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_sb.h"
14 #include "xfs_mount.h"
15 #include "xfs_da_format.h"
16 #include "xfs_da_btree.h"
17 #include "xfs_inode.h"
18 #include "xfs_trans.h"
19 #include "xfs_bmap_btree.h"
20 #include "xfs_bmap.h"
21 #include "xfs_attr_sf.h"
22 #include "xfs_attr.h"
23 #include "xfs_attr_remote.h"
24 #include "xfs_attr_leaf.h"
25 #include "xfs_error.h"
26 #include "xfs_trace.h"
27 #include "xfs_buf_item.h"
28 #include "xfs_dir2.h"
29 #include "xfs_log.h"
30 #include "xfs_ag.h"
31 #include "xfs_errortag.h"
32 #include "xfs_health.h"
33
34
35 /*
36 * xfs_attr_leaf.c
37 *
38 * Routines to implement leaf blocks of attributes as Btrees of hashed names.
39 */
40
41 /*========================================================================
42 * Function prototypes for the kernel.
43 *========================================================================*/
44
45 /*
46 * Routines used for growing the Btree.
47 */
48 STATIC int xfs_attr3_leaf_create(struct xfs_da_args *args,
49 xfs_dablk_t which_block, struct xfs_buf **bpp);
50 STATIC void xfs_attr3_leaf_add_work(struct xfs_buf *leaf_buffer,
51 struct xfs_attr3_icleaf_hdr *ichdr,
52 struct xfs_da_args *args, int freemap_index);
53 STATIC void xfs_attr3_leaf_compact(struct xfs_da_args *args,
54 struct xfs_attr3_icleaf_hdr *ichdr,
55 struct xfs_buf *leaf_buffer);
56 STATIC void xfs_attr3_leaf_rebalance(xfs_da_state_t *state,
57 xfs_da_state_blk_t *blk1,
58 xfs_da_state_blk_t *blk2);
59 STATIC int xfs_attr3_leaf_figure_balance(xfs_da_state_t *state,
60 xfs_da_state_blk_t *leaf_blk_1,
61 struct xfs_attr3_icleaf_hdr *ichdr1,
62 xfs_da_state_blk_t *leaf_blk_2,
63 struct xfs_attr3_icleaf_hdr *ichdr2,
64 int *number_entries_in_blk1,
65 int *number_usedbytes_in_blk1);
66
67 /*
68 * Utility routines.
69 */
70 STATIC void xfs_attr3_leaf_moveents(struct xfs_da_args *args,
71 struct xfs_attr_leafblock *src_leaf,
72 struct xfs_attr3_icleaf_hdr *src_ichdr, int src_start,
73 struct xfs_attr_leafblock *dst_leaf,
74 struct xfs_attr3_icleaf_hdr *dst_ichdr, int dst_start,
75 int move_count);
76 STATIC int xfs_attr_leaf_entsize(xfs_attr_leafblock_t *leaf, int index);
77
78 /* Compute the byte offset of the end of the leaf entry array. */
79 static inline int
xfs_attr_leaf_entries_end(unsigned int hdrcount,const struct xfs_attr_leafblock * leaf)80 xfs_attr_leaf_entries_end(
81 unsigned int hdrcount,
82 const struct xfs_attr_leafblock *leaf)
83 {
84 return hdrcount * sizeof(struct xfs_attr_leaf_entry) +
85 xfs_attr3_leaf_hdr_size(leaf);
86 }
87
88 static inline bool
ichdr_freemaps_overlap(const struct xfs_attr3_icleaf_hdr * ichdr,unsigned int x,unsigned int y)89 ichdr_freemaps_overlap(
90 const struct xfs_attr3_icleaf_hdr *ichdr,
91 unsigned int x,
92 unsigned int y)
93 {
94 const unsigned int xend =
95 ichdr->freemap[x].base + ichdr->freemap[x].size;
96 const unsigned int yend =
97 ichdr->freemap[y].base + ichdr->freemap[y].size;
98
99 /* empty slots do not overlap */
100 if (!ichdr->freemap[x].size || !ichdr->freemap[y].size)
101 return false;
102
103 return ichdr->freemap[x].base < yend && xend > ichdr->freemap[y].base;
104 }
105
106 static inline xfs_failaddr_t
xfs_attr_leaf_ichdr_freemaps_verify(const struct xfs_attr3_icleaf_hdr * ichdr,const struct xfs_attr_leafblock * leaf)107 xfs_attr_leaf_ichdr_freemaps_verify(
108 const struct xfs_attr3_icleaf_hdr *ichdr,
109 const struct xfs_attr_leafblock *leaf)
110 {
111 unsigned int entries_end =
112 xfs_attr_leaf_entries_end(ichdr->count, leaf);
113 int i;
114
115 if (ichdr_freemaps_overlap(ichdr, 0, 1))
116 return __this_address;
117 if (ichdr_freemaps_overlap(ichdr, 0, 2))
118 return __this_address;
119 if (ichdr_freemaps_overlap(ichdr, 1, 2))
120 return __this_address;
121
122 for (i = 0; i < XFS_ATTR_LEAF_MAPSIZE; i++) {
123 if (ichdr->freemap[i].size > 0 &&
124 ichdr->freemap[i].base < entries_end)
125 return __this_address;
126 }
127
128 return NULL;
129 }
130
131 /*
132 * attr3 block 'firstused' conversion helpers.
133 *
134 * firstused refers to the offset of the first used byte of the nameval region
135 * of an attr leaf block. The region starts at the tail of the block and expands
136 * backwards towards the middle. As such, firstused is initialized to the block
137 * size for an empty leaf block and is reduced from there.
138 *
139 * The attr3 block size is pegged to the fsb size and the maximum fsb is 64k.
140 * The in-core firstused field is 32-bit and thus supports the maximum fsb size.
141 * The on-disk field is only 16-bit, however, and overflows at 64k. Since this
142 * only occurs at exactly 64k, we use zero as a magic on-disk value to represent
143 * the attr block size. The following helpers manage the conversion between the
144 * in-core and on-disk formats.
145 */
146
147 static void
xfs_attr3_leaf_firstused_from_disk(struct xfs_da_geometry * geo,struct xfs_attr3_icleaf_hdr * to,struct xfs_attr_leafblock * from)148 xfs_attr3_leaf_firstused_from_disk(
149 struct xfs_da_geometry *geo,
150 struct xfs_attr3_icleaf_hdr *to,
151 struct xfs_attr_leafblock *from)
152 {
153 struct xfs_attr3_leaf_hdr *hdr3;
154
155 if (from->hdr.info.magic == cpu_to_be16(XFS_ATTR3_LEAF_MAGIC)) {
156 hdr3 = (struct xfs_attr3_leaf_hdr *) from;
157 to->firstused = be16_to_cpu(hdr3->firstused);
158 } else {
159 to->firstused = be16_to_cpu(from->hdr.firstused);
160 }
161
162 /*
163 * Convert from the magic fsb size value to actual blocksize. This
164 * should only occur for empty blocks when the block size overflows
165 * 16-bits.
166 */
167 if (to->firstused == XFS_ATTR3_LEAF_NULLOFF) {
168 ASSERT(!to->count && !to->usedbytes);
169 ASSERT(geo->blksize > USHRT_MAX);
170 to->firstused = geo->blksize;
171 }
172 }
173
174 static void
xfs_attr3_leaf_firstused_to_disk(struct xfs_da_geometry * geo,struct xfs_attr_leafblock * to,struct xfs_attr3_icleaf_hdr * from)175 xfs_attr3_leaf_firstused_to_disk(
176 struct xfs_da_geometry *geo,
177 struct xfs_attr_leafblock *to,
178 struct xfs_attr3_icleaf_hdr *from)
179 {
180 struct xfs_attr3_leaf_hdr *hdr3;
181 uint32_t firstused;
182
183 /* magic value should only be seen on disk */
184 ASSERT(from->firstused != XFS_ATTR3_LEAF_NULLOFF);
185
186 /*
187 * Scale down the 32-bit in-core firstused value to the 16-bit on-disk
188 * value. This only overflows at the max supported value of 64k. Use the
189 * magic on-disk value to represent block size in this case.
190 */
191 firstused = from->firstused;
192 if (firstused > USHRT_MAX) {
193 ASSERT(from->firstused == geo->blksize);
194 firstused = XFS_ATTR3_LEAF_NULLOFF;
195 }
196
197 if (from->magic == XFS_ATTR3_LEAF_MAGIC) {
198 hdr3 = (struct xfs_attr3_leaf_hdr *) to;
199 hdr3->firstused = cpu_to_be16(firstused);
200 } else {
201 to->hdr.firstused = cpu_to_be16(firstused);
202 }
203 }
204
205 void
xfs_attr3_leaf_hdr_from_disk(struct xfs_da_geometry * geo,struct xfs_attr3_icleaf_hdr * to,struct xfs_attr_leafblock * from)206 xfs_attr3_leaf_hdr_from_disk(
207 struct xfs_da_geometry *geo,
208 struct xfs_attr3_icleaf_hdr *to,
209 struct xfs_attr_leafblock *from)
210 {
211 int i;
212
213 ASSERT(from->hdr.info.magic == cpu_to_be16(XFS_ATTR_LEAF_MAGIC) ||
214 from->hdr.info.magic == cpu_to_be16(XFS_ATTR3_LEAF_MAGIC));
215
216 if (from->hdr.info.magic == cpu_to_be16(XFS_ATTR3_LEAF_MAGIC)) {
217 struct xfs_attr3_leaf_hdr *hdr3 = (struct xfs_attr3_leaf_hdr *)from;
218
219 to->forw = be32_to_cpu(hdr3->info.hdr.forw);
220 to->back = be32_to_cpu(hdr3->info.hdr.back);
221 to->magic = be16_to_cpu(hdr3->info.hdr.magic);
222 to->count = be16_to_cpu(hdr3->count);
223 to->usedbytes = be16_to_cpu(hdr3->usedbytes);
224 xfs_attr3_leaf_firstused_from_disk(geo, to, from);
225 to->holes = hdr3->holes;
226
227 for (i = 0; i < XFS_ATTR_LEAF_MAPSIZE; i++) {
228 to->freemap[i].base = be16_to_cpu(hdr3->freemap[i].base);
229 to->freemap[i].size = be16_to_cpu(hdr3->freemap[i].size);
230 }
231 return;
232 }
233 to->forw = be32_to_cpu(from->hdr.info.forw);
234 to->back = be32_to_cpu(from->hdr.info.back);
235 to->magic = be16_to_cpu(from->hdr.info.magic);
236 to->count = be16_to_cpu(from->hdr.count);
237 to->usedbytes = be16_to_cpu(from->hdr.usedbytes);
238 xfs_attr3_leaf_firstused_from_disk(geo, to, from);
239 to->holes = from->hdr.holes;
240
241 for (i = 0; i < XFS_ATTR_LEAF_MAPSIZE; i++) {
242 to->freemap[i].base = be16_to_cpu(from->hdr.freemap[i].base);
243 to->freemap[i].size = be16_to_cpu(from->hdr.freemap[i].size);
244 }
245 }
246
247 void
xfs_attr3_leaf_hdr_to_disk(struct xfs_da_geometry * geo,struct xfs_attr_leafblock * to,struct xfs_attr3_icleaf_hdr * from)248 xfs_attr3_leaf_hdr_to_disk(
249 struct xfs_da_geometry *geo,
250 struct xfs_attr_leafblock *to,
251 struct xfs_attr3_icleaf_hdr *from)
252 {
253 int i;
254
255 ASSERT(from->magic == XFS_ATTR_LEAF_MAGIC ||
256 from->magic == XFS_ATTR3_LEAF_MAGIC);
257
258 if (from->magic == XFS_ATTR3_LEAF_MAGIC) {
259 struct xfs_attr3_leaf_hdr *hdr3 = (struct xfs_attr3_leaf_hdr *)to;
260
261 hdr3->info.hdr.forw = cpu_to_be32(from->forw);
262 hdr3->info.hdr.back = cpu_to_be32(from->back);
263 hdr3->info.hdr.magic = cpu_to_be16(from->magic);
264 hdr3->count = cpu_to_be16(from->count);
265 hdr3->usedbytes = cpu_to_be16(from->usedbytes);
266 xfs_attr3_leaf_firstused_to_disk(geo, to, from);
267 hdr3->holes = from->holes;
268 hdr3->pad1 = 0;
269
270 for (i = 0; i < XFS_ATTR_LEAF_MAPSIZE; i++) {
271 hdr3->freemap[i].base = cpu_to_be16(from->freemap[i].base);
272 hdr3->freemap[i].size = cpu_to_be16(from->freemap[i].size);
273 }
274
275 ASSERT(xfs_attr_leaf_ichdr_freemaps_verify(from, to) == NULL);
276 return;
277 }
278 to->hdr.info.forw = cpu_to_be32(from->forw);
279 to->hdr.info.back = cpu_to_be32(from->back);
280 to->hdr.info.magic = cpu_to_be16(from->magic);
281 to->hdr.count = cpu_to_be16(from->count);
282 to->hdr.usedbytes = cpu_to_be16(from->usedbytes);
283 xfs_attr3_leaf_firstused_to_disk(geo, to, from);
284 to->hdr.holes = from->holes;
285 to->hdr.pad1 = 0;
286
287 for (i = 0; i < XFS_ATTR_LEAF_MAPSIZE; i++) {
288 to->hdr.freemap[i].base = cpu_to_be16(from->freemap[i].base);
289 to->hdr.freemap[i].size = cpu_to_be16(from->freemap[i].size);
290 }
291
292 ASSERT(xfs_attr_leaf_ichdr_freemaps_verify(from, to) == NULL);
293 }
294
295 static xfs_failaddr_t
xfs_attr3_leaf_verify_entry(struct xfs_mount * mp,char * buf_end,struct xfs_attr_leafblock * leaf,struct xfs_attr3_icleaf_hdr * leafhdr,struct xfs_attr_leaf_entry * ent,int idx,__u32 * last_hashval)296 xfs_attr3_leaf_verify_entry(
297 struct xfs_mount *mp,
298 char *buf_end,
299 struct xfs_attr_leafblock *leaf,
300 struct xfs_attr3_icleaf_hdr *leafhdr,
301 struct xfs_attr_leaf_entry *ent,
302 int idx,
303 __u32 *last_hashval)
304 {
305 struct xfs_attr_leaf_name_local *lentry;
306 struct xfs_attr_leaf_name_remote *rentry;
307 char *name_end;
308 unsigned int nameidx;
309 unsigned int namesize;
310 __u32 hashval;
311
312 /* hash order check */
313 hashval = be32_to_cpu(ent->hashval);
314 if (hashval < *last_hashval)
315 return __this_address;
316 *last_hashval = hashval;
317
318 nameidx = be16_to_cpu(ent->nameidx);
319 if (nameidx < leafhdr->firstused || nameidx >= mp->m_attr_geo->blksize)
320 return __this_address;
321
322 /*
323 * Check the name information. The namelen fields are u8 so we can't
324 * possibly exceed the maximum name length of 255 bytes.
325 */
326 if (ent->flags & XFS_ATTR_LOCAL) {
327 lentry = xfs_attr3_leaf_name_local(leaf, idx);
328
329 /* Validate lentry pointer is within bounds before field access */
330 if ((char *)lentry >= buf_end)
331 return __this_address;
332 if ((char *)lentry + offsetof(struct xfs_attr_leaf_name_local, nameval) > buf_end)
333 return __this_address;
334
335 namesize = xfs_attr_leaf_entsize_local(lentry->namelen,
336 be16_to_cpu(lentry->valuelen));
337 name_end = (char *)lentry + namesize;
338 if (lentry->namelen == 0)
339 return __this_address;
340 } else {
341 rentry = xfs_attr3_leaf_name_remote(leaf, idx);
342
343 /* Validate rentry pointer is within bounds before field access */
344 if ((char *)rentry >= buf_end)
345 return __this_address;
346 if ((char *)rentry + offsetof(struct xfs_attr_leaf_name_remote, name) > buf_end)
347 return __this_address;
348
349 namesize = xfs_attr_leaf_entsize_remote(rentry->namelen);
350 name_end = (char *)rentry + namesize;
351 if (rentry->namelen == 0)
352 return __this_address;
353 if (!(ent->flags & XFS_ATTR_INCOMPLETE) &&
354 rentry->valueblk == 0)
355 return __this_address;
356 }
357
358 if (name_end > buf_end)
359 return __this_address;
360
361 return NULL;
362 }
363
364 /*
365 * Validate an attribute leaf block.
366 *
367 * Empty leaf blocks can occur under the following circumstances:
368 *
369 * 1. setxattr adds a new extended attribute to a file;
370 * 2. The file has zero existing attributes;
371 * 3. The attribute is too large to fit in the attribute fork;
372 * 4. The attribute is small enough to fit in a leaf block;
373 * 5. A log flush occurs after committing the transaction that creates
374 * the (empty) leaf block; and
375 * 6. The filesystem goes down after the log flush but before the new
376 * attribute can be committed to the leaf block.
