1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * NTFS attribute operations.
4 *
5 * Copyright (c) 2001-2012 Anton Altaparmakov and Tuxera Inc.
6 * Copyright (c) 2002 Richard Russon
7 * Copyright (c) 2025 LG Electronics Co., Ltd.
8 *
9 * Part of this file is based on code from the NTFS-3G.
10 * and is copyrighted by the respective authors below:
11 * Copyright (c) 2000-2010 Anton Altaparmakov
12 * Copyright (c) 2002-2005 Richard Russon
13 * Copyright (c) 2002-2008 Szabolcs Szakacsits
14 * Copyright (c) 2004-2007 Yura Pakhuchiy
15 * Copyright (c) 2007-2021 Jean-Pierre Andre
16 * Copyright (c) 2010 Erik Larsson
17 */
18
19 #include <linux/string_choices.h>
20 #include <linux/writeback.h>
21 #include <linux/iomap.h>
22
23 #include "attrib.h"
24 #include "attrlist.h"
25 #include "lcnalloc.h"
26 #include "debug.h"
27 #include "mft.h"
28 #include "ntfs.h"
29 #include "iomap.h"
30
31 __le16 AT_UNNAMED[] = { cpu_to_le16('\0') };
32
33 /*
34 * Maximum size allowed for reading attributes by ntfs_attr_readall().
35 * Extended attribute, reparse point are not expected to be larger than this size.
36 */
37
38 #define NTFS_ATTR_READALL_MAX_SIZE (64 * 1024)
39
40 /*
41 * ntfs_map_runlist_nolock - map (a part of) a runlist of an ntfs inode
42 * @ni: ntfs inode for which to map (part of) a runlist
43 * @vcn: map runlist part containing this vcn
44 * @ctx: active attribute search context if present or NULL if not
45 *
46 * Map the part of a runlist containing the @vcn of the ntfs inode @ni.
47 *
48 * If @ctx is specified, it is an active search context of @ni and its base mft
49 * record. This is needed when ntfs_map_runlist_nolock() encounters unmapped
50 * runlist fragments and allows their mapping. If you do not have the mft
51 * record mapped, you can specify @ctx as NULL and ntfs_map_runlist_nolock()
52 * will perform the necessary mapping and unmapping.
53 *
54 * Note, ntfs_map_runlist_nolock() saves the state of @ctx on entry and
55 * restores it before returning. Thus, @ctx will be left pointing to the same
56 * attribute on return as on entry. However, the actual pointers in @ctx may
57 * point to different memory locations on return, so you must remember to reset
58 * any cached pointers from the @ctx, i.e. after the call to
59 * ntfs_map_runlist_nolock(), you will probably want to do:
60 * m = ctx->mrec;
61 * a = ctx->attr;
62 * Assuming you cache ctx->attr in a variable @a of type struct attr_record *
63 * and that you cache ctx->mrec in a variable @m of type struct mft_record *.
64 *
65 * Return 0 on success and -errno on error. There is one special error code
66 * which is not an error as such. This is -ENOENT. It means that @vcn is out
67 * of bounds of the runlist.
68 *
69 * Note the runlist can be NULL after this function returns if @vcn is zero and
70 * the attribute has zero allocated size, i.e. there simply is no runlist.
71 *
72 * WARNING: If @ctx is supplied, regardless of whether success or failure is
73 * returned, you need to check IS_ERR(@ctx->mrec) and if 'true' the @ctx
74 * is no longer valid, i.e. you need to either call
75 * ntfs_attr_reinit_search_ctx() or ntfs_attr_put_search_ctx() on it.
76 * In that case PTR_ERR(@ctx->mrec) will give you the error code for
77 * why the mapping of the old inode failed.
78 *
79 * Locking: - The runlist described by @ni must be locked for writing on entry
80 * and is locked on return. Note the runlist will be modified.
81 * - If @ctx is NULL, the base mft record of @ni must not be mapped on
82 * entry and it will be left unmapped on return.
83 * - If @ctx is not NULL, the base mft record must be mapped on entry
84 * and it will be left mapped on return.
85 */
ntfs_map_runlist_nolock(struct ntfs_inode * ni,s64 vcn,struct ntfs_attr_search_ctx * ctx)86 int ntfs_map_runlist_nolock(struct ntfs_inode *ni, s64 vcn, struct ntfs_attr_search_ctx *ctx)
87 {
88 s64 end_vcn;
89 unsigned long flags;
90 struct ntfs_inode *base_ni;
91 struct mft_record *m;
92 struct attr_record *a;
93 struct runlist_element *rl;
94 struct folio *put_this_folio = NULL;
95 int err = 0;
96 bool ctx_is_temporary = false, ctx_needs_reset = false;
97 struct ntfs_attr_search_ctx old_ctx = { NULL, };
98 size_t new_rl_count;
99
100 ntfs_debug("Mapping runlist part containing vcn 0x%llx.",
101 (unsigned long long)vcn);
102 if (!NInoAttr(ni))
103 base_ni = ni;
104 else
105 base_ni = ni->ext.base_ntfs_ino;
106 if (!ctx) {
107 ctx_is_temporary = ctx_needs_reset = true;
108 m = map_mft_record(base_ni);
109 if (IS_ERR(m))
110 return PTR_ERR(m);
111 ctx = ntfs_attr_get_search_ctx(base_ni, m);
112 if (unlikely(!ctx)) {
113 err = -ENOMEM;
114 goto err_out;
115 }
116 } else {
117 s64 allocated_size_vcn;
118
119 WARN_ON(IS_ERR(ctx->mrec));
120 a = ctx->attr;
121 if (!a->non_resident) {
122 err = -EIO;
123 goto err_out;
124 }
125 end_vcn = le64_to_cpu(a->data.non_resident.highest_vcn);
126 read_lock_irqsave(&ni->size_lock, flags);
127 allocated_size_vcn =
128 ntfs_bytes_to_cluster(ni->vol, ni->allocated_size);
129 read_unlock_irqrestore(&ni->size_lock, flags);
130 if (!a->data.non_resident.lowest_vcn && end_vcn <= 0)
131 end_vcn = allocated_size_vcn - 1;
132 /*
133 * If we already have the attribute extent containing @vcn in
134 * @ctx, no need to look it up again. We slightly cheat in
135 * that if vcn exceeds the allocated size, we will refuse to
136 * map the runlist below, so there is definitely no need to get
137 * the right attribute extent.
138 */
139 if (vcn >= allocated_size_vcn || (a->type == ni->type &&
140 a->name_length == ni->name_len &&
141 !memcmp((u8 *)a + le16_to_cpu(a->name_offset),
142 ni->name, ni->name_len) &&
143 le64_to_cpu(a->data.non_resident.lowest_vcn)
144 <= vcn && end_vcn >= vcn))
145 ctx_needs_reset = false;
146 else {
147 /* Save the old search context. */
148 old_ctx = *ctx;
149 /*
150 * If the currently mapped (extent) inode is not the
151 * base inode we will unmap it when we reinitialize the
152 * search context which means we need to get a
153 * reference to the page containing the mapped mft
154 * record so we do not accidentally drop changes to the
155 * mft record when it has not been marked dirty yet.
156 */
157 if (old_ctx.base_ntfs_ino && old_ctx.ntfs_ino !=
158 old_ctx.base_ntfs_ino) {
159 put_this_folio = old_ctx.ntfs_ino->folio;
160 folio_get(put_this_folio);
161 }
162 /*
163 * Reinitialize the search context so we can lookup the
164 * needed attribute extent.
165 */
166 ntfs_attr_reinit_search_ctx(ctx);
167 ctx_needs_reset = true;
168 }
169 }
170 if (ctx_needs_reset) {
171 err = ntfs_attr_lookup(ni->type, ni->name, ni->name_len,
172 CASE_SENSITIVE, vcn, NULL, 0, ctx);
173 if (unlikely(err)) {
174 if (err == -ENOENT)
175 err = -EIO;
176 goto err_out;
177 }
178 if (unlikely(!ctx->attr->non_resident)) {
179 err = -EIO;
180 goto err_out;
181 }
182 }
183 a = ctx->attr;
184 /*
185 * Only decompress the mapping pairs if @vcn is inside it. Otherwise
186 * we get into problems when we try to map an out of bounds vcn because
187 * we then try to map the already mapped runlist fragment and
188 * ntfs_mapping_pairs_decompress() fails.
189 */
190 end_vcn = le64_to_cpu(a->data.non_resident.highest_vcn) + 1;
191 if (unlikely(vcn && vcn >= end_vcn)) {
192 err = -ENOENT;
193 goto err_out;
194 }
195 rl = ntfs_mapping_pairs_decompress(ni->vol, a, &ni->runlist, &new_rl_count);
196 if (IS_ERR(rl))
197 err = PTR_ERR(rl);
198 else {
199 ni->runlist.rl = rl;
200 ni->runlist.count = new_rl_count;
201 }
202 err_out:
203 if (ctx_is_temporary) {
204 if (likely(ctx))
205 ntfs_attr_put_search_ctx(ctx);
206 unmap_mft_record(base_ni);
207 } else if (ctx_needs_reset) {
208 /*
209 * If there is no attribute list, restoring the search context
210 * is accomplished simply by copying the saved context back over
211 * the caller supplied context. If there is an attribute list,
212 * things are more complicated as we need to deal with mapping
213 * of mft records and resulting potential changes in pointers.
214 */
215 if (NInoAttrList(base_ni)) {
216 /*
217 * If the currently mapped (extent) inode is not the
218 * one we had before, we need to unmap it and map the
219 * old one.
220 */
221 if (ctx->ntfs_ino != old_ctx.ntfs_ino) {
222 /*
223 * If the currently mapped inode is not the
224 * base inode, unmap it.
225 */
226 if (ctx->base_ntfs_ino && ctx->ntfs_ino !=
227 ctx->base_ntfs_ino) {
228 unmap_extent_mft_record(ctx->ntfs_ino);
229 ctx->mrec = ctx->base_mrec;
230 WARN_ON(!ctx->mrec);
231 }
232 /*
233 * If the old mapped inode is not the base
234 * inode, map it.
235 */
236 if (old_ctx.base_ntfs_ino &&
237 old_ctx.ntfs_ino != old_ctx.base_ntfs_ino) {
238 retry_map:
239 ctx->mrec = map_mft_record(old_ctx.ntfs_ino);
240 /*
241 * Something bad has happened. If out
242 * of memory retry till it succeeds.
243 * Any other errors are fatal and we
244 * return the error code in ctx->mrec.
245 * Let the caller deal with it... We
246 * just need to fudge things so the
247 * caller can reinit and/or put the
248 * search context safely.
249 */
250 if (IS_ERR(ctx->mrec)) {
251 if (PTR_ERR(ctx->mrec) == -ENOMEM) {
252 schedule();
253 goto retry_map;
254 } else
255 old_ctx.ntfs_ino =
256 old_ctx.base_ntfs_ino;
257 }
258 }
259 }
260 /* Update the changed pointers in the saved context. */
261 if (ctx->mrec != old_ctx.mrec) {
262 if (!IS_ERR(ctx->mrec))
263 old_ctx.attr = (struct attr_record *)(
264 (u8 *)ctx->mrec +
265 ((u8 *)old_ctx.attr -
266 (u8 *)old_ctx.mrec));
267 old_ctx.mrec = ctx->mrec;
268 }
269 }
270 /* Restore the search context to the saved one. */
271 *ctx = old_ctx;
272 /*
273 * We drop the reference on the page we took earlier. In the
274 * case that IS_ERR(ctx->mrec) is true this means we might lose
275 * some changes to the mft record that had been made between
276 * the last time it was marked dirty/written out and now. This
277 * at this stage is not a problem as the mapping error is fatal
278 * enough that the mft record cannot be written out anyway and
279 * the caller is very likely to shutdown the whole inode
280 * immediately and mark the volume dirty for chkdsk to pick up
281 * the pieces anyway.
282 */
283 if (put_this_folio)
284 folio_put(put_this_folio);
285 }
286 return err;
287 }
288
289 /*
290 * ntfs_map_runlist - map (a part of) a runlist of an ntfs inode
291 * @ni: ntfs inode for which to map (part of) a runlist
292 * @vcn: map runlist part containing this vcn
293 *
294 * Map the part of a runlist containing the @vcn of the ntfs inode @ni.
295 *
296 * Return 0 on success and -errno on error. There is one special error code
297 * which is not an error as such. This is -ENOENT. It means that @vcn is out
298 * of bounds of the runlist.
299 *
300 * Locking: - The runlist must be unlocked on entry and is unlocked on return.
301 * - This function takes the runlist lock for writing and may modify
302 * the runlist.
303 */
ntfs_map_runlist(struct ntfs_inode * ni,s64 vcn)304 int ntfs_map_runlist(struct ntfs_inode *ni, s64 vcn)
305 {
306 int err = 0;
307
308 down_write(&ni->runlist.lock);
309 /* Make sure someone else didn't do the work while we were sleeping. */
310 if (likely(ntfs_rl_vcn_to_lcn(ni->runlist.rl, vcn) <=
311 LCN_RL_NOT_MAPPED))
312 err = ntfs_map_runlist_nolock(ni, vcn, NULL);
313 up_write(&ni->runlist.lock);
314 return err;
315 }
316
ntfs_attr_vcn_to_rl(struct ntfs_inode * ni,s64 vcn,s64 * lcn)317 struct runlist_element *ntfs_attr_vcn_to_rl(struct ntfs_inode *ni, s64 vcn, s64 *lcn)
318 {
319 struct runlist_element *rl = ni->runlist.rl;
320 int err;
321 bool is_retry = false;
322
323 if (!rl) {
324 err = ntfs_attr_map_whole_runlist(ni);
325 if (err)
326 return ERR_PTR(-ENOENT);
327 rl = ni->runlist.rl;
328 }
329
330 remap_rl:
331 /* Seek to element containing target vcn. */
332 while (rl->length && rl[1].vcn <= vcn)
333 rl++;
334 *lcn = ntfs_rl_vcn_to_lcn(rl, vcn);
335
336 if (*lcn <= LCN_RL_NOT_MAPPED && is_retry == false) {
337 is_retry = true;
338 if (!ntfs_map_runlist_nolock(ni, vcn, NULL)) {
339 rl = ni->runlist.rl;
340 goto remap_rl;
341 }
342 }
343
344 return rl;
345 }
346
347 /*
348 * ntfs_attr_vcn_to_lcn_nolock - convert a vcn into a lcn given an ntfs inode
349 * @ni: ntfs inode of the attribute whose runlist to search
350 * @vcn: vcn to convert
351 * @write_locked: true if the runlist is locked for writing
352 *
353 * Find the virtual cluster number @vcn in the runlist of the ntfs attribute
354 * described by the ntfs inode @ni and return the corresponding logical cluster
355 * number (lcn).
356 *
357 * If the @vcn is not mapped yet, the attempt is made to map the attribute
358 * extent containing the @vcn and the vcn to lcn conversion is retried.
359 *
360 * If @write_locked is true the caller has locked the runlist for writing and
361 * if false for reading.
362 *
363 * Since lcns must be >= 0, we use negative return codes with special meaning:
364 *
365 * Return code Meaning / Description
366 * ==========================================
367 * LCN_HOLE Hole / not allocated on disk.
368 * LCN_ENOENT There is no such vcn in the runlist, i.e. @vcn is out of bounds.
369 * LCN_ENOMEM Not enough memory to map runlist.
370 * LCN_EIO Critical error (runlist/file is corrupt, i/o error, etc).
371 *
372 * Locking: - The runlist must be locked on entry and is left locked on return.
373 * - If @write_locked is 'false', i.e. the runlist is locked for reading,
374 * the lock may be dropped inside the function so you cannot rely on
375 * the runlist still being the same when this function returns.
376 */
ntfs_attr_vcn_to_lcn_nolock(struct ntfs_inode * ni,const s64 vcn,const bool write_locked)377 s64 ntfs_attr_vcn_to_lcn_nolock(struct ntfs_inode *ni, const s64 vcn,
378 const bool write_locked)
379 {
380 s64 lcn;
381 unsigned long flags;
382 bool is_retry = false;
383
384 ntfs_debug("Entering for i_ino 0x%llx, vcn 0x%llx, %s_locked.",
385 ni->mft_no, (unsigned long long)vcn,
386 write_locked ? "write" : "read");
387 if (!ni->runlist.rl) {
388 read_lock_irqsave(&ni->size_lock, flags);
389 if (!ni->allocated_size) {
390 read_unlock_irqrestore(&ni->size_lock, flags);
391 return LCN_ENOENT;
392 }
393 read_unlock_irqrestore(&ni->size_lock, flags);
394 }
395 retry_remap:
396 /* Convert vcn to lcn. If that fails map the runlist and retry once. */
397 lcn = ntfs_rl_vcn_to_lcn(ni->runlist.rl, vcn);
398 if (likely(lcn >= LCN_HOLE)) {
399 ntfs_debug("Done, lcn 0x%llx.", (long long)lcn);
400 return lcn;
401 }
402 if (lcn != LCN_RL_NOT_MAPPED) {
403 if (lcn != LCN_ENOENT)
404 lcn = LCN_EIO;
405 } else if (!is_retry) {
406 int err;
407
408 if (!write_locked) {
409 up_read(&ni->runlist.lock);
410 down_write(&ni->runlist.lock);
411 if (unlikely(ntfs_rl_vcn_to_lcn(ni->runlist.rl, vcn) !=
412 LCN_RL_NOT_MAPPED)) {
413 up_write(&ni->runlist.lock);
414 down_read(&ni->runlist.lock);
415 goto retry_remap;
416 }
417 }
418 err = ntfs_map_runlist_nolock(ni, vcn, NULL);
419 if (!write_locked) {
420 up_write(&ni->runlist.lock);
421 down_read(&ni->runlist.lock);
422 }
423 if (likely(!err)) {
424 is_retry = true;
425 goto retry_remap;
426 }
427 if (err == -ENOENT)
428 lcn = LCN_ENOENT;
429 else if (err == -ENOMEM)
430 lcn = LCN_ENOMEM;
431 else
432 lcn = LCN_EIO;
433 }
434 if (lcn != LCN_ENOENT)
435 ntfs_error(ni->vol->sb, "Failed with error code %lli.",
436 (long long)lcn);
437 return lcn;
438 }
439
__ntfs_attr_find_vcn_nolock(struct runlist * runlist,const s64 vcn)440 struct runlist_element *__ntfs_attr_find_vcn_nolock(struct runlist *runlist, const s64 vcn)
441 {
442 size_t lower_idx, upper_idx, idx;
443 struct runlist_element *run;
444 int rh = runlist->rl_hint;
445
446 if (runlist->count <= 1)
447 return ERR_PTR(-ENOENT);
448
449 if (runlist->count - 1 > rh && runlist->rl[rh].vcn <= vcn) {
450 if (vcn < runlist->rl[rh].vcn + runlist->rl[rh].length)
451 return &runlist->rl[rh];
452 if (runlist->count - 2 == rh)
453 return ERR_PTR(-ENOENT);
454
455 lower_idx = rh + 1;
456 } else {
457 run = &runlist->rl[0];
458 if (vcn < run->vcn)
459 return ERR_PTR(-ENOENT);
460 else if (vcn < run->vcn + run->length) {
461 runlist->rl_hint = 0;
462 return run;
463 }
464
465 lower_idx = 1;
466 }
467
468 run = &runlist->rl[runlist->count - 2];
469 if (vcn >= run->vcn && vcn < run->vcn + run->length) {
470 runlist->rl_hint = runlist->count - 2;
471 return run;
472 }
473 if (vcn >= run->vcn + run->length)
474 return ERR_PTR(-ENOENT);
475
476 upper_idx = runlist->count - 2;
477
478 while (lower_idx <= upper_idx) {
479 idx = (lower_idx + upper_idx) >> 1;
480 run = &runlist->rl[idx];
481
482 if (vcn < run->vcn)
483 upper_idx = idx - 1;
484 else if (vcn >= run->vcn + run->length)
485 lower_idx = idx + 1;
486 else {
487 runlist->rl_hint = idx;
488 return run;
489 }
490 }
491
492 return ERR_PTR(-ENOENT);
493 }
494
495 /*
496 * ntfs_attr_find_vcn_nolock - find a vcn in the runlist of an ntfs inode
497 * @ni: ntfs inode describing the runlist to search
498 * @vcn: vcn to find
499 * @ctx: active attribute search context if present or NULL if not
500 *
501 * Find the virtual cluster number @vcn in the runlist described by the ntfs
502 * inode @ni and return the address of the runlist element containing the @vcn.
503 *
504 * If the @vcn is not mapped yet, the attempt is made to map the attribute
505 * extent containing the @vcn and the vcn to lcn conversion is retried.
506 *
507 * If @ctx is specified, it is an active search context of @ni and its base mft
508 * record. This is needed when ntfs_attr_find_vcn_nolock() encounters unmapped
509 * runlist fragments and allows their mapping. If you do not have the mft
510 * record mapped, you can specify @ctx as NULL and ntfs_attr_find_vcn_nolock()
511 * will perform the necessary mapping and unmapping.
512 *
513 * Note, ntfs_attr_find_vcn_nolock() saves the state of @ctx on entry and
514 * restores it before returning. Thus, @ctx will be left pointing to the same
515 * attribute on return as on entry. However, the actual pointers in @ctx may
516 * point to different memory locations on return, so you must remember to reset
517 * any cached pointers from the @ctx, i.e. after the call to
518 * ntfs_attr_find_vcn_nolock(), you will probably want to do:
519 * m = ctx->mrec;
520 * a = ctx->attr;
521 * Assuming you cache ctx->attr in a variable @a of type attr_record * and that
522 * you cache ctx->mrec in a variable @m of type struct mft_record *.
523 * Note you need to distinguish between the lcn of the returned runlist element
524 * being >= 0 and LCN_HOLE. In the later case you have to return zeroes on
525 * read and allocate clusters on write.
526 */
ntfs_attr_find_vcn_nolock(struct ntfs_inode * ni,const s64 vcn,struct ntfs_attr_search_ctx * ctx)527 struct runlist_element *ntfs_attr_find_vcn_nolock(struct ntfs_inode *ni, const s64 vcn,
528 struct ntfs_attr_search_ctx *ctx)
529 {
530 unsigned long flags;
531 struct runlist_element *rl;
532 int err = 0;
533 bool is_retry = false;
534
535 ntfs_debug("Entering for i_ino 0x%llx, vcn 0x%llx, with%s ctx.",
536 ni->mft_no, (unsigned long long)vcn, ctx ? "" : "out");
537 if (!ni->runlist.rl) {
538 read_lock_irqsave(&ni->size_lock, flags);
539 if (!ni->allocated_size) {
540 read_unlock_irqrestore(&ni->size_lock, flags);
541 return ERR_PTR(-ENOENT);
542 }
543 read_unlock_irqrestore(&ni->size_lock, flags);
544 }
545
546 retry_remap:
547 rl = ni->runlist.rl;
548 if (likely(rl && vcn >= rl[0].vcn)) {
549 rl = __ntfs_attr_find_vcn_nolock(&ni->runlist, vcn);
550 if (IS_ERR(rl))
551 err = PTR_ERR(rl);
552 else if (rl->lcn >= LCN_HOLE)
553 return rl;
554 else if (rl->lcn <= LCN_ENOENT)
555 err = -EIO;
556 }
557 if (!err && !is_retry) {
558 /*
559 * If the search context is invalid we cannot map the unmapped
560 * region.
561 */
562 if (ctx && IS_ERR(ctx->mrec))
563 err = PTR_ERR(ctx->mrec);
564 else {
565 /*
566 * The @vcn is in an unmapped region, map the runlist
567 * and retry.
568 */
569 err = ntfs_map_runlist_nolock(ni, vcn, ctx);
570 if (likely(!err)) {
571 is_retry = true;
572 goto retry_remap;
573 }
574 }
575 if (err == -EINVAL)
576 err = -EIO;
577 } else if (!err)
578 err = -EIO;
579 if (err != -ENOENT)
580 ntfs_error(ni->vol->sb, "Failed with error code %i.", err);
581 return ERR_PTR(err);
582 }
583
ntfs_resident_attr_min_value_length(const __le32 type)584 static u32 ntfs_resident_attr_min_value_length(const __le32 type)
585 {
586 switch (type) {
587 case AT_STANDARD_INFORMATION:
588 return offsetof(struct standard_information, ver) +
589 sizeof(((struct standard_information *)0)->ver.v1.reserved12);
590 case AT_FILE_NAME:
591 return offsetof(struct file_name_attr, file_name) +
592 sizeof(__le16) * 1;
593 case AT_VOLUME_INFORMATION:
594 return sizeof(struct volume_information);
595 case AT_INDEX_ROOT:
596 return sizeof(struct index_root);
597 case AT_EA_INFORMATION:
598 return sizeof(struct ea_information);
599 default:
600 return 0;
601 }
602 }
603
ntfs_attr_type_is_resident_only(const __le32 type)604 static bool ntfs_attr_type_is_resident_only(const __le32 type)
605 {
606 switch (type) {
607 case AT_STANDARD_INFORMATION:
608 case AT_FILE_NAME:
609 case AT_OBJECT_ID:
610 case AT_VOLUME_NAME:
611 case AT_VOLUME_INFORMATION:
612 case AT_INDEX_ROOT:
613 case AT_EA_INFORMATION:
614 return true;
615 default:
616 return false;
617 }
618 }
619
ntfs_file_name_attr_value_is_valid(const u8 * value,const u32 value_length)620 static bool ntfs_file_name_attr_value_is_valid(const u8 *value, const u32 value_length)
621 {
622 const struct file_name_attr *fn;
623 u32 file_name_size;
624
625 fn = (const struct file_name_attr *)value;
626 file_name_size = fn->file_name_length * sizeof(__le16);
627
628 return file_name_size <=
629 value_length - offsetof(struct file_name_attr, file_name);
630 }
631
ntfs_volume_name_attr_value_is_valid(const u32 value_length)632 static bool ntfs_volume_name_attr_value_is_valid(const u32 value_length)
633 {
634 if (value_length & 1)
635 return false;
636
637 return value_length <= NTFS_MAX_LABEL_LEN * sizeof(__le16);
638 }
639
ntfs_index_root_attr_value_is_valid(const u8 * value,const u32 value_length)640 static bool ntfs_index_root_attr_value_is_valid(const u8 *value, const u32 value_length)
641 {
642 const struct index_root *ir;
643 u32 index_size;
644 u32 entries_offset;
645 u32 index_length;
646 u32 allocated_size;
647
648 ir = (const struct index_root *)value;
649 index_size = value_length - offsetof(struct index_root, index);
650 entries_offset = le32_to_cpu(ir->index.entries_offset);
651 index_length = le32_to_cpu(ir->index.index_length);
652 allocated_size = le32_to_cpu(ir->index.allocated_size);
653
654 if ((entries_offset | index_length | allocated_size) & 7 ||
655 entries_offset < sizeof(struct index_header) ||
656 entries_offset > index_length ||
657 index_length > allocated_size ||
658 allocated_size > index_size ||
659 index_length - entries_offset < sizeof(struct index_entry_header))
660 return false;
661
662 return true;
663 }
664
665 struct ntfs_resident_attr_value {
666 const u8 *data;
667 u32 len;
668 };
669
ntfs_resident_attr_value_get(const struct attr_record * a,struct ntfs_resident_attr_value * value)670 static bool ntfs_resident_attr_value_get(const struct attr_record *a,
671 struct ntfs_resident_attr_value *value)
672 {
673 u32 attr_len;
674 u16 value_offset;
675
676 attr_len = le32_to_cpu(a->length);
677 if (attr_len < offsetof(struct attr_record, data.resident.reserved) +
678 sizeof(a->data.resident.reserved))
679 return false;
680
681 value->len = le32_to_cpu(a->data.resident.value_length);
682 value_offset = le16_to_cpu(a->data.resident.value_offset);
683
684 if (value->len > attr_len || value_offset > attr_len - value->len)
685 return false;
686
687 value->data = (const u8 *)a + value_offset;
688 return true;
689 }
690
ntfs_non_resident_attr_value_is_valid(const struct attr_record * a)691 static bool ntfs_non_resident_attr_value_is_valid(const struct attr_record *a)
692 {
693 u32 attr_len;
694 u32 min_len;
695 u16 mp_offset;
696
697 attr_len = le32_to_cpu(a->length);
698 min_len = offsetof(struct attr_record, data.non_resident.initialized_size) +
699 sizeof(a->data.non_resident.initialized_size);
700 if (attr_len < min_len)
701 return false;
702
703 mp_offset = le16_to_cpu(a->data.non_resident.mapping_pairs_offset);
704 return mp_offset >= min_len && mp_offset <= attr_len;
705 }
706
ntfs_attr_value_is_valid(struct ntfs_volume * vol,const struct attr_record * a,const u64 mft_no)707 static bool ntfs_attr_value_is_valid(struct ntfs_volume *vol,
708 const struct attr_record *a,
709 const u64 mft_no)
710 {
711 struct ntfs_resident_attr_value value;
712 u32 min_len;
713
714 if (a->non_resident) {
715 if (ntfs_attr_type_is_resident_only(a->type))
716 goto corrupt;
717 if (!ntfs_non_resident_attr_value_is_valid(a))
718 goto corrupt;
719 return true;
720 }
721
722 if (!ntfs_resident_attr_value_get(a, &value))
723 goto corrupt;
724
725 min_len = ntfs_resident_attr_min_value_length(a->type);
726 if (min_len && value.len < min_len)
727 goto corrupt;
728
729 switch (a->type) {
730 case AT_FILE_NAME:
731 if (!ntfs_file_name_attr_value_is_valid(value.data, value.len))
732 goto corrupt;
733 break;
734 case AT_VOLUME_NAME:
735 if (!ntfs_volume_name_attr_value_is_valid(value.len))
736 goto corrupt;
737 break;
738 case AT_INDEX_ROOT:
739 if (!ntfs_index_root_attr_value_is_valid(value.data, value.len))
740 goto corrupt;
741 break;
742 }
743 return true;
744
745 corrupt:
746 ntfs_error(vol->sb,
747 "Corrupt %#x attribute in MFT record %llu\n",
748 le32_to_cpu(a->type), mft_no);
749 return false;
750 }
751
752 /*
753 * ntfs_attr_find - find (next) attribute in mft record
754 * @type: attribute type to find
755 * @name: attribute name to find (optional, i.e. NULL means don't care)
756 * @name_len: attribute name length (only needed if @name present)
757 * @ic: IGNORE_CASE or CASE_SENSITIVE (ignored if @name not present)
758 * @val: attribute value to find (optional, resident attributes only)
759 * @val_len: attribute value length
760 * @ctx: search context with mft record and attribute to search from
761 *
762 * You should not need to call this function directly. Use ntfs_attr_lookup()
763 * instead.
