 error = xfs_dabuf_map(dp, bno, 0, whichfork, &mapp, &nmap);
2819 if (error || nmap == 0)
2820 goto out_free;
2821
2822 error = xfs_trans_get_buf_map(tp, mp->m_ddev_targp, mapp, nmap, 0, &bp);
2823 if (error)
2824 goto out_free;
2825
2826 *bpp = bp;
2827
2828 out_free:
2829 if (mapp != &map)
2830 kfree(mapp);
2831
2832 return error;
2833 }
2834
2835 /*
2836 * Get a buffer for the dir/attr block, fill in the contents.
2837 */
2838 int
xfs_da_read_buf(struct xfs_trans * tp,struct xfs_inode * dp,xfs_dablk_t bno,unsigned int flags,struct xfs_buf ** bpp,int whichfork,const struct xfs_buf_ops * ops)2839 xfs_da_read_buf(
2840 struct xfs_trans *tp,
2841 struct xfs_inode *dp,
2842 xfs_dablk_t bno,
2843 unsigned int flags,
2844 struct xfs_buf **bpp,
2845 int whichfork,
2846 const struct xfs_buf_ops *ops)
2847 {
2848 struct xfs_mount *mp = dp->i_mount;
2849 struct xfs_buf *bp;
2850 struct xfs_buf_map map, *mapp = ↦
2851 int nmap = 1;
2852 int error;
2853
2854 *bpp = NULL;
2855 error = xfs_dabuf_map(dp, bno, flags, whichfork, &mapp, &nmap);
2856 if (error || !nmap)
2857 goto out_free;
2858
2859 error = xfs_trans_read_buf_map(mp, tp, mp->m_ddev_targp, mapp, nmap, 0,
2860 &bp, ops);
2861 if (xfs_metadata_is_sick(error))
2862 xfs_dirattr_mark_sick(dp, whichfork);
2863 /*
2864 * ENODATA from disk implies a disk medium failure; ENODATA for
2865 * xattrs means attribute not found, so disambiguate that here.
2866 */
2867 if (error == -ENODATA && whichfork == XFS_ATTR_FORK)
2868 error = -EIO;
2869 if (error)
2870 goto out_free;
2871
2872 if (whichfork == XFS_ATTR_FORK)
2873 xfs_buf_set_ref(bp, XFS_ATTR_BTREE_REF);
2874 else
2875 xfs_buf_set_ref(bp, XFS_DIR_BTREE_REF);
2876 *bpp = bp;
2877 out_free:
2878 if (mapp != &map)
2879 kfree(mapp);
2880
2881 return error;
2882 }
2883
2884 /*
2885 * Readahead the dir/attr block.
2886 */
2887 int
xfs_da_reada_buf(struct xfs_inode * dp,xfs_dablk_t bno,unsigned int flags,int whichfork,const struct xfs_buf_ops * ops)2888 xfs_da_reada_buf(
2889 struct xfs_inode *dp,
2890 xfs_dablk_t bno,
2891 unsigned int flags,
2892 int whichfork,
2893 const struct xfs_buf_ops *ops)
2894 {
2895 struct xfs_buf_map map;
2896 struct xfs_buf_map *mapp;
2897 int nmap;
2898 int error;
2899
2900 mapp = ↦
2901 nmap = 1;
2902 error = xfs_dabuf_map(dp, bno, flags, whichfork, &mapp, &nmap);
2903 if (error || !nmap)
2904 goto out_free;
2905
2906 xfs_buf_readahead_map(dp->i_mount->m_ddev_targp, mapp, nmap, ops);
2907
2908 out_free:
2909 if (mapp != &map)
2910 kfree(mapp);
2911
2912 return error;
2913 }
2914