377 *
378 * Hence we need to ensure that we don't fail the validation purely
379 * because the leaf is empty.
380 */
381 static xfs_failaddr_t
xfs_attr3_leaf_verify(struct xfs_buf * bp)382 xfs_attr3_leaf_verify(
383 struct xfs_buf *bp)
384 {
385 struct xfs_attr3_icleaf_hdr ichdr;
386 struct xfs_mount *mp = bp->b_mount;
387 struct xfs_attr_leafblock *leaf = bp->b_addr;
388 struct xfs_attr_leaf_entry *entries;
389 struct xfs_attr_leaf_entry *ent;
390 char *buf_end;
391 uint32_t end; /* must be 32bit - see below */
392 __u32 last_hashval = 0;
393 int i;
394 xfs_failaddr_t fa;
395
396 xfs_attr3_leaf_hdr_from_disk(mp->m_attr_geo, &ichdr, leaf);
397
398 fa = xfs_da3_blkinfo_verify(bp, bp->b_addr);
399 if (fa)
400 return fa;
401
402 /*
403 * firstused is the block offset of the first name info structure.
404 * Make sure it doesn't go off the block or crash into the header.
405 */
406 if (ichdr.firstused > mp->m_attr_geo->blksize)
407 return __this_address;
408 if (ichdr.firstused < xfs_attr3_leaf_hdr_size(leaf))
409 return __this_address;
410
411 /* Make sure the entries array doesn't crash into the name info. */
412 entries = xfs_attr3_leaf_entryp(bp->b_addr);
413 if ((char *)&entries[ichdr.count] >
414 (char *)bp->b_addr + ichdr.firstused)
415 return __this_address;
416
417 /*
418 * NOTE: This verifier historically failed empty leaf buffers because
419 * we expect the fork to be in another format. Empty attr fork format
420 * conversions are possible during xattr set, however, and format
421 * conversion is not atomic with the xattr set that triggers it. We
422 * cannot assume leaf blocks are non-empty until that is addressed.
423 */
424 buf_end = (char *)bp->b_addr + mp->m_attr_geo->blksize;
425 for (i = 0, ent = entries; i < ichdr.count; ent++, i++) {
426 fa = xfs_attr3_leaf_verify_entry(mp, buf_end, leaf, &ichdr,
427 ent, i, &last_hashval);
428 if (fa)
429 return fa;
430 }
431
432 /*
433 * Quickly check the freemap information. Attribute data has to be
434 * aligned to 4-byte boundaries, and likewise for the free space.
435 *
436 * Note that for 64k block size filesystems, the freemap entries cannot
437 * overflow as they are only be16 fields. However, when checking end
438 * pointer of the freemap, we have to be careful to detect overflows and
439 * so use uint32_t for those checks.
440 */
441 for (i = 0; i < XFS_ATTR_LEAF_MAPSIZE; i++) {
442 if (ichdr.freemap[i].base > mp->m_attr_geo->blksize)
443 return __this_address;
444 if (ichdr.freemap[i].base & 0x3)
445 return __this_address;
446 if (ichdr.freemap[i].size > mp->m_attr_geo->blksize)
447 return __this_address;
448 if (ichdr.freemap[i].size & 0x3)
449 return __this_address;
450
451 /* be care of 16 bit overflows here */
452 end = (uint32_t)ichdr.freemap[i].base + ichdr.freemap[i].size;
453 if (end < ichdr.freemap[i].base)
454 return __this_address;
455 if (end > mp->m_attr_geo->blksize)
456 return __this_address;
457 }
458
459 fa = xfs_attr_leaf_ichdr_freemaps_verify(&ichdr, leaf);
460 if (fa)
461 return fa;
462
463 return NULL;
464 }
465
466 xfs_failaddr_t
xfs_attr3_leaf_header_check(struct xfs_buf * bp,xfs_ino_t owner)467 xfs_attr3_leaf_header_check(
468 struct xfs_buf *bp,
469 xfs_ino_t owner)
470 {
471 struct xfs_mount *mp = bp->b_mount;
472
473 if (xfs_has_crc(mp)) {
474 struct xfs_attr3_leafblock *hdr3 = bp->b_addr;
475
476 if (hdr3->hdr.info.hdr.magic !=
477 cpu_to_be16(XFS_ATTR3_LEAF_MAGIC))
478 return __this_address;
479
480 if (be64_to_cpu(hdr3->hdr.info.owner) != owner)
481 return __this_address;
482 }
483
484 return NULL;
485 }
486
487 static void
xfs_attr3_leaf_write_verify(struct xfs_buf * bp)488 xfs_attr3_leaf_write_verify(
489 struct xfs_buf *bp)
490 {
491 struct xfs_mount *mp = bp->b_mount;
492 struct xfs_buf_log_item *bip = bp->b_log_item;
493 struct xfs_attr3_leaf_hdr *hdr3 = bp->b_addr;
494 xfs_failaddr_t fa;
495
496 fa = xfs_attr3_leaf_verify(bp);
497 if (fa) {
498 xfs_verifier_error(bp, -EFSCORRUPTED, fa);
499 return;
500 }
501
502 if (!xfs_has_crc(mp))
503 return;
504
505 if (bip)
506 hdr3->info.lsn = cpu_to_be64(bip->bli_item.li_lsn);
507
508 xfs_buf_update_cksum(bp, XFS_ATTR3_LEAF_CRC_OFF);
509 }
510
511 /*
512 * leaf/node format detection on trees is sketchy, so a node read can be done on
513 * leaf level blocks when detection identifies the tree as a node format tree
514 * incorrectly. In this case, we need to swap the verifier to match the correct
515 * format of the block being read.
516 */
517 static void
xfs_attr3_leaf_read_verify(struct xfs_buf * bp)518 xfs_attr3_leaf_read_verify(
519 struct xfs_buf *bp)
520 {
521 struct xfs_mount *mp = bp->b_mount;
522 xfs_failaddr_t fa;
523
524 if (xfs_has_crc(mp) &&
525 !xfs_buf_verify_cksum(bp, XFS_ATTR3_LEAF_CRC_OFF))
526 xfs_verifier_error(bp, -EFSBADCRC, __this_address);
527 else {
528 fa = xfs_attr3_leaf_verify(bp);
529 if (fa)
530 xfs_verifier_error(bp, -EFSCORRUPTED, fa);
531 }
532 }
533
534 const struct xfs_buf_ops xfs_attr3_leaf_buf_ops = {
535 .name = "xfs_attr3_leaf",
536 .magic16 = { cpu_to_be16(XFS_ATTR_LEAF_MAGIC),
537 cpu_to_be16(XFS_ATTR3_LEAF_MAGIC) },
538 .verify_read = xfs_attr3_leaf_read_verify,
539 .verify_write = xfs_attr3_leaf_write_verify,
540 .verify_struct = xfs_attr3_leaf_verify,
541 };
542
543 int
xfs_attr3_leaf_read(struct xfs_trans * tp,struct xfs_inode * dp,xfs_ino_t owner,xfs_dablk_t bno,struct xfs_buf ** bpp)544 xfs_attr3_leaf_read(
545 struct xfs_trans *tp,
546 struct xfs_inode *dp,
547 xfs_ino_t owner,
548 xfs_dablk_t bno,
549 struct xfs_buf **bpp)
550 {
551 xfs_failaddr_t fa;
552 int err;
553
554 err = xfs_da_read_buf(tp, dp, bno, 0, bpp, XFS_ATTR_FORK,
555 &xfs_attr3_leaf_buf_ops);
556 if (err || !(*bpp))
557 return err;
558
559 fa = xfs_attr3_leaf_header_check(*bpp, owner);
560 if (fa) {
561 __xfs_buf_mark_corrupt(*bpp, fa);
562 xfs_trans_brelse(tp, *bpp);
563 *bpp = NULL;
564 xfs_dirattr_mark_sick(dp, XFS_ATTR_FORK);
565 return -EFSCORRUPTED;
566 }
567
568 if (tp)
569 xfs_trans_buf_set_type(tp, *bpp, XFS_BLFT_ATTR_LEAF_BUF);
570 return 0;
571 }
572
573 /*========================================================================
574 * Namespace helper routines
575 *========================================================================*/
576
577 /*
578 * If we are in log recovery, then we want the lookup to ignore the INCOMPLETE
579 * flag on disk - if there's an incomplete attr then recovery needs to tear it
580 * down. If there's no incomplete attr, then recovery needs to tear that attr
581 * down to replace it with the attr that has been logged. In this case, the
582 * INCOMPLETE flag will not be set in attr->attr_filter, but rather
583 * XFS_DA_OP_RECOVERY will be set in args->op_flags.
584 */
xfs_attr_match_mask(const struct xfs_da_args * args)585 static inline unsigned int xfs_attr_match_mask(const struct xfs_da_args *args)
586 {
587 if (args->op_flags & XFS_DA_OP_RECOVERY)
588 return XFS_ATTR_NSP_ONDISK_MASK;
589 return XFS_ATTR_NSP_ONDISK_MASK | XFS_ATTR_INCOMPLETE;
590 }
591
592 static inline bool
xfs_attr_parent_match(const struct xfs_da_args * args,const void * value,unsigned int valuelen)593 xfs_attr_parent_match(
594 const struct xfs_da_args *args,
595 const void *value,
596 unsigned int valuelen)
597 {
598 ASSERT(args->value != NULL);
599
600 /* Parent pointers do not use remote values */
601 if (!value)
602 return false;
603
604 /*
605 * The only value we support is a parent rec. However, we'll accept
606 * any valuelen so that offline repair can delete ATTR_PARENT values
607 * that are not parent pointers.
608 */
609 if (valuelen != args->valuelen)
610 return false;
611
612 return memcmp(args->value, value, valuelen) == 0;
613 }
614
615 static bool
xfs_attr_match(struct xfs_da_args * args,unsigned int attr_flags,const unsigned char * name,unsigned int namelen,const void * value,unsigned int valuelen)616 xfs_attr_match(
617 struct xfs_da_args *args,
618 unsigned int attr_flags,
619 const unsigned char *name,
620 unsigned int namelen,
621 const void *value,
622 unsigned int valuelen)
623 {
624 unsigned int mask = xfs_attr_match_mask(args);
625
626 if (args->namelen != namelen)
627 return false;
628 if ((args->attr_filter & mask) != (attr_flags & mask))
629 return false;
630 if (memcmp(args->name, name, namelen) != 0)
631 return false;
632
633 if (attr_flags & XFS_ATTR_PARENT)
634 return xfs_attr_parent_match(args, value, valuelen);
635
636 return true;
637 }
638
639 static int
xfs_attr_copy_value(struct xfs_da_args * args,unsigned char * value,int valuelen)640 xfs_attr_copy_value(
641 struct xfs_da_args *args,
642 unsigned char *value,
643 int valuelen)
644 {
645 /*
646 * Parent pointer lookups require the caller to specify the name and
647 * value, so don't copy anything.
648 */
649 if (args->attr_filter & XFS_ATTR_PARENT)
650 return 0;
651
652 /*
653 * No copy if all we have to do is get the length
654 */
655 if (!args->valuelen) {
656 args->valuelen = valuelen;
657 return 0;
658 }
659
660 /*
661 * No copy if the length of the existing buffer is too small
662 */
663 if (args->valuelen < valuelen) {
664 args->valuelen = valuelen;
665 return -ERANGE;
666 }
667
668 if (!args->value) {
669 args->value = kvmalloc(valuelen, GFP_KERNEL | __GFP_NOLOCKDEP);
670 if (!args->value)
671 return -ENOMEM;
672 }
673 args->valuelen = valuelen;
674
675 /* remote block xattr requires IO for copy-in */
676 if (args->rmtblkno)
677 return xfs_attr_rmtval_get(args);
678
679 /*
680 * This is to prevent a GCC warning because the remote xattr case
681 * doesn't have a value to pass in. In that case, we never reach here,
682 * but GCC can't work that out and so throws a "passing NULL to
683 * memcpy" warning.
684 */
685 if (!value)
686 return -EINVAL;
687 memcpy(args->value, value, valuelen);
688 return 0;
689 }
690
691 /*========================================================================
692 * External routines when attribute fork size < XFS_LITINO(mp).
693 *========================================================================*/
694
695 /*
696 * Query whether the total requested number of attr fork bytes of extended
697 * attribute space will be able to fit inline.
698 *
699 * Returns zero if not, else the i_forkoff fork offset to be used in the
700 * literal area for attribute data once the new bytes have been added.
701 *
702 * i_forkoff must be 8 byte aligned, hence is stored as a >>3 value;
703 * special case for dev/uuid inodes, they have fixed size data forks.
704 */
705 int
xfs_attr_shortform_bytesfit(struct xfs_inode * dp,int bytes)706 xfs_attr_shortform_bytesfit(
707 struct xfs_inode *dp,
708 int bytes)
709 {
710 struct xfs_mount *mp = dp->i_mount;
711 int64_t dsize;
712 int minforkoff;
713 int maxforkoff;
714 int offset;
715
716 /*
717 * Check if the new size could fit at all first:
718 */
719 if (bytes > XFS_LITINO(mp))
720 return 0;
721
722 /* rounded down */
723 offset = (XFS_LITINO(mp) - bytes) >> 3;
724
725 if (dp->i_df.if_format == XFS_DINODE_FMT_DEV) {
726 minforkoff = roundup(sizeof(xfs_dev_t), 8) >> 3;
727 return (offset >= minforkoff) ? minforkoff : 0;
728 }
729
730 /*
731 * If the requested numbers of bytes is smaller or equal to the
732 * current attribute fork size we can always proceed.
733 *
734 * Note that if_bytes in the data fork might actually be larger than
735 * the current data fork size is due to delalloc extents. In that
736 * case either the extent count will go down when they are converted
737 * to real extents, or the delalloc conversion will take care of the
738 * literal area rebalancing.
739 */
740 if (bytes <= xfs_inode_attr_fork_size(dp))
741 return dp->i_forkoff;
742
743 /*
744 * For attr2 we can try to move the forkoff if there is space in the
745 * literal area
746 */
747 dsize = dp->i_df.if_bytes;
748
749 switch (dp->i_df.if_format) {
750 case XFS_DINODE_FMT_EXTENTS:
751 /*
752 * If there is no attr fork and the data fork is extents,
753 * determine if creating the default attr fork will result
754 * in the extents form migrating to btree. If so, the
755 * minimum offset only needs to be the space required for
756 * the btree root.
757 */
758 if (!dp->i_forkoff && dp->i_df.if_bytes >
759 xfs_default_attroffset(dp))
760 dsize = xfs_bmdr_space_calc(MINDBTPTRS);
761 break;
762 case XFS_DINODE_FMT_BTREE:
763 /*
764 * If we have a data btree then keep forkoff if we have one,
765 * otherwise we are adding a new attr, so then we set
766 * minforkoff to where the btree root can finish so we have
767 * plenty of room for attrs
768 */
769 if (dp->i_forkoff) {
770 if (offset < dp->i_forkoff)
771 return 0;
772 return dp->i_forkoff;
773 }
774 dsize = xfs_bmap_bmdr_space(dp->i_df.if_broot);
775 break;
776 }
777
778 /*
779 * A data fork btree root must have space for at least
780 * MINDBTPTRS key/ptr pairs if the data fork is small or empty.
781 */
782 minforkoff = max_t(int64_t, dsize, xfs_bmdr_space_calc(MINDBTPTRS));
783 minforkoff = roundup(minforkoff, 8) >> 3;
784
785 /* attr fork btree root can have at least this many key/ptr pairs */
786 maxforkoff = XFS_LITINO(mp) - xfs_bmdr_space_calc(MINABTPTRS);
787 maxforkoff = maxforkoff >> 3; /* rounded down */
788
789 if (offset >= maxforkoff)
790 return maxforkoff;
791 if (offset >= minforkoff)
792 return offset;
793 return 0;
794 }
795
796 /*
797 * Switch on the ATTR2 superblock bit (implies also FEATURES2) unless
798 * on-disk version bit says it is already set
799 */
800 STATIC void
xfs_sbversion_add_attr2(struct xfs_mount * mp,struct xfs_trans * tp)801 xfs_sbversion_add_attr2(
802 struct xfs_mount *mp,
803 struct xfs_trans *tp)
804 {
805 if (mp->m_sb.sb_features2 & XFS_SB_VERSION2_ATTR2BIT)
806 return;
807
808 spin_lock(&mp->m_sb_lock);
809 xfs_add_attr2(mp);
810 spin_unlock(&mp->m_sb_lock);
811 xfs_log_sb(tp);
812 }
813
814 /*
815 * Create the initial contents of a shortform attribute list.