764 *
765 * ntfs_attr_find() takes a search context @ctx as parameter and searches the
766 * mft record specified by @ctx->mrec, beginning at @ctx->attr, for an
767 * attribute of @type, optionally @name and @val.
768 *
769 * If the attribute is found, ntfs_attr_find() returns 0 and @ctx->attr will
770 * point to the found attribute.
771 *
772 * If the attribute is not found, ntfs_attr_find() returns -ENOENT and
773 * @ctx->attr will point to the attribute before which the attribute being
774 * searched for would need to be inserted if such an action were to be desired.
775 *
776 * On actual error, ntfs_attr_find() returns -EIO. In this case @ctx->attr is
777 * undefined and in particular do not rely on it not changing.
778 *
779 * If @ctx->is_first is 'true', the search begins with @ctx->attr itself. If it
780 * is 'false', the search begins after @ctx->attr.
781 *
782 * If @ic is IGNORE_CASE, the @name comparisson is not case sensitive and
783 * @ctx->ntfs_ino must be set to the ntfs inode to which the mft record
784 * @ctx->mrec belongs. This is so we can get at the ntfs volume and hence at
785 * the upcase table. If @ic is CASE_SENSITIVE, the comparison is case
786 * sensitive. When @name is present, @name_len is the @name length in Unicode
787 * characters.
788 *
789 * If @name is not present (NULL), we assume that the unnamed attribute is
790 * being searched for.
791 *
792 * Finally, the resident attribute value @val is looked for, if present. If
793 * @val is not present (NULL), @val_len is ignored.
794 *
795 * ntfs_attr_find() only searches the specified mft record and it ignores the
796 * presence of an attribute list attribute (unless it is the one being searched
797 * for, obviously). If you need to take attribute lists into consideration,
798 * use ntfs_attr_lookup() instead (see below). This also means that you cannot
799 * use ntfs_attr_find() to search for extent records of non-resident
800 * attributes, as extents with lowest_vcn != 0 are usually described by the
801 * attribute list attribute only. - Note that it is possible that the first
802 * extent is only in the attribute list while the last extent is in the base
803 * mft record, so do not rely on being able to find the first extent in the
804 * base mft record.
805 *
806 * Warning: Never use @val when looking for attribute types which can be
807 * non-resident as this most likely will result in a crash!
808 */
ntfs_attr_find(const __le32 type,const __le16 * name,const u32 name_len,const u32 ic,const u8 * val,const u32 val_len,struct ntfs_attr_search_ctx * ctx)809 static int ntfs_attr_find(const __le32 type, const __le16 *name,
810 const u32 name_len, const u32 ic,
811 const u8 *val, const u32 val_len, struct ntfs_attr_search_ctx *ctx)
812 {
813 struct attr_record *a;
814 struct ntfs_volume *vol = ctx->ntfs_ino->vol;
815 __le16 *upcase = vol->upcase;
816 u32 upcase_len = vol->upcase_len;
817 unsigned int space;
818 u16 name_offset;
819 u32 attr_len;
820 u32 name_size;
821
822 /*
823 * Iterate over attributes in mft record starting at @ctx->attr, or the
824 * attribute following that, if @ctx->is_first is 'true'.
825 */
826 if (ctx->is_first) {
827 a = ctx->attr;
828 ctx->is_first = false;
829 } else
830 a = (struct attr_record *)((u8 *)ctx->attr +
831 le32_to_cpu(ctx->attr->length));
832 for (;; a = (struct attr_record *)((u8 *)a + le32_to_cpu(a->length))) {
833 if ((u8 *)a < (u8 *)ctx->mrec || (u8 *)a > (u8 *)ctx->mrec +
834 le32_to_cpu(ctx->mrec->bytes_allocated))
835 break;
836
837 space = le32_to_cpu(ctx->mrec->bytes_in_use) - ((u8 *)a - (u8 *)ctx->mrec);
838 if ((space < offsetof(struct attr_record, data.resident.reserved) + 1 ||
839 space < le32_to_cpu(a->length)) && (space < 4 || a->type != AT_END))
840 break;
841
842 ctx->attr = a;
843 if (((type != AT_UNUSED) && (le32_to_cpu(a->type) > le32_to_cpu(type))) ||
844 a->type == AT_END)
845 return -ENOENT;
846 if (unlikely(!a->length))
847 break;
848 if (a->name_length) {
849 name_offset = le16_to_cpu(a->name_offset);
850 attr_len = le32_to_cpu(a->length);
851 name_size = a->name_length * sizeof(__le16);
852
853 if (name_offset > attr_len ||
854 attr_len - name_offset < name_size) {
855 ntfs_error(vol->sb,
856 "Corrupt attribute name in MFT record %llu\n",
857 ctx->ntfs_ino->mft_no);
858 break;
859 }
860 }
861
862 if (type == AT_UNUSED) {
863 if (!ntfs_attr_value_is_valid(vol, a, ctx->ntfs_ino->mft_no))
864 break;
865 return 0;
866 }
867 if (a->type != type)
868 continue;
869 /*
870 * If @name is present, compare the two names. If @name is
871 * missing, assume we want an unnamed attribute.
872 */
873 if (!name || name == AT_UNNAMED) {
874 /* The search failed if the found attribute is named. */
875 if (a->name_length)
876 return -ENOENT;
877 } else {
878 if (!ntfs_are_names_equal(name, name_len,
879 (__le16 *)((u8 *)a + le16_to_cpu(a->name_offset)),
880 a->name_length, ic, upcase, upcase_len)) {
881 register int rc;
882
883 rc = ntfs_collate_names(name, name_len,
884 (__le16 *)((u8 *)a + le16_to_cpu(a->name_offset)),
885 a->name_length, 1, IGNORE_CASE,
886 upcase, upcase_len);
887 /*
888 * If @name collates before a->name, there is no
889 * matching attribute.
890 */
891 if (rc == -1)
892 return -ENOENT;
893 /* If the strings are not equal, continue search. */
894 if (rc)
895 continue;
896 rc = ntfs_collate_names(name, name_len,
897 (__le16 *)((u8 *)a + le16_to_cpu(a->name_offset)),
898 a->name_length, 1, CASE_SENSITIVE,
899 upcase, upcase_len);
900 if (rc == -1)
901 return -ENOENT;
902 if (rc)
903 continue;
904 }
905 }
906
907 if (!ntfs_attr_value_is_valid(vol, a, ctx->ntfs_ino->mft_no))
908 break;
909
910 /*
911 * The names match or @name not present and attribute is
912 * unnamed. If no @val specified, we have found the attribute
913 * and are done.
914 */
915 if (!val || a->non_resident)
916 return 0;
917 /* @val is present; compare values. */
918 else {
919 u32 value_length = le32_to_cpu(a->data.resident.value_length);
920 int rc;
921
922 rc = memcmp(val, (u8 *)a + le16_to_cpu(
923 a->data.resident.value_offset),
924 min_t(u32, val_len, value_length));
925 /*
926 * If @val collates before the current attribute's
927 * value, there is no matching attribute.
928 */
929 if (!rc) {
930 if (val_len == value_length)
931 return 0;
932 if (val_len < value_length)
933 return -ENOENT;
934 } else if (rc < 0)
935 return -ENOENT;
936 }
937 }
938 ntfs_error(vol->sb, "mft %#llx, type %#x is corrupt. Run chkdsk.",
939 (long long)ctx->ntfs_ino->mft_no, le32_to_cpu(type));
940 NVolSetErrors(vol);
941 return -EIO;
942 }
943
ntfs_attr_name_free(unsigned char ** name)944 void ntfs_attr_name_free(unsigned char **name)
945 {
946 if (*name) {
947 kfree(*name);
948 *name = NULL;
949 }
950 }
951
ntfs_attr_name_get(const struct ntfs_volume * vol,const __le16 * uname,const int uname_len)952 char *ntfs_attr_name_get(const struct ntfs_volume *vol, const __le16 *uname,
953 const int uname_len)
954 {
955 unsigned char *name = NULL;
956 int name_len;
957
958 name_len = ntfs_ucstonls(vol, uname, uname_len, &name, 0);
959 if (name_len < 0) {
960 ntfs_error(vol->sb, "ntfs_ucstonls error");
961 /* This function when returns -1, memory for name might
962 * be allocated. So lets free this memory.
963 */
964 ntfs_attr_name_free(&name);
965 return NULL;
966
967 } else if (name_len > 0)
968 return name;
969
970 ntfs_attr_name_free(&name);
971 return NULL;
972 }
973
974 /*
975 * ntfs_attr_list_entry_is_valid - sanity check one $ATTRIBUTE_LIST entry
976 * @ale: the attribute-list entry to check
977 * @al_end: end of the attribute-list buffer @ale lives in
978 *
979 * Verify that @ale is a well-formed attr_list_entry wholly contained in
980 * [.., @al_end): its fixed header must lie in range before any field is
981 * dereferenced, its length must be a multiple of 8 that covers the fixed
982 * header plus the name, the name must lie within the buffer, the entry must
983 * be in use and carry a live MFT reference. Return true if valid.
984 */
ntfs_attr_list_entry_is_valid(const struct attr_list_entry * ale,const u8 * al_end)985 bool ntfs_attr_list_entry_is_valid(const struct attr_list_entry *ale,
986 const u8 *al_end)
987 {
988 const u8 *al = (const u8 *)ale;
989 u16 ale_len;
990
991 /* The fixed header must be in bounds before it is parsed. */
992 if (al + offsetof(struct attr_list_entry, name) > al_end)
993 return false;
994 ale_len = le16_to_cpu(ale->length);
995 /* On-disk entries are 8-byte aligned (see struct attr_list_entry). */
996 if (ale_len & 7)
997 return false;
998 if (ale->name_offset != sizeof(struct attr_list_entry))
999 return false;
1000 if ((u32)ale->name_offset +
1001 (u32)ale->name_length * sizeof(__le16) > ale_len ||
1002 al + ale_len > al_end)
1003 return false;
1004 if (ale->type == AT_UNUSED)
1005 return false;
1006 if (MSEQNO_LE(ale->mft_reference) == 0)
1007 return false;
1008 return true;
1009 }
1010
1011 /*
1012 * ntfs_attr_list_is_valid - sanity check an in-memory $ATTRIBUTE_LIST
1013 * @al_start: start of the attribute list buffer
1014 * @size: length of the attribute list in bytes
1015 *
1016 * Verify that [@al_start, @al_start + @size) is a sequence of valid
1017 * attr_list_entry records (see ntfs_attr_list_entry_is_valid()) that tile the
1018 * buffer exactly. Return true if valid, false otherwise.
1019 */
ntfs_attr_list_is_valid(const u8 * al_start,s64 size)1020 bool ntfs_attr_list_is_valid(const u8 *al_start, s64 size)
1021 {
1022 const u8 *al = al_start;
1023 const u8 *al_end = al_start + size;
1024
1025 while (al < al_end) {
1026 const struct attr_list_entry *ale =
1027 (const struct attr_list_entry *)al;
1028
1029 if (!ntfs_attr_list_entry_is_valid(ale, al_end))
1030 return false;
1031 al += le16_to_cpu(ale->length);
1032 }
1033 return al == al_end;
1034 }
1035
load_attribute_list(struct ntfs_inode * base_ni,u8 * al_start,const s64 size)1036 int load_attribute_list(struct ntfs_inode *base_ni, u8 *al_start, const s64 size)
1037 {
1038 struct inode *attr_vi = NULL;
1039
1040 if (!al_start || size <= 0)
1041 return -EINVAL;
1042
1043 attr_vi = ntfs_attr_iget(VFS_I(base_ni), AT_ATTRIBUTE_LIST, AT_UNNAMED, 0);
1044 if (IS_ERR(attr_vi)) {
1045 ntfs_error(base_ni->vol->sb,
1046 "Failed to open an inode for Attribute list, mft = %llu",
1047 base_ni->mft_no);
1048 return PTR_ERR(attr_vi);
1049 }
1050
1051 if (ntfs_inode_attr_pread(attr_vi, 0, size, al_start) != size) {
1052 iput(attr_vi);
1053 ntfs_error(base_ni->vol->sb,
1054 "Failed to read attribute list, mft = %llu",
1055 base_ni->mft_no);
1056 return -EIO;
1057 }
1058 iput(attr_vi);
1059
1060 if (!ntfs_attr_list_is_valid(al_start, size)) {
1061 ntfs_error(base_ni->vol->sb, "Corrupt attribute list, mft = %llu",
1062 base_ni->mft_no);
1063 return -EIO;
1064 }
1065 return 0;
1066 }
1067
1068 /*
1069 * ntfs_external_attr_find - find an attribute in the attribute list of an inode
1070 * @type: attribute type to find
1071 * @name: attribute name to find (optional, i.e. NULL means don't care)
1072 * @name_len: attribute name length (only needed if @name present)
1073 * @ic: IGNORE_CASE or CASE_SENSITIVE (ignored if @name not present)
1074 * @lowest_vcn: lowest vcn to find (optional, non-resident attributes only)
1075 * @val: attribute value to find (optional, resident attributes only)
1076 * @val_len: attribute value length
1077 * @ctx: search context with mft record and attribute to search from
1078 *
1079 * You should not need to call this function directly. Use ntfs_attr_lookup()
1080 * instead.
1081 *
1082 * Find an attribute by searching the attribute list for the corresponding
1083 * attribute list entry. Having found the entry, map the mft record if the
1084 * attribute is in a different mft record/inode, ntfs_attr_find() the attribute
1085 * in there and return it.
1086 *
1087 * On first search @ctx->ntfs_ino must be the base mft record and @ctx must
1088 * have been obtained from a call to ntfs_attr_get_search_ctx(). On subsequent
1089 * calls @ctx->ntfs_ino can be any extent inode, too (@ctx->base_ntfs_ino is
1090 * then the base inode).
1091 *
1092 * After finishing with the attribute/mft record you need to call
1093 * ntfs_attr_put_search_ctx() to cleanup the search context (unmapping any
1094 * mapped inodes, etc).
1095 *
1096 * If the attribute is found, ntfs_external_attr_find() returns 0 and
1097 * @ctx->attr will point to the found attribute. @ctx->mrec will point to the
1098 * mft record in which @ctx->attr is located and @ctx->al_entry will point to
1099 * the attribute list entry for the attribute.
1100 *
1101 * If the attribute is not found, ntfs_external_attr_find() returns -ENOENT and
1102 * @ctx->attr will point to the attribute in the base mft record before which
1103 * the attribute being searched for would need to be inserted if such an action
1104 * were to be desired. @ctx->mrec will point to the mft record in which
1105 * @ctx->attr is located and @ctx->al_entry will point to the attribute list
1106 * entry of the attribute before which the attribute being searched for would
1107 * need to be inserted if such an action were to be desired.
1108 *
1109 * Thus to insert the not found attribute, one wants to add the attribute to
1110 * @ctx->mrec (the base mft record) and if there is not enough space, the
1111 * attribute should be placed in a newly allocated extent mft record. The
1112 * attribute list entry for the inserted attribute should be inserted in the
1113 * attribute list attribute at @ctx->al_entry.
1114 *
1115 * On actual error, ntfs_external_attr_find() returns -EIO. In this case
1116 * @ctx->attr is undefined and in particular do not rely on it not changing.
1117 */
ntfs_external_attr_find(const __le32 type,const __le16 * name,const u32 name_len,const u32 ic,const s64 lowest_vcn,const u8 * val,const u32 val_len,struct ntfs_attr_search_ctx * ctx)1118 static int ntfs_external_attr_find(const __le32 type,
1119 const __le16 *name, const u32 name_len,
1120 const u32 ic, const s64 lowest_vcn,
1121 const u8 *val, const u32 val_len, struct ntfs_attr_search_ctx *ctx)
1122 {
1123 struct ntfs_inode *base_ni = ctx->base_ntfs_ino, *ni = ctx->ntfs_ino;
1124 struct ntfs_volume *vol;
1125 struct attr_list_entry *al_entry, *next_al_entry;
1126 u8 *al_start, *al_end;
1127 struct attr_record *a;
1128 __le16 *al_name;
1129 u32 al_name_len;
1130 u32 attr_len, mft_free_len;
1131 bool is_first_search = false;
1132 int err = 0;
1133 static const char *es = " Unmount and run chkdsk.";
1134
1135 ntfs_debug("Entering for inode 0x%llx, type 0x%x.", ni->mft_no, type);
1136 if (!base_ni) {
1137 /* First call happens with the base mft record. */
1138 base_ni = ctx->base_ntfs_ino = ctx->ntfs_ino;
1139 ctx->base_mrec = ctx->mrec;
1140 ctx->mapped_base_mrec = ctx->mapped_mrec;
1141 }
1142 if (ni == base_ni)
1143 ctx->base_attr = ctx->attr;
1144 if (type == AT_END)
1145 goto not_found;
1146 vol = base_ni->vol;
1147 al_start = base_ni->attr_list;
1148 al_end = al_start + base_ni->attr_list_size;
1149 if (!ctx->al_entry) {
1150 ctx->al_entry = (struct attr_list_entry *)al_start;
1151 is_first_search = true;
1152 }
1153 /*
1154 * Iterate over entries in attribute list starting at @ctx->al_entry,
1155 * or the entry following that, if @ctx->is_first is 'true'.
1156 */
1157 if (ctx->is_first) {
1158 al_entry = ctx->al_entry;
1159 ctx->is_first = false;
1160 /*
1161 * If an enumeration and the first attribute is higher than
1162 * the attribute list itself, need to return the attribute list
1163 * attribute.
1164 */
1165 if ((type == AT_UNUSED) && is_first_search &&
1166 le32_to_cpu(al_entry->type) >
1167 le32_to_cpu(AT_ATTRIBUTE_LIST))
1168 goto find_attr_list_attr;
1169 } else {
1170 /* Check for small entry */
1171 if (((al_end - (u8 *)ctx->al_entry) <
1172 (long)offsetof(struct attr_list_entry, name)) ||
1173 (le16_to_cpu(ctx->al_entry->length) & 7) ||
1174 (le16_to_cpu(ctx->al_entry->length) < offsetof(struct attr_list_entry, name)))
1175 goto corrupt;
1176
1177 al_entry = (struct attr_list_entry *)((u8 *)ctx->al_entry +
1178 le16_to_cpu(ctx->al_entry->length));
1179
1180 if ((u8 *)al_entry == al_end)
1181 goto not_found;
1182
1183 /* Preliminary check for small entry */
1184 if ((al_end - (u8 *)al_entry) <
1185 (long)offsetof(struct attr_list_entry, name))
1186 goto corrupt;
1187
1188 /*
1189 * If this is an enumeration and the attribute list attribute
1190 * is the next one in the enumeration sequence, just return the
1191 * attribute list attribute from the base mft record as it is
1192 * not listed in the attribute list itself.
1193 */
1194 if ((type == AT_UNUSED) && le32_to_cpu(ctx->al_entry->type) <
1195 le32_to_cpu(AT_ATTRIBUTE_LIST) &&
1196 le32_to_cpu(al_entry->type) >
1197 le32_to_cpu(AT_ATTRIBUTE_LIST)) {
1198 find_attr_list_attr:
1199
1200 /* Check for bogus calls. */
1201 if (name || name_len || val || val_len || lowest_vcn)
1202 return -EINVAL;
1203
1204 /* We want the base record. */
1205 if (ctx->ntfs_ino != base_ni)
1206 unmap_mft_record(ctx->ntfs_ino);
1207 ctx->ntfs_ino = base_ni;
1208 ctx->mapped_mrec = ctx->mapped_base_mrec;
1209 ctx->mrec = ctx->base_mrec;
1210 ctx->is_first = true;
1211
1212 /* Sanity checks are performed elsewhere. */
1213 ctx->attr = (struct attr_record *)((u8 *)ctx->mrec +
1214 le16_to_cpu(ctx->mrec->attrs_offset));
1215
1216 /* Find the attribute list attribute. */
1217 err = ntfs_attr_find(AT_ATTRIBUTE_LIST, NULL, 0,
1218 IGNORE_CASE, NULL, 0, ctx);
1219
1220 /*
1221 * Setup the search context so the correct
1222 * attribute is returned next time round.
1223 */
1224 ctx->al_entry = al_entry;
1225 ctx->is_first = true;
1226
1227 /* Got it. Done. */
1228 if (!err)
1229 return 0;
1230
1231 /* Error! If other than not found return it. */
1232 if (err != -ENOENT)
1233 return err;
1234
1235 /* Not found?!? Absurd! */
1236 ntfs_error(ctx->ntfs_ino->vol->sb, "Attribute list wasn't found");
1237 return -EIO;
1238 }
1239 }
1240 for (;; al_entry = next_al_entry) {
1241 /* Out of bounds check. */
1242 if ((u8 *)al_entry < base_ni->attr_list ||
1243 (u8 *)al_entry > al_end)
1244 break; /* Inode is corrupt. */
1245 ctx->al_entry = al_entry;
1246 /* Catch the end of the attribute list. */
1247 if ((u8 *)al_entry == al_end)
1248 goto not_found;
1249
1250 if ((((u8 *)al_entry + offsetof(struct attr_list_entry, name)) > al_end) ||
1251 ((u8 *)al_entry + le16_to_cpu(al_entry->length) > al_end) ||
1252 (le16_to_cpu(al_entry->length) & 7) ||
1253 (le16_to_cpu(al_entry->length) <
1254 offsetof(struct attr_list_entry, name_length)) ||
1255 (al_entry->name_length && ((u8 *)al_entry + al_entry->name_offset +
1256 al_entry->name_length * sizeof(__le16)) > al_end))
1257 break; /* corrupt */
1258
1259 next_al_entry = (struct attr_list_entry *)((u8 *)al_entry +
1260 le16_to_cpu(al_entry->length));
1261 if (type != AT_UNUSED) {
1262 if (le32_to_cpu(al_entry->type) > le32_to_cpu(type))
1263 goto not_found;
1264 if (type != al_entry->type)
1265 continue;
1266 }
1267 /*
1268 * If @name is present, compare the two names. If @name is
1269 * missing, assume we want an unnamed attribute.
1270 */
1271 al_name_len = al_entry->name_length;
1272 al_name = (__le16 *)((u8 *)al_entry + al_entry->name_offset);
1273
1274 /*
1275 * If !@type we want the attribute represented by this
1276 * attribute list entry.
1277 */
1278 if (type == AT_UNUSED)
1279 goto is_enumeration;
1280
1281 if (!name || name == AT_UNNAMED) {
1282 if (al_name_len)
1283 goto not_found;
1284 } else if (!ntfs_are_names_equal(al_name, al_name_len, name,
1285 name_len, ic, vol->upcase, vol->upcase_len)) {
1286 register int rc;
1287
1288 rc = ntfs_collate_names(name, name_len, al_name,
1289 al_name_len, 1, IGNORE_CASE,
1290 vol->upcase, vol->upcase_len);
1291 /*
1292 * If @name collates before al_name, there is no
1293 * matching attribute.
1294 */
1295 if (rc == -1)
1296 goto not_found;
1297 /* If the strings are not equal, continue search. */
1298 if (rc)
1299 continue;
1300
1301 rc = ntfs_collate_names(name, name_len, al_name,
1302 al_name_len, 1, CASE_SENSITIVE,
1303 vol->upcase, vol->upcase_len);
1304 if (rc == -1)
1305 goto not_found;
1306 if (rc)
1307 continue;
1308 }
1309 /*
1310 * The names match or @name not present and attribute is
1311 * unnamed. Now check @lowest_vcn. Continue search if the
1312 * next attribute list entry still fits @lowest_vcn. Otherwise
1313 * we have reached the right one or the search has failed.
1314 */
1315 if (lowest_vcn && (u8 *)next_al_entry >= al_start &&
1316 ntfs_attr_list_entry_is_valid(next_al_entry,
1317 al_end) &&
1318 le64_to_cpu(next_al_entry->lowest_vcn) <=
1319 lowest_vcn &&
1320 next_al_entry->type == al_entry->type &&
1321 next_al_entry->name_length == al_name_len &&
1322 ntfs_are_names_equal((__le16 *)((u8 *)
1323 next_al_entry +
1324 next_al_entry->name_offset),
1325 next_al_entry->name_length,
1326 al_name, al_name_len, CASE_SENSITIVE,
1327 vol->upcase, vol->upcase_len))
1328 continue;
1329
1330 is_enumeration:
1331 if (MREF_LE(al_entry->mft_reference) == ni->mft_no) {
1332 if (MSEQNO_LE(al_entry->mft_reference) != ni->seq_no) {
1333 ntfs_error(vol->sb,
1334 "Found stale mft reference in attribute list of base inode 0x%llx.%s",
1335 base_ni->mft_no, es);
1336 err = -EIO;
1337 break;
1338 }
1339 } else { /* Mft references do not match. */
1340 /* If there is a mapped record unmap it first. */
1341 if (ni != base_ni)
1342 unmap_extent_mft_record(ni);
1343 /* Do we want the base record back? */
1344 if (MREF_LE(al_entry->mft_reference) ==
1345 base_ni->mft_no) {
1346 ni = ctx->ntfs_ino = base_ni;
1347 ctx->mrec = ctx->base_mrec;
1348 ctx->mapped_mrec = ctx->mapped_base_mrec;
1349 } else {
1350 /* We want an extent record. */
1351 ctx->mrec = map_extent_mft_record(base_ni,
1352 le64_to_cpu(
1353 al_entry->mft_reference), &ni);
1354 if (IS_ERR(ctx->mrec)) {
1355 ntfs_error(vol->sb,
1356 "Failed to map extent mft record 0x%lx of base inode 0x%llx.%s",
1357 MREF_LE(al_entry->mft_reference),
1358 base_ni->mft_no, es);
1359 err = PTR_ERR(ctx->mrec);
1360 if (err == -ENOENT)
1361 err = -EIO;
1362 /* Cause @ctx to be sanitized below. */
1363 ni = NULL;
1364 break;
1365 }
1366 ctx->ntfs_ino = ni;
1367 ctx->mapped_mrec = true;
1368
1369 }
1370 }
1371 a = ctx->attr = (struct attr_record *)((u8 *)ctx->mrec +
1372 le16_to_cpu(ctx->mrec->attrs_offset));
1373 /*
1374 * ctx->vfs_ino, ctx->mrec, and ctx->attr now point to the
1375 * mft record containing the attribute represented by the
1376 * current al_entry.
1377 */
1378 /*
1379 * We could call into ntfs_attr_find() to find the right
1380 * attribute in this mft record but this would be less
1381 * efficient and not quite accurate as ntfs_attr_find() ignores
1382 * the attribute instance numbers for example which become
1383 * important when one plays with attribute lists. Also,
1384 * because a proper match has been found in the attribute list
1385 * entry above, the comparison can now be optimized. So it is
1386 * worth re-implementing a simplified ntfs_attr_find() here.
1387 */
1388 /*
1389 * Use a manual loop so we can still use break and continue
1390 * with the same meanings as above.
1391 */
1392 do_next_attr_loop:
1393 if ((u8 *)a < (u8 *)ctx->mrec ||
1394 (u8 *)a >= (u8 *)ctx->mrec + le32_to_cpu(ctx->mrec->bytes_allocated) ||
1395 (u8 *)a >= (u8 *)ctx->mrec + le32_to_cpu(ctx->mrec->bytes_in_use))
1396 break;
1397
1398 mft_free_len = le32_to_cpu(ctx->mrec->bytes_in_use) -
1399 ((u8 *)a - (u8 *)ctx->mrec);
1400 if (mft_free_len >= sizeof(a->type) && a->type == AT_END)
1401 continue;
1402
1403 attr_len = le32_to_cpu(a->length);
1404 if (!attr_len ||
1405 attr_len < offsetof(struct attr_record, data.resident.reserved) +
1406 sizeof(a->data.resident.reserved) ||
1407 attr_len > mft_free_len)
1408 break;
1409
1410 if (al_entry->instance != a->instance)
1411 goto do_next_attr;
1412 /*
1413 * If the type and/or the name are mismatched between the
1414 * attribute list entry and the attribute record, there is
1415 * corruption so we break and return error EIO.
1416 */
1417 if (al_entry->type != a->type)
1418 break;
1419 if (a->name_length && ((le16_to_cpu(a->name_offset) +
1420 a->name_length * sizeof(__le16)) > attr_len))
1421 break;
1422 if (!ntfs_are_names_equal((__le16 *)((u8 *)a +
1423 le16_to_cpu(a->name_offset)), a->name_length,
1424 al_name, al_name_len, CASE_SENSITIVE,
1425 vol->upcase, vol->upcase_len))
1426 break;
1427
1428 ctx->attr = a;
1429
1430 if (!ntfs_attr_value_is_valid(vol, a, ctx->ntfs_ino->mft_no))
1431 break;
1432
1433 /*
1434 * If no @val specified or @val specified and it matches, we
1435 * have found it!
1436 */
1437 if ((type == AT_UNUSED) || !val)
1438 goto attr_found;
1439 if (!a->non_resident) {
1440 u32 value_length = le32_to_cpu(a->data.resident.value_length);
1441 u16 value_offset = le16_to_cpu(a->data.resident.value_offset);
1442
1443 if (value_length == val_len &&
1444 !memcmp((u8 *)a + value_offset, val, val_len)) {
1445 attr_found:
1446 ntfs_debug("Done, found.");
1447 return 0;
1448 }
1449 }
1450 do_next_attr:
1451 /* Proceed to the next attribute in the current mft record. */
1452 a = (struct attr_record *)((u8 *)a + attr_len);
1453 goto do_next_attr_loop;
1454 }
1455
1456 corrupt:
1457 if (ni != base_ni) {
1458 if (ni)
1459 unmap_extent_mft_record(ni);
1460 ctx->ntfs_ino = base_ni;
1461 ctx->mrec = ctx->base_mrec;
1462 ctx->attr = ctx->base_attr;
1463 ctx->mapped_mrec = ctx->mapped_base_mrec;
1464 }
1465
1466 if (!err) {
1467 u64 mft_no = ctx->al_entry ? MREF_LE(ctx->al_entry->mft_reference) : 0;
1468 u32 type = ctx->al_entry ? le32_to_cpu(ctx->al_entry->type) : 0;
1469
1470 ntfs_error(vol->sb,
1471 "Base inode 0x%llx contains corrupt attribute, mft %#llx, type %#x. %s",
1472 (long long)base_ni->mft_no, (long long)mft_no, type,
1473 "Unmount and run chkdsk.");
1474 err = -EIO;
1475 }
1476
1477 if (err != -ENOMEM)
1478 NVolSetErrors(vol);
1479 return err;
1480 not_found:
1481 /*
1482 * If we were looking for AT_END, we reset the search context @ctx and
1483 * use ntfs_attr_find() to seek to the end of the base mft record.
1484 */
1485 if (type == AT_UNUSED || type == AT_END) {
1486 ntfs_attr_reinit_search_ctx(ctx);
1487 return ntfs_attr_find(AT_END, name, name_len, ic, val, val_len,
1488 ctx);
1489 }
1490 /*
1491 * The attribute was not found. Before we return, we want to ensure
1492 * @ctx->mrec and @ctx->attr indicate the position at which the
1493 * attribute should be inserted in the base mft record. Since we also
1494 * want to preserve @ctx->al_entry we cannot reinitialize the search
1495 * context using ntfs_attr_reinit_search_ctx() as this would set
1496 * @ctx->al_entry to NULL. Thus we do the necessary bits manually (see
1497 * ntfs_attr_init_search_ctx() below). Note, we _only_ preserve
1498 * @ctx->al_entry as the remaining fields (base_*) are identical to
1499 * their non base_ counterparts and we cannot set @ctx->base_attr
1500 * correctly yet as we do not know what @ctx->attr will be set to by
1501 * the call to ntfs_attr_find() below.
1502 */
1503 if (ni != base_ni)
1504 unmap_extent_mft_record(ni);
1505 ctx->mrec = ctx->base_mrec;
1506 ctx->attr = (struct attr_record *)((u8 *)ctx->mrec +
1507 le16_to_cpu(ctx->mrec->attrs_offset));
1508 ctx->is_first = true;
1509 ctx->ntfs_ino = base_ni;
1510 ctx->base_ntfs_ino = NULL;
1511 ctx->base_mrec = NULL;
1512 ctx->base_attr = NULL;
1513 ctx->mapped_mrec = ctx->mapped_base_mrec;
1514 /*
1515 * In case there are multiple matches in the base mft record, need to
1516 * keep enumerating until we get an attribute not found response (or
1517 * another error), otherwise we would keep returning the same attribute
1518 * over and over again and all programs using us for enumeration would
1519 * lock up in a tight loop.
1520 */
1521 do {
1522 err = ntfs_attr_find(type, name, name_len, ic, val, val_len,
1523 ctx);
1524 } while (!err);
1525 ntfs_debug("Done, not found.");
1526 return err;
1527 }
1528
1529 /*
1530 * ntfs_attr_lookup - find an attribute in an ntfs inode
1531 * @type: attribute type to find
1532 * @name: attribute name to find (optional, i.e. NULL means don't care)
1533 * @name_len: attribute name length (only needed if @name present)
1534 * @ic: IGNORE_CASE or CASE_SENSITIVE (ignored if @name not present)
1535 * @lowest_vcn: lowest vcn to find (optional, non-resident attributes only)
1536 * @val: attribute value to find (optional, resident attributes only)
1537 * @val_len: attribute value length
1538 * @ctx: search context with mft record and attribute to search from
1539 *
1540 * Find an attribute in an ntfs inode. On first search @ctx->ntfs_ino must
1541 * be the base mft record and @ctx must have been obtained from a call to
1542 * ntfs_attr_get_search_ctx().
1543 *
1544 * This function transparently handles attribute lists and @ctx is used to
1545 * continue searches where they were left off at.
1546 *
1547 * After finishing with the attribute/mft record you need to call
1548 * ntfs_attr_put_search_ctx() to cleanup the search context (unmapping any
1549 * mapped inodes, etc).
1550 *
1551 * Return 0 if the search was successful and -errno if not.
1552 *
1553 * When 0, @ctx->attr is the found attribute and it is in mft record
1554 * @ctx->mrec. If an attribute list attribute is present, @ctx->al_entry is
1555 * the attribute list entry of the found attribute.
1556 *
1557 * When -ENOENT, @ctx->attr is the attribute which collates just after the
1558 * attribute being searched for, i.e. if one wants to add the attribute to the
1559 * mft record this is the correct place to insert it into. If an attribute
1560 * list attribute is present, @ctx->al_entry is the attribute list entry which
1561 * collates just after the attribute list entry of the attribute being searched
1562 * for, i.e. if one wants to add the attribute to the mft record this is the
1563 * correct place to insert its attribute list entry into.
1564 */
ntfs_attr_lookup(const __le32 type,const __le16 * name,const u32 name_len,const u32 ic,const s64 lowest_vcn,const u8 * val,const u32 val_len,struct ntfs_attr_search_ctx * ctx)1565 int ntfs_attr_lookup(const __le32 type, const __le16 *name,
1566 const u32 name_len, const u32 ic,
1567 const s64 lowest_vcn, const u8 *val, const u32 val_len,
1568 struct ntfs_attr_search_ctx *ctx)
1569 {
1570 struct ntfs_inode *base_ni;
1571
1572 ntfs_debug("Entering.");
1573 if (ctx->base_ntfs_ino)
1574 base_ni = ctx->base_ntfs_ino;
1575 else
1576 base_ni = ctx->ntfs_ino;
1577 /* Sanity check, just for debugging really. */
1578 if (!base_ni || !NInoAttrList(base_ni) || type == AT_ATTRIBUTE_LIST)
1579 return ntfs_attr_find(type, name, name_len, ic, val, val_len,
1580 ctx);
1581 return ntfs_external_attr_find(type, name, name_len, ic, lowest_vcn,
1582 val, val_len, ctx);
1583 }
1584
1585 /**
1586 * ntfs_attr_init_search_ctx - initialize an attribute search context
1587 * @ctx: attribute search context to initialize
1588 * @ni: ntfs inode with which to initialize the search context
1589 * @mrec: mft record with which to initialize the search context
1590 *
1591 * Initialize the attribute search context @ctx with @ni and @mrec.
1592 */
ntfs_attr_init_search_ctx(struct ntfs_attr_search_ctx * ctx,struct ntfs_inode * ni,struct mft_record * mrec)1593 static bool ntfs_attr_init_search_ctx(struct ntfs_attr_search_ctx *ctx,
1594 struct ntfs_inode *ni, struct mft_record *mrec)
1595 {
1596 if (!mrec) {
1597 mrec = map_mft_record(ni);
1598 if (IS_ERR(mrec))
1599 return false;
1600 ctx->mapped_mrec = true;
1601 } else {
1602 ctx->mapped_mrec = false;
1603 }
1604
1605 ctx->mrec = mrec;
1606 /* Sanity checks are performed elsewhere. */
1607 ctx->attr = (struct attr_record *)((u8 *)mrec + le16_to_cpu(mrec->attrs_offset));
1608 ctx->is_first = true;
1609 ctx->ntfs_ino = ni;
1610 ctx->al_entry = NULL;
1611 ctx->base_ntfs_ino = NULL;
1612 ctx->base_mrec = NULL;
1613 ctx->base_attr = NULL;
1614 ctx->mapped_base_mrec = false;
1615 return true;
1616 }
1617
1618 /*
1619 * ntfs_attr_reinit_search_ctx - reinitialize an attribute search context
1620 * @ctx: attribute search context to reinitialize
1621 *
1622 * Reinitialize the attribute search context @ctx, unmapping an associated
1623 * extent mft record if present, and initialize the search context again.
1624 *
1625 * This is used when a search for a new attribute is being started to reset
1626 * the search context to the beginning.
1627 */
ntfs_attr_reinit_search_ctx(struct ntfs_attr_search_ctx * ctx)1628 void ntfs_attr_reinit_search_ctx(struct ntfs_attr_search_ctx *ctx)
1629 {
1630 bool mapped_mrec;
1631
1632 if (likely(!ctx->base_ntfs_ino)) {
1633 /* No attribute list. */
1634 ctx->is_first = true;
1635 /* Sanity checks are performed elsewhere. */
1636 ctx->attr = (struct attr_record *)((u8 *)ctx->mrec +
1637 le16_to_cpu(ctx->mrec->attrs_offset));
1638 /*
1639 * This needs resetting due to ntfs_external_attr_find() which
1640 * can leave it set despite having zeroed ctx->base_ntfs_ino.
1641 */
1642 ctx->al_entry = NULL;
1643 return;
1644 } /* Attribute list. */
1645 if (ctx->ntfs_ino != ctx->base_ntfs_ino && ctx->ntfs_ino)
1646 unmap_extent_mft_record(ctx->ntfs_ino);
1647
1648 mapped_mrec = ctx->mapped_base_mrec;
1649 ntfs_attr_init_search_ctx(ctx, ctx->base_ntfs_ino, ctx->base_mrec);
1650 ctx->mapped_mrec = mapped_mrec;
1651 }
1652
1653 /*
1654 * ntfs_attr_get_search_ctx - allocate/initialize a new attribute search context
1655 * @ni: ntfs inode with which to initialize the search context
1656 * @mrec: mft record with which to initialize the search context
1657 *
1658 * Allocate a new attribute search context, initialize it with @ni and @mrec,
1659 * and return it. Return NULL if allocation failed.
1660 */
ntfs_attr_get_search_ctx(struct ntfs_inode * ni,struct mft_record * mrec)1661 struct ntfs_attr_search_ctx *ntfs_attr_get_search_ctx(struct ntfs_inode *ni,
1662 struct mft_record *mrec)
1663 {
1664 struct ntfs_attr_search_ctx *ctx;
1665 bool init;
1666
1667 ctx = kmem_cache_alloc(ntfs_attr_ctx_cache, GFP_NOFS);
1668 if (ctx) {
1669 init = ntfs_attr_init_search_ctx(ctx, ni, mrec);
1670 if (init == false) {
1671 kmem_cache_free(ntfs_attr_ctx_cache, ctx);
1672 ctx = NULL;
1673 }
1674 }
1675
1676 return ctx;
1677 }
1678
1679 /*
1680 * ntfs_attr_put_search_ctx - release an attribute search context
1681 * @ctx: attribute search context to free
1682 *
1683 * Release the attribute search context @ctx, unmapping an associated extent
1684 * mft record if present.
1685 */
ntfs_attr_put_search_ctx(struct ntfs_attr_search_ctx * ctx)1686 void ntfs_attr_put_search_ctx(struct ntfs_attr_search_ctx *ctx)
1687 {
1688 if (ctx->mapped_mrec)
1689 unmap_mft_record(ctx->ntfs_ino);
1690
1691 if (ctx->mapped_base_mrec && ctx->base_ntfs_ino &&
1692 ctx->ntfs_ino != ctx->base_ntfs_ino)
1693 unmap_extent_mft_record(ctx->base_ntfs_ino);
1694 kmem_cache_free(ntfs_attr_ctx_cache, ctx);
1695 }
1696
1697 /*
1698 * ntfs_attr_find_in_attrdef - find an attribute in the $AttrDef system file
1699 * @vol: ntfs volume to which the attribute belongs
1700 * @type: attribute type which to find
1701 *
1702 * Search for the attribute definition record corresponding to the attribute
1703 * @type in the $AttrDef system file.
1704 *
1705 * Return the attribute type definition record if found and NULL if not found.
1706 */
ntfs_attr_find_in_attrdef(const struct ntfs_volume * vol,const __le32 type)1707 static struct attr_def *ntfs_attr_find_in_attrdef(const struct ntfs_volume *vol,
1708 const __le32 type)
1709 {
1710 struct attr_def *ad;
1711
1712 WARN_ON(!type);
1713 for (ad = vol->attrdef; (u8 *)ad - (u8 *)vol->attrdef <
1714 vol->attrdef_size && ad->type; ++ad) {
1715 /* We have not found it yet, carry on searching. */
1716 if (likely(le32_to_cpu(ad->type) < le32_to_cpu(type)))
1717 continue;
1718 /* We found the attribute; return it. */
1719 if (likely(ad->type == type))
1720 return ad;
1721 /* We have gone too far already. No point in continuing. */
1722 break;
1723 }
1724 /* Attribute not found. */
1725 ntfs_debug("Attribute type 0x%x not found in $AttrDef.",
1726 le32_to_cpu(type));
1727 return NULL;
1728 }
1729
1730 /*
1731 * ntfs_attr_size_bounds_check - check a size of an attribute type for validity
1732 * @vol: ntfs volume to which the attribute belongs
1733 * @type: attribute type which to check
1734 * @size: size which to check
1735 *
1736 * Check whether the @size in bytes is valid for an attribute of @type on the
1737 * ntfs volume @vol. This information is obtained from $AttrDef system file.
1738 */
ntfs_attr_size_bounds_check(const struct ntfs_volume * vol,const __le32 type,const s64 size)1739 int ntfs_attr_size_bounds_check(const struct ntfs_volume *vol, const __le32 type,
1740 const s64 size)
1741 {
1742 struct attr_def *ad;
1743
1744 if (size < 0)
1745 return -EINVAL;
1746
1747 /*
1748 * $ATTRIBUTE_LIST has a maximum size of 256kiB, but this is not
1749 * listed in $AttrDef.
1750 */
1751 if (unlikely(type == AT_ATTRIBUTE_LIST && size > 256 * 1024))
1752 return -ERANGE;
1753 /* Get the $AttrDef entry for the attribute @type. */
1754 ad = ntfs_attr_find_in_attrdef(vol, type);
1755 if (unlikely(!ad))
1756 return -ENOENT;
1757 /* Do the bounds check. */
1758 if (((le64_to_cpu(ad->min_size) > 0) &&
1759 size < le64_to_cpu(ad->min_size)) ||
1760 ((le64_to_cpu(ad->max_size) > 0) && size >
1761 le64_to_cpu(ad->max_size)))
1762 return -ERANGE;
1763 return 0;
1764 }
1765
1766 /*
1767 * ntfs_attr_can_be_non_resident - check if an attribute can be non-resident
1768 * @vol: ntfs volume to which the attribute belongs
1769 * @type: attribute type which to check
1770 *
1771 * Check whether the attribute of @type on the ntfs volume @vol is allowed to
1772 * be non-resident. This information is obtained from $AttrDef system file.
1773 */
ntfs_attr_can_be_non_resident(const struct ntfs_volume * vol,const __le32 type)1774 static int ntfs_attr_can_be_non_resident(const struct ntfs_volume *vol,
1775 const __le32 type)
1776 {
1777 struct attr_def *ad;
1778
1779 /* Find the attribute definition record in $AttrDef. */
1780 ad = ntfs_attr_find_in_attrdef(vol, type);
1781 if (unlikely(!ad))
1782 return -ENOENT;
1783 /* Check the flags and return the result. */
1784 if (ad->flags & ATTR_DEF_RESIDENT)
1785 return -EPERM;
1786 return 0;
1787 }
1788
1789 /*
1790 * ntfs_attr_can_be_resident - check if an attribute can be resident
1791 * @vol: ntfs volume to which the attribute belongs
1792 * @type: attribute type which to check
1793 *
1794 * Check whether the attribute of @type on the ntfs volume @vol is allowed to
1795 * be resident. This information is derived from our ntfs knowledge and may
1796 * not be completely accurate, especially when user defined attributes are
1797 * present. Basically we allow everything to be resident except for index
1798 * allocation and $EA attributes.
1799 *
1800 * Return 0 if the attribute is allowed to be non-resident and -EPERM if not.
1801 *
1802 * Warning: In the system file $MFT the attribute $Bitmap must be non-resident
1803 * otherwise windows will not boot (blue screen of death)! We cannot
1804 * check for this here as we do not know which inode's $Bitmap is
1805 * being asked about so the caller needs to special case this.
1806 */
ntfs_attr_can_be_resident(const struct ntfs_volume * vol,const __le32 type)1807 int ntfs_attr_can_be_resident(const struct ntfs_volume *vol, const __le32 type)
1808 {
1809 if (type == AT_INDEX_ALLOCATION)
1810 return -EPERM;
1811 return 0;
1812 }
1813
1814 /*
1815 * ntfs_attr_record_resize - resize an attribute record
1816 * @m: mft record containing attribute record
1817 * @a: attribute record to resize
1818 * @new_size: new size in bytes to which to resize the attribute record @a
1819 *
1820 * Resize the attribute record @a, i.e. the resident part of the attribute, in
1821 * the mft record @m to @new_size bytes.
1822 */
ntfs_attr_record_resize(struct mft_record * m,struct attr_record * a,u32 new_size)1823 int ntfs_attr_record_resize(struct mft_record *m, struct attr_record *a, u32 new_size)
1824 {
1825 u32 old_size, alloc_size, attr_size;
1826
1827 old_size = le32_to_cpu(m->bytes_in_use);
1828 alloc_size = le32_to_cpu(m->bytes_allocated);
1829 attr_size = le32_to_cpu(a->length);
1830
1831 ntfs_debug("Sizes: old=%u alloc=%u attr=%u new=%u\n",
1832 (unsigned int)old_size, (unsigned int)alloc_size,
1833 (unsigned int)attr_size, (unsigned int)new_size);
1834
1835 /* Align to 8 bytes if it is not already done. */
1836 if (new_size & 7)
1837 new_size = (new_size + 7) & ~7;
1838 /* If the actual attribute length has changed, move things around. */
1839 if (new_size != attr_size) {
1840 u32 new_muse = le32_to_cpu(m->bytes_in_use) -
1841 attr_size + new_size;
1842 /* Not enough space in this mft record. */
1843 if (new_muse > le32_to_cpu(m->bytes_allocated))
1844 return -ENOSPC;
1845
1846 if (a->type == AT_INDEX_ROOT && new_size > attr_size &&
1847 new_muse + 120 > alloc_size && old_size + 120 <= alloc_size) {
1848 ntfs_debug("Too big struct index_root (%u > %u)\n",
1849 new_muse, alloc_size);
1850 return -ENOSPC;
1851 }
1852
1853 /* Move attributes following @a to their new location. */
1854 memmove((u8 *)a + new_size, (u8 *)a + le32_to_cpu(a->length),
1855 le32_to_cpu(m->bytes_in_use) - ((u8 *)a -
1856 (u8 *)m) - attr_size);
1857 /* Adjust @m to reflect the change in used space. */
1858 m->bytes_in_use = cpu_to_le32(new_muse);
1859 /* Adjust @a to reflect the new size. */
1860 if (new_size >= offsetof(struct attr_record, length) + sizeof(a->length))
1861 a->length = cpu_to_le32(new_size);
1862 }
1863 return 0;
1864 }
1865
1866 /*
1867 * ntfs_resident_attr_value_resize - resize the value of a resident attribute
1868 * @m: mft record containing attribute record
1869 * @a: attribute record whose value to resize
1870 * @new_size: new size in bytes to which to resize the attribute value of @a
1871 *
1872 * Resize the value of the attribute @a in the mft record @m to @new_size bytes.
1873 * If the value is made bigger, the newly allocated space is cleared.
1874 */
ntfs_resident_attr_value_resize(struct mft_record * m,struct attr_record * a,const u32 new_size)1875 int ntfs_resident_attr_value_resize(struct mft_record *m, struct attr_record *a,
1876 const u32 new_size)
1877 {
1878 u32 old_size;
1879
1880 /* Resize the resident part of the attribute record. */
1881 if (ntfs_attr_record_resize(m, a,
1882 le16_to_cpu(a->data.resident.value_offset) + new_size))
1883 return -ENOSPC;
1884 /*
1885 * The resize succeeded! If we made the attribute value bigger, clear
1886 * the area between the old size and @new_size.
1887 */
1888 old_size = le32_to_cpu(a->data.resident.value_length);
1889 if (new_size > old_size)
1890 memset((u8 *)a + le16_to_cpu(a->data.resident.value_offset) +
1891 old_size, 0, new_size - old_size);
1892 /* Finally update the length of the attribute value. */
1893 a->data.resident.value_length = cpu_to_le32(new_size);
1894 return 0;
1895 }
1896
1897 /*
1898 * ntfs_attr_make_non_resident - convert a resident to a non-resident attribute
1899 * @ni: ntfs inode describing the attribute to convert
1900 * @data_size: size of the resident data to copy to the non-resident attribute
1901 *
1902 * Convert the resident ntfs attribute described by the ntfs inode @ni to a
1903 * non-resident one.
1904 *
1905 * @data_size must be equal to the attribute value size. This is needed since
1906 * we need to know the size before we can map the mft record and our callers
1907 * always know it. The reason we cannot simply read the size from the vfs
1908 * inode i_size is that this is not necessarily uptodate. This happens when
1909 * ntfs_attr_make_non_resident() is called in the ->truncate call path(s).
1910 */
ntfs_attr_make_non_resident(struct ntfs_inode * ni,const u32 data_size)1911 int ntfs_attr_make_non_resident(struct ntfs_inode *ni, const u32 data_size)
1912 {
1913 s64 new_size;
1914 struct inode *vi = VFS_I(ni);
1915 struct ntfs_volume *vol = ni->vol;
1916 struct ntfs_inode *base_ni;
1917 struct mft_record *m;
1918 struct attr_record *a;
1919 struct ntfs_attr_search_ctx *ctx;
1920 struct folio *folio;
1921 struct runlist_element *rl;
1922 unsigned long flags;
1923 int mp_size, mp_ofs, name_ofs, arec_size, err, err2;
1924 u32 attr_size;
1925 u8 old_res_attr_flags;
1926
1927 if (NInoNonResident(ni)) {
1928 ntfs_warning(vol->sb,
1929 "Trying to make non-resident attribute non-resident. Aborting...\n");
1930 return -EINVAL;
1931 }
1932
1933 /* Check that the attribute is allowed to be non-resident. */
1934 err = ntfs_attr_can_be_non_resident(vol, ni->type);
1935 if (unlikely(err)) {
1936 if (err == -EPERM)
1937 ntfs_debug("Attribute is not allowed to be non-resident.");
1938 else
1939 ntfs_debug("Attribute not defined on the NTFS volume!");
1940 return err;
1941 }
1942
1943 if (NInoEncrypted(ni))
1944 return -EIO;
1945
1946 if (!NInoAttr(ni))
1947 base_ni = ni;
1948 else
1949 base_ni = ni->ext.base_ntfs_ino;
1950 m = map_mft_record(base_ni);
1951 if (IS_ERR(m)) {
1952 err = PTR_ERR(m);
1953 m = NULL;
1954 ctx = NULL;
1955 goto err_out;
1956 }
1957 ctx = ntfs_attr_get_search_ctx(base_ni, m);
1958 if (unlikely(!ctx)) {
1959 err = -ENOMEM;
1960 goto err_out;
1961 }
1962 err = ntfs_attr_lookup(ni->type, ni->name, ni->name_len,
1963 CASE_SENSITIVE, 0, NULL, 0, ctx);
1964 if (unlikely(err)) {
1965 if (err == -ENOENT)
1966 err = -EIO;
1967 goto err_out;
1968 }
1969 m = ctx->mrec;
1970 a = ctx->attr;
1971
1972 /*
1973 * The size needs to be aligned to a cluster boundary for allocation
1974 * purposes.
1975 */
1976 new_size = (data_size + vol->cluster_size - 1) &
1977 ~(vol->cluster_size - 1);
1978 if (new_size > 0) {
1979 if ((a->flags & ATTR_COMPRESSION_MASK) == ATTR_IS_COMPRESSED) {
1980 /* must allocate full compression blocks */
1981 new_size =
1982 ((new_size - 1) |
1983 ((1L << (STANDARD_COMPRESSION_UNIT +
1984 vol->cluster_size_bits)) - 1)) + 1;
1985 }
1986
1987 /*
1988 * Will need folio later and since folio lock nests
1989 * outside all ntfs locks, we need to get the folio now.
1990 */
1991 folio = __filemap_get_folio(vi->i_mapping, 0,
1992 FGP_CREAT | FGP_LOCK,
1993 mapping_gfp_mask(vi->i_mapping));
1994 if (IS_ERR(folio)) {
1995 err = -ENOMEM;
1996 goto err_out;
1997 }
1998
1999 /* Start by allocating clusters to hold the attribute value. */
2000 rl = ntfs_cluster_alloc(vol, 0,
2001 ntfs_bytes_to_cluster(vol, new_size),
2002 -1, DATA_ZONE, true, false, false);
2003 if (IS_ERR(rl)) {
2004 err = PTR_ERR(rl);
2005 ntfs_debug("Failed to allocate cluster%s, error code %i.",
2006 str_plural(ntfs_bytes_to_cluster(vol, new_size)),
2007 err);
2008 goto folio_err_out;
2009 }
2010 } else {
2011 rl = NULL;
2012 folio = NULL;
2013 }
2014
2015 down_write(&ni->runlist.lock);
2016 /* Determine the size of the mapping pairs array. */
2017 mp_size = ntfs_get_size_for_mapping_pairs(vol, rl, 0, -1, -1);
2018 if (unlikely(mp_size < 0)) {
2019 err = mp_size;
2020 ntfs_debug("Failed to get size for mapping pairs array, error code %i.\n", err);
2021 goto rl_err_out;
2022 }
2023
2024 if (NInoNonResident(ni) || a->non_resident) {
2025 err = -EIO;
2026 goto rl_err_out;
2027 }
2028
2029 /*
2030 * Calculate new offsets for the name and the mapping pairs array.
2031 */
2032 if (NInoSparse(ni) || NInoCompressed(ni))
2033 name_ofs = (offsetof(struct attr_record,
2034 data.non_resident.compressed_size) +
2035 sizeof(a->data.non_resident.compressed_size) +
2036 7) & ~7;
2037 else
2038 name_ofs = (offsetof(struct attr_record,
2039 data.non_resident.compressed_size) + 7) & ~7;
2040 mp_ofs = (name_ofs + a->name_length * sizeof(__le16) + 7) & ~7;
2041 /*
2042 * Determine the size of the resident part of the now non-resident
2043 * attribute record.
2044 */
2045 arec_size = (mp_ofs + mp_size + 7) & ~7;
2046 /*
2047 * If the folio is not uptodate bring it uptodate by copying from the
2048 * attribute value.
2049 */
2050 attr_size = le32_to_cpu(a->data.resident.value_length);
2051 WARN_ON(attr_size != data_size);
2052 if (folio && !folio_test_uptodate(folio)) {
2053 folio_fill_tail(folio, 0, (u8 *)a +
2054 le16_to_cpu(a->data.resident.value_offset),
2055 attr_size);
2056 folio_mark_uptodate(folio);
2057 }
2058
2059 /* Backup the attribute flag. */
2060 old_res_attr_flags = a->data.resident.flags;
2061 /* Resize the resident part of the attribute record. */
2062 err = ntfs_attr_record_resize(m, a, arec_size);
2063 if (unlikely(err))
2064 goto rl_err_out;
2065
2066 /*
2067 * Convert the resident part of the attribute record to describe a
2068 * non-resident attribute.
2069 */
2070 a->non_resident = 1;
2071 /* Move the attribute name if it exists and update the offset. */
2072 if (a->name_length)
2073 memmove((u8 *)a + name_ofs, (u8 *)a + le16_to_cpu(a->name_offset),
2074 a->name_length * sizeof(__le16));
2075 a->name_offset = cpu_to_le16(name_ofs);
2076 /* Setup the fields specific to non-resident attributes. */
2077 a->data.non_resident.lowest_vcn = 0;
2078 a->data.non_resident.highest_vcn =
2079 cpu_to_le64(ntfs_bytes_to_cluster(vol, new_size - 1));
2080 a->data.non_resident.mapping_pairs_offset = cpu_to_le16(mp_ofs);
2081 memset(&a->data.non_resident.reserved, 0,
2082 sizeof(a->data.non_resident.reserved));
2083 a->data.non_resident.allocated_size = cpu_to_le64(new_size);
2084 a->data.non_resident.data_size =
2085 a->data.non_resident.initialized_size =
2086 cpu_to_le64(attr_size);
2087 if (NInoSparse(ni) || NInoCompressed(ni)) {
2088 a->data.non_resident.compression_unit = 0;
2089 if (NInoCompressed(ni) || vol->major_ver < 3)
2090 a->data.non_resident.compression_unit = 4;
2091 a->data.non_resident.compressed_size =
2092 a->data.non_resident.allocated_size;
2093 } else
2094 a->data.non_resident.compression_unit = 0;
2095 /* Generate the mapping pairs array into the attribute record. */
2096 err = ntfs_mapping_pairs_build(vol, (u8 *)a + mp_ofs,
2097 arec_size - mp_ofs, rl, 0, -1, NULL, NULL, NULL);
2098 if (unlikely(err)) {
2099 ntfs_error(vol->sb, "Failed to build mapping pairs, error code %i.",
2100 err);
2101 goto undo_err_out;
2102 }
2103
2104 /* Setup the in-memory attribute structure to be non-resident. */
2105 ni->runlist.rl = rl;
2106 if (rl) {
2107 for (ni->runlist.count = 1; rl->length != 0; rl++)
2108 ni->runlist.count++;
2109 } else
2110 ni->runlist.count = 0;
2111 write_lock_irqsave(&ni->size_lock, flags);
2112 ni->allocated_size = new_size;
2113 if (NInoSparse(ni) || NInoCompressed(ni)) {
2114 ni->itype.compressed.size = ni->allocated_size;
2115 if (a->data.non_resident.compression_unit) {
2116 ni->itype.compressed.block_size = 1U <<
2117 (a->data.non_resident.compression_unit +
2118 vol->cluster_size_bits);
2119 ni->itype.compressed.block_size_bits =
2120 ffs(ni->itype.compressed.block_size) -
2121 1;
2122 ni->itype.compressed.block_clusters = 1U <<
2123 a->data.non_resident.compression_unit;
2124 } else {
2125 ni->itype.compressed.block_size = 0;
2126 ni->itype.compressed.block_size_bits = 0;
2127 ni->itype.compressed.block_clusters = 0;
2128 }
2129 vi->i_blocks = ni->itype.compressed.size >> 9;
2130 } else
2131 vi->i_blocks = ni->allocated_size >> 9;
2132 write_unlock_irqrestore(&ni->size_lock, flags);
2133 /*
2134 * This needs to be last since the address space operations ->read_folio
2135 * and ->writepage can run concurrently with us as they are not
2136 * serialized on i_mutex. Note, we are not allowed to fail once we flip
2137 * this switch, which is another reason to do this last.