816 */
817 void
xfs_attr_shortform_create(struct xfs_da_args * args)818 xfs_attr_shortform_create(
819 struct xfs_da_args *args)
820 {
821 struct xfs_inode *dp = args->dp;
822 struct xfs_ifork *ifp = &dp->i_af;
823 struct xfs_attr_sf_hdr *hdr;
824
825 trace_xfs_attr_sf_create(args);
826
827 ASSERT(ifp->if_bytes == 0);
828 if (ifp->if_format == XFS_DINODE_FMT_EXTENTS)
829 ifp->if_format = XFS_DINODE_FMT_LOCAL;
830
831 hdr = xfs_idata_realloc(dp, sizeof(*hdr), XFS_ATTR_FORK);
832 memset(hdr, 0, sizeof(*hdr));
833 hdr->totsize = cpu_to_be16(sizeof(*hdr));
834 xfs_trans_log_inode(args->trans, dp, XFS_ILOG_CORE | XFS_ILOG_ADATA);
835 }
836
837 /*
838 * Return the entry if the attr in args is found, or NULL if not.
839 */
840 struct xfs_attr_sf_entry *
xfs_attr_sf_findname(struct xfs_da_args * args)841 xfs_attr_sf_findname(
842 struct xfs_da_args *args)
843 {
844 struct xfs_attr_sf_hdr *sf = args->dp->i_af.if_data;
845 struct xfs_attr_sf_entry *sfe;
846
847 for (sfe = xfs_attr_sf_firstentry(sf);
848 sfe < xfs_attr_sf_endptr(sf);
849 sfe = xfs_attr_sf_nextentry(sfe)) {
850 if (xfs_attr_match(args, sfe->flags, sfe->nameval,
851 sfe->namelen, &sfe->nameval[sfe->namelen],
852 sfe->valuelen))
853 return sfe;
854 }
855
856 return NULL;
857 }
858
859 /*
860 * Replace a shortform xattr if it's the right length. Returns 0 on success,
861 * -ENOSPC if the length is wrong, or -ENOATTR if the attr was not found.
862 */
863 int
xfs_attr_shortform_replace(struct xfs_da_args * args)864 xfs_attr_shortform_replace(
865 struct xfs_da_args *args)
866 {
867 struct xfs_attr_sf_entry *sfe;
868
869 ASSERT(args->dp->i_af.if_format == XFS_DINODE_FMT_LOCAL);
870
871 trace_xfs_attr_sf_replace(args);
872
873 sfe = xfs_attr_sf_findname(args);
874 if (!sfe)
875 return -ENOATTR;
876
877 if (args->attr_filter & XFS_ATTR_PARENT) {
878 if (sfe->namelen != args->new_namelen ||
879 sfe->valuelen != args->new_valuelen)
880 return -ENOSPC;
881
882 memcpy(sfe->nameval, args->new_name, sfe->namelen);
883 memcpy(&sfe->nameval[sfe->namelen], args->new_value,
884 sfe->valuelen);
885 } else {
886 if (sfe->valuelen != args->valuelen)
887 return -ENOSPC;
888 memcpy(&sfe->nameval[sfe->namelen], args->value,
889 sfe->valuelen);
890 }
891
892 xfs_trans_log_inode(args->trans, args->dp,
893 XFS_ILOG_CORE | XFS_ILOG_ADATA);
894 return 0;
895 }
896
897 /*
898 * Add a name/value pair to the shortform attribute list.
899 * Overflow from the inode has already been checked for.
900 */
901 void
xfs_attr_shortform_add(struct xfs_da_args * args,int forkoff)902 xfs_attr_shortform_add(
903 struct xfs_da_args *args,
904 int forkoff)
905 {
906 struct xfs_inode *dp = args->dp;
907 struct xfs_mount *mp = dp->i_mount;
908 struct xfs_ifork *ifp = &dp->i_af;
909 struct xfs_attr_sf_hdr *sf = ifp->if_data;
910 struct xfs_attr_sf_entry *sfe;
911 int size;
912
913 trace_xfs_attr_sf_add(args);
914
915 dp->i_forkoff = forkoff;
916
917 ASSERT(ifp->if_format == XFS_DINODE_FMT_LOCAL);
918 ASSERT(!xfs_attr_sf_findname(args));
919
920 size = xfs_attr_sf_entsize_byname(args->namelen, args->valuelen);
921 sf = xfs_idata_realloc(dp, size, XFS_ATTR_FORK);
922
923 sfe = xfs_attr_sf_endptr(sf);
924 sfe->namelen = args->namelen;
925 sfe->valuelen = args->valuelen;
926 sfe->flags = args->attr_filter;
927 memcpy(sfe->nameval, args->name, args->namelen);
928 memcpy(&sfe->nameval[args->namelen], args->value, args->valuelen);
929 sf->count++;
930 be16_add_cpu(&sf->totsize, size);
931 xfs_trans_log_inode(args->trans, dp, XFS_ILOG_CORE | XFS_ILOG_ADATA);
932
933 xfs_sbversion_add_attr2(mp, args->trans);
934 }
935
936 /*
937 * After the last attribute is removed revert to original inode format,
938 * making all literal area available to the data fork once more.
939 */
940 void
xfs_attr_fork_remove(struct xfs_inode * ip,struct xfs_trans * tp)941 xfs_attr_fork_remove(
942 struct xfs_inode *ip,
943 struct xfs_trans *tp)
944 {
945 ASSERT(ip->i_af.if_nextents == 0);
946
947 xfs_ifork_zap_attr(ip);
948 ip->i_forkoff = 0;
949 xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE);
950 }
951
952 /*
953 * Remove an attribute from the shortform attribute list structure.
954 */
955 int
xfs_attr_sf_removename(struct xfs_da_args * args)956 xfs_attr_sf_removename(
957 struct xfs_da_args *args)
958 {
959 struct xfs_inode *dp = args->dp;
960 struct xfs_mount *mp = dp->i_mount;
961 struct xfs_attr_sf_hdr *sf = dp->i_af.if_data;
962 struct xfs_attr_sf_entry *sfe;
963 uint16_t totsize = be16_to_cpu(sf->totsize);
964 void *next, *end;
965 int size = 0;
966
967 trace_xfs_attr_sf_remove(args);
968
969 sfe = xfs_attr_sf_findname(args);
970 if (!sfe) {
971 /*
972 * If we are recovering an operation, finding nothing to remove
973 * is not an error, it just means there was nothing to clean up.
974 */
975 if (args->op_flags & XFS_DA_OP_RECOVERY)
976 return 0;
977 return -ENOATTR;
978 }
979
980 /*
981 * Fix up the attribute fork data, covering the hole
982 */
983 size = xfs_attr_sf_entsize(sfe);
984 next = xfs_attr_sf_nextentry(sfe);
985 end = xfs_attr_sf_endptr(sf);
986 if (next < end)
987 memmove(sfe, next, end - next);
988 sf->count--;
989 totsize -= size;
990 sf->totsize = cpu_to_be16(totsize);
991
992 /*
993 * Fix up the start offset of the attribute fork
994 */
995 if (totsize == sizeof(struct xfs_attr_sf_hdr) &&
996 (dp->i_df.if_format != XFS_DINODE_FMT_BTREE) &&
997 !(args->op_flags & (XFS_DA_OP_ADDNAME | XFS_DA_OP_REPLACE)) &&
998 !xfs_has_parent(mp)) {
999 xfs_attr_fork_remove(dp, args->trans);
1000 } else {
1001 xfs_idata_realloc(dp, -size, XFS_ATTR_FORK);
1002 dp->i_forkoff = xfs_attr_shortform_bytesfit(dp, totsize);
1003 ASSERT(dp->i_forkoff);
1004 ASSERT(totsize > sizeof(struct xfs_attr_sf_hdr) ||
1005 (args->op_flags & XFS_DA_OP_ADDNAME) ||
1006 dp->i_df.if_format == XFS_DINODE_FMT_BTREE ||
1007 xfs_has_parent(mp));
1008 xfs_trans_log_inode(args->trans, dp,
1009 XFS_ILOG_CORE | XFS_ILOG_ADATA);
1010 }
1011
1012 xfs_sbversion_add_attr2(mp, args->trans);
1013
1014 return 0;
1015 }
1016
1017 /*
1018 * Retrieve the attribute value and length.
1019 *
1020 * If args->valuelen is zero, only the length needs to be returned. Unlike a
1021 * lookup, we only return an error if the attribute does not exist or we can't
1022 * retrieve the value.
1023 */
1024 int
xfs_attr_shortform_getvalue(struct xfs_da_args * args)1025 xfs_attr_shortform_getvalue(
1026 struct xfs_da_args *args)
1027 {
1028 struct xfs_attr_sf_entry *sfe;
1029
1030 ASSERT(args->dp->i_af.if_format == XFS_DINODE_FMT_LOCAL);
1031
1032 trace_xfs_attr_sf_lookup(args);
1033
1034 sfe = xfs_attr_sf_findname(args);
1035 if (!sfe)
1036 return -ENOATTR;
1037 return xfs_attr_copy_value(args, &sfe->nameval[args->namelen],
1038 sfe->valuelen);
1039 }
1040
1041 /* Convert from using the shortform to the leaf format. */
1042 int
xfs_attr_shortform_to_leaf(struct xfs_da_args * args)1043 xfs_attr_shortform_to_leaf(
1044 struct xfs_da_args *args)
1045 {
1046 struct xfs_inode *dp = args->dp;
1047 struct xfs_ifork *ifp = &dp->i_af;
1048 struct xfs_attr_sf_hdr *sf = ifp->if_data;
1049 struct xfs_attr_sf_entry *sfe;
1050 int size = be16_to_cpu(sf->totsize);
1051 struct xfs_da_args nargs;
1052 char *tmpbuffer;
1053 int error, i;
1054 xfs_dablk_t blkno;
1055 struct xfs_buf *bp;
1056
1057 trace_xfs_attr_sf_to_leaf(args);
1058
1059 tmpbuffer = kmalloc(size, GFP_KERNEL | __GFP_NOFAIL);
1060 memcpy(tmpbuffer, ifp->if_data, size);
1061 sf = (struct xfs_attr_sf_hdr *)tmpbuffer;
1062
1063 xfs_idata_realloc(dp, -size, XFS_ATTR_FORK);
1064 xfs_bmap_local_to_extents_empty(args->trans, dp, XFS_ATTR_FORK);
1065
1066 bp = NULL;
1067 error = xfs_da_grow_inode(args, &blkno);
1068 if (error)
1069 goto out;
1070
1071 ASSERT(blkno == 0);
1072 error = xfs_attr3_leaf_create(args, blkno, &bp);
1073 if (error)
1074 goto out;
1075
1076 memset((char *)&nargs, 0, sizeof(nargs));
1077 nargs.dp = dp;
1078 nargs.geo = args->geo;
1079 nargs.total = args->total;
1080 nargs.whichfork = XFS_ATTR_FORK;
1081 nargs.trans = args->trans;
1082 nargs.op_flags = XFS_DA_OP_OKNOENT;
1083 nargs.owner = args->owner;
1084
1085 sfe = xfs_attr_sf_firstentry(sf);
1086 for (i = 0; i < sf->count; i++) {
1087 nargs.name = sfe->nameval;
1088 nargs.namelen = sfe->namelen;
1089 nargs.value = &sfe->nameval[nargs.namelen];
1090 nargs.valuelen = sfe->valuelen;
1091 nargs.attr_filter = sfe->flags & XFS_ATTR_NSP_ONDISK_MASK;
1092 if (!xfs_attr_check_namespace(sfe->flags)) {
1093 xfs_da_mark_sick(args);
1094 error = -EFSCORRUPTED;
1095 goto out;
1096 }
1097 xfs_attr_sethash(&nargs);
1098 error = xfs_attr3_leaf_lookup_int(bp, &nargs); /* set a->index */
1099 ASSERT(error == -ENOATTR);
1100 if (!xfs_attr3_leaf_add(bp, &nargs))
1101 ASSERT(0);
1102 sfe = xfs_attr_sf_nextentry(sfe);
1103 }
1104 error = 0;
1105 out:
1106 kfree(tmpbuffer);
1107 return error;
1108 }
1109
1110 /*
1111 * Check a leaf attribute block to see if all the entries would fit into
1112 * a shortform attribute list.
1113 */
1114 int
xfs_attr_shortform_allfit(struct xfs_buf * bp,struct xfs_inode * dp)1115 xfs_attr_shortform_allfit(
1116 struct xfs_buf *bp,
1117 struct xfs_inode *dp)
1118 {
1119 struct xfs_attr_leafblock *leaf;
1120 struct xfs_attr_leaf_entry *entry;
1121 xfs_attr_leaf_name_local_t *name_loc;
1122 struct xfs_attr3_icleaf_hdr leafhdr;
1123 int bytes;
1124 int i;
1125 struct xfs_mount *mp = bp->b_mount;
1126
1127 leaf = bp->b_addr;
1128 xfs_attr3_leaf_hdr_from_disk(mp->m_attr_geo, &leafhdr, leaf);
1129 entry = xfs_attr3_leaf_entryp(leaf);
1130
1131 bytes = sizeof(struct xfs_attr_sf_hdr);
1132 for (i = 0; i < leafhdr.count; entry++, i++) {
1133 if (entry->flags & XFS_ATTR_INCOMPLETE)
1134 continue; /* don't copy partial entries */
1135 if (!(entry->flags & XFS_ATTR_LOCAL))
1136 return 0;
1137 name_loc = xfs_attr3_leaf_name_local(leaf, i);
1138 if (name_loc->namelen >= XFS_ATTR_SF_ENTSIZE_MAX)
1139 return 0;
1140 if (be16_to_cpu(name_loc->valuelen) >= XFS_ATTR_SF_ENTSIZE_MAX)
1141 return 0;
1142 bytes += xfs_attr_sf_entsize_byname(name_loc->namelen,
1143 be16_to_cpu(name_loc->valuelen));
1144 }
1145 if ((dp->i_df.if_format != XFS_DINODE_FMT_BTREE) &&
1146 (bytes == sizeof(struct xfs_attr_sf_hdr)))
1147 return -1;
1148 return xfs_attr_shortform_bytesfit(dp, bytes);
1149 }
1150
1151 /* Verify the consistency of a raw inline attribute fork. */
1152 xfs_failaddr_t
xfs_attr_shortform_verify(struct xfs_attr_sf_hdr * sfp,size_t size)1153 xfs_attr_shortform_verify(
1154 struct xfs_attr_sf_hdr *sfp,
1155 size_t size)
1156 {
1157 struct xfs_attr_sf_entry *sfep = xfs_attr_sf_firstentry(sfp);
1158 struct xfs_attr_sf_entry *next_sfep;
1159 char *endp;
1160 int i;
1161
1162 /*
1163 * Give up if the attribute is way too short.
1164 */
1165 if (size < sizeof(struct xfs_attr_sf_hdr))
1166 return __this_address;
1167
1168 endp = (char *)sfp + size;
1169
1170 /* Check all reported entries */
1171 for (i = 0; i < sfp->count; i++) {
1172 /*
1173 * struct xfs_attr_sf_entry has a variable length.
1174 * Check the fixed-offset parts of the structure are
1175 * within the data buffer.
1176 * xfs_attr_sf_entry is defined with a 1-byte variable
1177 * array at the end, so we must subtract that off.
1178 */
1179 if (((char *)sfep + sizeof(*sfep)) >= endp)
1180 return __this_address;
1181
1182 /* Don't allow names with known bad length. */
1183 if (sfep->namelen == 0)
1184 return __this_address;
1185
1186 /*
1187 * Check that the variable-length part of the structure is
1188 * within the data buffer. The next entry starts after the
1189 * name component, so nextentry is an acceptable test.
1190 */
1191 next_sfep = xfs_attr_sf_nextentry(sfep);
1192 if ((char *)next_sfep > endp)
1193 return __this_address;
1194
1195 /*
1196 * Check for unknown flags. Short form doesn't support
1197 * the incomplete or local bits, so we can use the namespace
1198 * mask here.
1199 */
1200 if (sfep->flags & ~XFS_ATTR_NSP_ONDISK_MASK)
1201 return __this_address;
1202
1203 /*
1204 * Check for invalid namespace combinations. We only allow
1205 * one namespace flag per xattr, so we can just count the
1206 * bits (i.e. hweight) here.
1207 */
1208 if (!xfs_attr_check_namespace(sfep->flags))
1209 return __this_address;
1210
1211 sfep = next_sfep;
1212 }
1213 if ((void *)sfep != (void *)endp)
1214 return __this_address;
1215
1216 return NULL;
1217 }
1218
1219 /*
1220 * Convert a leaf attribute list to shortform attribute list
1221 */
1222 int
xfs_attr3_leaf_to_shortform(struct xfs_buf * bp,struct xfs_da_args * args,int forkoff)1223 xfs_attr3_leaf_to_shortform(
1224 struct xfs_buf *bp,
1225 struct xfs_da_args *args,
1226 int forkoff)
1227 {
1228 struct xfs_attr_leafblock *leaf;
1229 struct xfs_attr3_icleaf_hdr ichdr;
1230 struct xfs_attr_leaf_entry *entry;
1231 struct xfs_attr_leaf_name_local *name_loc;
1232 struct xfs_da_args nargs;
1233 struct xfs_inode *dp = args->dp;
1234 char *tmpbuffer;
1235 int error;
1236 int i;
1237
1238 trace_xfs_attr_leaf_to_sf(args);
1239
1240 tmpbuffer = kvmalloc(args->geo->blksize, GFP_KERNEL | __GFP_NOFAIL);
1241 memcpy(tmpbuffer, bp->b_addr, args->geo->blksize);
1242
1243 leaf = (xfs_attr_leafblock_t *)tmpbuffer;
1244 xfs_attr3_leaf_hdr_from_disk(args->geo, &ichdr, leaf);
1245 entry = xfs_attr3_leaf_entryp(leaf);
1246
1247 /* XXX (dgc): buffer is about to be marked stale - why zero it? */
1248 memset(bp->b_addr, 0, args->geo->blksize);
1249
1250 /*
1251 * Clean out the prior contents of the attribute list.