2138 */
2139 NInoSetNonResident(ni);
2140 NInoSetFullyMapped(ni);
2141 /* Mark the mft record dirty, so it gets written back. */
2142 mark_mft_record_dirty(ctx->ntfs_ino);
2143 ntfs_attr_put_search_ctx(ctx);
2144 unmap_mft_record(base_ni);
2145 up_write(&ni->runlist.lock);
2146 if (folio) {
2147 iomap_dirty_folio(vi->i_mapping, folio);
2148 folio_unlock(folio);
2149 folio_put(folio);
2150 }
2151 ntfs_debug("Done.");
2152 return 0;
2153 undo_err_out:
2154 /* Convert the attribute back into a resident attribute. */
2155 a->non_resident = 0;
2156 /* Move the attribute name if it exists and update the offset. */
2157 name_ofs = (offsetof(struct attr_record, data.resident.reserved) +
2158 sizeof(a->data.resident.reserved) + 7) & ~7;
2159 if (a->name_length)
2160 memmove((u8 *)a + name_ofs, (u8 *)a + le16_to_cpu(a->name_offset),
2161 a->name_length * sizeof(__le16));
2162 mp_ofs = (name_ofs + a->name_length * sizeof(__le16) + 7) & ~7;
2163 a->name_offset = cpu_to_le16(name_ofs);
2164 arec_size = (mp_ofs + attr_size + 7) & ~7;
2165 /* Resize the resident part of the attribute record. */
2166 err2 = ntfs_attr_record_resize(m, a, arec_size);
2167 if (unlikely(err2)) {
2168 /*
2169 * This cannot happen (well if memory corruption is at work it
2170 * could happen in theory), but deal with it as well as we can.
2171 * If the old size is too small, truncate the attribute,
2172 * otherwise simply give it a larger allocated size.
2173 */
2174 arec_size = le32_to_cpu(a->length);
2175 if ((mp_ofs + attr_size) > arec_size) {
2176 err2 = attr_size;
2177 attr_size = arec_size - mp_ofs;
2178 ntfs_error(vol->sb,
2179 "Failed to undo partial resident to non-resident attribute conversion. Truncating inode 0x%llx, attribute type 0x%x from %i bytes to %i bytes to maintain metadata consistency. THIS MEANS YOU ARE LOSING %i BYTES DATA FROM THIS %s.",
2180 ni->mft_no,
2181 (unsigned int)le32_to_cpu(ni->type),
2182 err2, attr_size, err2 - attr_size,
2183 ((ni->type == AT_DATA) &&
2184 !ni->name_len) ? "FILE" : "ATTRIBUTE");
2185 write_lock_irqsave(&ni->size_lock, flags);
2186 ni->initialized_size = attr_size;
2187 i_size_write(vi, attr_size);
2188 write_unlock_irqrestore(&ni->size_lock, flags);
2189 }
2190 }
2191 /* Setup the fields specific to resident attributes. */
2192 a->data.resident.value_length = cpu_to_le32(attr_size);
2193 a->data.resident.value_offset = cpu_to_le16(mp_ofs);
2194 a->data.resident.flags = old_res_attr_flags;
2195 memset(&a->data.resident.reserved, 0,
2196 sizeof(a->data.resident.reserved));
2197 /* Copy the data from folio back to the attribute value. */
2198 if (folio)
2199 memcpy_from_folio((u8 *)a + mp_ofs, folio, 0, attr_size);
2200 /* Setup the allocated size in the ntfs inode in case it changed. */
2201 write_lock_irqsave(&ni->size_lock, flags);
2202 ni->allocated_size = arec_size - mp_ofs;
2203 write_unlock_irqrestore(&ni->size_lock, flags);
2204 /* Mark the mft record dirty, so it gets written back. */
2205 mark_mft_record_dirty(ctx->ntfs_ino);
2206 rl_err_out:
2207 up_write(&ni->runlist.lock);
2208 if (rl) {
2209 if (ntfs_cluster_free_from_rl(vol, rl) < 0) {
2210 ntfs_error(vol->sb,
2211 "Failed to release allocated cluster(s) in error code path. Run chkdsk to recover the lost cluster(s).");
2212 NVolSetErrors(vol);
2213 }
2214 kvfree(rl);
2215 folio_err_out:
2216 folio_unlock(folio);
2217 folio_put(folio);
2218 }
2219 err_out:
2220 if (ctx)
2221 ntfs_attr_put_search_ctx(ctx);
2222 if (m)
2223 unmap_mft_record(base_ni);
2224 ni->runlist.rl = NULL;
2225
2226 if (err == -EINVAL)
2227 err = -EIO;
2228 return err;
2229 }
2230
2231 /*
2232 * ntfs_attr_set - fill (a part of) an attribute with a byte
2233 * @ni: ntfs inode describing the attribute to fill
2234 * @ofs: offset inside the attribute at which to start to fill
2235 * @cnt: number of bytes to fill
2236 * @val: the unsigned 8-bit value with which to fill the attribute
2237 *
2238 * Fill @cnt bytes of the attribute described by the ntfs inode @ni starting at
2239 * byte offset @ofs inside the attribute with the constant byte @val.
2240 *
2241 * This function is effectively like memset() applied to an ntfs attribute.
2242 * Note thie function actually only operates on the page cache pages belonging
2243 * to the ntfs attribute and it marks them dirty after doing the memset().
2244 * Thus it relies on the vm dirty page write code paths to cause the modified
2245 * pages to be written to the mft record/disk.
2246 */
ntfs_attr_set(struct ntfs_inode * ni,s64 ofs,s64 cnt,const u8 val)2247 int ntfs_attr_set(struct ntfs_inode *ni, s64 ofs, s64 cnt, const u8 val)
2248 {
2249 struct address_space *mapping = VFS_I(ni)->i_mapping;
2250 struct folio *folio;
2251 pgoff_t index;
2252 u8 *addr;
2253 unsigned long offset;
2254 size_t attr_len;
2255 int ret = 0;
2256
2257 index = ofs >> PAGE_SHIFT;
2258 while (cnt) {
2259 folio = read_mapping_folio(mapping, index, NULL);
2260 if (IS_ERR(folio)) {
2261 ret = PTR_ERR(folio);
2262 ntfs_error(VFS_I(ni)->i_sb, "Failed to read a page %lu for attr %#x: %ld",
2263 index, ni->type, PTR_ERR(folio));
2264 break;
2265 }
2266
2267 offset = offset_in_folio(folio, ofs);
2268 attr_len = min_t(size_t, (size_t)cnt, folio_size(folio) - offset);
2269
2270 folio_lock(folio);
2271 addr = kmap_local_folio(folio, offset);
2272 memset(addr, val, attr_len);
2273 kunmap_local(addr);
2274
2275 folio_mark_dirty(folio);
2276 folio_unlock(folio);
2277 folio_put(folio);
2278
2279 ofs += attr_len;
2280 cnt -= attr_len;
2281 index++;
2282 cond_resched();
2283 }
2284
2285 return ret;
2286 }
2287
ntfs_attr_set_initialized_size(struct ntfs_inode * ni,loff_t new_size)2288 int ntfs_attr_set_initialized_size(struct ntfs_inode *ni, loff_t new_size)
2289 {
2290 struct ntfs_attr_search_ctx *ctx;
2291 int err = 0;
2292
2293 if (!NInoNonResident(ni))
2294 return -EINVAL;
2295
2296 ctx = ntfs_attr_get_search_ctx(ni, NULL);
2297 if (!ctx)
2298 return -ENOMEM;
2299
2300 err = ntfs_attr_lookup(ni->type, ni->name, ni->name_len,
2301 CASE_SENSITIVE, 0, NULL, 0, ctx);
2302 if (err)
2303 goto out_ctx;
2304
2305 ctx->attr->data.non_resident.initialized_size = cpu_to_le64(new_size);
2306 ni->initialized_size = new_size;
2307 mark_mft_record_dirty(ctx->ntfs_ino);
2308 out_ctx:
2309 ntfs_attr_put_search_ctx(ctx);
2310 return err;
2311 }
2312
2313 /*
2314 * ntfs_make_room_for_attr - make room for an attribute inside an mft record
2315 * @m: mft record
2316 * @pos: position at which to make space
2317 * @size: byte size to make available at this position
2318 *
2319 * @pos points to the attribute in front of which we want to make space.
2320 */
ntfs_make_room_for_attr(struct mft_record * m,u8 * pos,u32 size)2321 static int ntfs_make_room_for_attr(struct mft_record *m, u8 *pos, u32 size)
2322 {
2323 u32 biu;
2324
2325 ntfs_debug("Entering for pos 0x%x, size %u.\n",
2326 (int)(pos - (u8 *)m), (unsigned int) size);
2327
2328 /* Make size 8-byte alignment. */
2329 size = (size + 7) & ~7;
2330
2331 /* Rigorous consistency checks. */
2332 if (!m || !pos || pos < (u8 *)m) {
2333 pr_err("%s: pos=%p m=%p\n", __func__, pos, m);
2334 return -EINVAL;
2335 }
2336
2337 /* The -8 is for the attribute terminator. */
2338 if (pos - (u8 *)m > (int)le32_to_cpu(m->bytes_in_use) - 8)
2339 return -EINVAL;
2340 /* Nothing to do. */
2341 if (!size)
2342 return 0;
2343
2344 biu = le32_to_cpu(m->bytes_in_use);
2345 /* Do we have enough space? */
2346 if (biu + size > le32_to_cpu(m->bytes_allocated) ||
2347 pos + size > (u8 *)m + le32_to_cpu(m->bytes_allocated)) {
2348 ntfs_debug("No enough space in the MFT record\n");
2349 return -ENOSPC;
2350 }
2351 /* Move everything after pos to pos + size. */
2352 memmove(pos + size, pos, biu - (pos - (u8 *)m));
2353 /* Update mft record. */
2354 m->bytes_in_use = cpu_to_le32(biu + size);
2355 return 0;
2356 }
2357
2358 /*
2359 * ntfs_resident_attr_record_add - add resident attribute to inode
2360 * @ni: opened ntfs inode to which MFT record add attribute
2361 * @type: type of the new attribute
2362 * @name: name of the new attribute
2363 * @name_len: name length of the new attribute
2364 * @val: value of the new attribute
2365 * @size: size of new attribute (length of @val, if @val != NULL)
2366 * @flags: flags of the new attribute
2367 */
ntfs_resident_attr_record_add(struct ntfs_inode * ni,__le32 type,__le16 * name,u8 name_len,u8 * val,u32 size,__le16 flags)2368 int ntfs_resident_attr_record_add(struct ntfs_inode *ni, __le32 type,
2369 __le16 *name, u8 name_len, u8 *val, u32 size,
2370 __le16 flags)
2371 {
2372 struct ntfs_attr_search_ctx *ctx;
2373 u32 length;
2374 struct attr_record *a;
2375 struct mft_record *m;
2376 int err, offset;
2377 struct ntfs_inode *base_ni;
2378
2379 if (!ni || (!name && name_len))
2380 return -EINVAL;
2381
2382 ntfs_debug("Entering for inode 0x%llx, attr 0x%x, flags 0x%x.\n",
2383 (long long) ni->mft_no, (unsigned int) le32_to_cpu(type),
2384 (unsigned int) le16_to_cpu(flags));
2385
2386 err = ntfs_attr_can_be_resident(ni->vol, type);
2387 if (err) {
2388 if (err == -EPERM)
2389 ntfs_debug("Attribute can't be resident.\n");
2390 else
2391 ntfs_debug("ntfs_attr_can_be_resident failed.\n");
2392 return err;
2393 }
2394
2395 /* Locate place where record should be. */
2396 ctx = ntfs_attr_get_search_ctx(ni, NULL);
2397 if (!ctx) {
2398 ntfs_error(ni->vol->sb, "%s: Failed to get search context",
2399 __func__);
2400 return -ENOMEM;
2401 }
2402 /*
2403 * Use ntfs_attr_find instead of ntfs_attr_lookup to find place for
2404 * attribute in @ni->mrec, not any extent inode in case if @ni is base
2405 * file record.
2406 */
2407 err = ntfs_attr_find(type, name, name_len, CASE_SENSITIVE, val, size, ctx);
2408 if (!err) {
2409 err = -EEXIST;
2410 ntfs_debug("Attribute already present.\n");
2411 goto put_err_out;
2412 }
2413 if (err != -ENOENT) {
2414 err = -EIO;
2415 goto put_err_out;
2416 }
2417 a = ctx->attr;
2418 m = ctx->mrec;
2419
2420 /* Make room for attribute. */
2421 length = offsetof(struct attr_record, data.resident.reserved) +
2422 sizeof(a->data.resident.reserved) +
2423 ((name_len * sizeof(__le16) + 7) & ~7) +
2424 ((size + 7) & ~7);
2425 err = ntfs_make_room_for_attr(ctx->mrec, (u8 *) ctx->attr, length);
2426 if (err) {
2427 ntfs_debug("Failed to make room for attribute.\n");
2428 goto put_err_out;
2429 }
2430
2431 /* Setup record fields. */
2432 offset = ((u8 *)a - (u8 *)m);
2433 a->type = type;
2434 a->length = cpu_to_le32(length);
2435 a->non_resident = 0;
2436 a->name_length = name_len;
2437 a->name_offset =
2438 name_len ? cpu_to_le16((offsetof(struct attr_record, data.resident.reserved) +
2439 sizeof(a->data.resident.reserved))) : cpu_to_le16(0);
2440
2441 a->flags = flags;
2442 a->instance = m->next_attr_instance;
2443 a->data.resident.value_length = cpu_to_le32(size);
2444 a->data.resident.value_offset = cpu_to_le16(length - ((size + 7) & ~7));
2445 if (val)
2446 memcpy((u8 *)a + le16_to_cpu(a->data.resident.value_offset), val, size);
2447 else
2448 memset((u8 *)a + le16_to_cpu(a->data.resident.value_offset), 0, size);
2449 if (type == AT_FILE_NAME)
2450 a->data.resident.flags = RESIDENT_ATTR_IS_INDEXED;
2451 else
2452 a->data.resident.flags = 0;
2453 if (name_len)
2454 memcpy((u8 *)a + le16_to_cpu(a->name_offset),
2455 name, sizeof(__le16) * name_len);
2456 m->next_attr_instance =
2457 cpu_to_le16((le16_to_cpu(m->next_attr_instance) + 1) & 0xffff);
2458 if (ni->nr_extents == -1)
2459 base_ni = ni->ext.base_ntfs_ino;
2460 else
2461 base_ni = ni;
2462 if (type != AT_ATTRIBUTE_LIST && NInoAttrList(base_ni)) {
2463 err = ntfs_attrlist_entry_add(ni, a);
2464 if (err) {
2465 ntfs_attr_record_resize(m, a, 0);
2466 mark_mft_record_dirty(ctx->ntfs_ino);
2467 ntfs_debug("Failed add attribute entry to ATTRIBUTE_LIST.\n");
2468 goto put_err_out;
2469 }
2470 }
2471 mark_mft_record_dirty(ni);
2472 ntfs_attr_put_search_ctx(ctx);
2473 return offset;
2474 put_err_out:
2475 ntfs_attr_put_search_ctx(ctx);
2476 return -EIO;
2477 }
2478
2479 /*
2480 * ntfs_non_resident_attr_record_add - add extent of non-resident attribute
2481 * @ni: opened ntfs inode to which MFT record add attribute
2482 * @type: type of the new attribute extent
2483 * @name: name of the new attribute extent
2484 * @name_len: name length of the new attribute extent
2485 * @lowest_vcn: lowest vcn of the new attribute extent
2486 * @dataruns_size: dataruns size of the new attribute extent
2487 * @flags: flags of the new attribute extent
2488 */
ntfs_non_resident_attr_record_add(struct ntfs_inode * ni,__le32 type,__le16 * name,u8 name_len,s64 lowest_vcn,int dataruns_size,__le16 flags)2489 static int ntfs_non_resident_attr_record_add(struct ntfs_inode *ni, __le32 type,
2490 __le16 *name, u8 name_len, s64 lowest_vcn, int dataruns_size,
2491 __le16 flags)
2492 {
2493 struct ntfs_attr_search_ctx *ctx;
2494 u32 length;
2495 struct attr_record *a;
2496 struct mft_record *m;
2497 struct ntfs_inode *base_ni;
2498 int err, offset;
2499
2500 if (!ni || dataruns_size <= 0 || (!name && name_len))
2501 return -EINVAL;
2502
2503 ntfs_debug("Entering for inode 0x%llx, attr 0x%x, lowest_vcn %lld, dataruns_size %d, flags 0x%x.\n",
2504 (long long) ni->mft_no, (unsigned int) le32_to_cpu(type),
2505 (long long) lowest_vcn, dataruns_size,
2506 (unsigned int) le16_to_cpu(flags));
2507
2508 err = ntfs_attr_can_be_non_resident(ni->vol, type);
2509 if (err) {
2510 if (err == -EPERM)
2511 pr_err("Attribute can't be non resident\n");
2512 else
2513 pr_err("ntfs_attr_can_be_non_resident failed\n");
2514 return err;
2515 }
2516
2517 /* Locate place where record should be. */
2518 ctx = ntfs_attr_get_search_ctx(ni, NULL);
2519 if (!ctx) {
2520 pr_err("%s: Failed to get search context\n", __func__);
2521 return -ENOMEM;
2522 }
2523 /*
2524 * Use ntfs_attr_find instead of ntfs_attr_lookup to find place for
2525 * attribute in @ni->mrec, not any extent inode in case if @ni is base
2526 * file record.
2527 */
2528 err = ntfs_attr_find(type, name, name_len, CASE_SENSITIVE, NULL, 0, ctx);
2529 if (!err) {
2530 err = -EEXIST;
2531 pr_err("Attribute 0x%x already present\n", type);
2532 goto put_err_out;
2533 }
2534 if (err != -ENOENT) {
2535 pr_err("ntfs_attr_find failed\n");
2536 err = -EIO;
2537 goto put_err_out;
2538 }
2539 a = ctx->attr;
2540 m = ctx->mrec;
2541
2542 /* Make room for attribute. */
2543 dataruns_size = (dataruns_size + 7) & ~7;
2544 length = offsetof(struct attr_record, data.non_resident.compressed_size) +
2545 ((sizeof(__le16) * name_len + 7) & ~7) + dataruns_size +
2546 ((flags & (ATTR_IS_COMPRESSED | ATTR_IS_SPARSE)) ?
2547 sizeof(a->data.non_resident.compressed_size) : 0);
2548 err = ntfs_make_room_for_attr(ctx->mrec, (u8 *) ctx->attr, length);
2549 if (err) {
2550 pr_err("Failed to make room for attribute\n");
2551 goto put_err_out;
2552 }
2553
2554 /* Setup record fields. */
2555 a->type = type;
2556 a->length = cpu_to_le32(length);
2557 a->non_resident = 1;
2558 a->name_length = name_len;
2559 a->name_offset = cpu_to_le16(offsetof(struct attr_record,
2560 data.non_resident.compressed_size) +
2561 ((flags & (ATTR_IS_COMPRESSED | ATTR_IS_SPARSE)) ?
2562 sizeof(a->data.non_resident.compressed_size) : 0));
2563 a->flags = flags;
2564 a->instance = m->next_attr_instance;
2565 a->data.non_resident.lowest_vcn = cpu_to_le64(lowest_vcn);
2566 a->data.non_resident.mapping_pairs_offset = cpu_to_le16(length - dataruns_size);
2567 a->data.non_resident.compression_unit =
2568 (flags & ATTR_IS_COMPRESSED) ? STANDARD_COMPRESSION_UNIT : 0;
2569 /* If @lowest_vcn == 0, than setup empty attribute. */
2570 if (!lowest_vcn) {
2571 a->data.non_resident.highest_vcn = cpu_to_le64(-1);
2572 a->data.non_resident.allocated_size = 0;
2573 a->data.non_resident.data_size = 0;
2574 a->data.non_resident.initialized_size = 0;
2575 /* Set empty mapping pairs. */
2576 *((u8 *)a + le16_to_cpu(a->data.non_resident.mapping_pairs_offset)) = 0;
2577 }
2578 if (name_len)
2579 memcpy((u8 *)a + le16_to_cpu(a->name_offset),
2580 name, sizeof(__le16) * name_len);
2581 m->next_attr_instance =
2582 cpu_to_le16((le16_to_cpu(m->next_attr_instance) + 1) & 0xffff);
2583 if (ni->nr_extents == -1)
2584 base_ni = ni->ext.base_ntfs_ino;
2585 else
2586 base_ni = ni;
2587 if (type != AT_ATTRIBUTE_LIST && NInoAttrList(base_ni)) {
2588 err = ntfs_attrlist_entry_add(ni, a);
2589 if (err) {
2590 pr_err("Failed add attr entry to attrlist\n");
2591 ntfs_attr_record_resize(m, a, 0);
2592 goto put_err_out;
2593 }
2594 }
2595 mark_mft_record_dirty(ni);
2596 /*
2597 * Locate offset from start of the MFT record where new attribute is
2598 * placed. We need relookup it, because record maybe moved during
2599 * update of attribute list.
2600 */
2601 ntfs_attr_reinit_search_ctx(ctx);
2602 err = ntfs_attr_lookup(type, name, name_len, CASE_SENSITIVE,
2603 lowest_vcn, NULL, 0, ctx);
2604 if (err) {
2605 pr_err("%s: attribute lookup failed\n", __func__);
2606 ntfs_attr_put_search_ctx(ctx);
2607 return err;
2608
2609 }
2610 offset = (u8 *)ctx->attr - (u8 *)ctx->mrec;
2611 ntfs_attr_put_search_ctx(ctx);
2612 return offset;
2613 put_err_out:
2614 ntfs_attr_put_search_ctx(ctx);
2615 return -1;
2616 }
2617
2618 /*
2619 * ntfs_attr_record_rm - remove attribute extent
2620 * @ctx: search context describing the attribute which should be removed
2621 *
2622 * If this function succeed, user should reinit search context if he/she wants
2623 * use it anymore.
2624 */
ntfs_attr_record_rm(struct ntfs_attr_search_ctx * ctx)2625 int ntfs_attr_record_rm(struct ntfs_attr_search_ctx *ctx)
2626 {
2627 struct ntfs_inode *base_ni, *ni;
2628 __le32 type;
2629 int err;
2630
2631 if (!ctx || !ctx->ntfs_ino || !ctx->mrec || !ctx->attr)
2632 return -EINVAL;
2633
2634 ntfs_debug("Entering for inode 0x%llx, attr 0x%x.\n",
2635 (long long) ctx->ntfs_ino->mft_no,
2636 (unsigned int) le32_to_cpu(ctx->attr->type));
2637 type = ctx->attr->type;
2638 ni = ctx->ntfs_ino;
2639 if (ctx->base_ntfs_ino)
2640 base_ni = ctx->base_ntfs_ino;
2641 else
2642 base_ni = ctx->ntfs_ino;
2643
2644 /* Remove attribute itself. */
2645 if (ntfs_attr_record_resize(ctx->mrec, ctx->attr, 0)) {
2646 ntfs_debug("Couldn't remove attribute record. Bug or damaged MFT record.\n");
2647 return -EIO;
2648 }
2649 mark_mft_record_dirty(ni);
2650
2651 /*
2652 * Remove record from $ATTRIBUTE_LIST if present and we don't want
2653 * delete $ATTRIBUTE_LIST itself.
2654 */
2655 if (NInoAttrList(base_ni) && type != AT_ATTRIBUTE_LIST) {
2656 err = ntfs_attrlist_entry_rm(ctx);
2657 if (err) {
2658 ntfs_debug("Couldn't delete record from $ATTRIBUTE_LIST.\n");
2659 return err;
2660 }
2661 }
2662
2663 /* Post $ATTRIBUTE_LIST delete setup. */
2664 if (type == AT_ATTRIBUTE_LIST) {
2665 if (NInoAttrList(base_ni) && base_ni->attr_list)
2666 kvfree(base_ni->attr_list);
2667 base_ni->attr_list = NULL;
2668 NInoClearAttrList(base_ni);
2669 }
2670
2671 /* Free MFT record, if it doesn't contain attributes. */
2672 if (le32_to_cpu(ctx->mrec->bytes_in_use) -
2673 le16_to_cpu(ctx->mrec->attrs_offset) == 8) {
2674 if (ntfs_mft_record_free(ni->vol, ni)) {
2675 ntfs_debug("Couldn't free MFT record.\n");
2676 return -EIO;
2677 }
2678 /* Remove done if we freed base inode. */
2679 if (ni == base_ni)
2680 return 0;
2681 ntfs_inode_close(ni);
2682 ctx->ntfs_ino = ni = NULL;
2683 }
2684
2685 if (type == AT_ATTRIBUTE_LIST || !NInoAttrList(base_ni))
2686 return 0;
2687
2688 /* Remove attribute list if we don't need it any more. */
2689 if (!ntfs_attrlist_need(base_ni)) {
2690 struct ntfs_attr na;
2691 struct inode *attr_vi;
2692
2693 ntfs_attr_reinit_search_ctx(ctx);
2694 if (ntfs_attr_lookup(AT_ATTRIBUTE_LIST, NULL, 0, CASE_SENSITIVE,
2695 0, NULL, 0, ctx)) {
2696 ntfs_debug("Couldn't find attribute list. Succeed anyway.\n");
2697 return 0;
2698 }
2699 /* Deallocate clusters. */
2700 if (ctx->attr->non_resident) {
2701 struct runlist_element *al_rl;
2702 size_t new_rl_count;
2703
2704 al_rl = ntfs_mapping_pairs_decompress(base_ni->vol,
2705 ctx->attr, NULL, &new_rl_count);
2706 if (IS_ERR(al_rl)) {
2707 ntfs_debug("Couldn't decompress attribute list runlist. Succeed anyway.\n");
2708 return 0;
2709 }
2710 if (ntfs_cluster_free_from_rl(base_ni->vol, al_rl))
2711 ntfs_debug("Leaking clusters! Run chkdsk. Couldn't free clusters from attribute list runlist.\n");
2712 kvfree(al_rl);
2713 }
2714 /* Remove attribute record itself. */
2715 if (ntfs_attr_record_rm(ctx)) {
2716 ntfs_debug("Couldn't remove attribute list. Succeed anyway.\n");
2717 return 0;
2718 }
2719
2720 na.mft_no = VFS_I(base_ni)->i_ino;
2721 na.type = AT_ATTRIBUTE_LIST;
2722 na.name = NULL;
2723 na.name_len = 0;
2724
2725 attr_vi = ilookup5(VFS_I(base_ni)->i_sb, VFS_I(base_ni)->i_ino,
2726 ntfs_test_inode, &na);
2727 if (attr_vi) {
2728 clear_nlink(attr_vi);
2729 iput(attr_vi);
2730 }
2731
2732 }
2733 return 0;
2734 }
2735
2736 /*
2737 * ntfs_attr_add - add attribute to inode
2738 * @ni: opened ntfs inode to which add attribute
2739 * @type: type of the new attribute
2740 * @name: name in unicode of the new attribute
2741 * @name_len: name length in unicode characters of the new attribute
2742 * @val: value of new attribute
2743 * @size: size of the new attribute / length of @val (if specified)
2744 *
2745 * @val should always be specified for always resident attributes (eg. FILE_NAME
2746 * attribute), for attributes that can become non-resident @val can be NULL
2747 * (eg. DATA attribute). @size can be specified even if @val is NULL, in this
2748 * case data size will be equal to @size and initialized size will be equal
2749 * to 0.
2750 *
2751 * If inode haven't got enough space to add attribute, add attribute to one of
2752 * it extents, if no extents present or no one of them have enough space, than
2753 * allocate new extent and add attribute to it.
2754 *
2755 * If on one of this steps attribute list is needed but not present, than it is
2756 * added transparently to caller. So, this function should not be called with
2757 * @type == AT_ATTRIBUTE_LIST, if you really need to add attribute list call
2758 * ntfs_inode_add_attrlist instead.
2759 *
2760 * On success return 0. On error return -1 with errno set to the error code.
2761 */
ntfs_attr_add(struct ntfs_inode * ni,__le32 type,__le16 * name,u8 name_len,u8 * val,s64 size)2762 int ntfs_attr_add(struct ntfs_inode *ni, __le32 type,
2763 __le16 *name, u8 name_len, u8 *val, s64 size)
2764 {
2765 struct super_block *sb;
2766 u32 attr_rec_size;
2767 int err, i, offset;
2768 bool is_resident;
2769 bool can_be_non_resident = false;
2770 struct ntfs_inode *attr_ni;
2771 struct inode *attr_vi;
2772 struct mft_record *ni_mrec;
2773
2774 if (!ni || size < 0 || type == AT_ATTRIBUTE_LIST)
2775 return -EINVAL;
2776
2777 ntfs_debug("Entering for inode 0x%llx, attr %x, size %lld.\n",
2778 (long long) ni->mft_no, type, size);
2779
2780 if (ni->nr_extents == -1)
2781 ni = ni->ext.base_ntfs_ino;
2782
2783 /* Check the attribute type and the size. */
2784 err = ntfs_attr_size_bounds_check(ni->vol, type, size);
2785 if (err) {
2786 if (err == -ENOENT)
2787 err = -EIO;
2788 return err;
2789 }
2790
2791 sb = ni->vol->sb;
2792 /* Sanity checks for always resident attributes. */
2793 err = ntfs_attr_can_be_non_resident(ni->vol, type);
2794 if (err) {
2795 if (err != -EPERM) {
2796 ntfs_error(sb, "ntfs_attr_can_be_non_resident failed");
2797 goto err_out;
2798 }
2799 /* @val is mandatory. */
2800 if (!val) {
2801 ntfs_error(sb,
2802 "val is mandatory for always resident attributes");
2803 return -EINVAL;
2804 }
2805 if (size > ni->vol->mft_record_size) {
2806 ntfs_error(sb, "Attribute is too big");
2807 return -ERANGE;
2808 }
2809 } else
2810 can_be_non_resident = true;
2811
2812 /*
2813 * Determine resident or not will be new attribute. We add 8 to size in
2814 * non resident case for mapping pairs.
2815 */
2816 err = ntfs_attr_can_be_resident(ni->vol, type);
2817 if (!err) {
2818 is_resident = true;
2819 } else {
2820 if (err != -EPERM) {
2821 ntfs_error(sb, "ntfs_attr_can_be_resident failed");
2822 goto err_out;
2823 }
2824 is_resident = false;
2825 }
2826
2827 /* Calculate attribute record size. */
2828 if (is_resident)
2829 attr_rec_size = offsetof(struct attr_record, data.resident.reserved) +
2830 1 +
2831 ((name_len * sizeof(__le16) + 7) & ~7) +
2832 ((size + 7) & ~7);
2833 else
2834 attr_rec_size = offsetof(struct attr_record, data.non_resident.compressed_size) +
2835 ((name_len * sizeof(__le16) + 7) & ~7) + 8;
2836
2837 /*
2838 * If we have enough free space for the new attribute in the base MFT
2839 * record, then add attribute to it.
2840 */
2841 retry:
2842 ni_mrec = map_mft_record(ni);
2843 if (IS_ERR(ni_mrec)) {
2844 err = -EIO;
2845 goto err_out;
2846 }
2847
2848 if (le32_to_cpu(ni_mrec->bytes_allocated) -
2849 le32_to_cpu(ni_mrec->bytes_in_use) >= attr_rec_size) {
2850 attr_ni = ni;
2851 unmap_mft_record(ni);
2852 goto add_attr_record;
2853 }
2854 unmap_mft_record(ni);
2855
2856 /* Try to add to extent inodes. */
2857 err = ntfs_inode_attach_all_extents(ni);
2858 if (err) {
2859 ntfs_error(sb, "Failed to attach all extents to inode");
2860 goto err_out;
2861 }
2862
2863 for (i = 0; i < ni->nr_extents; i++) {
2864 attr_ni = ni->ext.extent_ntfs_inos[i];
2865 ni_mrec = map_mft_record(attr_ni);
2866 if (IS_ERR(ni_mrec)) {
2867 err = -EIO;
2868 goto err_out;
2869 }
2870
2871 if (le32_to_cpu(ni_mrec->bytes_allocated) -
2872 le32_to_cpu(ni_mrec->bytes_in_use) >=
2873 attr_rec_size) {
2874 unmap_mft_record(attr_ni);
2875 goto add_attr_record;
2876 }
2877 unmap_mft_record(attr_ni);
2878 }
2879
2880 /* There is no extent that contain enough space for new attribute. */
2881 if (!NInoAttrList(ni)) {
2882 /* Add attribute list not present, add it and retry. */
2883 err = ntfs_inode_add_attrlist(ni);
2884 if (err) {
2885 ntfs_error(sb, "Failed to add attribute list");
2886 goto err_out;
2887 }
2888 goto retry;
2889 }
2890
2891 attr_ni = NULL;
2892 /* Allocate new extent. */
2893 err = ntfs_mft_record_alloc(ni->vol, 0, &attr_ni, ni, NULL);
2894 if (err) {
2895 ntfs_error(sb, "Failed to allocate extent record");
2896 goto err_out;
2897 }
2898 unmap_mft_record(attr_ni);
2899
2900 add_attr_record:
2901 if (is_resident) {
2902 /* Add resident attribute. */
2903 offset = ntfs_resident_attr_record_add(attr_ni, type, name,
2904 name_len, val, size, 0);
2905 if (offset < 0) {
2906 if (offset == -ENOSPC && can_be_non_resident)
2907 goto add_non_resident;
2908 err = offset;
2909 ntfs_error(sb, "Failed to add resident attribute");
2910 goto free_err_out;
2911 }
2912 return 0;
2913 }
2914
2915 add_non_resident:
2916 /* Add non resident attribute. */
2917 offset = ntfs_non_resident_attr_record_add(attr_ni, type, name,
2918 name_len, 0, 8, 0);
2919 if (offset < 0) {
2920 err = offset;
2921 ntfs_error(sb, "Failed to add non resident attribute");
2922 goto free_err_out;
2923 }
2924
2925 /* If @size == 0, we are done. */
2926 if (!size)
2927 return 0;
2928
2929 /* Open new attribute and resize it. */
2930 attr_vi = ntfs_attr_iget(VFS_I(ni), type, name, name_len);
2931 if (IS_ERR(attr_vi)) {
2932 err = PTR_ERR(attr_vi);
2933 ntfs_error(sb, "Failed to open just added attribute");
2934 goto rm_attr_err_out;
2935 }
2936 attr_ni = NTFS_I(attr_vi);
2937
2938 /* Resize and set attribute value. */
2939 if (ntfs_attr_truncate(attr_ni, size) ||
2940 (val && (ntfs_inode_attr_pwrite(attr_vi, 0, size, val, false) != size))) {
2941 err = -EIO;
2942 ntfs_error(sb, "Failed to initialize just added attribute");
2943 if (ntfs_attr_rm(attr_ni))
2944 ntfs_error(sb, "Failed to remove just added attribute");
2945 iput(attr_vi);
2946 goto err_out;
2947 }
2948 iput(attr_vi);
2949 return 0;
2950
2951 rm_attr_err_out:
2952 /* Remove just added attribute. */
2953 ni_mrec = map_mft_record(attr_ni);
2954 if (!IS_ERR(ni_mrec)) {
2955 if (ntfs_attr_record_resize(ni_mrec,
2956 (struct attr_record *)((u8 *)ni_mrec + offset), 0))
2957 ntfs_error(sb, "Failed to remove just added attribute #2");
2958 unmap_mft_record(attr_ni);
2959 } else
2960 pr_err("EIO when try to remove new added attr\n");
2961
2962 free_err_out:
2963 /* Free MFT record, if it doesn't contain attributes. */
2964 ni_mrec = map_mft_record(attr_ni);
2965 if (!IS_ERR(ni_mrec)) {
2966 int attr_size;
2967
2968 attr_size = le32_to_cpu(ni_mrec->bytes_in_use) -
2969 le16_to_cpu(ni_mrec->attrs_offset);
2970 unmap_mft_record(attr_ni);
2971 if (attr_size == 8) {
2972 if (ntfs_mft_record_free(attr_ni->vol, attr_ni))
2973 ntfs_error(sb, "Failed to free MFT record");
2974 if (attr_ni->nr_extents < 0)
2975 ntfs_inode_close(attr_ni);
2976 }
2977 } else
2978 pr_err("EIO when testing mft record is free-able\n");
2979
2980 err_out:
2981 return err;
2982 }
2983
2984 /*
2985 * __ntfs_attr_init - primary initialization of an ntfs attribute structure
2986 * @ni: ntfs attribute inode to initialize
2987 * @ni: ntfs inode with which to initialize the ntfs attribute
2988 * @type: attribute type
2989 * @name: attribute name in little endian Unicode or NULL
2990 * @name_len: length of attribute @name in Unicode characters (if @name given)
2991 *
2992 * Initialize the ntfs attribute @na with @ni, @type, @name, and @name_len.
2993 */
__ntfs_attr_init(struct ntfs_inode * ni,const __le32 type,__le16 * name,const u32 name_len)2994 static void __ntfs_attr_init(struct ntfs_inode *ni,
2995 const __le32 type, __le16 *name, const u32 name_len)
2996 {
2997 ni->runlist.rl = NULL;
2998 ni->type = type;
2999 ni->name = name;
3000 if (name)
3001 ni->name_len = name_len;
3002 else
3003 ni->name_len = 0;
3004 }
3005
3006 /*
3007 * ntfs_attr_init - initialize an ntfs_attr with data sizes and status
3008 * @ni: ntfs inode to initialize
3009 * @non_resident: true if attribute is non-resident
3010 * @compressed: true if attribute is compressed
3011 * @encrypted: true if attribute is encrypted
3012 * @sparse: true if attribute is sparse
3013 * @allocated_size: allocated size of the attribute
3014 * @data_size: actual data size of the attribute
3015 * @initialized_size: initialized size of the attribute
3016 * @compressed_size: compressed size (if compressed or sparse)
3017 * @compression_unit: compression unit size (log2 of clusters)
3018 *
3019 * Final initialization for an ntfs attribute.
3020 */
ntfs_attr_init(struct ntfs_inode * ni,const bool non_resident,const bool compressed,const bool encrypted,const bool sparse,const s64 allocated_size,const s64 data_size,const s64 initialized_size,const s64 compressed_size,const u8 compression_unit)3021 static void ntfs_attr_init(struct ntfs_inode *ni, const bool non_resident,
3022 const bool compressed, const bool encrypted, const bool sparse,
3023 const s64 allocated_size, const s64 data_size,
3024 const s64 initialized_size, const s64 compressed_size,
3025 const u8 compression_unit)
3026 {
3027 if (non_resident)
3028 NInoSetNonResident(ni);
3029 if (compressed) {
3030 NInoSetCompressed(ni);
3031 ni->flags |= FILE_ATTR_COMPRESSED;
3032 }
3033 if (encrypted) {
3034 NInoSetEncrypted(ni);
3035 ni->flags |= FILE_ATTR_ENCRYPTED;
3036 }
3037 if (sparse) {
3038 NInoSetSparse(ni);
3039 ni->flags |= FILE_ATTR_SPARSE_FILE;
3040 }
3041 ni->allocated_size = allocated_size;
3042 ni->data_size = data_size;
3043 ni->initialized_size = initialized_size;
3044 if (compressed || sparse) {
3045 struct ntfs_volume *vol = ni->vol;
3046
3047 ni->itype.compressed.size = compressed_size;
3048 ni->itype.compressed.block_clusters = 1 << compression_unit;
3049 ni->itype.compressed.block_size = 1 << (compression_unit +
3050 vol->cluster_size_bits);
3051 ni->itype.compressed.block_size_bits = ffs(
3052 ni->itype.compressed.block_size) - 1;
3053 }
3054 }
3055
3056 /*
3057 * ntfs_attr_open - open an ntfs attribute for access
3058 * @ni: open ntfs inode in which the ntfs attribute resides
3059 * @type: attribute type
3060 * @name: attribute name in little endian Unicode or AT_UNNAMED or NULL
3061 * @name_len: length of attribute @name in Unicode characters (if @name given)
3062 */
ntfs_attr_open(struct ntfs_inode * ni,const __le32 type,__le16 * name,u32 name_len)3063 int ntfs_attr_open(struct ntfs_inode *ni, const __le32 type,
3064 __le16 *name, u32 name_len)
3065 {
3066 struct ntfs_attr_search_ctx *ctx;
3067 __le16 *newname = NULL;
3068 struct attr_record *a;
3069 bool cs;
3070 struct ntfs_inode *base_ni;
3071 int err;
3072
3073 if (!ni || !ni->vol)
3074 return -EINVAL;
3075
3076 ntfs_debug("Entering for inode %lld, attr 0x%x.\n",
3077 ni->mft_no, type);
3078
3079 if (NInoAttr(ni))
3080 base_ni = ni->ext.base_ntfs_ino;
3081 else
3082 base_ni = ni;
3083
3084 if (name && name != AT_UNNAMED && name != I30) {
3085 name = ntfs_ucsndup(name, name_len);
3086 if (!name) {
3087 err = -ENOMEM;
3088 goto err_out;
3089 }
3090 newname = name;
3091 }
3092
3093 ctx = ntfs_attr_get_search_ctx(base_ni, NULL);
3094 if (!ctx) {
3095 err = -ENOMEM;
3096 pr_err("%s: Failed to get search context\n", __func__);
3097 goto err_out;
3098 }
3099
3100 err = ntfs_attr_lookup(type, name, name_len, 0, 0, NULL, 0, ctx);
3101 if (err)
3102 goto put_err_out;
3103
3104 a = ctx->attr;
3105
3106 if (!name) {
3107 if (a->name_length) {
3108 name = ntfs_ucsndup((__le16 *)((u8 *)a + le16_to_cpu(a->name_offset)),
3109 a->name_length);
3110 if (!name)
3111 goto put_err_out;
3112 newname = name;
3113 name_len = a->name_length;
3114 } else {
3115 name = AT_UNNAMED;
3116 name_len = 0;
3117 }
3118 }
3119
3120 __ntfs_attr_init(ni, type, name, name_len);
3121
3122 /*
3123 * Wipe the flags in case they are not zero for an attribute list
3124 * attribute. Windows does not complain about invalid flags and chkdsk
3125 * does not detect or fix them so we need to cope with it, too.
3126 */
3127 if (type == AT_ATTRIBUTE_LIST)
3128 a->flags = 0;
3129
3130 if ((type == AT_DATA) &&
3131 (a->non_resident ? !a->data.non_resident.initialized_size :
3132 !a->data.resident.value_length)) {
3133 /*
3134 * Define/redefine the compression state if stream is
3135 * empty, based on the compression mark on parent
3136 * directory (for unnamed data streams) or on current
3137 * inode (for named data streams). The compression mark
3138 * may change any time, the compression state can only
3139 * change when stream is wiped out.
3140 *
3141 * Also prevent compression on NTFS version < 3.0
3142 * or cluster size > 4K or compression is disabled
3143 */
3144 a->flags &= ~ATTR_COMPRESSION_MASK;
3145 if (NInoCompressed(ni)
3146 && (ni->vol->major_ver >= 3)
3147 && NVolCompression(ni->vol)
3148 && (ni->vol->cluster_size <= MAX_COMPRESSION_CLUSTER_SIZE))
3149 a->flags |= ATTR_IS_COMPRESSED;
3150 }
3151
3152 cs = a->flags & (ATTR_IS_COMPRESSED | ATTR_IS_SPARSE);
3153
3154 if (ni->type == AT_DATA && ni->name == AT_UNNAMED &&
3155 ((!(a->flags & ATTR_IS_COMPRESSED) != !NInoCompressed(ni)) ||
3156 (!(a->flags & ATTR_IS_SPARSE) != !NInoSparse(ni)) ||
3157 (!(a->flags & ATTR_IS_ENCRYPTED) != !NInoEncrypted(ni)))) {
3158 err = -EIO;
3159 pr_err("Inode %lld has corrupt attribute flags (0x%x <> 0x%x)\n",
3160 (unsigned long long)ni->mft_no,
3161 a->flags, ni->flags);
3162 goto put_err_out;
3163 }
3164
3165 if (a->non_resident) {
3166 if (((a->flags & ATTR_COMPRESSION_MASK) || a->data.non_resident.compression_unit) &&
3167 (ni->vol->major_ver < 3)) {
3168 err = -EIO;
3169 pr_err("Compressed inode %lld not allowed on NTFS %d.%d\n",
3170 (unsigned long long)ni->mft_no,
3171 ni->vol->major_ver,
3172 ni->vol->major_ver);
3173 goto put_err_out;
3174 }
3175
3176 if ((a->flags & ATTR_IS_COMPRESSED) && !a->data.non_resident.compression_unit) {
3177 err = -EIO;
3178 pr_err("Compressed inode %lld attr 0x%x has no compression unit\n",
3179 (unsigned long long)ni->mft_no, type);
3180 goto put_err_out;
3181 }
3182 if ((a->flags & ATTR_COMPRESSION_MASK) &&
3183 (a->data.non_resident.compression_unit != STANDARD_COMPRESSION_UNIT)) {
3184 err = -EIO;
3185 pr_err("Compressed inode %lld attr 0x%lx has an unsupported compression unit %d\n",
3186 (unsigned long long)ni->mft_no,
3187 (long)le32_to_cpu(type),
3188 (int)a->data.non_resident.compression_unit);
3189 goto put_err_out;
3190 }
3191 ntfs_attr_init(ni, true, a->flags & ATTR_IS_COMPRESSED,
3192 a->flags & ATTR_IS_ENCRYPTED,
3193 a->flags & ATTR_IS_SPARSE,
3194 le64_to_cpu(a->data.non_resident.allocated_size),
3195 le64_to_cpu(a->data.non_resident.data_size),
3196 le64_to_cpu(a->data.non_resident.initialized_size),
3197 cs ? le64_to_cpu(a->data.non_resident.compressed_size) : 0,
3198 cs ? a->data.non_resident.compression_unit : 0);
3199 } else {
3200 s64 l = le32_to_cpu(a->data.resident.value_length);
3201
3202 ntfs_attr_init(ni, false, a->flags & ATTR_IS_COMPRESSED,
3203 a->flags & ATTR_IS_ENCRYPTED,
3204 a->flags & ATTR_IS_SPARSE, (l + 7) & ~7, l, l,
3205 cs ? (l + 7) & ~7 : 0, 0);
3206 }
3207 ntfs_attr_put_search_ctx(ctx);
3208 out:
3209 ntfs_debug("\n");
3210 return err;
3211
3212 put_err_out:
3213 ntfs_attr_put_search_ctx(ctx);
3214 err_out:
3215 kfree(newname);
3216 goto out;
3217 }
3218
3219 /*
3220 * ntfs_attr_close - free an ntfs attribute structure
3221 * @ni: ntfs inode to free
3222 *
3223 * Release all memory associated with the ntfs attribute @na and then release
3224 * @na itself.
3225 */
ntfs_attr_close(struct ntfs_inode * ni)3226 void ntfs_attr_close(struct ntfs_inode *ni)
3227 {
3228 if (NInoNonResident(ni) && ni->runlist.rl)
3229 kvfree(ni->runlist.rl);
3230 /* Don't release if using an internal constant. */
3231 if (ni->name != AT_UNNAMED && ni->name != I30)
3232 kfree(ni->name);
3233 }
3234
3235 /*
3236 * ntfs_attr_map_whole_runlist - map the whole runlist of an ntfs attribute
3237 * @ni: ntfs inode for which to map the runlist
3238 *
3239 * Map the whole runlist of the ntfs attribute @na. For an attribute made up
3240 * of only one attribute extent this is the same as calling
3241 * ntfs_map_runlist(ni, 0) but for an attribute with multiple extents this
3242 * will map the runlist fragments from each of the extents thus giving access
3243 * to the entirety of the disk allocation of an attribute.
3244 */
ntfs_attr_map_whole_runlist(struct ntfs_inode * ni)3245 int ntfs_attr_map_whole_runlist(struct ntfs_inode *ni)
3246 {
3247 s64 next_vcn, last_vcn, highest_vcn;
3248 struct ntfs_attr_search_ctx *ctx;
3249 struct ntfs_volume *vol = ni->vol;
3250 struct super_block *sb = vol->sb;
3251 struct attr_record *a;
3252 int err;
3253 struct ntfs_inode *base_ni;
3254 int not_mapped;
3255 size_t new_rl_count;
3256
3257 ntfs_debug("Entering for inode 0x%llx, attr 0x%x.\n",
3258 (unsigned long long)ni->mft_no, ni->type);
3259
3260 if (NInoFullyMapped(ni) && ni->runlist.rl)
3261 return 0;
3262
3263 if (NInoAttr(ni))
3264 base_ni = ni->ext.base_ntfs_ino;
3265 else
3266 base_ni = ni;
3267
3268 ctx = ntfs_attr_get_search_ctx(base_ni, NULL);
3269 if (!ctx) {
3270 ntfs_error(sb, "%s: Failed to get search context", __func__);
3271 return -ENOMEM;
3272 }
3273
3274 /* Map all attribute extents one by one. */
3275 next_vcn = last_vcn = highest_vcn = 0;
3276 a = NULL;
3277 while (1) {
3278 struct runlist_element *rl;
3279
3280 not_mapped = 0;
3281 if (ntfs_rl_vcn_to_lcn(ni->runlist.rl, next_vcn) == LCN_RL_NOT_MAPPED)
3282 not_mapped = 1;
3283
3284 err = ntfs_attr_lookup(ni->type, ni->name, ni->name_len,
3285 CASE_SENSITIVE, next_vcn, NULL, 0, ctx);
3286 if (err)
3287 break;
3288
3289 a = ctx->attr;
3290
3291 if (not_mapped) {
3292 /* Decode the runlist. */
3293 rl = ntfs_mapping_pairs_decompress(ni->vol, a, &ni->runlist,
3294 &new_rl_count);
3295 if (IS_ERR(rl)) {
3296 err = PTR_ERR(rl);
3297 goto err_out;
3298 }
3299 ni->runlist.rl = rl;
3300 ni->runlist.count = new_rl_count;
3301 }
3302
3303 /* Are we in the first extent? */
3304 if (!next_vcn) {
3305 if (a->data.non_resident.lowest_vcn) {
3306 err = -EIO;
3307 ntfs_error(sb,
3308 "First extent of inode %llu attribute has non-zero lowest_vcn",
3309 (unsigned long long)ni->mft_no);
3310 goto err_out;
3311 }
3312 /* Get the last vcn in the attribute. */
3313 last_vcn = ntfs_bytes_to_cluster(vol,
3314 le64_to_cpu(a->data.non_resident.allocated_size));
3315 }
3316
3317 /* Get the lowest vcn for the next extent. */
3318 highest_vcn = le64_to_cpu(a->data.non_resident.highest_vcn);
3319 next_vcn = highest_vcn + 1;
3320
3321 /* Only one extent or error, which we catch below. */
3322 if (next_vcn <= 0) {
3323 err = -ENOENT;
3324 break;
3325 }
3326
3327 /* Avoid endless loops due to corruption. */
3328 if (next_vcn < le64_to_cpu(a->data.non_resident.lowest_vcn)) {
3329 err = -EIO;
3330 ntfs_error(sb, "Inode %llu has corrupt attribute list",
3331 (unsigned long long)ni->mft_no);
3332 goto err_out;
3333 }
3334 }
3335 if (!a) {
3336 ntfs_error(sb, "Couldn't find attribute for runlist mapping");
3337 goto err_out;
3338 }
3339 if (not_mapped && highest_vcn && highest_vcn != last_vcn - 1) {
3340 err = -EIO;
3341 ntfs_error(sb,
3342 "Failed to load full runlist: inode: %llu highest_vcn: 0x%llx last_vcn: 0x%llx",
3343 (unsigned long long)ni->mft_no,
3344 (long long)highest_vcn, (long long)last_vcn);
3345 goto err_out;
3346 }
3347 ntfs_attr_put_search_ctx(ctx);
3348 if (err == -ENOENT) {
3349 NInoSetFullyMapped(ni);
3350 return 0;
3351 }
3352
3353 return err;
3354
3355 err_out:
3356 ntfs_attr_put_search_ctx(ctx);
3357 return err;
3358 }
3359
3360 /*
3361 * ntfs_attr_record_move_to - move attribute record to target inode
3362 * @ctx: attribute search context describing the attribute record
3363 * @ni: opened ntfs inode to which move attribute record
3364 */
ntfs_attr_record_move_to(struct ntfs_attr_search_ctx * ctx,struct ntfs_inode * ni)3365 int ntfs_attr_record_move_to(struct ntfs_attr_search_ctx *ctx, struct ntfs_inode *ni)
3366 {
3367 struct ntfs_attr_search_ctx *nctx;
3368 struct attr_record *a;
3369 int err;
3370 struct mft_record *ni_mrec;
3371 struct super_block *sb;
3372
3373 if (!ctx || !ctx->attr || !ctx->ntfs_ino || !ni) {
3374 ntfs_debug("Invalid arguments passed.\n");
3375 return -EINVAL;
3376 }
3377
3378 sb = ni->vol->sb;
3379 ntfs_debug("Entering for ctx->attr->type 0x%x, ctx->ntfs_ino->mft_no 0x%llx, ni->mft_no 0x%llx.\n",
3380 (unsigned int) le32_to_cpu(ctx->attr->type),
3381 (long long) ctx->ntfs_ino->mft_no,
3382 (long long) ni->mft_no);
3383
3384 if (ctx->ntfs_ino == ni)
3385 return 0;
3386
3387 if (!ctx->al_entry) {
3388 ntfs_debug("Inode should contain attribute list to use this function.\n");
3389 return -EINVAL;
3390 }
3391
3392 /* Find place in MFT record where attribute will be moved. */
3393 a = ctx->attr;
3394 nctx = ntfs_attr_get_search_ctx(ni, NULL);
3395 if (!nctx) {
3396 ntfs_error(sb, "%s: Failed to get search context", __func__);
3397 return -ENOMEM;
3398 }
3399
3400 /*
3401 * Use ntfs_attr_find instead of ntfs_attr_lookup to find place for
3402 * attribute in @ni->mrec, not any extent inode in case if @ni is base
3403 * file record.
3404 */
3405 err = ntfs_attr_find(a->type, (__le16 *)((u8 *)a + le16_to_cpu(a->name_offset)),
3406 a->name_length, CASE_SENSITIVE, NULL,
3407 0, nctx);
3408 if (!err) {
3409 ntfs_debug("Attribute of such type, with same name already present in this MFT record.\n");
3410 err = -EEXIST;
3411 goto put_err_out;
3412 }
3413 if (err != -ENOENT) {
3414 ntfs_debug("Attribute lookup failed.\n");
3415 goto put_err_out;
3416 }
3417
3418 /* Make space and move attribute. */
3419 ni_mrec = map_mft_record(ni);
3420 if (IS_ERR(ni_mrec)) {
3421 err = -EIO;
3422 goto put_err_out;
3423 }
3424
3425 err = ntfs_make_room_for_attr(ni_mrec, (u8 *) nctx->attr,
3426 le32_to_cpu(a->length));
3427 if (err) {
3428 ntfs_debug("Couldn't make space for attribute.\n");
3429 unmap_mft_record(ni);
3430 goto put_err_out;
3431 }
3432 memcpy(nctx->attr, a, le32_to_cpu(a->length));
3433 nctx->attr->instance = nctx->mrec->next_attr_instance;
3434 nctx->mrec->next_attr_instance =
3435 cpu_to_le16((le16_to_cpu(nctx->mrec->next_attr_instance) + 1) & 0xffff);
3436 ntfs_attr_record_resize(ctx->mrec, a, 0);
3437 mark_mft_record_dirty(ctx->ntfs_ino);
3438 mark_mft_record_dirty(ni);
3439
3440 /* Update attribute list. */
3441 ctx->al_entry->mft_reference =
3442 MK_LE_MREF(ni->mft_no, le16_to_cpu(ni_mrec->sequence_number));
3443 ctx->al_entry->instance = nctx->attr->instance;
3444 unmap_mft_record(ni);
3445 put_err_out:
3446 ntfs_attr_put_search_ctx(nctx);
3447 return err;
3448 }
3449
3450 /*
3451 * ntfs_attr_record_move_away - move away attribute record from it's mft record
3452 * @ctx: attribute search context describing the attribute record
3453 * @extra: minimum amount of free space in the new holder of record
3454 */
ntfs_attr_record_move_away(struct ntfs_attr_search_ctx * ctx,int extra)3455 int ntfs_attr_record_move_away(struct ntfs_attr_search_ctx *ctx, int extra)
3456 {
3457 struct ntfs_inode *base_ni, *ni = NULL;
3458 struct mft_record *m;
3459 int i, err;
3460 struct super_block *sb;
3461
3462 if (!ctx || !ctx->attr || !ctx->ntfs_ino || extra < 0)
3463 return -EINVAL;
3464
3465 ntfs_debug("Entering for attr 0x%x, inode %llu\n",
3466 (unsigned int) le32_to_cpu(ctx->attr->type),
3467 (unsigned long long)ctx->ntfs_ino->mft_no);
3468
3469 if (ctx->ntfs_ino->nr_extents == -1)
3470 base_ni = ctx->base_ntfs_ino;
3471 else
3472 base_ni = ctx->ntfs_ino;
3473
3474 sb = ctx->ntfs_ino->vol->sb;
3475 if (!NInoAttrList(base_ni)) {
3476 ntfs_error(sb, "Inode %llu has no attrlist",
3477 (unsigned long long)base_ni->mft_no);
3478 return -EINVAL;
3479 }
3480
3481 err = ntfs_inode_attach_all_extents(ctx->ntfs_ino);
3482 if (err) {
3483 ntfs_error(sb, "Couldn't attach extents, inode=%llu",
3484 (unsigned long long)base_ni->mft_no);
3485 return err;
3486 }
3487
3488 mutex_lock(&base_ni->extent_lock);
3489 /* Walk through all extents and try to move attribute to them. */
3490 for (i = 0; i < base_ni->nr_extents; i++) {
3491 ni = base_ni->ext.extent_ntfs_inos[i];
3492
3493 if (ctx->ntfs_ino->mft_no == ni->mft_no)
3494 continue;
3495 m = map_mft_record(ni);
3496 if (IS_ERR(m)) {
3497 ntfs_error(sb, "Can not map mft record for mft_no %lld",
3498 (unsigned long long)ni->mft_no);
3499 mutex_unlock(&base_ni->extent_lock);
3500 return -EIO;
3501 }
3502 if (le32_to_cpu(m->bytes_allocated) -
3503 le32_to_cpu(m->bytes_in_use) < le32_to_cpu(ctx->attr->length) + extra) {
3504 unmap_mft_record(ni);
3505 continue;
3506 }
3507 unmap_mft_record(ni);
3508
3509 /*
3510 * ntfs_attr_record_move_to can fail if extent with other lowest
3511 * s64 already present in inode we trying move record to. So,
3512 * do not return error.
3513 */
3514 if (!ntfs_attr_record_move_to(ctx, ni)) {
3515 mutex_unlock(&base_ni->extent_lock);
3516 return 0;
3517 }
3518 }
3519 mutex_unlock(&base_ni->extent_lock);
3520
3521 /*
3522 * Failed to move attribute to one of the current extents, so allocate
3523 * new extent and move attribute to it.
3524 */
3525 ni = NULL;
3526 err = ntfs_mft_record_alloc(base_ni->vol, 0, &ni, base_ni, NULL);
3527 if (err) {
3528 ntfs_error(sb, "Couldn't allocate MFT record, err : %d", err);
3529 return err;
3530 }
3531 unmap_mft_record(ni);
3532
3533 err = ntfs_attr_record_move_to(ctx, ni);
3534 if (err)
3535 ntfs_error(sb, "Couldn't move attribute to MFT record");
3536
3537 return err;
3538 }
3539
3540 /*
3541 * If we are in the first extent, then set/clean sparse bit,
3542 * update allocated and compressed size.
3543 */
ntfs_attr_update_meta(struct attr_record * a,struct ntfs_inode * ni,struct mft_record * m,struct ntfs_attr_search_ctx * ctx)3544 static int ntfs_attr_update_meta(struct attr_record *a, struct ntfs_inode *ni,
3545 struct mft_record *m, struct ntfs_attr_search_ctx *ctx)
3546 {
3547 int sparse, err = 0;
3548 struct ntfs_inode *base_ni;
3549 struct super_block *sb = ni->vol->sb;
3550
3551 ntfs_debug("Entering for inode 0x%llx, attr 0x%x\n",
3552 (unsigned long long)ni->mft_no, ni->type);
3553
3554 if (NInoAttr(ni))
3555 base_ni = ni->ext.base_ntfs_ino;
3556 else
3557 base_ni = ni;
3558
3559 if (a->data.non_resident.lowest_vcn)
3560 goto out;
3561
3562 a->data.non_resident.allocated_size = cpu_to_le64(ni->allocated_size);
3563
3564 sparse = ntfs_rl_sparse(ni->runlist.rl);
3565 if (sparse < 0) {
3566 err = -EIO;
3567 goto out;
3568 }
3569
3570 /* Attribute become sparse. */
3571 if (sparse && !(a->flags & (ATTR_IS_SPARSE | ATTR_IS_COMPRESSED))) {
3572 /*
3573 * Move attribute to another mft record, if attribute is too
3574 * small to add compressed_size field to it and we have no
3575 * free space in the current mft record.