1252 */
1253 error = xfs_da_shrink_inode(args, 0, bp);
1254 if (error)
1255 goto out;
1256
1257 if (forkoff == -1) {
1258 /*
1259 * Don't remove the attr fork if this operation is the first
1260 * part of a attr replace operations. We're going to add a new
1261 * attr immediately, so we need to keep the attr fork around in
1262 * this case.
1263 */
1264 if (!(args->op_flags & XFS_DA_OP_REPLACE)) {
1265 ASSERT(dp->i_df.if_format != XFS_DINODE_FMT_BTREE);
1266 xfs_attr_fork_remove(dp, args->trans);
1267 }
1268 goto out;
1269 }
1270
1271 xfs_attr_shortform_create(args);
1272
1273 /*
1274 * Copy the attributes
1275 */
1276 memset((char *)&nargs, 0, sizeof(nargs));
1277 nargs.geo = args->geo;
1278 nargs.dp = dp;
1279 nargs.total = args->total;
1280 nargs.whichfork = XFS_ATTR_FORK;
1281 nargs.trans = args->trans;
1282 nargs.op_flags = XFS_DA_OP_OKNOENT;
1283 nargs.owner = args->owner;
1284
1285 for (i = 0; i < ichdr.count; entry++, i++) {
1286 if (entry->flags & XFS_ATTR_INCOMPLETE)
1287 continue; /* don't copy partial entries */
1288 if (!entry->nameidx)
1289 continue;
1290 ASSERT(entry->flags & XFS_ATTR_LOCAL);
1291 name_loc = xfs_attr3_leaf_name_local(leaf, i);
1292 nargs.name = name_loc->nameval;
1293 nargs.namelen = name_loc->namelen;
1294 nargs.value = &name_loc->nameval[nargs.namelen];
1295 nargs.valuelen = be16_to_cpu(name_loc->valuelen);
1296 nargs.hashval = be32_to_cpu(entry->hashval);
1297 nargs.attr_filter = entry->flags & XFS_ATTR_NSP_ONDISK_MASK;
1298 xfs_attr_shortform_add(&nargs, forkoff);
1299 }
1300 error = 0;
1301
1302 out:
1303 kvfree(tmpbuffer);
1304 return error;
1305 }
1306
1307 /*
1308 * Convert from using a single leaf to a root node and a leaf.
1309 */
1310 int
xfs_attr3_leaf_to_node(struct xfs_da_args * args)1311 xfs_attr3_leaf_to_node(
1312 struct xfs_da_args *args)
1313 {
1314 struct xfs_attr_leafblock *leaf;
1315 struct xfs_attr3_icleaf_hdr icleafhdr;
1316 struct xfs_attr_leaf_entry *entries;
1317 struct xfs_da3_icnode_hdr icnodehdr;
1318 struct xfs_da_intnode *node;
1319 struct xfs_inode *dp = args->dp;
1320 struct xfs_mount *mp = dp->i_mount;
1321 struct xfs_buf *bp1 = NULL;
1322 struct xfs_buf *bp2 = NULL;
1323 xfs_dablk_t blkno;
1324 int error;
1325
1326 trace_xfs_attr_leaf_to_node(args);
1327
1328 if (XFS_TEST_ERROR(mp, XFS_ERRTAG_ATTR_LEAF_TO_NODE)) {
1329 error = -EIO;
1330 goto out;
1331 }
1332
1333 error = xfs_da_grow_inode(args, &blkno);
1334 if (error)
1335 goto out;
1336 error = xfs_attr3_leaf_read(args->trans, dp, args->owner, 0, &bp1);
1337 if (error)
1338 goto out;
1339
1340 error = xfs_da_get_buf(args->trans, dp, blkno, &bp2, XFS_ATTR_FORK);
1341 if (error)
1342 goto out;
1343
1344 /*
1345 * Copy leaf to new buffer and log it.
1346 */
1347 xfs_da_buf_copy(bp2, bp1, args->geo->blksize);
1348 xfs_trans_log_buf(args->trans, bp2, 0, args->geo->blksize - 1);
1349
1350 /*
1351 * Set up the new root node.
1352 */
1353 error = xfs_da3_node_create(args, 0, 1, &bp1, XFS_ATTR_FORK);
1354 if (error)
1355 goto out;
1356 node = bp1->b_addr;
1357 xfs_da3_node_hdr_from_disk(mp, &icnodehdr, node);
1358
1359 leaf = bp2->b_addr;
1360 xfs_attr3_leaf_hdr_from_disk(args->geo, &icleafhdr, leaf);
1361 entries = xfs_attr3_leaf_entryp(leaf);
1362
1363 /* both on-disk, don't endian-flip twice */
1364 icnodehdr.btree[0].hashval = entries[icleafhdr.count - 1].hashval;
1365 icnodehdr.btree[0].before = cpu_to_be32(blkno);
1366 icnodehdr.count = 1;
1367 xfs_da3_node_hdr_to_disk(dp->i_mount, node, &icnodehdr);
1368 xfs_trans_log_buf(args->trans, bp1, 0, args->geo->blksize - 1);
1369 error = 0;
1370 out:
1371 return error;
1372 }
1373
1374 /*========================================================================
1375 * Routines used for growing the Btree.
1376 *========================================================================*/
1377
1378 /*
1379 * Create the initial contents of a leaf attribute list
1380 * or a leaf in a node attribute list.
1381 */
1382 STATIC int
xfs_attr3_leaf_create(struct xfs_da_args * args,xfs_dablk_t blkno,struct xfs_buf ** bpp)1383 xfs_attr3_leaf_create(
1384 struct xfs_da_args *args,
1385 xfs_dablk_t blkno,
1386 struct xfs_buf **bpp)
1387 {
1388 struct xfs_attr_leafblock *leaf;
1389 struct xfs_attr3_icleaf_hdr ichdr;
1390 struct xfs_inode *dp = args->dp;
1391 struct xfs_mount *mp = dp->i_mount;
1392 struct xfs_buf *bp;
1393 int error;
1394
1395 trace_xfs_attr_leaf_create(args);
1396
1397 error = xfs_da_get_buf(args->trans, args->dp, blkno, &bp,
1398 XFS_ATTR_FORK);
1399 if (error)
1400 return error;
1401 bp->b_ops = &xfs_attr3_leaf_buf_ops;
1402 xfs_trans_buf_set_type(args->trans, bp, XFS_BLFT_ATTR_LEAF_BUF);
1403 leaf = bp->b_addr;
1404 memset(leaf, 0, args->geo->blksize);
1405
1406 memset(&ichdr, 0, sizeof(ichdr));
1407 ichdr.firstused = args->geo->blksize;
1408
1409 if (xfs_has_crc(mp)) {
1410 struct xfs_da3_blkinfo *hdr3 = bp->b_addr;
1411
1412 ichdr.magic = XFS_ATTR3_LEAF_MAGIC;
1413
1414 hdr3->blkno = cpu_to_be64(xfs_buf_daddr(bp));
1415 hdr3->owner = cpu_to_be64(args->owner);
1416 uuid_copy(&hdr3->uuid, &mp->m_sb.sb_meta_uuid);
1417
1418 ichdr.freemap[0].base = sizeof(struct xfs_attr3_leaf_hdr);
1419 } else {
1420 ichdr.magic = XFS_ATTR_LEAF_MAGIC;
1421 ichdr.freemap[0].base = sizeof(struct xfs_attr_leaf_hdr);
1422 }
1423 ichdr.freemap[0].size = ichdr.firstused - ichdr.freemap[0].base;
1424
1425 xfs_attr3_leaf_hdr_to_disk(args->geo, leaf, &ichdr);
1426 xfs_trans_log_buf(args->trans, bp, 0, args->geo->blksize - 1);
1427
1428 *bpp = bp;
1429 return 0;
1430 }
1431
1432 /*
1433 * Reinitialize an existing attr fork block as an empty leaf, and attach
1434 * the buffer to tp.
1435 */
1436 int
xfs_attr3_leaf_init(struct xfs_trans * tp,struct xfs_inode * dp,xfs_dablk_t blkno)1437 xfs_attr3_leaf_init(
1438 struct xfs_trans *tp,
1439 struct xfs_inode *dp,
1440 xfs_dablk_t blkno)
1441 {
1442 struct xfs_buf *bp = NULL;
1443 struct xfs_da_args args = {
1444 .trans = tp,
1445 .dp = dp,
1446 .owner = I_INO(dp),
1447 .geo = dp->i_mount->m_attr_geo,
1448 };
1449
1450 ASSERT(tp != NULL);
1451
1452 return xfs_attr3_leaf_create(&args, blkno, &bp);
1453 }
1454 /*
1455 * Split the leaf node, rebalance, then add the new entry.
1456 *
1457 * Returns 0 if the entry was added, 1 if a further split is needed or a
1458 * negative error number otherwise.
1459 */
1460 int
xfs_attr3_leaf_split(struct xfs_da_state * state,struct xfs_da_state_blk * oldblk,struct xfs_da_state_blk * newblk)1461 xfs_attr3_leaf_split(
1462 struct xfs_da_state *state,
1463 struct xfs_da_state_blk *oldblk,
1464 struct xfs_da_state_blk *newblk)
1465 {
1466 bool added;
1467 xfs_dablk_t blkno;
1468 int error;
1469
1470 trace_xfs_attr_leaf_split(state->args);
1471
1472 /*
1473 * Allocate space for a new leaf node.
1474 */
1475 ASSERT(oldblk->magic == XFS_ATTR_LEAF_MAGIC);
1476 error = xfs_da_grow_inode(state->args, &blkno);
1477 if (error)
1478 return error;
1479 error = xfs_attr3_leaf_create(state->args, blkno, &newblk->bp);
1480 if (error)
1481 return error;
1482 newblk->blkno = blkno;
1483 newblk->magic = XFS_ATTR_LEAF_MAGIC;
1484
1485 /*
1486 * Rebalance the entries across the two leaves.
1487 * NOTE: rebalance() currently depends on the 2nd block being empty.
1488 */
1489 xfs_attr3_leaf_rebalance(state, oldblk, newblk);
1490 error = xfs_da3_blk_link(state, oldblk, newblk);
1491 if (error)
1492 return error;
1493
1494 /*
1495 * Save info on "old" attribute for "atomic rename" ops, leaf_add()
1496 * modifies the index/blkno/rmtblk/rmtblkcnt fields to show the
1497 * "new" attrs info. Will need the "old" info to remove it later.
1498 *
1499 * Insert the "new" entry in the correct block.
1500 */
1501 if (state->inleaf) {
1502 trace_xfs_attr_leaf_add_old(state->args);
1503 added = xfs_attr3_leaf_add(oldblk->bp, state->args);
1504 } else {
1505 trace_xfs_attr_leaf_add_new(state->args);
1506 added = xfs_attr3_leaf_add(newblk->bp, state->args);
1507 }
1508
1509 /*
1510 * Update last hashval in each block since we added the name.
1511 */
1512 oldblk->hashval = xfs_attr_leaf_lasthash(oldblk->bp, NULL);
1513 newblk->hashval = xfs_attr_leaf_lasthash(newblk->bp, NULL);
1514 if (!added)
1515 return 1;
1516 return 0;
1517 }
1518
1519 /*
1520 * Add a name to the leaf attribute list structure.
1521 */
1522 bool
xfs_attr3_leaf_add(struct xfs_buf * bp,struct xfs_da_args * args)1523 xfs_attr3_leaf_add(
1524 struct xfs_buf *bp,
1525 struct xfs_da_args *args)
1526 {
1527 struct xfs_attr_leafblock *leaf;
1528 struct xfs_attr3_icleaf_hdr ichdr;
1529 int tablesize;
1530 int entsize;
1531 bool added = true;
1532 int sum;
1533 int tmp;
1534 int i;
1535
1536 trace_xfs_attr_leaf_add(args);
1537
1538 leaf = bp->b_addr;
1539 xfs_attr3_leaf_hdr_from_disk(args->geo, &ichdr, leaf);
1540 ASSERT(args->index >= 0 && args->index <= ichdr.count);
1541 entsize = xfs_attr_leaf_newentsize(args, NULL);
1542
1543 /*
1544 * Search through freemap for first-fit on new name length.
1545 * (may need to figure in size of entry struct too)
1546 */
1547 tablesize = xfs_attr_leaf_entries_end(ichdr.count + 1, leaf);
1548 for (sum = 0, i = XFS_ATTR_LEAF_MAPSIZE - 1; i >= 0; i--) {
1549 if (tablesize > ichdr.firstused) {
1550 sum += ichdr.freemap[i].size;
1551 continue;
1552 }
1553 if (!ichdr.freemap[i].size)
1554 continue; /* no space in this map */
1555 tmp = entsize;
1556 if (ichdr.freemap[i].base < ichdr.firstused)
1557 tmp += sizeof(xfs_attr_leaf_entry_t);
1558 if (ichdr.freemap[i].size >= tmp) {
1559 xfs_attr3_leaf_add_work(bp, &ichdr, args, i);
1560 goto out_log_hdr;
1561 }
1562 sum += ichdr.freemap[i].size;
1563 }
1564
1565 /*
1566 * If there are no holes in the address space of the block,
1567 * and we don't have enough freespace, then compaction will do us
1568 * no good and we should just give up.
1569 */
1570 if (!ichdr.holes && sum < entsize)
1571 return false;
1572
1573 /*
1574 * Compact the entries to coalesce free space.
1575 * This may change the hdr->count via dropping INCOMPLETE entries.
1576 */
1577 xfs_attr3_leaf_compact(args, &ichdr, bp);
1578
1579 /*
1580 * After compaction, the block is guaranteed to have only one
1581 * free region, in freemap[0]. If it is not big enough, give up.
1582 */
1583 if (ichdr.freemap[0].size < (entsize + sizeof(xfs_attr_leaf_entry_t))) {
1584 added = false;
1585 goto out_log_hdr;
1586 }
1587
1588 xfs_attr3_leaf_add_work(bp, &ichdr, args, 0);
1589
1590 out_log_hdr:
1591 xfs_attr3_leaf_hdr_to_disk(args->geo, leaf, &ichdr);
1592 xfs_trans_log_buf(args->trans, bp,
1593 XFS_DA_LOGRANGE(leaf, &leaf->hdr,
1594 xfs_attr3_leaf_hdr_size(leaf)));
1595 return added;
1596 }
1597
1598 /*
1599 * Add a name to a leaf attribute list structure.
1600 */
1601 STATIC void
xfs_attr3_leaf_add_work(struct xfs_buf * bp,struct xfs_attr3_icleaf_hdr * ichdr,struct xfs_da_args * args,int mapindex)1602 xfs_attr3_leaf_add_work(
1603 struct xfs_buf *bp,
1604 struct xfs_attr3_icleaf_hdr *ichdr,
1605 struct xfs_da_args *args,
1606 int mapindex)
1607 {
1608 struct xfs_attr_leafblock *leaf;
1609 struct xfs_attr_leaf_entry *entry;
1610 struct xfs_attr_leaf_name_local *name_loc;
1611 struct xfs_attr_leaf_name_remote *name_rmt;
1612 struct xfs_mount *mp;
1613 int old_end, new_end;
1614 int tmp;
1615 int i;
1616
1617 trace_xfs_attr_leaf_add_work(args);
1618
1619 leaf = bp->b_addr;
1620 ASSERT(mapindex >= 0 && mapindex < XFS_ATTR_LEAF_MAPSIZE);
1621 ASSERT(args->index >= 0 && args->index <= ichdr->count);
1622
1623 /*
1624 * Force open some space in the entry array and fill it in.
1625 */
1626 entry = &xfs_attr3_leaf_entryp(leaf)[args->index];
1627 if (args->index < ichdr->count) {
1628 tmp = ichdr->count - args->index;
1629 tmp *= sizeof(xfs_attr_leaf_entry_t);
1630 memmove(entry + 1, entry, tmp);
1631 xfs_trans_log_buf(args->trans, bp,
1632 XFS_DA_LOGRANGE(leaf, entry, tmp + sizeof(*entry)));
1633 }
1634 ichdr->count++;
1635
1636 /*
1637 * Allocate space for the new string (at the end of the run).