3576 */
3577 if ((le32_to_cpu(a->length) -
3578 le16_to_cpu(a->data.non_resident.mapping_pairs_offset) == 8) &&
3579 !(le32_to_cpu(m->bytes_allocated) - le32_to_cpu(m->bytes_in_use))) {
3580
3581 if (!NInoAttrList(base_ni)) {
3582 err = ntfs_inode_add_attrlist(base_ni);
3583 if (err)
3584 goto out;
3585 err = -EAGAIN;
3586 goto out;
3587 }
3588 err = ntfs_attr_record_move_away(ctx, 8);
3589 if (err) {
3590 ntfs_error(sb, "Failed to move attribute");
3591 goto out;
3592 }
3593
3594 err = ntfs_attrlist_update(base_ni);
3595 if (err)
3596 goto out;
3597 err = -EAGAIN;
3598 goto out;
3599 }
3600 if (!(le32_to_cpu(a->length) -
3601 le16_to_cpu(a->data.non_resident.mapping_pairs_offset))) {
3602 err = -EIO;
3603 ntfs_error(sb, "Mapping pairs space is 0");
3604 goto out;
3605 }
3606
3607 NInoSetSparse(ni);
3608 ni->flags |= FILE_ATTR_SPARSE_FILE;
3609 a->flags |= ATTR_IS_SPARSE;
3610 a->data.non_resident.compression_unit = 0;
3611
3612 memmove((u8 *)a + le16_to_cpu(a->name_offset) + 8,
3613 (u8 *)a + le16_to_cpu(a->name_offset),
3614 a->name_length * sizeof(__le16));
3615
3616 a->name_offset = cpu_to_le16(le16_to_cpu(a->name_offset) + 8);
3617
3618 a->data.non_resident.mapping_pairs_offset =
3619 cpu_to_le16(le16_to_cpu(a->data.non_resident.mapping_pairs_offset) + 8);
3620 }
3621
3622 /* Attribute no longer sparse. */
3623 if (!sparse && (a->flags & ATTR_IS_SPARSE) &&
3624 !(a->flags & ATTR_IS_COMPRESSED)) {
3625 NInoClearSparse(ni);
3626 ni->flags &= ~FILE_ATTR_SPARSE_FILE;
3627 a->flags &= ~ATTR_IS_SPARSE;
3628 a->data.non_resident.compression_unit = 0;
3629
3630 memmove((u8 *)a + le16_to_cpu(a->name_offset) - 8,
3631 (u8 *)a + le16_to_cpu(a->name_offset),
3632 a->name_length * sizeof(__le16));
3633
3634 if (le16_to_cpu(a->name_offset) >= 8)
3635 a->name_offset = cpu_to_le16(le16_to_cpu(a->name_offset) - 8);
3636
3637 a->data.non_resident.mapping_pairs_offset =
3638 cpu_to_le16(le16_to_cpu(a->data.non_resident.mapping_pairs_offset) - 8);
3639 }
3640
3641 /* Update compressed size if required. */
3642 if (NInoFullyMapped(ni) && (sparse || NInoCompressed(ni))) {
3643 s64 new_compr_size;
3644
3645 new_compr_size = ntfs_rl_get_compressed_size(ni->vol, ni->runlist.rl);
3646 if (new_compr_size < 0) {
3647 err = new_compr_size;
3648 goto out;
3649 }
3650
3651 ni->itype.compressed.size = new_compr_size;
3652 a->data.non_resident.compressed_size = cpu_to_le64(new_compr_size);
3653 }
3654
3655 if (NInoSparse(ni) || NInoCompressed(ni))
3656 VFS_I(base_ni)->i_blocks = ni->itype.compressed.size >> 9;
3657 else
3658 VFS_I(base_ni)->i_blocks = ni->allocated_size >> 9;
3659 /*
3660 * Set FILE_NAME dirty flag, to update sparse bit and
3661 * allocated size in the index.
3662 */
3663 if (ni->type == AT_DATA && ni->name == AT_UNNAMED)
3664 NInoSetFileNameDirty(ni);
3665 out:
3666 return err;
3667 }
3668
3669 #define NTFS_VCN_DELETE_MARK -2
3670 /*
3671 * ntfs_attr_update_mapping_pairs - update mapping pairs for ntfs attribute
3672 * @ni: non-resident ntfs inode for which we need update
3673 * @from_vcn: update runlist starting this VCN
3674 *
3675 * Build mapping pairs from @na->rl and write them to the disk. Also, this
3676 * function updates sparse bit, allocated and compressed size (allocates/frees
3677 * space for this field if required).
3678 *
3679 * @na->allocated_size should be set to correct value for the new runlist before
3680 * call to this function. Vice-versa @na->compressed_size will be calculated and
3681 * set to correct value during this function.
3682 */
ntfs_attr_update_mapping_pairs(struct ntfs_inode * ni,s64 from_vcn)3683 int ntfs_attr_update_mapping_pairs(struct ntfs_inode *ni, s64 from_vcn)
3684 {
3685 struct ntfs_attr_search_ctx *ctx;
3686 struct ntfs_inode *base_ni;
3687 struct mft_record *m;
3688 struct attr_record *a;
3689 s64 stop_vcn;
3690 int err = 0, mp_size, cur_max_mp_size, exp_max_mp_size;
3691 bool finished_build;
3692 bool first_updated = false;
3693 struct super_block *sb;
3694 struct runlist_element *start_rl;
3695 unsigned int de_cluster_count = 0;
3696
3697 retry:
3698 if (!ni || !ni->runlist.rl)
3699 return -EINVAL;
3700
3701 ntfs_debug("Entering for inode %llu, attr 0x%x\n",
3702 (unsigned long long)ni->mft_no, ni->type);
3703
3704 sb = ni->vol->sb;
3705 if (!NInoNonResident(ni)) {
3706 ntfs_error(sb, "%s: resident attribute", __func__);
3707 return -EINVAL;
3708 }
3709
3710 if (ni->nr_extents == -1)
3711 base_ni = ni->ext.base_ntfs_ino;
3712 else
3713 base_ni = ni;
3714
3715 ctx = ntfs_attr_get_search_ctx(base_ni, NULL);
3716 if (!ctx) {
3717 ntfs_error(sb, "%s: Failed to get search context", __func__);
3718 return -ENOMEM;
3719 }
3720
3721 /* Fill attribute records with new mapping pairs. */
3722 stop_vcn = 0;
3723 finished_build = false;
3724 start_rl = ni->runlist.rl;
3725 while (!(err = ntfs_attr_lookup(ni->type, ni->name, ni->name_len,
3726 CASE_SENSITIVE, from_vcn, NULL, 0, ctx))) {
3727 unsigned int de_cnt = 0;
3728
3729 a = ctx->attr;
3730 m = ctx->mrec;
3731 if (!a->data.non_resident.lowest_vcn)
3732 first_updated = true;
3733
3734 /*
3735 * If runlist is updating not from the beginning, then set
3736 * @stop_vcn properly, i.e. to the lowest vcn of record that
3737 * contain @from_vcn. Also we do not need @from_vcn anymore,
3738 * set it to 0 to make ntfs_attr_lookup enumerate attributes.
3739 */
3740 if (from_vcn) {
3741 s64 first_lcn;
3742
3743 stop_vcn = le64_to_cpu(a->data.non_resident.lowest_vcn);
3744 from_vcn = 0;
3745 /*
3746 * Check whether the first run we need to update is
3747 * the last run in runlist, if so, then deallocate
3748 * all attrubute extents starting this one.
3749 */
3750 first_lcn = ntfs_rl_vcn_to_lcn(ni->runlist.rl, stop_vcn);
3751 if (first_lcn == LCN_EINVAL) {
3752 err = -EIO;
3753 ntfs_error(sb, "Bad runlist");
3754 goto put_err_out;
3755 }
3756 if (first_lcn == LCN_ENOENT ||
3757 first_lcn == LCN_RL_NOT_MAPPED)
3758 finished_build = true;
3759 }
3760
3761 /*
3762 * Check whether we finished mapping pairs build, if so mark
3763 * extent as need to delete (by setting highest vcn to
3764 * NTFS_VCN_DELETE_MARK (-2), we shall check it later and
3765 * delete extent) and continue search.
3766 */
3767 if (finished_build) {
3768 ntfs_debug("Mark attr 0x%x for delete in inode 0x%llx.\n",
3769 (unsigned int)le32_to_cpu(a->type), ctx->ntfs_ino->mft_no);
3770 a->data.non_resident.highest_vcn = cpu_to_le64(NTFS_VCN_DELETE_MARK);
3771 mark_mft_record_dirty(ctx->ntfs_ino);
3772 continue;
3773 }
3774
3775 err = ntfs_attr_update_meta(a, ni, m, ctx);
3776 if (err < 0) {
3777 if (err == -EAGAIN) {
3778 ntfs_attr_put_search_ctx(ctx);
3779 goto retry;
3780 }
3781 goto put_err_out;
3782 }
3783
3784 /*
3785 * Determine maximum possible length of mapping pairs,
3786 * if we shall *not* expand space for mapping pairs.
3787 */
3788 cur_max_mp_size = le32_to_cpu(a->length) -
3789 le16_to_cpu(a->data.non_resident.mapping_pairs_offset);
3790 /*
3791 * Determine maximum possible length of mapping pairs in the
3792 * current mft record, if we shall expand space for mapping
3793 * pairs.
3794 */
3795 exp_max_mp_size = le32_to_cpu(m->bytes_allocated) -
3796 le32_to_cpu(m->bytes_in_use) + cur_max_mp_size;
3797
3798 /* Get the size for the rest of mapping pairs array. */
3799 mp_size = ntfs_get_size_for_mapping_pairs(ni->vol, start_rl,
3800 stop_vcn, -1, exp_max_mp_size);
3801 if (mp_size <= 0) {
3802 err = mp_size;
3803 ntfs_error(sb, "%s: get MP size failed", __func__);
3804 goto put_err_out;
3805 }
3806 /* Test mapping pairs for fitting in the current mft record. */
3807 if (mp_size > exp_max_mp_size) {
3808 /*
3809 * Mapping pairs of $ATTRIBUTE_LIST attribute must fit
3810 * in the base mft record. Try to move out other
3811 * attributes and try again.
3812 */
3813 if (ni->type == AT_ATTRIBUTE_LIST) {
3814 ntfs_attr_put_search_ctx(ctx);
3815 if (ntfs_inode_free_space(base_ni, mp_size -
3816 cur_max_mp_size)) {
3817 ntfs_debug("Attribute list is too big. Defragment the volume\n");
3818 return -ENOSPC;
3819 }
3820 if (ntfs_attrlist_update(base_ni))
3821 return -EIO;
3822 goto retry;
3823 }
3824
3825 /* Add attribute list if it isn't present, and retry. */
3826 if (!NInoAttrList(base_ni)) {
3827 ntfs_attr_put_search_ctx(ctx);
3828 if (ntfs_inode_add_attrlist(base_ni)) {
3829 ntfs_error(sb, "Can not add attrlist");
3830 return -EIO;
3831 }
3832 goto retry;
3833 }
3834
3835 /*
3836 * Set mapping pairs size to maximum possible for this
3837 * mft record. We shall write the rest of mapping pairs
3838 * to another MFT records.
3839 */
3840 mp_size = exp_max_mp_size;
3841 }
3842
3843 /* Change space for mapping pairs if we need it. */
3844 if (((mp_size + 7) & ~7) != cur_max_mp_size) {
3845 if (ntfs_attr_record_resize(m, a,
3846 le16_to_cpu(a->data.non_resident.mapping_pairs_offset) +
3847 mp_size)) {
3848 err = -EIO;
3849 ntfs_error(sb, "Failed to resize attribute");
3850 goto put_err_out;
3851 }
3852 }
3853
3854 /* Update lowest vcn. */
3855 a->data.non_resident.lowest_vcn = cpu_to_le64(stop_vcn);
3856 mark_mft_record_dirty(ctx->ntfs_ino);
3857 if ((ctx->ntfs_ino->nr_extents == -1 || NInoAttrList(ctx->ntfs_ino)) &&
3858 ctx->attr->type != AT_ATTRIBUTE_LIST) {
3859 ctx->al_entry->lowest_vcn = cpu_to_le64(stop_vcn);
3860 err = ntfs_attrlist_update(base_ni);
3861 if (err)
3862 goto put_err_out;
3863 }
3864
3865 /*
3866 * Generate the new mapping pairs array directly into the
3867 * correct destination, i.e. the attribute record itself.
3868 */
3869 err = ntfs_mapping_pairs_build(ni->vol,
3870 (u8 *)a + le16_to_cpu(a->data.non_resident.mapping_pairs_offset),
3871 mp_size, start_rl, stop_vcn, -1, &stop_vcn, &start_rl, &de_cnt);
3872 if (!err)
3873 finished_build = true;
3874 if (!finished_build && err != -ENOSPC) {
3875 ntfs_error(sb, "Failed to build mapping pairs");
3876 goto put_err_out;
3877 }
3878 a->data.non_resident.highest_vcn = cpu_to_le64(stop_vcn - 1);
3879 mark_mft_record_dirty(ctx->ntfs_ino);
3880 de_cluster_count += de_cnt;
3881 }
3882
3883 /* Check whether error occurred. */
3884 if (err && err != -ENOENT) {
3885 ntfs_error(sb, "%s: Attribute lookup failed", __func__);
3886 goto put_err_out;
3887 }
3888
3889 /*
3890 * If the base extent was skipped in the above process,
3891 * we still may have to update the sizes.
3892 */
3893 if (!first_updated) {
3894 ntfs_attr_reinit_search_ctx(ctx);
3895 err = ntfs_attr_lookup(ni->type, ni->name, ni->name_len,
3896 CASE_SENSITIVE, 0, NULL, 0, ctx);
3897 if (!err) {
3898 a = ctx->attr;
3899 a->data.non_resident.allocated_size = cpu_to_le64(ni->allocated_size);
3900 if (NInoCompressed(ni) || NInoSparse(ni))
3901 a->data.non_resident.compressed_size =
3902 cpu_to_le64(ni->itype.compressed.size);
3903 /* Updating sizes taints the extent holding the attr */
3904 if (ni->type == AT_DATA && ni->name == AT_UNNAMED)
3905 NInoSetFileNameDirty(ni);
3906 mark_mft_record_dirty(ctx->ntfs_ino);
3907 } else {
3908 ntfs_error(sb, "Failed to update sizes in base extent\n");
3909 goto put_err_out;
3910 }
3911 }
3912
3913 /* Deallocate not used attribute extents and return with success. */
3914 if (finished_build) {
3915 ntfs_attr_reinit_search_ctx(ctx);
3916 ntfs_debug("Deallocate marked extents.\n");
3917 while (!(err = ntfs_attr_lookup(ni->type, ni->name, ni->name_len,
3918 CASE_SENSITIVE, 0, NULL, 0, ctx))) {
3919 if (le64_to_cpu(ctx->attr->data.non_resident.highest_vcn) !=
3920 NTFS_VCN_DELETE_MARK)
3921 continue;
3922 /* Remove unused attribute record. */
3923 err = ntfs_attr_record_rm(ctx);
3924 if (err) {
3925 ntfs_error(sb, "Could not remove unused attr");
3926 goto put_err_out;
3927 }
3928 ntfs_attr_reinit_search_ctx(ctx);
3929 }
3930 if (err && err != -ENOENT) {
3931 ntfs_error(sb, "%s: Attr lookup failed", __func__);
3932 goto put_err_out;
3933 }
3934 ntfs_debug("Deallocate done.\n");
3935 ntfs_attr_put_search_ctx(ctx);
3936 goto out;
3937 }
3938 ntfs_attr_put_search_ctx(ctx);
3939 ctx = NULL;
3940
3941 /* Allocate new MFT records for the rest of mapping pairs. */
3942 while (1) {
3943 struct ntfs_inode *ext_ni = NULL;
3944 unsigned int de_cnt = 0;
3945
3946 /* Allocate new mft record. */
3947 err = ntfs_mft_record_alloc(ni->vol, 0, &ext_ni, base_ni, NULL);
3948 if (err) {
3949 ntfs_error(sb, "Failed to allocate extent record");
3950 goto put_err_out;
3951 }
3952 unmap_mft_record(ext_ni);
3953
3954 m = map_mft_record(ext_ni);
3955 if (IS_ERR(m)) {
3956 ntfs_error(sb, "Could not map new MFT record");
3957 if (ntfs_mft_record_free(ni->vol, ext_ni))
3958 ntfs_error(sb, "Could not free MFT record");
3959 ntfs_inode_close(ext_ni);
3960 err = -ENOMEM;
3961 ext_ni = NULL;
3962 goto put_err_out;
3963 }
3964 /*
3965 * If mapping size exceed available space, set them to
3966 * possible maximum.
3967 */
3968 cur_max_mp_size = le32_to_cpu(m->bytes_allocated) -
3969 le32_to_cpu(m->bytes_in_use) -
3970 (sizeof(struct attr_record) +
3971 ((NInoCompressed(ni) || NInoSparse(ni)) ?
3972 sizeof(a->data.non_resident.compressed_size) : 0)) -
3973 ((sizeof(__le16) * ni->name_len + 7) & ~7);
3974
3975 /* Calculate size of rest mapping pairs. */
3976 mp_size = ntfs_get_size_for_mapping_pairs(ni->vol,
3977 start_rl, stop_vcn, -1, cur_max_mp_size);
3978 if (mp_size <= 0) {
3979 unmap_mft_record(ext_ni);
3980 ntfs_inode_close(ext_ni);
3981 err = mp_size;
3982 ntfs_error(sb, "%s: get mp size failed", __func__);
3983 goto put_err_out;
3984 }
3985
3986 if (mp_size > cur_max_mp_size)
3987 mp_size = cur_max_mp_size;
3988 /* Add attribute extent to new record. */
3989 err = ntfs_non_resident_attr_record_add(ext_ni, ni->type,
3990 ni->name, ni->name_len, stop_vcn, mp_size, 0);
3991 if (err < 0) {
3992 ntfs_error(sb, "Could not add attribute extent");
3993 unmap_mft_record(ext_ni);
3994 if (ntfs_mft_record_free(ni->vol, ext_ni))
3995 ntfs_error(sb, "Could not free MFT record");
3996 ntfs_inode_close(ext_ni);
3997 goto put_err_out;
3998 }
3999 a = (struct attr_record *)((u8 *)m + err);
4000
4001 err = ntfs_mapping_pairs_build(ni->vol, (u8 *)a +
4002 le16_to_cpu(a->data.non_resident.mapping_pairs_offset),
4003 mp_size, start_rl, stop_vcn, -1, &stop_vcn, &start_rl,
4004 &de_cnt);
4005 if (err < 0 && err != -ENOSPC) {
4006 ntfs_error(sb, "Failed to build MP");
4007 unmap_mft_record(ext_ni);
4008 if (ntfs_mft_record_free(ni->vol, ext_ni))
4009 ntfs_error(sb, "Couldn't free MFT record");
4010 goto put_err_out;
4011 }
4012 a->data.non_resident.highest_vcn = cpu_to_le64(stop_vcn - 1);
4013 mark_mft_record_dirty(ext_ni);
4014 unmap_mft_record(ext_ni);
4015
4016 de_cluster_count += de_cnt;
4017 /* All mapping pairs has been written. */
4018 if (!err)
4019 break;
4020 }
4021 out:
4022 if (from_vcn == 0)
4023 ni->i_dealloc_clusters = de_cluster_count;
4024 return 0;
4025
4026 put_err_out:
4027 if (ctx)
4028 ntfs_attr_put_search_ctx(ctx);
4029 return err;
4030 }
4031
4032 /*
4033 * ntfs_attr_make_resident - convert a non-resident to a resident attribute
4034 * @ni: open ntfs attribute to make resident
4035 * @ctx: ntfs search context describing the attribute
4036 *
4037 * Convert a non-resident ntfs attribute to a resident one.
4038 */
ntfs_attr_make_resident(struct ntfs_inode * ni,struct ntfs_attr_search_ctx * ctx)4039 static int ntfs_attr_make_resident(struct ntfs_inode *ni, struct ntfs_attr_search_ctx *ctx)
4040 {
4041 struct ntfs_volume *vol = ni->vol;
4042 struct super_block *sb = vol->sb;
4043 struct attr_record *a = ctx->attr;
4044 int name_ofs, val_ofs, err;
4045 s64 arec_size;
4046
4047 ntfs_debug("Entering for inode 0x%llx, attr 0x%x.\n",
4048 (unsigned long long)ni->mft_no, ni->type);
4049
4050 /* Should be called for the first extent of the attribute. */
4051 if (le64_to_cpu(a->data.non_resident.lowest_vcn)) {
4052 ntfs_debug("Eeek! Should be called for the first extent of the attribute. Aborting...\n");
4053 return -EINVAL;
4054 }
4055
4056 /* Some preliminary sanity checking. */
4057 if (!NInoNonResident(ni)) {
4058 ntfs_debug("Eeek! Trying to make resident attribute resident. Aborting...\n");
4059 return -EINVAL;
4060 }
4061
4062 /* Make sure this is not $MFT/$BITMAP or Windows will not boot! */
4063 if (ni->type == AT_BITMAP && ni->mft_no == FILE_MFT)
4064 return -EPERM;
4065
4066 /* Check that the attribute is allowed to be resident. */
4067 err = ntfs_attr_can_be_resident(vol, ni->type);
4068 if (err)
4069 return err;
4070
4071 if (NInoCompressed(ni) || NInoEncrypted(ni)) {
4072 ntfs_debug("Making compressed or encrypted files resident is not implemented yet.\n");
4073 return -EOPNOTSUPP;
4074 }
4075
4076 /* Work out offsets into and size of the resident attribute. */
4077 name_ofs = 24; /* = sizeof(resident_struct attr_record); */
4078 val_ofs = (name_ofs + a->name_length * sizeof(__le16) + 7) & ~7;
4079 arec_size = (val_ofs + ni->data_size + 7) & ~7;
4080
4081 /* Sanity check the size before we start modifying the attribute. */
4082 if (le32_to_cpu(ctx->mrec->bytes_in_use) - le32_to_cpu(a->length) +
4083 arec_size > le32_to_cpu(ctx->mrec->bytes_allocated)) {
4084 ntfs_debug("Not enough space to make attribute resident\n");
4085 return -ENOSPC;
4086 }
4087
4088 /* Read and cache the whole runlist if not already done. */
4089 err = ntfs_attr_map_whole_runlist(ni);
4090 if (err)
4091 return err;
4092
4093 /* Move the attribute name if it exists and update the offset. */
4094 if (a->name_length) {
4095 memmove((u8 *)a + name_ofs, (u8 *)a + le16_to_cpu(a->name_offset),
4096 a->name_length * sizeof(__le16));
4097 }
4098 a->name_offset = cpu_to_le16(name_ofs);
4099
4100 /* Resize the resident part of the attribute record. */
4101 if (ntfs_attr_record_resize(ctx->mrec, a, arec_size) < 0) {
4102 /*
4103 * Bug, because ntfs_attr_record_resize should not fail (we
4104 * already checked that attribute fits MFT record).
4105 */
4106 ntfs_error(ctx->ntfs_ino->vol->sb, "BUG! Failed to resize attribute record. ");
4107 return -EIO;
4108 }
4109
4110 /* Convert the attribute record to describe a resident attribute. */
4111 a->non_resident = 0;
4112 a->flags = 0;
4113 a->data.resident.value_length = cpu_to_le32(ni->data_size);
4114 a->data.resident.value_offset = cpu_to_le16(val_ofs);
4115 /*
4116 * File names cannot be non-resident so we would never see this here
4117 * but at least it serves as a reminder that there may be attributes
4118 * for which we do need to set this flag. (AIA)
4119 */
4120 if (a->type == AT_FILE_NAME)
4121 a->data.resident.flags = RESIDENT_ATTR_IS_INDEXED;
4122 else
4123 a->data.resident.flags = 0;
4124 a->data.resident.reserved = 0;
4125
4126 /*
4127 * Deallocate clusters from the runlist.
4128 *
4129 * NOTE: We can use ntfs_cluster_free() because we have already mapped
4130 * the whole run list and thus it doesn't matter that the attribute
4131 * record is in a transiently corrupted state at this moment in time.
4132 */
4133 err = ntfs_cluster_free(ni, 0, -1, ctx);
4134 if (err) {
4135 ntfs_error(sb, "Eeek! Failed to release allocated clusters");
4136 ntfs_debug("Ignoring error and leaving behind wasted clusters.\n");
4137 }
4138
4139 /* Throw away the now unused runlist. */
4140 kvfree(ni->runlist.rl);
4141 ni->runlist.rl = NULL;
4142 ni->runlist.count = 0;
4143 /* Update in-memory struct ntfs_attr. */
4144 NInoClearNonResident(ni);
4145 NInoClearCompressed(ni);
4146 ni->flags &= ~FILE_ATTR_COMPRESSED;
4147 NInoClearSparse(ni);
4148 ni->flags &= ~FILE_ATTR_SPARSE_FILE;
4149 NInoClearEncrypted(ni);
4150 ni->flags &= ~FILE_ATTR_ENCRYPTED;
4151 ni->initialized_size = ni->data_size;
4152 ni->allocated_size = ni->itype.compressed.size = (ni->data_size + 7) & ~7;
4153 ni->itype.compressed.block_size = 0;
4154 ni->itype.compressed.block_size_bits = ni->itype.compressed.block_clusters = 0;
4155 return 0;
4156 }
4157
4158 /*
4159 * ntfs_non_resident_attr_shrink - shrink a non-resident, open ntfs attribute
4160 * @ni: non-resident ntfs attribute to shrink
4161 * @newsize: new size (in bytes) to which to shrink the attribute
4162 *
4163 * Reduce the size of a non-resident, open ntfs attribute @na to @newsize bytes.
4164 */
ntfs_non_resident_attr_shrink(struct ntfs_inode * ni,const s64 newsize)4165 static int ntfs_non_resident_attr_shrink(struct ntfs_inode *ni, const s64 newsize)
4166 {
4167 struct ntfs_volume *vol;
4168 struct ntfs_attr_search_ctx *ctx;
4169 s64 first_free_vcn;
4170 s64 nr_freed_clusters;
4171 int err;
4172 struct ntfs_inode *base_ni;
4173
4174 ntfs_debug("Inode 0x%llx attr 0x%x new size %lld\n",
4175 (unsigned long long)ni->mft_no, ni->type, (long long)newsize);
4176
4177 vol = ni->vol;
4178
4179 if (NInoAttr(ni))
4180 base_ni = ni->ext.base_ntfs_ino;
4181 else
4182 base_ni = ni;
4183
4184 /*
4185 * Check the attribute type and the corresponding minimum size
4186 * against @newsize and fail if @newsize is too small.
4187 */
4188 err = ntfs_attr_size_bounds_check(vol, ni->type, newsize);
4189 if (err) {
4190 if (err == -ERANGE)
4191 ntfs_debug("Eeek! Size bounds check failed. Aborting...\n");
4192 else if (err == -ENOENT)
4193 err = -EIO;
4194 return err;
4195 }
4196
4197 /* The first cluster outside the new allocation. */
4198 if (NInoCompressed(ni))
4199 /*
4200 * For compressed files we must keep full compressions blocks,
4201 * but currently we do not decompress/recompress the last
4202 * block to truncate the data, so we may leave more allocated
4203 * clusters than really needed.
4204 */
4205 first_free_vcn = ntfs_bytes_to_cluster(vol,
4206 ((newsize - 1) | (ni->itype.compressed.block_size - 1)) + 1);
4207 else
4208 first_free_vcn =
4209 ntfs_bytes_to_cluster(vol, newsize + vol->cluster_size - 1);
4210
4211 if (first_free_vcn < 0)
4212 return -EINVAL;
4213 /*
4214 * Compare the new allocation with the old one and only deallocate
4215 * clusters if there is a change.
4216 */
4217 if (ntfs_bytes_to_cluster(vol, ni->allocated_size) != first_free_vcn) {
4218 struct ntfs_attr_search_ctx *ctx;
4219
4220 err = ntfs_attr_map_whole_runlist(ni);
4221 if (err) {
4222 ntfs_debug("Eeek! ntfs_attr_map_whole_runlist failed.\n");
4223 return err;
4224 }
4225
4226 ctx = ntfs_attr_get_search_ctx(ni, NULL);
4227 if (!ctx) {
4228 ntfs_error(vol->sb, "%s: Failed to get search context", __func__);
4229 return -ENOMEM;
4230 }
4231
4232 /* Deallocate all clusters starting with the first free one. */
4233 nr_freed_clusters = ntfs_cluster_free(ni, first_free_vcn, -1, ctx);
4234 if (nr_freed_clusters < 0) {
4235 ntfs_debug("Eeek! Freeing of clusters failed. Aborting...\n");
4236 ntfs_attr_put_search_ctx(ctx);
4237 return (int)nr_freed_clusters;
4238 }
4239 ntfs_attr_put_search_ctx(ctx);
4240
4241 /* Truncate the runlist itself. */
4242 if (ntfs_rl_truncate_nolock(vol, &ni->runlist, first_free_vcn)) {
4243 /*
4244 * Failed to truncate the runlist, so just throw it
4245 * away, it will be mapped afresh on next use.