1638 */
1639 mp = args->trans->t_mountp;
1640 ASSERT(ichdr->freemap[mapindex].base < args->geo->blksize);
1641 ASSERT((ichdr->freemap[mapindex].base & 0x3) == 0);
1642 ASSERT(ichdr->freemap[mapindex].size >=
1643 xfs_attr_leaf_newentsize(args, NULL));
1644 ASSERT(ichdr->freemap[mapindex].size < args->geo->blksize);
1645 ASSERT((ichdr->freemap[mapindex].size & 0x3) == 0);
1646
1647 ichdr->freemap[mapindex].size -= xfs_attr_leaf_newentsize(args, &tmp);
1648
1649 entry->nameidx = cpu_to_be16(ichdr->freemap[mapindex].base +
1650 ichdr->freemap[mapindex].size);
1651 entry->hashval = cpu_to_be32(args->hashval);
1652 entry->flags = args->attr_filter;
1653 if (tmp)
1654 entry->flags |= XFS_ATTR_LOCAL;
1655 if (args->op_flags & XFS_DA_OP_REPLACE) {
1656 if (!(args->op_flags & XFS_DA_OP_LOGGED))
1657 entry->flags |= XFS_ATTR_INCOMPLETE;
1658 if ((args->blkno2 == args->blkno) &&
1659 (args->index2 <= args->index)) {
1660 args->index2++;
1661 }
1662 }
1663 xfs_trans_log_buf(args->trans, bp,
1664 XFS_DA_LOGRANGE(leaf, entry, sizeof(*entry)));
1665 ASSERT((args->index == 0) ||
1666 (be32_to_cpu(entry->hashval) >= be32_to_cpu((entry-1)->hashval)));
1667 ASSERT((args->index == ichdr->count - 1) ||
1668 (be32_to_cpu(entry->hashval) <= be32_to_cpu((entry+1)->hashval)));
1669
1670 /*
1671 * For "remote" attribute values, simply note that we need to
1672 * allocate space for the "remote" value. We can't actually
1673 * allocate the extents in this transaction, and we can't decide
1674 * which blocks they should be as we might allocate more blocks
1675 * as part of this transaction (a split operation for example).
1676 */
1677 if (entry->flags & XFS_ATTR_LOCAL) {
1678 name_loc = xfs_attr3_leaf_name_local(leaf, args->index);
1679 name_loc->namelen = args->namelen;
1680 name_loc->valuelen = cpu_to_be16(args->valuelen);
1681 memcpy((char *)name_loc->nameval, args->name, args->namelen);
1682 memcpy((char *)&name_loc->nameval[args->namelen], args->value,
1683 be16_to_cpu(name_loc->valuelen));
1684 } else {
1685 name_rmt = xfs_attr3_leaf_name_remote(leaf, args->index);
1686 name_rmt->namelen = args->namelen;
1687 memcpy((char *)name_rmt->name, args->name, args->namelen);
1688 entry->flags |= XFS_ATTR_INCOMPLETE;
1689 /* just in case */
1690 name_rmt->valuelen = 0;
1691 name_rmt->valueblk = 0;
1692 args->rmtblkno = 1;
1693 args->rmtblkcnt = xfs_attr3_rmt_blocks(mp, args->valuelen);
1694 args->rmtvaluelen = args->valuelen;
1695 }
1696 xfs_trans_log_buf(args->trans, bp,
1697 XFS_DA_LOGRANGE(leaf, xfs_attr3_leaf_name(leaf, args->index),
1698 xfs_attr_leaf_entsize(leaf, args->index)));
1699
1700 /*
1701 * Update the control info for this leaf node
1702 */
1703 if (be16_to_cpu(entry->nameidx) < ichdr->firstused)
1704 ichdr->firstused = be16_to_cpu(entry->nameidx);
1705
1706 new_end = xfs_attr_leaf_entries_end(ichdr->count, leaf);
1707 old_end = new_end - sizeof(struct xfs_attr_leaf_entry);
1708
1709 ASSERT(ichdr->firstused >= new_end);
1710
1711 for (i = 0; i < XFS_ATTR_LEAF_MAPSIZE; i++) {
1712 int diff = 0;
1713
1714 if (ichdr->freemap[i].base == old_end) {
1715 /*
1716 * This freemap entry starts at the old end of the
1717 * leaf entry array, so we need to adjust its base
1718 * upward to accommodate the larger array.
1719 */
1720 diff = sizeof(struct xfs_attr_leaf_entry);
1721 } else if (ichdr->freemap[i].size > 0 &&
1722 ichdr->freemap[i].base < new_end) {
1723 /*
1724 * This freemap entry starts in the space claimed by
1725 * the new leaf entry. Adjust its base upward to
1726 * reflect that.
1727 */
1728 diff = new_end - ichdr->freemap[i].base;
1729 }
1730
1731 if (diff) {
1732 ichdr->freemap[i].base += diff;
1733 ichdr->freemap[i].size -=
1734 min_t(uint16_t, ichdr->freemap[i].size, diff);
1735 }
1736
1737 /*
1738 * Don't leave zero-length freemaps with nonzero base lying
1739 * around, because we don't want the code in _remove that
1740 * matches on base address to get confused and create
1741 * overlapping freemaps. If we end up with no freemap entries
1742 * then the next _add will compact the leaf block and
1743 * regenerate the freemaps.
1744 */
1745 if (ichdr->freemap[i].size == 0 && ichdr->freemap[i].base > 0) {
1746 ichdr->freemap[i].base = 0;
1747 ichdr->holes = 1;
1748 }
1749 }
1750 ichdr->usedbytes += xfs_attr_leaf_entsize(leaf, args->index);
1751 }
1752
1753 /*
1754 * Garbage collect a leaf attribute list block by copying it to a new buffer.
1755 */
1756 STATIC void
xfs_attr3_leaf_compact(struct xfs_da_args * args,struct xfs_attr3_icleaf_hdr * ichdr_dst,struct xfs_buf * bp)1757 xfs_attr3_leaf_compact(
1758 struct xfs_da_args *args,
1759 struct xfs_attr3_icleaf_hdr *ichdr_dst,
1760 struct xfs_buf *bp)
1761 {
1762 struct xfs_attr_leafblock *leaf_src;
1763 struct xfs_attr_leafblock *leaf_dst;
1764 struct xfs_attr3_icleaf_hdr ichdr_src;
1765 struct xfs_trans *trans = args->trans;
1766 char *tmpbuffer;
1767
1768 trace_xfs_attr_leaf_compact(args);
1769
1770 tmpbuffer = kvmalloc(args->geo->blksize, GFP_KERNEL | __GFP_NOFAIL);
1771 memcpy(tmpbuffer, bp->b_addr, args->geo->blksize);
1772 memset(bp->b_addr, 0, args->geo->blksize);
1773 leaf_src = (xfs_attr_leafblock_t *)tmpbuffer;
1774 leaf_dst = bp->b_addr;
1775
1776 /*
1777 * Copy the on-disk header back into the destination buffer to ensure
1778 * all the information in the header that is not part of the incore
1779 * header structure is preserved.
1780 */
1781 memcpy(bp->b_addr, tmpbuffer, xfs_attr3_leaf_hdr_size(leaf_src));
1782
1783 /* Initialise the incore headers */
1784 ichdr_src = *ichdr_dst; /* struct copy */
1785 ichdr_dst->firstused = args->geo->blksize;
1786 ichdr_dst->usedbytes = 0;
1787 ichdr_dst->count = 0;
1788 ichdr_dst->holes = 0;
1789 ichdr_dst->freemap[0].base = xfs_attr3_leaf_hdr_size(leaf_src);
1790 ichdr_dst->freemap[0].size = ichdr_dst->firstused -
1791 ichdr_dst->freemap[0].base;
1792 ichdr_dst->freemap[1].base = 0;
1793 ichdr_dst->freemap[2].base = 0;
1794 ichdr_dst->freemap[1].size = 0;
1795 ichdr_dst->freemap[2].size = 0;
1796
1797 /* write the header back to initialise the underlying buffer */
1798 xfs_attr3_leaf_hdr_to_disk(args->geo, leaf_dst, ichdr_dst);
1799
1800 /*
1801 * Copy all entry's in the same (sorted) order,
1802 * but allocate name/value pairs packed and in sequence.
1803 */
1804 xfs_attr3_leaf_moveents(args, leaf_src, &ichdr_src, 0,
1805 leaf_dst, ichdr_dst, 0, ichdr_src.count);
1806 /*
1807 * this logs the entire buffer, but the caller must write the header
1808 * back to the buffer when it is finished modifying it.
1809 */
1810 xfs_trans_log_buf(trans, bp, 0, args->geo->blksize - 1);
1811
1812 kvfree(tmpbuffer);
1813 }
1814
1815 /*
1816 * Compare two leaf blocks "order".
1817 * Return 0 unless leaf2 should go before leaf1.
1818 */
1819 static int
xfs_attr3_leaf_order(struct xfs_buf * leaf1_bp,struct xfs_attr3_icleaf_hdr * leaf1hdr,struct xfs_buf * leaf2_bp,struct xfs_attr3_icleaf_hdr * leaf2hdr)1820 xfs_attr3_leaf_order(
1821 struct xfs_buf *leaf1_bp,
1822 struct xfs_attr3_icleaf_hdr *leaf1hdr,
1823 struct xfs_buf *leaf2_bp,
1824 struct xfs_attr3_icleaf_hdr *leaf2hdr)
1825 {
1826 struct xfs_attr_leaf_entry *entries1;
1827 struct xfs_attr_leaf_entry *entries2;
1828
1829 entries1 = xfs_attr3_leaf_entryp(leaf1_bp->b_addr);
1830 entries2 = xfs_attr3_leaf_entryp(leaf2_bp->b_addr);
1831 if (leaf1hdr->count > 0 && leaf2hdr->count > 0 &&
1832 ((be32_to_cpu(entries2[0].hashval) <
1833 be32_to_cpu(entries1[0].hashval)) ||
1834 (be32_to_cpu(entries2[leaf2hdr->count - 1].hashval) <
1835 be32_to_cpu(entries1[leaf1hdr->count - 1].hashval)))) {
1836 return 1;
1837 }
1838 return 0;
1839 }
1840
1841 int
xfs_attr_leaf_order(struct xfs_buf * leaf1_bp,struct xfs_buf * leaf2_bp)1842 xfs_attr_leaf_order(
1843 struct xfs_buf *leaf1_bp,
1844 struct xfs_buf *leaf2_bp)
1845 {
1846 struct xfs_attr3_icleaf_hdr ichdr1;
1847 struct xfs_attr3_icleaf_hdr ichdr2;
1848 struct xfs_mount *mp = leaf1_bp->b_mount;
1849
1850 xfs_attr3_leaf_hdr_from_disk(mp->m_attr_geo, &ichdr1, leaf1_bp->b_addr);
1851 xfs_attr3_leaf_hdr_from_disk(mp->m_attr_geo, &ichdr2, leaf2_bp->b_addr);
1852 return xfs_attr3_leaf_order(leaf1_bp, &ichdr1, leaf2_bp, &ichdr2);
1853 }
1854
1855 /*
1856 * Redistribute the attribute list entries between two leaf nodes,
1857 * taking into account the size of the new entry.
1858 *
1859 * NOTE: if new block is empty, then it will get the upper half of the
1860 * old block. At present, all (one) callers pass in an empty second block.
1861 *
1862 * This code adjusts the args->index/blkno and args->index2/blkno2 fields
1863 * to match what it is doing in splitting the attribute leaf block. Those
1864 * values are used in "atomic rename" operations on attributes. Note that
1865 * the "new" and "old" values can end up in different blocks.
1866 */
1867 STATIC void
xfs_attr3_leaf_rebalance(struct xfs_da_state * state,struct xfs_da_state_blk * blk1,struct xfs_da_state_blk * blk2)1868 xfs_attr3_leaf_rebalance(
1869 struct xfs_da_state *state,
1870 struct xfs_da_state_blk *blk1,
1871 struct xfs_da_state_blk *blk2)
1872 {
1873 struct xfs_da_args *args;
1874 struct xfs_attr_leafblock *leaf1;
1875 struct xfs_attr_leafblock *leaf2;
1876 struct xfs_attr3_icleaf_hdr ichdr1;
1877 struct xfs_attr3_icleaf_hdr ichdr2;
1878 struct xfs_attr_leaf_entry *entries1;
1879 struct xfs_attr_leaf_entry *entries2;
1880 int count;
1881 int totallen;
1882 int max;
1883 int space;
1884 int swap;
1885
1886 /*
1887 * Set up environment.
1888 */
1889 ASSERT(blk1->magic == XFS_ATTR_LEAF_MAGIC);
1890 ASSERT(blk2->magic == XFS_ATTR_LEAF_MAGIC);
1891 leaf1 = blk1->bp->b_addr;
1892 leaf2 = blk2->bp->b_addr;
1893 xfs_attr3_leaf_hdr_from_disk(state->args->geo, &ichdr1, leaf1);
1894 xfs_attr3_leaf_hdr_from_disk(state->args->geo, &ichdr2, leaf2);
1895 ASSERT(ichdr2.count == 0);
1896 args = state->args;
1897
1898 trace_xfs_attr_leaf_rebalance(args);
1899
1900 /*
1901 * Check ordering of blocks, reverse if it makes things simpler.
1902 *
1903 * NOTE: Given that all (current) callers pass in an empty
1904 * second block, this code should never set "swap".
1905 */
1906 swap = 0;
1907 if (xfs_attr3_leaf_order(blk1->bp, &ichdr1, blk2->bp, &ichdr2)) {
1908 swap(blk1, blk2);
1909
1910 /* swap structures rather than reconverting them */
1911 swap(ichdr1, ichdr2);
1912
1913 leaf1 = blk1->bp->b_addr;
1914 leaf2 = blk2->bp->b_addr;
1915 swap = 1;
1916 }
1917
1918 /*
1919 * Examine entries until we reduce the absolute difference in
1920 * byte usage between the two blocks to a minimum. Then get
1921 * the direction to copy and the number of elements to move.
1922 *
1923 * "inleaf" is true if the new entry should be inserted into blk1.
1924 * If "swap" is also true, then reverse the sense of "inleaf".
1925 */
1926 state->inleaf = xfs_attr3_leaf_figure_balance(state, blk1, &ichdr1,
1927 blk2, &ichdr2,
1928 &count, &totallen);
1929 if (swap)
1930 state->inleaf = !state->inleaf;
1931
1932 /*
1933 * Move any entries required from leaf to leaf:
1934 */
1935 if (count < ichdr1.count) {
1936 /*
1937 * Figure the total bytes to be added to the destination leaf.
1938 */
1939 /* number entries being moved */
1940 count = ichdr1.count - count;
1941 space = ichdr1.usedbytes - totallen;
1942 space += count * sizeof(xfs_attr_leaf_entry_t);
1943
1944 /*
1945 * leaf2 is the destination, compact it if it looks tight.
1946 */
1947 max = ichdr2.firstused -
1948 xfs_attr_leaf_entries_end(ichdr2.count, leaf1);
1949 if (space > max)
1950 xfs_attr3_leaf_compact(args, &ichdr2, blk2->bp);
1951
1952 /*
1953 * Move high entries from leaf1 to low end of leaf2.
1954 */
1955 xfs_attr3_leaf_moveents(args, leaf1, &ichdr1,
1956 ichdr1.count - count, leaf2, &ichdr2, 0, count);
1957
1958 } else if (count > ichdr1.count) {
1959 /*
1960 * I assert that since all callers pass in an empty
1961 * second buffer, this code should never execute.
1962 */
1963 ASSERT(0);
1964
1965 /*
1966 * Figure the total bytes to be added to the destination leaf.
1967 */
1968 /* number entries being moved */
1969 count -= ichdr1.count;
1970 space = totallen - ichdr1.usedbytes;
1971 space += count * sizeof(xfs_attr_leaf_entry_t);
1972
1973 /*
1974 * leaf1 is the destination, compact it if it looks tight.
1975 */
1976 max = ichdr1.firstused -
1977 xfs_attr_leaf_entries_end(ichdr1.count, leaf1);
1978 if (space > max)
1979 xfs_attr3_leaf_compact(args, &ichdr1, blk1->bp);
1980
1981 /*
1982 * Move low entries from leaf2 to high end of leaf1.
1983 */
1984 xfs_attr3_leaf_moveents(args, leaf2, &ichdr2, 0, leaf1, &ichdr1,
1985 ichdr1.count, count);
1986 }
1987
1988 xfs_attr3_leaf_hdr_to_disk(state->args->geo, leaf1, &ichdr1);
1989 xfs_attr3_leaf_hdr_to_disk(state->args->geo, leaf2, &ichdr2);
1990 xfs_trans_log_buf(args->trans, blk1->bp, 0, args->geo->blksize - 1);
1991 xfs_trans_log_buf(args->trans, blk2->bp, 0, args->geo->blksize - 1);
1992
1993 /*
1994 * Copy out last hashval in each block for B-tree code.
1995 */
1996 entries1 = xfs_attr3_leaf_entryp(leaf1);
1997 entries2 = xfs_attr3_leaf_entryp(leaf2);
1998 blk1->hashval = be32_to_cpu(entries1[ichdr1.count - 1].hashval);
1999 blk2->hashval = be32_to_cpu(entries2[ichdr2.count - 1].hashval);
2000
2001 /*
2002 * Adjust the expected index for insertion.
2003 * NOTE: this code depends on the (current) situation that the
2004 * second block was originally empty.
2005 *
2006 * If the insertion point moved to the 2nd block, we must adjust
2007 * the index. We must also track the entry just following the
2008 * new entry for use in an "atomic rename" operation, that entry
2009 * is always the "old" entry and the "new" entry is what we are
2010 * inserting. The index/blkno fields refer to the "old" entry,
2011 * while the index2/blkno2 fields refer to the "new" entry.
2012 */
2013 if (blk1->index > ichdr1.count) {
2014 ASSERT(state->inleaf == 0);
2015 blk2->index = blk1->index - ichdr1.count;
2016 args->index = args->index2 = blk2->index;
2017 args->blkno = args->blkno2 = blk2->blkno;
2018 } else if (blk1->index == ichdr1.count) {
2019 if (state->inleaf) {
2020 args->index = blk1->index;
2021 args->blkno = blk1->blkno;
2022 args->index2 = 0;
2023 args->blkno2 = blk2->blkno;
2024 } else {
2025 /*
2026 * On a double leaf split, the original attr location
2027 * is already stored in blkno2/index2, so don't
2028 * overwrite it overwise we corrupt the tree.
2029 */
2030 blk2->index = blk1->index - ichdr1.count;
2031 args->index = blk2->index;
2032 args->blkno = blk2->blkno;
2033 if (!state->extravalid) {
2034 /*
2035 * set the new attr location to match the old
2036 * one and let the higher level split code
2037 * decide where in the leaf to place it.
2038 */
2039 args->index2 = blk2->index;
2040 args->blkno2 = blk2->blkno;
2041 }
2042 }
2043 } else {
2044 ASSERT(state->inleaf == 1);
2045 args->index = args->index2 = blk1->index;
2046 args->blkno = args->blkno2 = blk1->blkno;
2047 }
2048 }
2049
2050 /*
2051 * Examine entries until we reduce the absolute difference in
2052 * byte usage between the two blocks to a minimum.
2053 * GROT: Is this really necessary? With other than a 512 byte blocksize,
2054 * GROT: there will always be enough room in either block for a new entry.
2055 * GROT: Do a double-split for this case?
2056 */
2057 STATIC int
xfs_attr3_leaf_figure_balance(struct xfs_da_state * state,struct xfs_da_state_blk * blk1,struct xfs_attr3_icleaf_hdr * ichdr1,struct xfs_da_state_blk * blk2,struct xfs_attr3_icleaf_hdr * ichdr2,int * countarg,int * usedbytesarg)2058 xfs_attr3_leaf_figure_balance(
2059 struct xfs_da_state *state,
2060 struct xfs_da_state_blk *blk1,
2061 struct xfs_attr3_icleaf_hdr *ichdr1,
2062 struct xfs_da_state_blk *blk2,
2063 struct xfs_attr3_icleaf_hdr *ichdr2,
2064 int *countarg,
2065 int *usedbytesarg)
2066 {
2067 struct xfs_attr_leafblock *leaf1 = blk1->bp->b_addr;
2068 struct xfs_attr_leafblock *leaf2 = blk2->bp->b_addr;
2069 struct xfs_attr_leaf_entry *entry;
2070 int count;
2071 int max;
2072 int index;
2073 int totallen = 0;
2074 int half;
2075 int lastdelta;
2076 int foundit = 0;
2077 int tmp;
2078
2079 /*
2080 * Examine entries until we reduce the absolute difference in
2081 * byte usage between the two blocks to a minimum.
2082 */
2083 max = ichdr1->count + ichdr2->count;
2084 half = (max + 1) * sizeof(*entry);
2085 half += ichdr1->usedbytes + ichdr2->usedbytes +
2086 xfs_attr_leaf_newentsize(state->args, NULL);
2087 half /= 2;
2088 lastdelta = state->args->geo->blksize;
2089 entry = xfs_attr3_leaf_entryp(leaf1);
2090 for (count = index = 0; count < max; entry++, index++, count++) {
2091
2092 #define XFS_ATTR_ABS(A) (((A) < 0) ? -(A) : (A))
2093 /*
2094 * The new entry is in the first block, account for it.
2095 */
2096 if (count == blk1->index) {
2097 tmp = totallen + sizeof(*entry) +
2098 xfs_attr_leaf_newentsize(state->args, NULL);
2099 if (XFS_ATTR_ABS(half - tmp) > lastdelta)
2100 break;
2101 lastdelta = XFS_ATTR_ABS(half - tmp);
2102 totallen = tmp;
2103 foundit = 1;
2104 }
2105
2106 /*
2107 * Wrap around into the second block if necessary.
2108 */
2109 if (count == ichdr1->count) {
2110 leaf1 = leaf2;
2111 entry = xfs_attr3_leaf_entryp(leaf1);
2112 index = 0;
2113 }
2114
2115 /*
2116 * Figure out if next leaf entry would be too much.
2117 */
2118 tmp = totallen + sizeof(*entry) + xfs_attr_leaf_entsize(leaf1,
2119 index);
2120 if (XFS_ATTR_ABS(half - tmp) > lastdelta)
2121 break;
2122 lastdelta = XFS_ATTR_ABS(half - tmp);
2123 totallen = tmp;
2124 #undef XFS_ATTR_ABS
2125 }
2126
2127 /*
2128 * Calculate the number of usedbytes that will end up in lower block.
2129 * If new entry not in lower block, fix up the count.
2130 */
2131 totallen -= count * sizeof(*entry);
2132 if (foundit) {
2133 totallen -= sizeof(*entry) +
2134 xfs_attr_leaf_newentsize(state->args, NULL);
2135 }
2136
2137 *countarg = count;
2138 *usedbytesarg = totallen;
2139 return foundit;
2140 }
2141
2142 /*========================================================================
2143 * Routines used for shrinking the Btree.
2144 *========================================================================*/
2145
2146 /*
2147 * Check a leaf block and its neighbors to see if the block should be
2148 * collapsed into one or the other neighbor. Always keep the block
2149 * with the smaller block number.
2150 * If the current block is over 50% full, don't try to join it, return 0.
2151 * If the block is empty, fill in the state structure and return 2.
2152 * If it can be collapsed, fill in the state structure and return 1.
2153 * If nothing can be done, return 0.
2154 *
2155 * GROT: allow for INCOMPLETE entries in calculation.
2156 */
2157 int
xfs_attr3_leaf_toosmall(struct xfs_da_state * state,int * action)2158 xfs_attr3_leaf_toosmall(
2159 struct xfs_da_state *state,
2160 int *action)
2161 {
2162 struct xfs_attr_leafblock *leaf;
2163 struct xfs_da_state_blk *blk;
2164 struct xfs_attr3_icleaf_hdr ichdr;
2165 struct xfs_buf *bp;
2166 xfs_dablk_t blkno;
2167 int bytes;
2168 int forward;
2169 int error;
2170 int retval;
2171 int i;
2172
2173 trace_xfs_attr_leaf_toosmall(state->args);
2174
2175 /*
2176 * Check for the degenerate case of the block being over 50% full.
2177 * If so, it's not worth even looking to see if we might be able
2178 * to coalesce with a sibling.
2179 */
2180 blk = &state->path.blk[ state->path.active-1 ];
2181 leaf = blk->bp->b_addr;
2182 xfs_attr3_leaf_hdr_from_disk(state->args->geo, &ichdr, leaf);
2183 bytes = xfs_attr_leaf_entries_end(ichdr.count, leaf) + ichdr.usedbytes;
2184 if (bytes > (state->args->geo->blksize >> 1)) {
2185 *action = 0; /* blk over 50%, don't try to join */
2186 return 0;
2187 }
2188
2189 /*
2190 * Check for the degenerate case of the block being empty.
2191 * If the block is empty, we'll simply delete it, no need to
2192 * coalesce it with a sibling block. We choose (arbitrarily)
2193 * to merge with the forward block unless it is NULL.
2194 */
2195 if (ichdr.count == 0) {
2196 /*
2197 * Make altpath point to the block we want to keep and
2198 * path point to the block we want to drop (this one).
2199 */
2200 forward = (ichdr.forw != 0);
2201 memcpy(&state->altpath, &state->path, sizeof(state->path));
2202 error = xfs_da3_path_shift(state, &state->altpath, forward,
2203 0, &retval);
2204 if (error)
2205 return error;
2206 if (retval) {
2207 *action = 0;
2208 } else {
2209 *action = 2;
2210 }
2211 return 0;
2212 }
2213
2214 /*
2215 * Examine each sibling block to see if we can coalesce with
2216 * at least 25% free space to spare. We need to figure out
2217 * whether to merge with the forward or the backward block.
2218 * We prefer coalescing with the lower numbered sibling so as
2219 * to shrink an attribute list over time.
2220 */
2221 /* start with smaller blk num */
2222 forward = ichdr.forw < ichdr.back;
2223 for (i = 0; i < 2; forward = !forward, i++) {
2224 struct xfs_attr3_icleaf_hdr ichdr2;
2225 if (forward)
2226 blkno = ichdr.forw;
2227 else
2228 blkno = ichdr.back;
2229 if (blkno == 0)
2230 continue;
2231 error = xfs_attr3_leaf_read(state->args->trans, state->args->dp,
2232 state->args->owner, blkno, &bp);
2233 if (error)
2234 return error;
2235
2236 xfs_attr3_leaf_hdr_from_disk(state->args->geo, &ichdr2, bp->b_addr);
2237
2238 bytes = state->args->geo->blksize -
2239 (state->args->geo->blksize >> 2) -
2240 ichdr.usedbytes - ichdr2.usedbytes -
2241 xfs_attr_leaf_entries_end(ichdr.count + ichdr2.count,
2242 leaf);
2243
2244 xfs_trans_brelse(state->args->trans, bp);
2245 if (bytes >= 0)
2246 break; /* fits with at least 25% to spare */
2247 }
2248 if (i >= 2) {
2249 *action = 0;
2250 return 0;
2251 }
2252
2253 /*
2254 * Make altpath point to the block we want to keep (the lower
2255 * numbered block) and path point to the block we want to drop.
2256 */
2257 memcpy(&state->altpath, &state->path, sizeof(state->path));
2258 if (blkno < blk->blkno) {
2259 error = xfs_da3_path_shift(state, &state->altpath, forward,
2260 0, &retval);
2261 } else {
2262 error = xfs_da3_path_shift(state, &state->path, forward,
2263 0, &retval);
2264 }
2265 if (error)
2266 return error;
2267 if (retval) {
2268 *action = 0;
2269 } else {
2270 *action = 1;
2271 }
2272 return 0;
2273 }
2274
2275 /*
2276 * Remove a name from the leaf attribute list structure.
2277 *
2278 * Return 1 if leaf is less than 37% full, 0 if >= 37% full.
2279 * If two leaves are 37% full, when combined they will leave 25% free.
2280 */
2281 int
xfs_attr3_leaf_remove(struct xfs_buf * bp,struct xfs_da_args * args)2282 xfs_attr3_leaf_remove(
2283 struct xfs_buf *bp,
2284 struct xfs_da_args *args)
2285 {
2286 struct xfs_attr_leafblock *leaf;
2287 struct xfs_attr3_icleaf_hdr ichdr;
2288 struct xfs_attr_leaf_entry *entry;
2289 int before;
2290 int after;
2291 int smallest;
2292 int entsize;
2293 int tablesize;
2294 int tmp;
2295 int i;
2296
2297 trace_xfs_attr_leaf_remove(args);
2298
2299 leaf = bp->b_addr;
2300 xfs_attr3_leaf_hdr_from_disk(args->geo, &ichdr, leaf);
2301
2302 ASSERT(ichdr.count > 0 && ichdr.count < args->geo->blksize / 8);
2303 ASSERT(args->index >= 0 && args->index < ichdr.count);
2304 ASSERT(ichdr.firstused >= xfs_attr_leaf_entries_end(ichdr.count, leaf));
2305
2306 entry = &xfs_attr3_leaf_entryp(leaf)[args->index];
2307
2308 ASSERT(be16_to_cpu(entry->nameidx) >= ichdr.firstused);
2309 ASSERT(be16_to_cpu(entry->nameidx) < args->geo->blksize);
2310
2311 /*
2312 * Scan through free region table:
2313 * check for adjacency of free'd entry with an existing one,
2314 * find smallest free region in case we need to replace it,
2315 * adjust any map that borders the entry table,
2316 */
2317 tablesize = xfs_attr_leaf_entries_end(ichdr.count, leaf);
2318 tmp = ichdr.freemap[0].size;
2319 before = after = -1;
2320 smallest = XFS_ATTR_LEAF_MAPSIZE - 1;
2321 entsize = xfs_attr_leaf_entsize(leaf, args->index);
2322 for (i = 0; i < XFS_ATTR_LEAF_MAPSIZE; i++) {
2323 ASSERT(ichdr.freemap[i].base < args->geo->blksize);
2324 ASSERT(ichdr.freemap[i].size < args->geo->blksize);
2325 if (ichdr.freemap[i].base == tablesize) {
2326 ichdr.freemap[i].base -= sizeof(xfs_attr_leaf_entry_t);
2327 ichdr.freemap[i].size += sizeof(xfs_attr_leaf_entry_t);
2328 }
2329
2330 if (ichdr.freemap[i].base + ichdr.freemap[i].size ==
2331 be16_to_cpu(entry->nameidx)) {
2332 before = i;
2333 } else if (ichdr.freemap[i].base ==
2334 (be16_to_cpu(entry->nameidx) + entsize)) {
2335 after = i;
2336 } else if (ichdr.freemap[i].size < tmp) {
2337 tmp = ichdr.freemap[i].size;
2338 smallest = i;
2339 }
2340 }
2341
2342 /*
2343 * Coalesce adjacent freemap regions,
2344 * or replace the smallest region.
2345 */
2346 if ((before >= 0) || (after >= 0)) {
2347 if ((before >= 0) && (after >= 0)) {
2348 ichdr.freemap[before].size += entsize;
2349 ichdr.freemap[before].size += ichdr.freemap[after].size;
2350 ichdr.freemap[after].base = 0;
2351 ichdr.freemap[after].size = 0;
2352 } else if (before >= 0) {
2353 ichdr.freemap[before].size += entsize;
2354 } else {
2355 ichdr.freemap[after].base = be16_to_cpu(entry->nameidx);
2356 ichdr.freemap[after].size += entsize;
2357 }
2358 } else {
2359 /*
2360 * Replace smallest region (if it is smaller than free'd entry)
2361 */
2362 if (ichdr.freemap[smallest].size < entsize) {
2363 ichdr.freemap[smallest].base = be16_to_cpu(entry->nameidx);
2364 ichdr.freemap[smallest].size = entsize;
2365 }
2366 }
2367
2368 /*
2369 * Did we remove the first entry?
2370 */
2371 if (be16_to_cpu(entry->nameidx) == ichdr.firstused)
2372 smallest = 1;
2373 else
2374 smallest = 0;
2375
2376 /*
2377 * Compress the remaining entries and zero out the removed stuff.
2378 */
2379 memset(xfs_attr3_leaf_name(leaf, args->index), 0, entsize);
2380 ichdr.usedbytes -= entsize;
2381 xfs_trans_log_buf(args->trans, bp,
2382 XFS_DA_LOGRANGE(leaf, xfs_attr3_leaf_name(leaf, args->index),
2383 entsize));
2384
2385 tmp = (ichdr.count - args->index) * sizeof(xfs_attr_leaf_entry_t);
2386 memmove(entry, entry + 1, tmp);
2387 ichdr.count--;
2388 xfs_trans_log_buf(args->trans, bp,
2389 XFS_DA_LOGRANGE(leaf, entry, tmp + sizeof(xfs_attr_leaf_entry_t)));
2390
2391 entry = &xfs_attr3_leaf_entryp(leaf)[ichdr.count];
2392 memset(entry, 0, sizeof(xfs_attr_leaf_entry_t));
2393
2394 /*
2395 * If we removed the first entry, re-find the first used byte
2396 * in the name area. Note that if the entry was the "firstused",
2397 * then we don't have a "hole" in our block resulting from
2398 * removing the name.
2399 */
2400 if (smallest) {
2401 tmp = args->geo->blksize;
2402 entry = xfs_attr3_leaf_entryp(leaf);
2403 for (i = ichdr.count - 1; i >= 0; entry++, i--) {
2404 ASSERT(be16_to_cpu(entry->nameidx) >= ichdr.firstused);
2405 ASSERT(be16_to_cpu(entry->nameidx) < args->geo->blksize);
2406
2407 if (be16_to_cpu(entry->nameidx) < tmp)
2408 tmp = be16_to_cpu(entry->nameidx);
2409 }
2410 ichdr.firstused = tmp;
2411 ASSERT(ichdr.firstused != 0);
2412 } else {
2413 ichdr.holes = 1; /* mark as needing compaction */
2414 }
2415 xfs_attr3_leaf_hdr_to_disk(args->geo, leaf, &ichdr);
2416 xfs_trans_log_buf(args->trans, bp,
2417 XFS_DA_LOGRANGE(leaf, &leaf->hdr,
2418 xfs_attr3_leaf_hdr_size(leaf)));
2419
2420 /*
2421 * Check if leaf is less than 50% full, caller may want to
2422 * "join" the leaf with a sibling if so.