4246 */
4247 kvfree(ni->runlist.rl);
4248 ni->runlist.rl = NULL;
4249 ntfs_error(vol->sb, "Eeek! Run list truncation failed.\n");
4250 return -EIO;
4251 }
4252
4253 /* Prepare to mapping pairs update. */
4254 ni->allocated_size = ntfs_cluster_to_bytes(vol, first_free_vcn);
4255
4256 if (NInoSparse(ni) || NInoCompressed(ni)) {
4257 if (nr_freed_clusters) {
4258 ni->itype.compressed.size -=
4259 ntfs_cluster_to_bytes(vol, nr_freed_clusters);
4260 VFS_I(base_ni)->i_blocks = ni->itype.compressed.size >> 9;
4261 }
4262 } else
4263 VFS_I(base_ni)->i_blocks = ni->allocated_size >> 9;
4264
4265 /* Write mapping pairs for new runlist. */
4266 err = ntfs_attr_update_mapping_pairs(ni, 0 /*first_free_vcn*/);
4267 if (err) {
4268 ntfs_debug("Eeek! Mapping pairs update failed. Leaving inconstant metadata. Run chkdsk.\n");
4269 return err;
4270 }
4271 }
4272
4273 /* Get the first attribute record. */
4274 ctx = ntfs_attr_get_search_ctx(base_ni, NULL);
4275 if (!ctx) {
4276 ntfs_error(vol->sb, "%s: Failed to get search context", __func__);
4277 return -ENOMEM;
4278 }
4279
4280 err = ntfs_attr_lookup(ni->type, ni->name, ni->name_len, CASE_SENSITIVE,
4281 0, NULL, 0, ctx);
4282 if (err) {
4283 if (err == -ENOENT)
4284 err = -EIO;
4285 ntfs_debug("Eeek! Lookup of first attribute extent failed. Leaving inconstant metadata.\n");
4286 goto put_err_out;
4287 }
4288
4289 /* Update data and initialized size. */
4290 ni->data_size = newsize;
4291 ctx->attr->data.non_resident.data_size = cpu_to_le64(newsize);
4292 if (newsize < ni->initialized_size) {
4293 ni->initialized_size = newsize;
4294 ctx->attr->data.non_resident.initialized_size = cpu_to_le64(newsize);
4295 }
4296
4297 /*
4298 * Drop any page-cache folios that now lie beyond the shrunk
4299 * attribute. The clusters backing them have just been freed and the
4300 * runlist truncated, so leaving stale dirty folios around makes a
4301 * later writeback map a vcn past the new allocation, which fails with
4302 * -ENOENT and loses the write.
4303 */
4304 truncate_inode_pages(VFS_I(ni)->i_mapping, newsize);
4305
4306 /* Update data size in the index. */
4307 if (ni->type == AT_DATA && ni->name == AT_UNNAMED)
4308 NInoSetFileNameDirty(ni);
4309
4310 /* If the attribute now has zero size, make it resident. */
4311 if (!newsize && !NInoEncrypted(ni) && !NInoCompressed(ni)) {
4312 err = ntfs_attr_make_resident(ni, ctx);
4313 if (err) {
4314 /* If couldn't make resident, just continue. */
4315 if (err != -EPERM)
4316 ntfs_error(ni->vol->sb,
4317 "Failed to make attribute resident. Leaving as is...\n");
4318 }
4319 }
4320
4321 /* Set the inode dirty so it is written out later. */
4322 mark_mft_record_dirty(ctx->ntfs_ino);
4323 /* Done! */
4324 ntfs_attr_put_search_ctx(ctx);
4325 return 0;
4326 put_err_out:
4327 ntfs_attr_put_search_ctx(ctx);
4328 return err;
4329 }
4330
4331 /*
4332 * ntfs_non_resident_attr_expand - expand a non-resident, open ntfs attribute
4333 * @ni: non-resident ntfs attribute to expand
4334 * @prealloc_size: preallocation size (in bytes) to which to expand the attribute
4335 * @newsize: new size (in bytes) to which to expand the attribute
4336 * @holes: how to create a hole if expanding
4337 * @need_lock: whether mrec lock is needed or not
4338 *
4339 * Expand the size of a non-resident, open ntfs attribute @na to @newsize bytes,
4340 * by allocating new clusters.
4341 */
ntfs_non_resident_attr_expand(struct ntfs_inode * ni,const s64 newsize,const s64 prealloc_size,unsigned int holes,bool need_lock)4342 static int ntfs_non_resident_attr_expand(struct ntfs_inode *ni, const s64 newsize,
4343 const s64 prealloc_size, unsigned int holes, bool need_lock)
4344 {
4345 s64 lcn_seek_from;
4346 s64 first_free_vcn;
4347 struct ntfs_volume *vol;
4348 struct ntfs_attr_search_ctx *ctx = NULL;
4349 struct runlist_element *rl, *rln;
4350 s64 org_alloc_size, org_compressed_size;
4351 int err, err2;
4352 struct ntfs_inode *base_ni;
4353 struct super_block *sb = ni->vol->sb;
4354 size_t new_rl_count;
4355
4356 ntfs_debug("Inode 0x%llx, attr 0x%x, new size %lld old size %lld\n",
4357 (unsigned long long)ni->mft_no, ni->type,
4358 (long long)newsize, (long long)ni->data_size);
4359
4360 vol = ni->vol;
4361
4362 if (NInoAttr(ni))
4363 base_ni = ni->ext.base_ntfs_ino;
4364 else
4365 base_ni = ni;
4366
4367 /*
4368 * Check the attribute type and the corresponding maximum size
4369 * against @newsize and fail if @newsize is too big.
4370 */
4371 err = ntfs_attr_size_bounds_check(vol, ni->type, newsize);
4372 if (err < 0) {
4373 ntfs_error(sb, "%s: bounds check failed", __func__);
4374 return err;
4375 }
4376
4377 /* Save for future use. */
4378 org_alloc_size = ni->allocated_size;
4379 org_compressed_size = ni->itype.compressed.size;
4380
4381 /* The first cluster outside the new allocation. */
4382 if (prealloc_size)
4383 first_free_vcn =
4384 ntfs_bytes_to_cluster(vol, prealloc_size + vol->cluster_size - 1);
4385 else
4386 first_free_vcn =
4387 ntfs_bytes_to_cluster(vol, newsize + vol->cluster_size - 1);
4388 if (first_free_vcn < 0)
4389 return -EFBIG;
4390
4391 /*
4392 * Compare the new allocation with the old one and only allocate
4393 * clusters if there is a change.
4394 */
4395 if (ntfs_bytes_to_cluster(vol, ni->allocated_size) < first_free_vcn) {
4396 err = ntfs_attr_map_whole_runlist(ni);
4397 if (err) {
4398 ntfs_error(sb, "ntfs_attr_map_whole_runlist failed");
4399 return err;
4400 }
4401
4402 /*
4403 * If we extend $DATA attribute on NTFS 3+ volume, we can add
4404 * sparse runs instead of real allocation of clusters.
4405 */
4406 if ((ni->type == AT_DATA && (vol->major_ver >= 3 || !NInoSparseDisabled(ni))) &&
4407 (holes != HOLES_NO)) {
4408 if (NInoCompressed(ni)) {
4409 int last = 0, i = 0;
4410 s64 alloc_size;
4411 u64 more_entries = round_up(first_free_vcn -
4412 ntfs_bytes_to_cluster(vol, ni->allocated_size),
4413 ni->itype.compressed.block_clusters);
4414
4415 do_div(more_entries, ni->itype.compressed.block_clusters);
4416
4417 while (ni->runlist.rl[last].length)
4418 last++;
4419
4420 rl = ntfs_rl_realloc(ni->runlist.rl, last + 1,
4421 last + more_entries + 1);
4422 if (IS_ERR(rl)) {
4423 err = -ENOMEM;
4424 goto put_err_out;
4425 }
4426
4427 alloc_size = ni->allocated_size;
4428 while (i++ < more_entries) {
4429 rl[last].vcn = ntfs_bytes_to_cluster(vol,
4430 round_up(alloc_size, vol->cluster_size));
4431 rl[last].length = ni->itype.compressed.block_clusters -
4432 (rl[last].vcn &
4433 (ni->itype.compressed.block_clusters - 1));
4434 rl[last].lcn = LCN_HOLE;
4435 last++;
4436 alloc_size += ni->itype.compressed.block_size;
4437 }
4438
4439 rl[last].vcn = first_free_vcn;
4440 rl[last].lcn = LCN_ENOENT;
4441 rl[last].length = 0;
4442
4443 ni->runlist.rl = rl;
4444 ni->runlist.count += more_entries;
4445 } else {
4446 rl = kmalloc(sizeof(struct runlist_element) * 2, GFP_NOFS);
4447 if (!rl) {
4448 err = -ENOMEM;
4449 goto put_err_out;
4450 }
4451
4452 rl[0].vcn = ntfs_bytes_to_cluster(vol, ni->allocated_size);
4453 rl[0].lcn = LCN_HOLE;
4454 rl[0].length = first_free_vcn -
4455 ntfs_bytes_to_cluster(vol, ni->allocated_size);
4456 rl[1].vcn = first_free_vcn;
4457 rl[1].lcn = LCN_ENOENT;
4458 rl[1].length = 0;
4459 }
4460 } else {
4461 /*
4462 * Determine first after last LCN of attribute.
4463 * We will start seek clusters from this LCN to avoid
4464 * fragmentation. If there are no valid LCNs in the
4465 * attribute let the cluster allocator choose the
4466 * starting LCN.
4467 */
4468 lcn_seek_from = -1;
4469 if (ni->runlist.rl->length) {
4470 /* Seek to the last run list element. */
4471 for (rl = ni->runlist.rl; (rl + 1)->length; rl++)
4472 ;
4473 /*
4474 * If the last LCN is a hole or similar seek
4475 * back to last valid LCN.
4476 */
4477 while (rl->lcn < 0 && rl != ni->runlist.rl)
4478 rl--;
4479 /*
4480 * Only set lcn_seek_from it the LCN is valid.
4481 */
4482 if (rl->lcn >= 0)
4483 lcn_seek_from = rl->lcn + rl->length;
4484 }
4485
4486 rl = ntfs_cluster_alloc(vol,
4487 ntfs_bytes_to_cluster(vol, ni->allocated_size),
4488 first_free_vcn -
4489 ntfs_bytes_to_cluster(vol, ni->allocated_size),
4490 lcn_seek_from, DATA_ZONE, false, false, false);
4491 if (IS_ERR(rl)) {
4492 ntfs_debug("Cluster allocation failed (%lld)",
4493 (long long)first_free_vcn -
4494 ntfs_bytes_to_cluster(vol, ni->allocated_size));
4495 return PTR_ERR(rl);
4496 }
4497 }
4498
4499 if (!NInoCompressed(ni)) {
4500 /* Append new clusters to attribute runlist. */
4501 rln = ntfs_runlists_merge(&ni->runlist, rl, 0, &new_rl_count);
4502 if (IS_ERR(rln)) {
4503 /* Failed, free just allocated clusters. */
4504 ntfs_error(sb, "Run list merge failed");
4505 ntfs_cluster_free_from_rl(vol, rl);
4506 kvfree(rl);
4507 return -EIO;
4508 }
4509 ni->runlist.rl = rln;
4510 ni->runlist.count = new_rl_count;
4511 }
4512
4513 /* Prepare to mapping pairs update. */
4514 ni->allocated_size = ntfs_cluster_to_bytes(vol, first_free_vcn);
4515 err = ntfs_attr_update_mapping_pairs(ni, 0);
4516 if (err) {
4517 ntfs_debug("Mapping pairs update failed");
4518 goto rollback;
4519 }
4520 }
4521
4522 ctx = ntfs_attr_get_search_ctx(base_ni, NULL);
4523 if (!ctx) {
4524 err = -ENOMEM;
4525 if (ni->allocated_size == org_alloc_size)
4526 return err;
4527 goto rollback;
4528 }
4529
4530 err = ntfs_attr_lookup(ni->type, ni->name, ni->name_len, CASE_SENSITIVE,
4531 0, NULL, 0, ctx);
4532 if (err) {
4533 if (err == -ENOENT)
4534 err = -EIO;
4535 if (ni->allocated_size != org_alloc_size)
4536 goto rollback;
4537 goto put_err_out;
4538 }
4539
4540 /* Update data size. */
4541 ni->data_size = newsize;
4542 ctx->attr->data.non_resident.data_size = cpu_to_le64(newsize);
4543 /* Update data size in the index. */
4544 if (ni->type == AT_DATA && ni->name == AT_UNNAMED)
4545 NInoSetFileNameDirty(ni);
4546 /* Set the inode dirty so it is written out later. */
4547 mark_mft_record_dirty(ctx->ntfs_ino);
4548 /* Done! */
4549 ntfs_attr_put_search_ctx(ctx);
4550 return 0;
4551 rollback:
4552 /* Free allocated clusters. */
4553 err2 = ntfs_cluster_free(ni, ntfs_bytes_to_cluster(vol, org_alloc_size),
4554 -1, ctx);
4555 if (err2)
4556 ntfs_debug("Leaking clusters");
4557
4558 /* Now, truncate the runlist itself. */
4559 if (need_lock)
4560 down_write(&ni->runlist.lock);
4561 err2 = ntfs_rl_truncate_nolock(vol, &ni->runlist,
4562 ntfs_bytes_to_cluster(vol, org_alloc_size));
4563 if (need_lock)
4564 up_write(&ni->runlist.lock);
4565 if (err2) {
4566 /*
4567 * Failed to truncate the runlist, so just throw it away, it
4568 * will be mapped afresh on next use.
4569 */
4570 kvfree(ni->runlist.rl);
4571 ni->runlist.rl = NULL;
4572 ntfs_error(sb, "Couldn't truncate runlist. Rollback failed");
4573 } else {
4574 /* Prepare to mapping pairs update. */
4575 ni->allocated_size = org_alloc_size;
4576 /* Restore mapping pairs. */
4577 if (need_lock)
4578 down_read(&ni->runlist.lock);
4579 if (ntfs_attr_update_mapping_pairs(ni, 0))
4580 ntfs_error(sb, "Failed to restore old mapping pairs");
4581 if (need_lock)
4582 up_read(&ni->runlist.lock);
4583
4584 if (NInoSparse(ni) || NInoCompressed(ni)) {
4585 ni->itype.compressed.size = org_compressed_size;
4586 VFS_I(base_ni)->i_blocks = ni->itype.compressed.size >> 9;
4587 } else
4588 VFS_I(base_ni)->i_blocks = ni->allocated_size >> 9;
4589 }
4590 if (ctx)
4591 ntfs_attr_put_search_ctx(ctx);
4592 return err;
4593 put_err_out:
4594 if (ctx)
4595 ntfs_attr_put_search_ctx(ctx);
4596 return err;
4597 }
4598
4599 /*
4600 * ntfs_resident_attr_resize - resize a resident, open ntfs attribute
4601 * @attr_ni: resident ntfs inode to resize
4602 * @newsize: new size (in bytes) to which to resize the attribute
4603 * @prealloc_size: preallocation size (in bytes) to which to resize the attribute
4604 * @holes: flags indicating how to handle holes
4605 *
4606 * Change the size of a resident, open ntfs attribute @na to @newsize bytes.
4607 */
ntfs_resident_attr_resize(struct ntfs_inode * attr_ni,const s64 newsize,const s64 prealloc_size,unsigned int holes)4608 static int ntfs_resident_attr_resize(struct ntfs_inode *attr_ni, const s64 newsize,
4609 const s64 prealloc_size, unsigned int holes)
4610 {
4611 struct ntfs_attr_search_ctx *ctx;
4612 struct ntfs_volume *vol = attr_ni->vol;
4613 struct super_block *sb = vol->sb;
4614 int err = -EIO;
4615 struct ntfs_inode *base_ni, *ext_ni = NULL;
4616
4617 attr_resize_again:
4618 ntfs_debug("Inode 0x%llx attr 0x%x new size %lld\n",
4619 (unsigned long long)attr_ni->mft_no, attr_ni->type,
4620 (long long)newsize);
4621
4622 if (NInoAttr(attr_ni))
4623 base_ni = attr_ni->ext.base_ntfs_ino;
4624 else
4625 base_ni = attr_ni;
4626
4627 /* Get the attribute record that needs modification. */
4628 ctx = ntfs_attr_get_search_ctx(base_ni, NULL);
4629 if (!ctx) {
4630 ntfs_error(sb, "%s: Failed to get search context", __func__);
4631 return -ENOMEM;
4632 }
4633
4634 err = ntfs_attr_lookup(attr_ni->type, attr_ni->name, attr_ni->name_len,
4635 0, 0, NULL, 0, ctx);
4636 if (err) {
4637 ntfs_error(sb, "ntfs_attr_lookup failed");
4638 goto put_err_out;
4639 }
4640
4641 /*
4642 * Check the attribute type and the corresponding minimum and maximum
4643 * sizes against @newsize and fail if @newsize is out of bounds.
4644 */
4645 err = ntfs_attr_size_bounds_check(vol, attr_ni->type, newsize);
4646 if (err) {
4647 if (err == -ENOENT)
4648 err = -EIO;
4649 ntfs_debug("%s: bounds check failed", __func__);
4650 goto put_err_out;
4651 }
4652 /*
4653 * If @newsize is bigger than the mft record we need to make the
4654 * attribute non-resident if the attribute type supports it. If it is
4655 * smaller we can go ahead and attempt the resize.
4656 */
4657 if (newsize < vol->mft_record_size) {
4658 /* Perform the resize of the attribute record. */
4659 err = ntfs_resident_attr_value_resize(ctx->mrec, ctx->attr,
4660 newsize);
4661 if (!err) {
4662 /* Update attribute size everywhere. */
4663 attr_ni->data_size = attr_ni->initialized_size = newsize;
4664 attr_ni->allocated_size = (newsize + 7) & ~7;
4665 if (NInoCompressed(attr_ni) || NInoSparse(attr_ni))
4666 attr_ni->itype.compressed.size = attr_ni->allocated_size;
4667 if (attr_ni->type == AT_DATA && attr_ni->name == AT_UNNAMED)
4668 NInoSetFileNameDirty(attr_ni);
4669 goto resize_done;
4670 }
4671
4672 /* Prefer AT_INDEX_ALLOCATION instead of AT_ATTRIBUTE_LIST */
4673 if (err == -ENOSPC && ctx->attr->type == AT_INDEX_ROOT)
4674 goto put_err_out;
4675
4676 }
4677 /* There is not enough space in the mft record to perform the resize. */
4678
4679 /* Make the attribute non-resident if possible. */
4680 err = ntfs_attr_make_non_resident(attr_ni,
4681 le32_to_cpu(ctx->attr->data.resident.value_length));
4682 if (!err) {
4683 mark_mft_record_dirty(ctx->ntfs_ino);
4684 ntfs_attr_put_search_ctx(ctx);
4685 /* Resize non-resident attribute */
4686 return ntfs_non_resident_attr_expand(attr_ni, newsize, prealloc_size, holes, true);
4687 } else if (err != -ENOSPC && err != -EPERM) {
4688 ntfs_error(sb, "Failed to make attribute non-resident");
4689 goto put_err_out;
4690 }
4691
4692 /* Try to make other attributes non-resident and retry each time. */
4693 ntfs_attr_reinit_search_ctx(ctx);
4694 while (!(err = ntfs_attr_lookup(AT_UNUSED, NULL, 0, 0, 0, NULL, 0, ctx))) {
4695 struct inode *tvi;
4696 struct attr_record *a;
4697 u32 value_len;
4698
4699 a = ctx->attr;
4700 if (a->non_resident || a->type == AT_ATTRIBUTE_LIST)
4701 continue;
4702 value_len = le32_to_cpu(a->data.resident.value_length);
4703
4704 if (ntfs_attr_can_be_non_resident(vol, a->type))
4705 continue;
4706
4707 /*
4708 * Check out whether convert is reasonable. Assume that mapping
4709 * pairs will take 8 bytes.
4710 */
4711 if (le32_to_cpu(a->length) <= (sizeof(struct attr_record) - sizeof(s64)) +
4712 ((a->name_length * sizeof(__le16) + 7) & ~7) + 8)
4713 continue;
4714 if (a->type == AT_DATA && !value_len)
4715 continue;
4716
4717 if (a->type == AT_DATA)
4718 tvi = ntfs_iget(sb, base_ni->mft_no);
4719 else
4720 tvi = ntfs_attr_iget(VFS_I(base_ni), a->type,
4721 (__le16 *)((u8 *)a + le16_to_cpu(a->name_offset)),
4722 a->name_length);
4723 if (IS_ERR(tvi)) {
4724 ntfs_error(sb, "Couldn't open attribute");
4725 continue;
4726 }
4727
4728 if (ntfs_attr_make_non_resident(NTFS_I(tvi), value_len)) {
4729 iput(tvi);
4730 continue;
4731 }
4732
4733 mark_mft_record_dirty(ctx->ntfs_ino);
4734 iput(tvi);
4735 ntfs_attr_put_search_ctx(ctx);
4736 goto attr_resize_again;
4737 }
4738
4739 /* Check whether error occurred. */
4740 if (err != -ENOENT) {
4741 ntfs_error(sb, "%s: Attribute lookup failed 1", __func__);
4742 goto put_err_out;
4743 }
4744
4745 /*
4746 * The standard information and attribute list attributes can't be
4747 * moved out from the base MFT record, so try to move out others.
4748 */
4749 if (attr_ni->type == AT_STANDARD_INFORMATION ||
4750 attr_ni->type == AT_ATTRIBUTE_LIST) {
4751 ntfs_attr_put_search_ctx(ctx);
4752
4753 if (!NInoAttrList(base_ni)) {
4754 err = ntfs_inode_add_attrlist(base_ni);
4755 if (err)
4756 return err;
4757 }
4758
4759 err = ntfs_inode_free_space(base_ni, sizeof(struct attr_record));
4760 if (err) {
4761 err = -ENOSPC;
4762 ntfs_error(sb,
4763 "Couldn't free space in the MFT record to make attribute list non resident");
4764 return err;
4765 }
4766 err = ntfs_attrlist_update(base_ni);
4767 if (err)
4768 return err;
4769 goto attr_resize_again;
4770 }
4771
4772 /*
4773 * Move the attribute to a new mft record, creating an attribute list
4774 * attribute or modifying it if it is already present.
4775 */
4776
4777 /* Point search context back to attribute which we need resize. */
4778 ntfs_attr_reinit_search_ctx(ctx);
4779 err = ntfs_attr_lookup(attr_ni->type, attr_ni->name, attr_ni->name_len,
4780 CASE_SENSITIVE, 0, NULL, 0, ctx);
4781 if (err) {
4782 ntfs_error(sb, "%s: Attribute lookup failed 2", __func__);
4783 goto put_err_out;
4784 }
4785
4786 /*
4787 * Check whether attribute is already single in this MFT record.
4788 * 8 added for the attribute terminator.
4789 */
4790 if (le32_to_cpu(ctx->mrec->bytes_in_use) ==
4791 le16_to_cpu(ctx->mrec->attrs_offset) + le32_to_cpu(ctx->attr->length) + 8) {
4792 err = -ENOSPC;
4793 ntfs_debug("MFT record is filled with one attribute\n");
4794 goto put_err_out;
4795 }
4796
4797 /* Add attribute list if not present. */
4798 if (!NInoAttrList(base_ni)) {
4799 ntfs_attr_put_search_ctx(ctx);
4800 err = ntfs_inode_add_attrlist(base_ni);
4801 if (err)
4802 return err;
4803 goto attr_resize_again;
4804 }
4805
4806 /* Allocate new mft record. */
4807 err = ntfs_mft_record_alloc(base_ni->vol, 0, &ext_ni, base_ni, NULL);
4808 if (err) {
4809 ntfs_error(sb, "Couldn't allocate MFT record");
4810 goto put_err_out;
4811 }
4812 unmap_mft_record(ext_ni);
4813
4814 /* Move attribute to it. */
4815 err = ntfs_attr_record_move_to(ctx, ext_ni);
4816 if (err) {
4817 ntfs_error(sb, "Couldn't move attribute to new MFT record");
4818 err = -ENOMEM;
4819 goto put_err_out;
4820 }
4821
4822 err = ntfs_attrlist_update(base_ni);
4823 if (err < 0)
4824 goto put_err_out;
4825
4826 ntfs_attr_put_search_ctx(ctx);
4827 /* Try to perform resize once again. */
4828 goto attr_resize_again;
4829
4830 resize_done:
4831 /*
4832 * Set the inode (and its base inode if it exists) dirty so it is
4833 * written out later.
4834 */
4835 mark_mft_record_dirty(ctx->ntfs_ino);
4836 ntfs_attr_put_search_ctx(ctx);
4837 return 0;
4838
4839 put_err_out:
4840 ntfs_attr_put_search_ctx(ctx);
4841 return err;
4842 }
4843
__ntfs_attr_truncate_vfs(struct ntfs_inode * ni,const s64 newsize,const s64 i_size)4844 int __ntfs_attr_truncate_vfs(struct ntfs_inode *ni, const s64 newsize,
4845 const s64 i_size)
4846 {
4847 int err = 0;
4848
4849 if (newsize < 0 ||
4850 (ni->mft_no == FILE_MFT && ni->type == AT_DATA)) {
4851 ntfs_debug("Invalid arguments passed.\n");
4852 return -EINVAL;
4853 }
4854
4855 ntfs_debug("Entering for inode 0x%llx, attr 0x%x, size %lld\n",
4856 (unsigned long long)ni->mft_no, ni->type, newsize);
4857
4858 if (NInoNonResident(ni)) {
4859 if (newsize > i_size) {
4860 down_write(&ni->runlist.lock);
4861 err = ntfs_non_resident_attr_expand(ni, newsize, 0,
4862 NVolDisableSparse(ni->vol) ?
4863 HOLES_NO : HOLES_OK,
4864 false);
4865 up_write(&ni->runlist.lock);
4866 } else
4867 err = ntfs_non_resident_attr_shrink(ni, newsize);
4868 } else
4869 err = ntfs_resident_attr_resize(ni, newsize, 0,
4870 NVolDisableSparse(ni->vol) ?
4871 HOLES_NO : HOLES_OK);
4872 ntfs_debug("Return status %d\n", err);
4873 return err;
4874 }
4875
ntfs_attr_expand(struct ntfs_inode * ni,const s64 newsize,const s64 prealloc_size)4876 int ntfs_attr_expand(struct ntfs_inode *ni, const s64 newsize, const s64 prealloc_size)
4877 {
4878 int err = 0;
4879
4880 if (newsize < 0 ||
4881 (ni->mft_no == FILE_MFT && ni->type == AT_DATA)) {
4882 ntfs_debug("Invalid arguments passed.\n");
4883 return -EINVAL;
4884 }
4885
4886 ntfs_debug("Entering for inode 0x%llx, attr 0x%x, size %lld\n",
4887 (unsigned long long)ni->mft_no, ni->type, newsize);
4888
4889 if (ni->data_size == newsize) {
4890 ntfs_debug("Size is already ok\n");
4891 return 0;
4892 }
4893
4894 /*
4895 * Encrypted attributes are not supported. We return access denied,
4896 * which is what Windows NT4 does, too.
4897 */
4898 if (NInoEncrypted(ni)) {
4899 pr_err("Failed to truncate encrypted attribute\n");
4900 return -EACCES;
4901 }
4902
4903 if (NInoNonResident(ni)) {
4904 if (newsize > ni->data_size)
4905 err = ntfs_non_resident_attr_expand(ni, newsize, prealloc_size,
4906 NVolDisableSparse(ni->vol) ?
4907 HOLES_NO : HOLES_OK, true);
4908 } else
4909 err = ntfs_resident_attr_resize(ni, newsize, prealloc_size,
4910 NVolDisableSparse(ni->vol) ?
4911 HOLES_NO : HOLES_OK);
4912 if (!err)
4913 i_size_write(VFS_I(ni), newsize);
4914 ntfs_debug("Return status %d\n", err);
4915 return err;
4916 }
4917
4918 /*
4919 * ntfs_attr_truncate_i - resize an ntfs attribute
4920 * @ni: open ntfs inode to resize
4921 * @newsize: new size (in bytes) to which to resize the attribute
4922 * @holes: how to create a hole if expanding
4923 *
4924 * Change the size of an open ntfs attribute @na to @newsize bytes. If the
4925 * attribute is made bigger and the attribute is resident the newly
4926 * "allocated" space is cleared and if the attribute is non-resident the
4927 * newly allocated space is marked as not initialised and no real allocation
4928 * on disk is performed.
4929 */
ntfs_attr_truncate_i(struct ntfs_inode * ni,const s64 newsize,unsigned int holes)4930 int ntfs_attr_truncate_i(struct ntfs_inode *ni, const s64 newsize, unsigned int holes)
4931 {
4932 int err;
4933
4934 if (newsize < 0 ||
4935 (ni->mft_no == FILE_MFT && ni->type == AT_DATA)) {
4936 ntfs_debug("Invalid arguments passed.\n");
4937 return -EINVAL;
4938 }
4939
4940 ntfs_debug("Entering for inode 0x%llx, attr 0x%x, size %lld\n",
4941 (unsigned long long)ni->mft_no, ni->type, newsize);
4942
4943 if (ni->data_size == newsize) {
4944 ntfs_debug("Size is already ok\n");
4945 return 0;
4946 }
4947
4948 /*
4949 * Encrypted attributes are not supported. We return access denied,
4950 * which is what Windows NT4 does, too.