2423 */
2424 tmp = ichdr.usedbytes + xfs_attr_leaf_entries_end(ichdr.count, leaf);
2425
2426 return tmp < args->geo->magicpct; /* leaf is < 37% full */
2427 }
2428
2429 /*
2430 * Move all the attribute list entries from drop_leaf into save_leaf.
2431 */
2432 void
xfs_attr3_leaf_unbalance(struct xfs_da_state * state,struct xfs_da_state_blk * drop_blk,struct xfs_da_state_blk * save_blk)2433 xfs_attr3_leaf_unbalance(
2434 struct xfs_da_state *state,
2435 struct xfs_da_state_blk *drop_blk,
2436 struct xfs_da_state_blk *save_blk)
2437 {
2438 struct xfs_attr_leafblock *drop_leaf = drop_blk->bp->b_addr;
2439 struct xfs_attr_leafblock *save_leaf = save_blk->bp->b_addr;
2440 struct xfs_attr3_icleaf_hdr drophdr;
2441 struct xfs_attr3_icleaf_hdr savehdr;
2442 struct xfs_attr_leaf_entry *entry;
2443
2444 trace_xfs_attr_leaf_unbalance(state->args);
2445
2446 xfs_attr3_leaf_hdr_from_disk(state->args->geo, &drophdr, drop_leaf);
2447 xfs_attr3_leaf_hdr_from_disk(state->args->geo, &savehdr, save_leaf);
2448 entry = xfs_attr3_leaf_entryp(drop_leaf);
2449
2450 /*
2451 * Save last hashval from dying block for later Btree fixup.
2452 */
2453 drop_blk->hashval = be32_to_cpu(entry[drophdr.count - 1].hashval);
2454
2455 /*
2456 * Check if we need a temp buffer, or can we do it in place.
2457 * Note that we don't check "leaf" for holes because we will
2458 * always be dropping it, toosmall() decided that for us already.
2459 */
2460 if (savehdr.holes == 0) {
2461 /*
2462 * dest leaf has no holes, so we add there. May need
2463 * to make some room in the entry array.
2464 */
2465 if (xfs_attr3_leaf_order(save_blk->bp, &savehdr,
2466 drop_blk->bp, &drophdr)) {
2467 xfs_attr3_leaf_moveents(state->args,
2468 drop_leaf, &drophdr, 0,
2469 save_leaf, &savehdr, 0,
2470 drophdr.count);
2471 } else {
2472 xfs_attr3_leaf_moveents(state->args,
2473 drop_leaf, &drophdr, 0,
2474 save_leaf, &savehdr,
2475 savehdr.count, drophdr.count);
2476 }
2477 } else {
2478 /*
2479 * Destination has holes, so we make a temporary copy
2480 * of the leaf and add them both to that.
2481 */
2482 struct xfs_attr_leafblock *tmp_leaf;
2483 struct xfs_attr3_icleaf_hdr tmphdr;
2484
2485 tmp_leaf = kvzalloc(state->args->geo->blksize,
2486 GFP_KERNEL | __GFP_NOFAIL);
2487
2488 /*
2489 * Copy the header into the temp leaf so that all the stuff
2490 * not in the incore header is present and gets copied back in
2491 * once we've moved all the entries.
2492 */
2493 memcpy(tmp_leaf, save_leaf, xfs_attr3_leaf_hdr_size(save_leaf));
2494
2495 memset(&tmphdr, 0, sizeof(tmphdr));
2496 tmphdr.magic = savehdr.magic;
2497 tmphdr.forw = savehdr.forw;
2498 tmphdr.back = savehdr.back;
2499 tmphdr.firstused = state->args->geo->blksize;
2500
2501 /* write the header to the temp buffer to initialise it */
2502 xfs_attr3_leaf_hdr_to_disk(state->args->geo, tmp_leaf, &tmphdr);
2503
2504 if (xfs_attr3_leaf_order(save_blk->bp, &savehdr,
2505 drop_blk->bp, &drophdr)) {
2506 xfs_attr3_leaf_moveents(state->args,
2507 drop_leaf, &drophdr, 0,
2508 tmp_leaf, &tmphdr, 0,
2509 drophdr.count);
2510 xfs_attr3_leaf_moveents(state->args,
2511 save_leaf, &savehdr, 0,
2512 tmp_leaf, &tmphdr, tmphdr.count,
2513 savehdr.count);
2514 } else {
2515 xfs_attr3_leaf_moveents(state->args,
2516 save_leaf, &savehdr, 0,
2517 tmp_leaf, &tmphdr, 0,
2518 savehdr.count);
2519 xfs_attr3_leaf_moveents(state->args,
2520 drop_leaf, &drophdr, 0,
2521 tmp_leaf, &tmphdr, tmphdr.count,
2522 drophdr.count);
2523 }
2524 memcpy(save_leaf, tmp_leaf, state->args->geo->blksize);
2525 savehdr = tmphdr; /* struct copy */
2526 kvfree(tmp_leaf);
2527 }
2528
2529 xfs_attr3_leaf_hdr_to_disk(state->args->geo, save_leaf, &savehdr);
2530 xfs_trans_log_buf(state->args->trans, save_blk->bp, 0,
2531 state->args->geo->blksize - 1);
2532
2533 /*
2534 * Copy out last hashval in each block for B-tree code.
2535 */
2536 entry = xfs_attr3_leaf_entryp(save_leaf);
2537 save_blk->hashval = be32_to_cpu(entry[savehdr.count - 1].hashval);
2538 }
2539
2540 /*========================================================================
2541 * Routines used for finding things in the Btree.
2542 *========================================================================*/
2543
2544 /*
2545 * Look up a name in a leaf attribute list structure.
2546 * This is the internal routine, it uses the caller's buffer.
2547 *
2548 * Note that duplicate keys are allowed, but only check within the
2549 * current leaf node. The Btree code must check in adjacent leaf nodes.
2550 *
2551 * Return in args->index the index into the entry[] array of either
2552 * the found entry, or where the entry should have been (insert before
2553 * that entry).
2554 *
2555 * Don't change the args->value unless we find the attribute.
2556 */
2557 int
xfs_attr3_leaf_lookup_int(struct xfs_buf * bp,struct xfs_da_args * args)2558 xfs_attr3_leaf_lookup_int(
2559 struct xfs_buf *bp,
2560 struct xfs_da_args *args)
2561 {
2562 struct xfs_attr_leafblock *leaf;
2563 struct xfs_attr3_icleaf_hdr ichdr;
2564 struct xfs_attr_leaf_entry *entry;
2565 struct xfs_attr_leaf_entry *entries;
2566 struct xfs_attr_leaf_name_local *name_loc;
2567 struct xfs_attr_leaf_name_remote *name_rmt;
2568 xfs_dahash_t hashval;
2569 int probe;
2570 int span;
2571
2572 trace_xfs_attr_leaf_lookup(args);
2573
2574 leaf = bp->b_addr;
2575 xfs_attr3_leaf_hdr_from_disk(args->geo, &ichdr, leaf);
2576 entries = xfs_attr3_leaf_entryp(leaf);
2577 if (ichdr.count >= args->geo->blksize / 8) {
2578 xfs_buf_mark_corrupt(bp);
2579 xfs_da_mark_sick(args);
2580 return -EFSCORRUPTED;
2581 }
2582
2583 /*
2584 * Binary search. (note: small blocks will skip this loop)
2585 */
2586 hashval = args->hashval;
2587 probe = span = ichdr.count / 2;
2588 for (entry = &entries[probe]; span > 4; entry = &entries[probe]) {
2589 span /= 2;
2590 if (be32_to_cpu(entry->hashval) < hashval)
2591 probe += span;
2592 else if (be32_to_cpu(entry->hashval) > hashval)
2593 probe -= span;
2594 else
2595 break;
2596 }
2597 if (!(probe >= 0 && (!ichdr.count || probe < ichdr.count))) {
2598 xfs_buf_mark_corrupt(bp);
2599 xfs_da_mark_sick(args);
2600 return -EFSCORRUPTED;
2601 }
2602 if (!(span <= 4 || be32_to_cpu(entry->hashval) == hashval)) {
2603 xfs_buf_mark_corrupt(bp);
2604 xfs_da_mark_sick(args);
2605 return -EFSCORRUPTED;
2606 }
2607
2608 /*
2609 * Since we may have duplicate hashval's, find the first matching
2610 * hashval in the leaf.
2611 */
2612 while (probe > 0 && be32_to_cpu(entry->hashval) >= hashval) {
2613 entry--;
2614 probe--;
2615 }
2616 while (probe < ichdr.count &&
2617 be32_to_cpu(entry->hashval) < hashval) {
2618 entry++;
2619 probe++;
2620 }
2621 if (probe == ichdr.count || be32_to_cpu(entry->hashval) != hashval) {
2622 args->index = probe;
2623 return -ENOATTR;
2624 }
2625
2626 /*
2627 * Duplicate keys may be present, so search all of them for a match.
2628 */
2629 for (; probe < ichdr.count && (be32_to_cpu(entry->hashval) == hashval);
2630 entry++, probe++) {
2631 /*
2632 * GROT: Add code to remove incomplete entries.
2633 */
2634 if (entry->flags & XFS_ATTR_LOCAL) {
2635 name_loc = xfs_attr3_leaf_name_local(leaf, probe);
2636 if (!xfs_attr_match(args, entry->flags,
2637 name_loc->nameval, name_loc->namelen,
2638 &name_loc->nameval[name_loc->namelen],
2639 be16_to_cpu(name_loc->valuelen)))
2640 continue;
2641 args->index = probe;
2642 return -EEXIST;
2643 } else {
2644 unsigned int valuelen;
2645
2646 name_rmt = xfs_attr3_leaf_name_remote(leaf, probe);
2647 valuelen = be32_to_cpu(name_rmt->valuelen);
2648 if (!xfs_attr_match(args, entry->flags, name_rmt->name,
2649 name_rmt->namelen, NULL, valuelen))
2650 continue;
2651 args->index = probe;
2652 args->rmtvaluelen = valuelen;
2653 args->rmtblkno = be32_to_cpu(name_rmt->valueblk);
2654 args->rmtblkcnt = xfs_attr3_rmt_blocks(
2655 args->dp->i_mount,
2656 args->rmtvaluelen);
2657 return -EEXIST;
2658 }
2659 }
2660 args->index = probe;
2661 return -ENOATTR;
2662 }
2663
2664 /*
2665 * Get the value associated with an attribute name from a leaf attribute
2666 * list structure.
2667 *
2668 * If args->valuelen is zero, only the length needs to be returned. Unlike a
2669 * lookup, we only return an error if the attribute does not exist or we can't
2670 * retrieve the value.
2671 */
2672 int
xfs_attr3_leaf_getvalue(struct xfs_buf * bp,struct xfs_da_args * args)2673 xfs_attr3_leaf_getvalue(
2674 struct xfs_buf *bp,
2675 struct xfs_da_args *args)
2676 {
2677 struct xfs_attr_leafblock *leaf;
2678 struct xfs_attr3_icleaf_hdr ichdr;
2679 struct xfs_attr_leaf_entry *entry;
2680 struct xfs_attr_leaf_name_local *name_loc;
2681 struct xfs_attr_leaf_name_remote *name_rmt;
2682
2683 leaf = bp->b_addr;
2684 xfs_attr3_leaf_hdr_from_disk(args->geo, &ichdr, leaf);
2685 ASSERT(ichdr.count < args->geo->blksize / 8);
2686 ASSERT(args->index < ichdr.count);
2687
2688 entry = &xfs_attr3_leaf_entryp(leaf)[args->index];
2689 if (entry->flags & XFS_ATTR_LOCAL) {
2690 name_loc = xfs_attr3_leaf_name_local(leaf, args->index);
2691 ASSERT(name_loc->namelen == args->namelen);
2692 ASSERT(memcmp(args->name, name_loc->nameval, args->namelen) == 0);
2693 return xfs_attr_copy_value(args,
2694 &name_loc->nameval[args->namelen],
2695 be16_to_cpu(name_loc->valuelen));
2696 }
2697
2698 name_rmt = xfs_attr3_leaf_name_remote(leaf, args->index);
2699 ASSERT(name_rmt->namelen == args->namelen);
2700 ASSERT(memcmp(args->name, name_rmt->name, args->namelen) == 0);
2701 args->rmtvaluelen = be32_to_cpu(name_rmt->valuelen);
2702 args->rmtblkno = be32_to_cpu(name_rmt->valueblk);
2703 args->rmtblkcnt = xfs_attr3_rmt_blocks(args->dp->i_mount,
2704 args->rmtvaluelen);
2705 return xfs_attr_copy_value(args, NULL, args->rmtvaluelen);
2706 }
2707
2708 /*========================================================================
2709 * Utility routines.
2710 *========================================================================*/
2711
2712 /*
2713 * Move the indicated entries from one leaf to another.
2714 * NOTE: this routine modifies both source and destination leaves.
2715 */
2716 /*ARGSUSED*/
2717 STATIC void
xfs_attr3_leaf_moveents(struct xfs_da_args * args,struct xfs_attr_leafblock * leaf_s,struct xfs_attr3_icleaf_hdr * ichdr_s,int start_s,struct xfs_attr_leafblock * leaf_d,struct xfs_attr3_icleaf_hdr * ichdr_d,int start_d,int count)2718 xfs_attr3_leaf_moveents(
2719 struct xfs_da_args *args,
2720 struct xfs_attr_leafblock *leaf_s,
2721 struct xfs_attr3_icleaf_hdr *ichdr_s,
2722 int start_s,
2723 struct xfs_attr_leafblock *leaf_d,
2724 struct xfs_attr3_icleaf_hdr *ichdr_d,
2725 int start_d,
2726 int count)
2727 {
2728 struct xfs_attr_leaf_entry *entry_s;
2729 struct xfs_attr_leaf_entry *entry_d;
2730 int desti;
2731 int tmp;
2732 int i;
2733
2734 /*
2735 * Check for nothing to do.
2736 */
2737 if (count == 0)
2738 return;
2739
2740 /*
2741 * Set up environment.
2742 */
2743 ASSERT(ichdr_s->magic == XFS_ATTR_LEAF_MAGIC ||
2744 ichdr_s->magic == XFS_ATTR3_LEAF_MAGIC);
2745 ASSERT(ichdr_s->magic == ichdr_d->magic);
2746 ASSERT(ichdr_s->count > 0 && ichdr_s->count < args->geo->blksize / 8);
2747 ASSERT(ichdr_s->firstused >=
2748 xfs_attr_leaf_entries_end(ichdr_s->count, leaf_s));
2749 ASSERT(ichdr_d->count < args->geo->blksize / 8);
2750 ASSERT(ichdr_d->firstused >=
2751 xfs_attr_leaf_entries_end(ichdr_d->count, leaf_d));
2752
2753 ASSERT(start_s < ichdr_s->count);
2754 ASSERT(start_d <= ichdr_d->count);
2755 ASSERT(count <= ichdr_s->count);
2756
2757
2758 /*
2759 * Move the entries in the destination leaf up to make a hole?
2760 */
2761 if (start_d < ichdr_d->count) {
2762 tmp = ichdr_d->count - start_d;
2763 tmp *= sizeof(xfs_attr_leaf_entry_t);
2764 entry_s = &xfs_attr3_leaf_entryp(leaf_d)[start_d];
2765 entry_d = &xfs_attr3_leaf_entryp(leaf_d)[start_d + count];
2766 memmove(entry_d, entry_s, tmp);
2767 }
2768
2769 /*
2770 * Copy all entry's in the same (sorted) order,
2771 * but allocate attribute info packed and in sequence.
2772 */
2773 entry_s = &xfs_attr3_leaf_entryp(leaf_s)[start_s];
2774 entry_d = &xfs_attr3_leaf_entryp(leaf_d)[start_d];
2775 desti = start_d;
2776 for (i = 0; i < count; entry_s++, entry_d++, desti++, i++) {
2777 ASSERT(be16_to_cpu(entry_s->nameidx) >= ichdr_s->firstused);
2778 tmp = xfs_attr_leaf_entsize(leaf_s, start_s + i);
2779 #ifdef GROT
2780 /*
2781 * Code to drop INCOMPLETE entries. Difficult to use as we
2782 * may also need to change the insertion index. Code turned
2783 * off for 6.2, should be revisited later.
2784 */
2785 if (entry_s->flags & XFS_ATTR_INCOMPLETE) { /* skip partials? */
2786 memset(xfs_attr3_leaf_name(leaf_s, start_s + i), 0, tmp);
2787 ichdr_s->usedbytes -= tmp;
2788 ichdr_s->count -= 1;
2789 entry_d--; /* to compensate for ++ in loop hdr */
2790 desti--;
2791 if ((start_s + i) < offset)
2792 result++; /* insertion index adjustment */
2793 } else {
2794 #endif /* GROT */
2795 ichdr_d->firstused -= tmp;
2796 /* both on-disk, don't endian flip twice */
2797 entry_d->hashval = entry_s->hashval;
2798 entry_d->nameidx = cpu_to_be16(ichdr_d->firstused);
2799 entry_d->flags = entry_s->flags;
2800 ASSERT(be16_to_cpu(entry_d->nameidx) + tmp
2801 <= args->geo->blksize);
2802 memmove(xfs_attr3_leaf_name(leaf_d, desti),
2803 xfs_attr3_leaf_name(leaf_s, start_s + i), tmp);
2804 ASSERT(be16_to_cpu(entry_s->nameidx) + tmp
2805 <= args->geo->blksize);
2806 memset(xfs_attr3_leaf_name(leaf_s, start_s + i), 0, tmp);
2807 ichdr_s->usedbytes -= tmp;
2808 ichdr_d->usedbytes += tmp;
2809 ichdr_s->count -= 1;
2810 ichdr_d->count += 1;
2811 tmp = xfs_attr_leaf_entries_end(ichdr_d->count, leaf_d);
2812 ASSERT(ichdr_d->firstused >= tmp);
2813 #ifdef GROT
2814 }
2815 #endif /* GROT */
2816 }
2817
2818 /*
2819 * Zero out the entries we just copied.
2820 */
2821 if (start_s == ichdr_s->count) {
2822 tmp = count * sizeof(xfs_attr_leaf_entry_t);
2823 entry_s = &xfs_attr3_leaf_entryp(leaf_s)[start_s];
2824 ASSERT(((char *)entry_s + tmp) <=
2825 ((char *)leaf_s + args->geo->blksize));
2826 memset(entry_s, 0, tmp);
2827 } else {
2828 /*
2829 * Move the remaining entries down to fill the hole,
2830 * then zero the entries at the top.
2831 */
2832 tmp = (ichdr_s->count - count) * sizeof(xfs_attr_leaf_entry_t);
2833 entry_s = &xfs_attr3_leaf_entryp(leaf_s)[start_s + count];
2834 entry_d = &xfs_attr3_leaf_entryp(leaf_s)[start_s];
2835 memmove(entry_d, entry_s, tmp);
2836
2837 tmp = count * sizeof(xfs_attr_leaf_entry_t);
2838 entry_s = &xfs_attr3_leaf_entryp(leaf_s)[ichdr_s->count];
2839 ASSERT(((char *)entry_s + tmp) <=
2840 ((char *)leaf_s + args->geo->blksize));
2841 memset(entry_s, 0, tmp);
2842 }
2843
2844 /*
2845 * Fill in the freemap information
2846 */
2847 ichdr_d->freemap[0].base =
2848 xfs_attr_leaf_entries_end(ichdr_d->count, leaf_d);
2849 ichdr_d->freemap[0].size = ichdr_d->firstused - ichdr_d->freemap[0].base;
2850 ichdr_d->freemap[1].base = 0;
2851 ichdr_d->freemap[2].base = 0;
2852 ichdr_d->freemap[1].size = 0;
2853 ichdr_d->freemap[2].size = 0;
2854 ichdr_s->holes = 1; /* leaf may not be compact */
2855 }
2856
2857 /*
2858 * Pick up the last hashvalue from a leaf block.
2859 */
2860 xfs_dahash_t
xfs_attr_leaf_lasthash(struct xfs_buf * bp,int * count)2861 xfs_attr_leaf_lasthash(
2862 struct xfs_buf *bp,
2863 int *count)
2864 {
2865 struct xfs_attr3_icleaf_hdr ichdr;
2866 struct xfs_attr_leaf_entry *entries;
2867 struct xfs_mount *mp = bp->b_mount;
2868
2869 xfs_attr3_leaf_hdr_from_disk(mp->m_attr_geo, &ichdr, bp->b_addr);
2870 entries = xfs_attr3_leaf_entryp(bp->b_addr);
2871 if (count)
2872 *count = ichdr.count;
2873 if (!ichdr.count)
2874 return 0;
2875 return be32_to_cpu(entries[ichdr.count - 1].hashval);
2876 }
2877
2878 /*
2879 * Calculate the number of bytes used to store the indicated attribute
2880 * (whether local or remote only calculate bytes in this block).
2881 */
2882 STATIC int
xfs_attr_leaf_entsize(xfs_attr_leafblock_t * leaf,int index)2883 xfs_attr_leaf_entsize(xfs_attr_leafblock_t *leaf, int index)
2884 {
2885 struct xfs_attr_leaf_entry *entries;
2886 xfs_attr_leaf_name_local_t *name_loc;
2887 xfs_attr_leaf_name_remote_t *name_rmt;
2888 int size;
2889
2890 entries = xfs_attr3_leaf_entryp(leaf);
2891 if (entries[index].flags & XFS_ATTR_LOCAL) {
2892 name_loc = xfs_attr3_leaf_name_local(leaf, index);
2893 size = xfs_attr_leaf_entsize_local(name_loc->namelen,
2894 be16_to_cpu(name_loc->valuelen));
2895 } else {
2896 name_rmt = xfs_attr3_leaf_name_remote(leaf, index);
2897 size = xfs_attr_leaf_entsize_remote(name_rmt->namelen);
2898 }
2899 return size;
2900 }
2901
2902 /*
2903 * Calculate the number of bytes that would be required to store the new
2904 * attribute (whether local or remote only calculate bytes in this block).
2905 * This routine decides as a side effect whether the attribute will be
2906 * a "local" or a "remote" attribute.
2907 */
2908 int
xfs_attr_leaf_newentsize(struct xfs_da_args * args,int * local)2909 xfs_attr_leaf_newentsize(
2910 struct xfs_da_args *args,
2911 int *local)
2912 {
2913 int size;
2914
2915 size = xfs_attr_leaf_entsize_local(args->namelen, args->valuelen);
2916 if (size < xfs_attr_leaf_entsize_local_max(args->geo->blksize)) {
2917 if (local)
2918 *local = 1;
2919 return size;
2920 }
2921 if (local)
2922 *local = 0;
2923 return xfs_attr_leaf_entsize_remote(args->namelen);
2924 }
2925
2926
2927 /*========================================================================
2928 * Manage the INCOMPLETE flag in a leaf entry
2929 *========================================================================*/
2930
2931 /*
2932 * Clear the INCOMPLETE flag on an entry in a leaf block.
2933 */
2934 int
xfs_attr3_leaf_clearflag(struct xfs_da_args * args)2935 xfs_attr3_leaf_clearflag(
2936 struct xfs_da_args *args)
2937 {
2938 struct xfs_attr_leafblock *leaf;
2939 struct xfs_attr_leaf_entry *entry;
2940 struct xfs_attr_leaf_name_remote *name_rmt;
2941 struct xfs_buf *bp;
2942 int error;
2943 #ifdef DEBUG
2944 struct xfs_attr3_icleaf_hdr ichdr;
2945 xfs_attr_leaf_name_local_t *name_loc;
2946 int namelen;
2947 char *name;
2948 #endif /* DEBUG */
2949
2950 trace_xfs_attr_leaf_clearflag(args);
2951 /*
2952 * Set up the operation.
2953 */
2954 error = xfs_attr3_leaf_read(args->trans, args->dp, args->owner,
2955 args->blkno, &bp);
2956 if (error)
2957 return error;
2958
2959 leaf = bp->b_addr;
2960 entry = &xfs_attr3_leaf_entryp(leaf)[args->index];
2961 ASSERT(entry->flags & XFS_ATTR_INCOMPLETE);
2962
2963 #ifdef DEBUG
2964 xfs_attr3_leaf_hdr_from_disk(args->geo, &ichdr, leaf);
2965 ASSERT(args->index < ichdr.count);
2966 ASSERT(args->index >= 0);
2967
2968 if (entry->flags & XFS_ATTR_LOCAL) {
2969 name_loc = xfs_attr3_leaf_name_local(leaf, args->index);
2970 namelen = name_loc->namelen;
2971 name = (char *)name_loc->nameval;
2972 } else {
2973 name_rmt = xfs_attr3_leaf_name_remote(leaf, args->index);
2974 namelen = name_rmt->namelen;
2975 name = (char *)name_rmt->name;
2976 }
2977 ASSERT(be32_to_cpu(entry->hashval) == args->hashval);
2978 ASSERT(namelen == args->namelen);
2979 ASSERT(memcmp(name, args->name, namelen) == 0);
2980 #endif /* DEBUG */
2981
2982 entry->flags &= ~XFS_ATTR_INCOMPLETE;
2983 xfs_trans_log_buf(args->trans, bp,
2984 XFS_DA_LOGRANGE(leaf, entry, sizeof(*entry)));
2985
2986 if (args->rmtblkno) {
2987 ASSERT((entry->flags & XFS_ATTR_LOCAL) == 0);
2988 name_rmt = xfs_attr3_leaf_name_remote(leaf, args->index);
2989 name_rmt->valueblk = cpu_to_be32(args->rmtblkno);
2990 name_rmt->valuelen = cpu_to_be32(args->rmtvaluelen);
2991 xfs_trans_log_buf(args->trans, bp,
2992 XFS_DA_LOGRANGE(leaf, name_rmt, sizeof(*name_rmt)));
2993 }
2994
2995 return 0;
2996 }
2997
2998 /*
2999 * Set the INCOMPLETE flag on an entry in a leaf block.
3000 */
3001 int
xfs_attr3_leaf_setflag(struct xfs_da_args * args)3002 xfs_attr3_leaf_setflag(
3003 struct xfs_da_args *args)
3004 {
3005 struct xfs_attr_leafblock *leaf;
3006 struct xfs_attr_leaf_entry *entry;
3007 struct xfs_attr_leaf_name_remote *name_rmt;
3008 struct xfs_buf *bp;
3009 int error;
3010 #ifdef DEBUG
3011 struct xfs_attr3_icleaf_hdr ichdr;
3012 #endif
3013
3014 trace_xfs_attr_leaf_setflag(args);
3015
3016 /*
3017 * Set up the operation.
3018 */
3019 error = xfs_attr3_leaf_read(args->trans, args->dp, args->owner,
3020 args->blkno, &bp);
3021 if (error)
3022 return error;
3023
3024 leaf = bp->b_addr;
3025 #ifdef DEBUG
3026 xfs_attr3_leaf_hdr_from_disk(args->geo, &ichdr, leaf);
3027 ASSERT(args->index < ichdr.count);
3028 ASSERT(args->index >= 0);
3029 #endif
3030 entry = &xfs_attr3_leaf_entryp(leaf)[args->index];
3031
3032 ASSERT((entry->flags & XFS_ATTR_INCOMPLETE) == 0);
3033 entry->flags |= XFS_ATTR_INCOMPLETE;
3034 xfs_trans_log_buf(args->trans, bp,
3035 XFS_DA_LOGRANGE(leaf, entry, sizeof(*entry)));
3036 if ((entry->flags & XFS_ATTR_LOCAL) == 0) {
3037 name_rmt = xfs_attr3_leaf_name_remote(leaf, args->index);
3038 name_rmt->valueblk = 0;
3039 name_rmt->valuelen = 0;
3040 xfs_trans_log_buf(args->trans, bp,
3041 XFS_DA_LOGRANGE(leaf, name_rmt, sizeof(*name_rmt)));
3042 }
3043
3044 return 0;
3045 }
3046
3047 /*
3048 * In a single transaction, clear the INCOMPLETE flag on the leaf entry
3049 * given by args->blkno/index and set the INCOMPLETE flag on the leaf
3050 * entry given by args->blkno2/index2.
3051 *
3052 * Note that they could be in different blocks, or in the same block.
3053 */
3054 int
xfs_attr3_leaf_flipflags(struct xfs_da_args * args)3055 xfs_attr3_leaf_flipflags(
3056 struct xfs_da_args *args)
3057 {
3058 struct xfs_attr_leafblock *leaf1;
3059 struct xfs_attr_leafblock *leaf2;
3060 struct xfs_attr_leaf_entry *entry1;
3061 struct xfs_attr_leaf_entry *entry2;
3062 struct xfs_attr_leaf_name_remote *name_rmt;
3063 struct xfs_buf *bp1;
3064 struct xfs_buf *bp2;
3065 int error;
3066 #ifdef DEBUG
3067 struct xfs_attr3_icleaf_hdr ichdr1;
3068 struct xfs_attr3_icleaf_hdr ichdr2;
3069 xfs_attr_leaf_name_local_t *name_loc;
3070 int namelen1, namelen2;
3071 char *name1, *name2;
3072 #endif /* DEBUG */
3073
3074 trace_xfs_attr_leaf_flipflags(args);
3075
3076 /*
3077 * Read the block containing the "old" attr
3078 */
3079 error = xfs_attr3_leaf_read(args->trans, args->dp, args->owner,
3080 args->blkno, &bp1);
3081 if (error)
3082 return error;
3083
3084 /*
3085 * Read the block containing the "new" attr, if it is different
3086 */
3087 if (args->blkno2 != args->blkno) {
3088 error = xfs_attr3_leaf_read(args->trans, args->dp, args->owner,
3089 args->blkno2, &bp2);
3090 if (error)
3091 return error;
3092 } else {
3093 bp2 = bp1;
3094 }
3095
3096 leaf1 = bp1->b_addr;
3097 entry1 = &xfs_attr3_leaf_entryp(leaf1)[args->index];
3098
3099 leaf2 = bp2->b_addr;
3100 entry2 = &xfs_attr3_leaf_entryp(leaf2)[args->index2];
3101
3102 #ifdef DEBUG
3103 xfs_attr3_leaf_hdr_from_disk(args->geo, &ichdr1, leaf1);
3104 ASSERT(args->index < ichdr1.count);
3105 ASSERT(args->index >= 0);
3106
3107 xfs_attr3_leaf_hdr_from_disk(args->geo, &ichdr2, leaf2);
3108 ASSERT(args->index2 < ichdr2.count);
3109 ASSERT(args->index2 >= 0);
3110
3111 if (entry1->flags & XFS_ATTR_LOCAL) {
3112 name_loc = xfs_attr3_leaf_name_local(leaf1, args->index);
3113 namelen1 = name_loc->namelen;
3114 name1 = (char *)name_loc->nameval;
3115 } else {
3116 name_rmt = xfs_attr3_leaf_name_remote(leaf1, args->index);
3117 namelen1 = name_rmt->namelen;
3118 name1 = (char *)name_rmt->name;
3119 }
3120 if (entry2->flags & XFS_ATTR_LOCAL) {
3121 name_loc = xfs_attr3_leaf_name_local(leaf2, args->index2);
3122 namelen2 = name_loc->namelen;
3123 name2 = (char *)name_loc->nameval;
3124 } else {
3125 name_rmt = xfs_attr3_leaf_name_remote(leaf2, args->index2);
3126 namelen2 = name_rmt->namelen;
3127 name2 = (char *)name_rmt->name;
3128 }
3129 ASSERT(be32_to_cpu(entry1->hashval) == be32_to_cpu(entry2->hashval));
3130 ASSERT(namelen1 == namelen2);
3131 ASSERT(memcmp(name1, name2, namelen1) == 0);
3132 #endif /* DEBUG */
3133
3134 ASSERT(entry1->flags & XFS_ATTR_INCOMPLETE);
3135 ASSERT((entry2->flags & XFS_ATTR_INCOMPLETE) == 0);
3136
3137 entry1->flags &= ~XFS_ATTR_INCOMPLETE;
3138 xfs_trans_log_buf(args->trans, bp1,
3139 XFS_DA_LOGRANGE(leaf1, entry1, sizeof(*entry1)));
3140 if (args->rmtblkno) {
3141 ASSERT((entry1->flags & XFS_ATTR_LOCAL) == 0);
3142 name_rmt = xfs_attr3_leaf_name_remote(leaf1, args->index);
3143 name_rmt->valueblk = cpu_to_be32(args->rmtblkno);
3144 name_rmt->valuelen = cpu_to_be32(args->rmtvaluelen);
3145 xfs_trans_log_buf(args->trans, bp1,
3146 XFS_DA_LOGRANGE(leaf1, name_rmt, sizeof(*name_rmt)));
3147 }
3148
3149 entry2->flags |= XFS_ATTR_INCOMPLETE;
3150 xfs_trans_log_buf(args->trans, bp2,
3151 XFS_DA_LOGRANGE(leaf2, entry2, sizeof(*entry2)));
3152 if ((entry2->flags & XFS_ATTR_LOCAL) == 0) {
3153 name_rmt = xfs_attr3_leaf_name_remote(leaf2, args->index2);
3154 name_rmt->valueblk = 0;
3155 name_rmt->valuelen = 0;
3156 xfs_trans_log_buf(args->trans, bp2,
3157 XFS_DA_LOGRANGE(leaf2, name_rmt, sizeof(*name_rmt)));
3158 }
3159
3160 return 0;
3161 }
3162