4951 */
4952 if (NInoEncrypted(ni)) {
4953 pr_err("Failed to truncate encrypted attribute\n");
4954 return -EACCES;
4955 }
4956
4957 if (NInoCompressed(ni)) {
4958 pr_err("Failed to truncate compressed attribute\n");
4959 return -EOPNOTSUPP;
4960 }
4961
4962 if (NInoNonResident(ni)) {
4963 if (newsize > ni->data_size)
4964 err = ntfs_non_resident_attr_expand(ni, newsize, 0, holes, true);
4965 else
4966 err = ntfs_non_resident_attr_shrink(ni, newsize);
4967 } else
4968 err = ntfs_resident_attr_resize(ni, newsize, 0, holes);
4969 ntfs_debug("Return status %d\n", err);
4970 return err;
4971 }
4972
4973 /*
4974 * Resize an attribute, creating a hole if relevant
4975 */
ntfs_attr_truncate(struct ntfs_inode * ni,const s64 newsize)4976 int ntfs_attr_truncate(struct ntfs_inode *ni, const s64 newsize)
4977 {
4978 return ntfs_attr_truncate_i(ni, newsize,
4979 NVolDisableSparse(ni->vol) ?
4980 HOLES_NO : HOLES_OK);
4981 }
4982
ntfs_attr_map_cluster(struct ntfs_inode * ni,s64 vcn_start,s64 * lcn_start,s64 * lcn_count,s64 max_clu_count,bool * balloc,bool update_mp,bool skip_holes)4983 int ntfs_attr_map_cluster(struct ntfs_inode *ni, s64 vcn_start, s64 *lcn_start,
4984 s64 *lcn_count, s64 max_clu_count, bool *balloc, bool update_mp,
4985 bool skip_holes)
4986 {
4987 struct ntfs_volume *vol = ni->vol;
4988 struct ntfs_attr_search_ctx *ctx;
4989 struct runlist_element *rl, *rlc;
4990 s64 vcn = vcn_start, lcn, clu_count;
4991 s64 lcn_seek_from = -1;
4992 int err = 0;
4993 size_t new_rl_count;
4994
4995 err = ntfs_attr_map_whole_runlist(ni);
4996 if (err)
4997 return err;
4998
4999 if (NInoAttr(ni))
5000 ctx = ntfs_attr_get_search_ctx(ni->ext.base_ntfs_ino, NULL);
5001 else
5002 ctx = ntfs_attr_get_search_ctx(ni, NULL);
5003 if (!ctx) {
5004 ntfs_error(vol->sb, "%s: Failed to get search context", __func__);
5005 return -ENOMEM;
5006 }
5007
5008 err = ntfs_attr_lookup(ni->type, ni->name, ni->name_len,
5009 CASE_SENSITIVE, vcn, NULL, 0, ctx);
5010 if (err) {
5011 ntfs_error(vol->sb,
5012 "ntfs_attr_lookup failed, ntfs inode(mft_no : %llu) type : 0x%x, err : %d",
5013 ni->mft_no, ni->type, err);
5014 goto out;
5015 }
5016
5017 rl = ntfs_attr_find_vcn_nolock(ni, vcn, ctx);
5018 if (IS_ERR(rl)) {
5019 ntfs_error(vol->sb, "Failed to find run after mapping runlist.");
5020 err = PTR_ERR(rl);
5021 goto out;
5022 }
5023
5024 lcn = ntfs_rl_vcn_to_lcn(rl, vcn);
5025 clu_count = min(max_clu_count, rl->length - (vcn - rl->vcn));
5026 if (lcn >= LCN_HOLE) {
5027 if (lcn > LCN_DELALLOC ||
5028 (lcn == LCN_HOLE && skip_holes)) {
5029 *lcn_start = lcn;
5030 *lcn_count = clu_count;
5031 *balloc = false;
5032 goto out;
5033 }
5034 } else {
5035 WARN_ON(lcn == LCN_RL_NOT_MAPPED);
5036 if (lcn == LCN_ENOENT)
5037 err = -ENOENT;
5038 else
5039 err = -EIO;
5040 goto out;
5041 }
5042
5043 /* Search backwards to find the best lcn to start seek from. */
5044 rlc = rl;
5045 while (rlc->vcn) {
5046 rlc--;
5047 if (rlc->lcn >= 0) {
5048 /*
5049 * avoid fragmenting a compressed file
5050 * Windows does not do that, and that may
5051 * not be desirable for files which can
5052 * be updated
5053 */
5054 if (NInoCompressed(ni))
5055 lcn_seek_from = rlc->lcn + rlc->length;
5056 else
5057 lcn_seek_from = rlc->lcn + (vcn - rlc->vcn);
5058 break;
5059 }
5060 }
5061
5062 if (lcn_seek_from == -1) {
5063 /* Backwards search failed, search forwards. */
5064 rlc = rl;
5065 while (rlc->length) {
5066 rlc++;
5067 if (rlc->lcn >= 0) {
5068 lcn_seek_from = rlc->lcn - (rlc->vcn - vcn);
5069 if (lcn_seek_from < -1)
5070 lcn_seek_from = -1;
5071 break;
5072 }
5073 }
5074 }
5075
5076 rlc = ntfs_cluster_alloc(vol, vcn, clu_count, lcn_seek_from, DATA_ZONE,
5077 false, true, true);
5078 if (IS_ERR(rlc)) {
5079 err = PTR_ERR(rlc);
5080 goto out;
5081 }
5082
5083 WARN_ON(rlc->vcn != vcn);
5084 lcn = rlc->lcn;
5085 clu_count = rlc->length;
5086
5087 rl = ntfs_runlists_merge(&ni->runlist, rlc, 0, &new_rl_count);
5088 if (IS_ERR(rl)) {
5089 ntfs_error(vol->sb, "Failed to merge runlists");
5090 err = PTR_ERR(rl);
5091 if (ntfs_cluster_free_from_rl(vol, rlc))
5092 ntfs_error(vol->sb, "Failed to free hot clusters.");
5093 kvfree(rlc);
5094 goto out;
5095 }
5096 ni->runlist.rl = rl;
5097 ni->runlist.count = new_rl_count;
5098
5099 if (!update_mp) {
5100 u64 free = atomic64_read(&vol->free_clusters) * 100;
5101
5102 do_div(free, vol->nr_clusters);
5103 if (free <= 5)
5104 update_mp = true;
5105 }
5106
5107 if (update_mp) {
5108 ntfs_attr_reinit_search_ctx(ctx);
5109 err = ntfs_attr_update_mapping_pairs(ni, 0);
5110 if (err) {
5111 int err2;
5112
5113 err2 = ntfs_cluster_free(ni, vcn, clu_count, ctx);
5114 if (err2 < 0)
5115 ntfs_error(vol->sb,
5116 "Failed to free cluster allocation. Leaving inconstant metadata.\n");
5117 goto out;
5118 }
5119 } else {
5120 VFS_I(ni)->i_blocks += clu_count << (vol->cluster_size_bits - 9);
5121 NInoSetRunlistDirty(ni);
5122 mark_mft_record_dirty(ni);
5123 }
5124
5125 *lcn_start = lcn;
5126 *lcn_count = clu_count;
5127 *balloc = true;
5128 out:
5129 ntfs_attr_put_search_ctx(ctx);
5130 return err;
5131 }
5132
5133 /*
5134 * ntfs_attr_rm - remove attribute from ntfs inode
5135 * @ni: opened ntfs attribute to delete
5136 *
5137 * Remove attribute and all it's extents from ntfs inode. If attribute was non
5138 * resident also free all clusters allocated by attribute.
5139 */
ntfs_attr_rm(struct ntfs_inode * ni)5140 int ntfs_attr_rm(struct ntfs_inode *ni)
5141 {
5142 struct ntfs_attr_search_ctx *ctx;
5143 int err = 0, ret = 0;
5144 struct ntfs_inode *base_ni;
5145 struct super_block *sb = ni->vol->sb;
5146
5147 if (NInoAttr(ni))
5148 base_ni = ni->ext.base_ntfs_ino;
5149 else
5150 base_ni = ni;
5151
5152 ntfs_debug("Entering for inode 0x%llx, attr 0x%x.\n",
5153 (long long) ni->mft_no, ni->type);
5154
5155 /* Free cluster allocation. */
5156 if (NInoNonResident(ni)) {
5157 struct ntfs_attr_search_ctx *ctx;
5158
5159 err = ntfs_attr_map_whole_runlist(ni);
5160 if (err)
5161 return err;
5162 ctx = ntfs_attr_get_search_ctx(ni, NULL);
5163 if (!ctx) {
5164 ntfs_error(sb, "%s: Failed to get search context", __func__);
5165 return -ENOMEM;
5166 }
5167
5168 ret = ntfs_cluster_free(ni, 0, -1, ctx);
5169 if (ret < 0)
5170 ntfs_error(sb,
5171 "Failed to free cluster allocation. Leaving inconstant metadata.\n");
5172 ntfs_attr_put_search_ctx(ctx);
5173 }
5174
5175 /* Search for attribute extents and remove them all. */
5176 ctx = ntfs_attr_get_search_ctx(base_ni, NULL);
5177 if (!ctx) {
5178 ntfs_error(sb, "%s: Failed to get search context", __func__);
5179 return -ENOMEM;
5180 }
5181 while (!(err = ntfs_attr_lookup(ni->type, ni->name, ni->name_len,
5182 CASE_SENSITIVE, 0, NULL, 0, ctx))) {
5183 err = ntfs_attr_record_rm(ctx);
5184 if (err) {
5185 ntfs_error(sb,
5186 "Failed to remove attribute extent. Leaving inconstant metadata.\n");
5187 ret = err;
5188 }
5189 ntfs_attr_reinit_search_ctx(ctx);
5190 }
5191 ntfs_attr_put_search_ctx(ctx);
5192 if (err != -ENOENT) {
5193 ntfs_error(sb, "Attribute lookup failed. Probably leaving inconstant metadata.\n");
5194 ret = err;
5195 }
5196
5197 return ret;
5198 }
5199
ntfs_attr_exist(struct ntfs_inode * ni,const __le32 type,__le16 * name,u32 name_len)5200 int ntfs_attr_exist(struct ntfs_inode *ni, const __le32 type, __le16 *name,
5201 u32 name_len)
5202 {
5203 struct ntfs_attr_search_ctx *ctx;
5204 int ret;
5205
5206 ntfs_debug("Entering\n");
5207
5208 ctx = ntfs_attr_get_search_ctx(ni, NULL);
5209 if (!ctx) {
5210 ntfs_error(ni->vol->sb, "%s: Failed to get search context",
5211 __func__);
5212 return 0;
5213 }
5214
5215 ret = ntfs_attr_lookup(type, name, name_len, CASE_SENSITIVE,
5216 0, NULL, 0, ctx);
5217 ntfs_attr_put_search_ctx(ctx);
5218
5219 return !ret;
5220 }
5221
ntfs_attr_remove(struct ntfs_inode * ni,const __le32 type,__le16 * name,u32 name_len)5222 int ntfs_attr_remove(struct ntfs_inode *ni, const __le32 type, __le16 *name,
5223 u32 name_len)
5224 {
5225 int err;
5226 struct inode *attr_vi;
5227 struct ntfs_inode *attr_ni;
5228
5229 ntfs_debug("Entering\n");
5230
5231 if (!ni)
5232 return -EINVAL;
5233
5234 attr_vi = ntfs_attr_iget(VFS_I(ni), type, name, name_len);
5235 if (IS_ERR(attr_vi)) {
5236 err = PTR_ERR(attr_vi);
5237 ntfs_error(ni->vol->sb, "Failed to open attribute 0x%02x of inode 0x%llx",
5238 type, (unsigned long long)ni->mft_no);
5239 return err;
5240 }
5241 attr_ni = NTFS_I(attr_vi);
5242
5243 err = ntfs_attr_rm(attr_ni);
5244 if (err)
5245 ntfs_error(ni->vol->sb, "Failed to remove attribute 0x%02x of inode 0x%llx",
5246 type, (unsigned long long)ni->mft_no);
5247 iput(attr_vi);
5248 return err;
5249 }
5250
5251 /*
5252 * ntfs_attr_readall - read the entire data from an ntfs attribute
5253 * @ni: open ntfs inode in which the ntfs attribute resides
5254 * @type: attribute type
5255 * @name: attribute name in little endian Unicode or AT_UNNAMED or NULL
5256 * @name_len: length of attribute @name in Unicode characters (if @name given)
5257 * @data_size: if non-NULL then store here the data size
5258 *
5259 * This function will read the entire content of an ntfs attribute.
5260 * If @name is AT_UNNAMED then look specifically for an unnamed attribute.
5261 * If @name is NULL then the attribute could be either named or not.
5262 * In both those cases @name_len is not used at all.
5263 *
5264 * On success a buffer is allocated with the content of the attribute
5265 * and which needs to be freed when it's not needed anymore. If the
5266 * @data_size parameter is non-NULL then the data size is set there.
5267 */
ntfs_attr_readall(struct ntfs_inode * ni,const __le32 type,__le16 * name,u32 name_len,s64 * data_size)5268 void *ntfs_attr_readall(struct ntfs_inode *ni, const __le32 type,
5269 __le16 *name, u32 name_len, s64 *data_size)
5270 {
5271 struct ntfs_inode *bmp_ni;
5272 struct inode *bmp_vi;
5273 void *data, *ret = NULL;
5274 s64 size;
5275 struct super_block *sb = ni->vol->sb;
5276
5277 ntfs_debug("Entering\n");
5278
5279 bmp_vi = ntfs_attr_iget(VFS_I(ni), type, name, name_len);
5280 if (IS_ERR(bmp_vi)) {
5281 ntfs_debug("ntfs_attr_iget failed");
5282 goto err_exit;
5283 }
5284 bmp_ni = NTFS_I(bmp_vi);
5285
5286 if (bmp_ni->data_size > NTFS_ATTR_READALL_MAX_SIZE &&
5287 (bmp_ni->type != AT_BITMAP ||
5288 bmp_ni->data_size > ((ni->vol->nr_clusters + 7) >> 3))) {
5289 ntfs_error(sb, "Invalid attribute data size");
5290 goto out;
5291 }
5292
5293 data = kvmalloc(bmp_ni->data_size, GFP_NOFS);
5294 if (!data)
5295 goto out;
5296
5297 size = ntfs_inode_attr_pread(VFS_I(bmp_ni), 0, bmp_ni->data_size,
5298 (u8 *)data);
5299 if (size != bmp_ni->data_size) {
5300 ntfs_error(sb, "ntfs_attr_pread failed");
5301 kvfree(data);
5302 goto out;
5303 }
5304 ret = data;
5305 if (data_size)
5306 *data_size = size;
5307 out:
5308 iput(bmp_vi);
5309 err_exit:
5310 ntfs_debug("\n");
5311 return ret;
5312 }
5313
ntfs_non_resident_attr_insert_range(struct ntfs_inode * ni,s64 start_vcn,s64 len)5314 int ntfs_non_resident_attr_insert_range(struct ntfs_inode *ni, s64 start_vcn, s64 len)
5315 {
5316 struct ntfs_volume *vol = ni->vol;
5317 struct runlist_element *hole_rl, *rl;
5318 struct ntfs_attr_search_ctx *ctx;
5319 int ret;
5320 size_t new_rl_count;
5321
5322 if (NInoAttr(ni) || ni->type != AT_DATA)
5323 return -EOPNOTSUPP;
5324 if (start_vcn > ntfs_bytes_to_cluster(vol, ni->allocated_size))
5325 return -EINVAL;
5326
5327 hole_rl = kmalloc(sizeof(*hole_rl) * 2, GFP_NOFS);
5328 if (!hole_rl)
5329 return -ENOMEM;
5330 hole_rl[0].vcn = start_vcn;
5331 hole_rl[0].lcn = LCN_HOLE;
5332 hole_rl[0].length = len;
5333 hole_rl[1].vcn = start_vcn + len;
5334 hole_rl[1].lcn = LCN_ENOENT;
5335 hole_rl[1].length = 0;
5336
5337 down_write(&ni->runlist.lock);
5338 ret = ntfs_attr_map_whole_runlist(ni);
5339 if (ret) {
5340 up_write(&ni->runlist.lock);
5341 kfree(hole_rl);
5342 return ret;
5343 }
5344
5345 rl = ntfs_rl_find_vcn_nolock(ni->runlist.rl, start_vcn);
5346 if (!rl) {
5347 up_write(&ni->runlist.lock);
5348 kfree(hole_rl);
5349 return -EIO;
5350 }
5351
5352 rl = ntfs_rl_insert_range(ni->runlist.rl, (int)ni->runlist.count,
5353 hole_rl, 1, &new_rl_count);
5354 if (IS_ERR(rl)) {
5355 up_write(&ni->runlist.lock);
5356 kfree(hole_rl);
5357 return PTR_ERR(rl);
5358 }
5359 ni->runlist.rl = rl;
5360 ni->runlist.count = new_rl_count;
5361
5362 ni->allocated_size += ntfs_cluster_to_bytes(vol, len);
5363 ni->data_size += ntfs_cluster_to_bytes(vol, len);
5364 if (ntfs_cluster_to_bytes(vol, start_vcn) < ni->initialized_size)
5365 ni->initialized_size += ntfs_cluster_to_bytes(vol, len);
5366 ret = ntfs_attr_update_mapping_pairs(ni, 0);
5367 up_write(&ni->runlist.lock);
5368 if (ret)
5369 return ret;
5370
5371 ctx = ntfs_attr_get_search_ctx(ni, NULL);
5372 if (!ctx) {
5373 ret = -ENOMEM;
5374 return ret;
5375 }
5376
5377 ret = ntfs_attr_lookup(ni->type, ni->name, ni->name_len, CASE_SENSITIVE,
5378 0, NULL, 0, ctx);
5379 if (ret) {
5380 ntfs_attr_put_search_ctx(ctx);
5381 return ret;
5382 }
5383
5384 ctx->attr->data.non_resident.data_size = cpu_to_le64(ni->data_size);
5385 ctx->attr->data.non_resident.initialized_size = cpu_to_le64(ni->initialized_size);
5386 if (ni->type == AT_DATA && ni->name == AT_UNNAMED)
5387 NInoSetFileNameDirty(ni);
5388 mark_mft_record_dirty(ctx->ntfs_ino);
5389 ntfs_attr_put_search_ctx(ctx);
5390 return ret;
5391 }
5392
ntfs_non_resident_attr_collapse_range(struct ntfs_inode * ni,s64 start_vcn,s64 len)5393 int ntfs_non_resident_attr_collapse_range(struct ntfs_inode *ni, s64 start_vcn, s64 len)
5394 {
5395 struct ntfs_volume *vol = ni->vol;
5396 struct runlist_element *punch_rl, *rl;
5397 struct ntfs_attr_search_ctx *ctx = NULL;
5398 s64 end_vcn;
5399 int dst_cnt;
5400 int ret;
5401 size_t new_rl_cnt;
5402
5403 if (NInoAttr(ni) || ni->type != AT_DATA)
5404 return -EOPNOTSUPP;
5405
5406 end_vcn = ntfs_bytes_to_cluster(vol, ni->allocated_size);
5407 if (start_vcn >= end_vcn)
5408 return -EINVAL;
5409
5410 down_write(&ni->runlist.lock);
5411 ret = ntfs_attr_map_whole_runlist(ni);
5412 if (ret) {
5413 up_write(&ni->runlist.lock);
5414 return ret;
5415 }
5416
5417 len = min(len, end_vcn - start_vcn);
5418 for (rl = ni->runlist.rl, dst_cnt = 0; rl && rl->length; rl++)
5419 dst_cnt++;
5420 rl = ntfs_rl_find_vcn_nolock(ni->runlist.rl, start_vcn);
5421 if (!rl) {
5422 up_write(&ni->runlist.lock);
5423 return -EIO;
5424 }
5425
5426 rl = ntfs_rl_collapse_range(ni->runlist.rl, dst_cnt + 1,
5427 start_vcn, len, &punch_rl, &new_rl_cnt);
5428 if (IS_ERR(rl)) {
5429 up_write(&ni->runlist.lock);
5430 return PTR_ERR(rl);
5431 }
5432 ni->runlist.rl = rl;
5433 ni->runlist.count = new_rl_cnt;
5434
5435 ni->allocated_size -= ntfs_cluster_to_bytes(vol, len);
5436 if (ni->data_size > ntfs_cluster_to_bytes(vol, start_vcn)) {
5437 if (ni->data_size > ntfs_cluster_to_bytes(vol, (start_vcn + len)))
5438 ni->data_size -= ntfs_cluster_to_bytes(vol, len);
5439 else
5440 ni->data_size = ntfs_cluster_to_bytes(vol, start_vcn);
5441 }
5442 if (ni->initialized_size > ntfs_cluster_to_bytes(vol, start_vcn)) {
5443 if (ni->initialized_size >
5444 ntfs_cluster_to_bytes(vol, start_vcn + len))
5445 ni->initialized_size -= ntfs_cluster_to_bytes(vol, len);
5446 else
5447 ni->initialized_size = ntfs_cluster_to_bytes(vol, start_vcn);
5448 }
5449
5450 if (ni->allocated_size > 0) {
5451 ret = ntfs_attr_update_mapping_pairs(ni, 0);
5452 if (ret) {
5453 up_write(&ni->runlist.lock);
5454 goto out_rl;
5455 }
5456 }
5457 up_write(&ni->runlist.lock);
5458
5459 ctx = ntfs_attr_get_search_ctx(ni, NULL);
5460 if (!ctx) {
5461 ret = -ENOMEM;
5462 goto out_rl;
5463 }
5464
5465 ret = ntfs_attr_lookup(ni->type, ni->name, ni->name_len, CASE_SENSITIVE,
5466 0, NULL, 0, ctx);
5467 if (ret)
5468 goto out_ctx;
5469
5470 ctx->attr->data.non_resident.data_size = cpu_to_le64(ni->data_size);
5471 ctx->attr->data.non_resident.initialized_size = cpu_to_le64(ni->initialized_size);
5472 if (ni->allocated_size == 0)
5473 ntfs_attr_make_resident(ni, ctx);
5474 mark_mft_record_dirty(ctx->ntfs_ino);
5475
5476 ret = ntfs_cluster_free_from_rl(vol, punch_rl);
5477 if (ret)
5478 ntfs_error(vol->sb, "Freeing of clusters failed");
5479 out_ctx:
5480 if (ctx)
5481 ntfs_attr_put_search_ctx(ctx);
5482 out_rl:
5483 kvfree(punch_rl);
5484 mark_mft_record_dirty(ni);
5485 return ret;
5486 }
5487
ntfs_non_resident_attr_punch_hole(struct ntfs_inode * ni,s64 start_vcn,s64 len)5488 int ntfs_non_resident_attr_punch_hole(struct ntfs_inode *ni, s64 start_vcn, s64 len)
5489 {
5490 struct ntfs_volume *vol = ni->vol;
5491 struct runlist_element *punch_rl, *rl;
5492 s64 end_vcn;
5493 int dst_cnt;
5494 int ret;
5495 size_t new_rl_count;
5496
5497 if (NInoAttr(ni) || ni->type != AT_DATA)
5498 return -EOPNOTSUPP;
5499
5500 end_vcn = ntfs_bytes_to_cluster(vol, ni->allocated_size);
5501 if (start_vcn >= end_vcn)
5502 return -EINVAL;
5503
5504 down_write(&ni->runlist.lock);
5505 ret = ntfs_attr_map_whole_runlist(ni);
5506 if (ret) {
5507 up_write(&ni->runlist.lock);
5508 return ret;
5509 }
5510
5511 len = min(len, end_vcn - start_vcn + 1);
5512 for (rl = ni->runlist.rl, dst_cnt = 0; rl && rl->length; rl++)
5513 dst_cnt++;
5514 rl = ntfs_rl_find_vcn_nolock(ni->runlist.rl, start_vcn);
5515 if (!rl) {
5516 up_write(&ni->runlist.lock);
5517 return -EIO;
5518 }
5519
5520 rl = ntfs_rl_punch_hole(ni->runlist.rl, dst_cnt + 1,
5521 start_vcn, len, &punch_rl, &new_rl_count);
5522 if (IS_ERR(rl)) {
5523 up_write(&ni->runlist.lock);
5524 return PTR_ERR(rl);
5525 }
5526 ni->runlist.rl = rl;
5527 ni->runlist.count = new_rl_count;
5528
5529 ret = ntfs_attr_update_mapping_pairs(ni, 0);
5530 up_write(&ni->runlist.lock);
5531 if (ret) {
5532 kvfree(punch_rl);
5533 return ret;
5534 }
5535
5536 ret = ntfs_cluster_free_from_rl(vol, punch_rl);
5537 if (ret)
5538 ntfs_error(vol->sb, "Freeing of clusters failed");
5539
5540 kvfree(punch_rl);
5541 mark_mft_record_dirty(ni);
5542 return ret;
5543 }
5544
ntfs_attr_fallocate(struct ntfs_inode * ni,loff_t start,loff_t byte_len,bool keep_size)5545 int ntfs_attr_fallocate(struct ntfs_inode *ni, loff_t start, loff_t byte_len, bool keep_size)
5546 {
5547 struct ntfs_volume *vol = ni->vol;
5548 struct mft_record *mrec;
5549 struct ntfs_attr_search_ctx *ctx;
5550 s64 old_data_size;
5551 s64 vcn_start, vcn_end, vcn_uninit, vcn, try_alloc_cnt;
5552 s64 lcn, alloc_cnt;
5553 s64 rl_lcn, rl_length, rl_vcn;
5554 int err = 0;
5555 struct runlist_element *rl;
5556 bool balloc;
5557
5558 if (NInoAttr(ni) || ni->type != AT_DATA)
5559 return -EINVAL;
5560
5561 if (NInoNonResident(ni) && !NInoFullyMapped(ni)) {
5562 down_write(&ni->runlist.lock);
5563 err = ntfs_attr_map_whole_runlist(ni);
5564 up_write(&ni->runlist.lock);
5565 if (err)
5566 return err;
5567 }
5568
5569 mutex_lock_nested(&ni->mrec_lock, NTFS_INODE_MUTEX_NORMAL);
5570 mrec = map_mft_record(ni);
5571 if (IS_ERR(mrec)) {
5572 mutex_unlock(&ni->mrec_lock);
5573 return PTR_ERR(mrec);
5574 }
5575
5576 ctx = ntfs_attr_get_search_ctx(ni, mrec);
5577 if (!ctx) {
5578 err = -ENOMEM;
5579 goto out_unmap;
5580 }
5581
5582 err = ntfs_attr_lookup(AT_DATA, AT_UNNAMED, 0, 0, 0, NULL, 0, ctx);
5583 if (err) {
5584 err = -EIO;
5585 goto out_unmap;
5586 }
5587
5588 old_data_size = ni->data_size;
5589 if (start + byte_len > ni->data_size) {
5590 err = ntfs_attr_truncate(ni, start + byte_len);
5591 if (err)
5592 goto out_unmap;
5593 if (keep_size) {
5594 ntfs_attr_reinit_search_ctx(ctx);
5595 err = ntfs_attr_lookup(AT_DATA, AT_UNNAMED, 0, 0, 0, NULL, 0, ctx);
5596 if (err) {
5597 err = -EIO;
5598 goto out_unmap;
5599 }
5600 ni->data_size = old_data_size;
5601 if (NInoNonResident(ni))
5602 ctx->attr->data.non_resident.data_size =
5603 cpu_to_le64(old_data_size);
5604 else
5605 ctx->attr->data.resident.value_length =
5606 cpu_to_le32((u32)old_data_size);
5607 mark_mft_record_dirty(ni);
5608 }
5609 }
5610
5611 ntfs_attr_put_search_ctx(ctx);
5612 unmap_mft_record(ni);
5613 mutex_unlock(&ni->mrec_lock);
5614
5615 if (!NInoNonResident(ni))
5616 goto out;
5617
5618 vcn_start = (s64)ntfs_bytes_to_cluster(vol, start);
5619 vcn_end = (s64)ntfs_bytes_to_cluster(vol,
5620 round_up(start + byte_len, vol->cluster_size));
5621 vcn_uninit = (s64)ntfs_bytes_to_cluster(vol,
5622 round_up(ni->initialized_size, vol->cluster_size));
5623 vcn_uninit = min_t(s64, vcn_uninit, vcn_end);
5624
5625 /*
5626 * we have to allocate clusters for holes and delayed within initialized_size,
5627 * and zero out the clusters only for the holes.
5628 */
5629 vcn = vcn_start;
5630 while (vcn < vcn_uninit) {
5631 down_read(&ni->runlist.lock);
5632 rl = ntfs_attr_find_vcn_nolock(ni, vcn, NULL);
5633 if (IS_ERR(rl)) {
5634 up_read(&ni->runlist.lock);
5635 err = PTR_ERR(rl);
5636 goto out;
5637 }
5638 rl_lcn = rl->lcn;
5639 rl_length = rl->length;
5640 rl_vcn = rl->vcn;
5641 up_read(&ni->runlist.lock);
5642
5643 if (rl_lcn > 0) {
5644 vcn += rl_length - (vcn - rl_vcn);
5645 } else if (rl_lcn == LCN_DELALLOC || rl_lcn == LCN_HOLE) {
5646 try_alloc_cnt = min(rl_length - (vcn - rl_vcn),
5647 vcn_uninit - vcn);
5648
5649 if (rl_lcn == LCN_DELALLOC) {
5650 vcn += try_alloc_cnt;
5651 continue;
5652 }
5653
5654 while (try_alloc_cnt > 0) {
5655 mutex_lock_nested(&ni->mrec_lock, NTFS_INODE_MUTEX_NORMAL);
5656 down_write(&ni->runlist.lock);
5657 err = ntfs_attr_map_cluster(ni, vcn, &lcn, &alloc_cnt,
5658 try_alloc_cnt, &balloc, false, false);
5659 up_write(&ni->runlist.lock);
5660 mutex_unlock(&ni->mrec_lock);
5661 if (err)
5662 goto out;
5663
5664 if (balloc) {
5665 err = ntfs_dio_zero_range(VFS_I(ni),
5666 lcn << vol->cluster_size_bits,
5667 alloc_cnt <<
5668 vol->cluster_size_bits);
5669 if (err > 0)
5670 goto out;
5671 }
5672
5673 if (signal_pending(current))
5674 goto out;
5675
5676 vcn += alloc_cnt;
5677 try_alloc_cnt -= alloc_cnt;
5678 }
5679 } else {
5680 err = -EIO;
5681 goto out;
5682 }
5683 }
5684
5685 /* allocate clusters outside of initialized_size */
5686 try_alloc_cnt = vcn_end - vcn;
5687 while (try_alloc_cnt > 0) {
5688 mutex_lock_nested(&ni->mrec_lock, NTFS_INODE_MUTEX_NORMAL);
5689 down_write(&ni->runlist.lock);
5690 err = ntfs_attr_map_cluster(ni, vcn, &lcn, &alloc_cnt,
5691 try_alloc_cnt, &balloc, false, false);
5692 up_write(&ni->runlist.lock);
5693 mutex_unlock(&ni->mrec_lock);
5694 if (err || signal_pending(current))
5695 goto out;
5696
5697 vcn += alloc_cnt;
5698 try_alloc_cnt -= alloc_cnt;
5699 cond_resched();
5700 }
5701
5702 if (NInoRunlistDirty(ni)) {
5703 mutex_lock_nested(&ni->mrec_lock, NTFS_INODE_MUTEX_NORMAL);
5704 down_write(&ni->runlist.lock);
5705 err = ntfs_attr_update_mapping_pairs(ni, 0);
5706 if (err)
5707 ntfs_error(ni->vol->sb, "Updating mapping pairs failed");
5708 else
5709 NInoClearRunlistDirty(ni);
5710 up_write(&ni->runlist.lock);
5711 mutex_unlock(&ni->mrec_lock);
5712 }
5713 return err;
5714 out_unmap:
5715 if (ctx)
5716 ntfs_attr_put_search_ctx(ctx);
5717 unmap_mft_record(ni);
5718 mutex_unlock(&ni->mrec_lock);
5719 out:
5720 return err >= 0 ? 0 : err;
5721 }
5722