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LU-11164 ldlm: pass env to lvbo methods
[fs/lustre-release.git] / lustre / lod / lod_object.c
1 /*
2  * GPL HEADER START
3  *
4  * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
5  *
6  * This program is free software; you can redistribute it and/or modify
7  * it under the terms of the GNU General Public License version 2 only,
8  * as published by the Free Software Foundation.
9  *
10  * This program is distributed in the hope that it will be useful,
11  * but WITHOUT ANY WARRANTY; without even the implied warranty of
12  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
13  * GNU General Public License version 2 for more details.  A copy is
14  * included in the COPYING file that accompanied this code.
15  *
16  * You should have received a copy of the GNU General Public License
17  * along with this program; if not, write to the Free Software
18  * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
19  *
20  * GPL HEADER END
21  */
22 /*
23  * Copyright  2009 Sun Microsystems, Inc. All rights reserved
24  * Use is subject to license terms.
25  *
26  * Copyright (c) 2012, 2017, Intel Corporation.
27  */
28 /*
29  * lustre/lod/lod_object.c
30  *
31  * This file contains implementations of methods for the OSD API
32  * for the Logical Object Device (LOD) layer, which provides a virtual
33  * local OSD object interface to the MDD layer, and abstracts the
34  * addressing of local (OSD) and remote (OSP) objects. The API is
35  * described in the file lustre/include/dt_object.h and in
36  * Documentation/osd-api.txt.
37  *
38  * Author: Alex Zhuravlev <alexey.zhuravlev@intel.com>
39  */
40
41 #define DEBUG_SUBSYSTEM S_MDS
42
43 #include <linux/random.h>
44
45 #include <obd.h>
46 #include <obd_class.h>
47 #include <obd_support.h>
48
49 #include <lustre_fid.h>
50 #include <lustre_linkea.h>
51 #include <lustre_lmv.h>
52 #include <uapi/linux/lustre/lustre_param.h>
53 #include <lustre_swab.h>
54 #include <uapi/linux/lustre/lustre_ver.h>
55 #include <lprocfs_status.h>
56 #include <md_object.h>
57
58 #include "lod_internal.h"
59
60 static const char dot[] = ".";
61 static const char dotdot[] = "..";
62
63 /**
64  * Implementation of dt_index_operations::dio_lookup
65  *
66  * Used with regular (non-striped) objects.
67  *
68  * \see dt_index_operations::dio_lookup() in the API description for details.
69  */
70 static int lod_lookup(const struct lu_env *env, struct dt_object *dt,
71                       struct dt_rec *rec, const struct dt_key *key)
72 {
73         struct dt_object *next = dt_object_child(dt);
74         return next->do_index_ops->dio_lookup(env, next, rec, key);
75 }
76
77 /**
78  * Implementation of dt_index_operations::dio_declare_insert.
79  *
80  * Used with regular (non-striped) objects.
81  *
82  * \see dt_index_operations::dio_declare_insert() in the API description
83  * for details.
84  */
85 static int lod_declare_insert(const struct lu_env *env, struct dt_object *dt,
86                               const struct dt_rec *rec,
87                               const struct dt_key *key, struct thandle *th)
88 {
89         return lod_sub_declare_insert(env, dt_object_child(dt), rec, key, th);
90 }
91
92 /**
93  * Implementation of dt_index_operations::dio_insert.
94  *
95  * Used with regular (non-striped) objects
96  *
97  * \see dt_index_operations::dio_insert() in the API description for details.
98  */
99 static int lod_insert(const struct lu_env *env, struct dt_object *dt,
100                       const struct dt_rec *rec, const struct dt_key *key,
101                       struct thandle *th, int ign)
102 {
103         return lod_sub_insert(env, dt_object_child(dt), rec, key, th, ign);
104 }
105
106 /**
107  * Implementation of dt_index_operations::dio_declare_delete.
108  *
109  * Used with regular (non-striped) objects.
110  *
111  * \see dt_index_operations::dio_declare_delete() in the API description
112  * for details.
113  */
114 static int lod_declare_delete(const struct lu_env *env, struct dt_object *dt,
115                               const struct dt_key *key, struct thandle *th)
116 {
117         return lod_sub_declare_delete(env, dt_object_child(dt), key, th);
118 }
119
120 /**
121  * Implementation of dt_index_operations::dio_delete.
122  *
123  * Used with regular (non-striped) objects.
124  *
125  * \see dt_index_operations::dio_delete() in the API description for details.
126  */
127 static int lod_delete(const struct lu_env *env, struct dt_object *dt,
128                       const struct dt_key *key, struct thandle *th)
129 {
130         return lod_sub_delete(env, dt_object_child(dt), key, th);
131 }
132
133 /**
134  * Implementation of dt_it_ops::init.
135  *
136  * Used with regular (non-striped) objects.
137  *
138  * \see dt_it_ops::init() in the API description for details.
139  */
140 static struct dt_it *lod_it_init(const struct lu_env *env,
141                                  struct dt_object *dt, __u32 attr)
142 {
143         struct dt_object        *next = dt_object_child(dt);
144         struct lod_it           *it = &lod_env_info(env)->lti_it;
145         struct dt_it            *it_next;
146
147         it_next = next->do_index_ops->dio_it.init(env, next, attr);
148         if (IS_ERR(it_next))
149                 return it_next;
150
151         /* currently we do not use more than one iterator per thread
152          * so we store it in thread info. if at some point we need
153          * more active iterators in a single thread, we can allocate
154          * additional ones */
155         LASSERT(it->lit_obj == NULL);
156
157         it->lit_it = it_next;
158         it->lit_obj = next;
159
160         return (struct dt_it *)it;
161 }
162
163 #define LOD_CHECK_IT(env, it)                                   \
164 do {                                                            \
165         LASSERT((it)->lit_obj != NULL);                         \
166         LASSERT((it)->lit_it != NULL);                          \
167 } while (0)
168
169 /**
170  * Implementation of dt_index_operations::dio_it.fini.
171  *
172  * Used with regular (non-striped) objects.
173  *
174  * \see dt_index_operations::dio_it.fini() in the API description for details.
175  */
176 static void lod_it_fini(const struct lu_env *env, struct dt_it *di)
177 {
178         struct lod_it *it = (struct lod_it *)di;
179
180         LOD_CHECK_IT(env, it);
181         it->lit_obj->do_index_ops->dio_it.fini(env, it->lit_it);
182
183         /* the iterator not in use any more */
184         it->lit_obj = NULL;
185         it->lit_it = NULL;
186 }
187
188 /**
189  * Implementation of dt_it_ops::get.
190  *
191  * Used with regular (non-striped) objects.
192  *
193  * \see dt_it_ops::get() in the API description for details.
194  */
195 static int lod_it_get(const struct lu_env *env, struct dt_it *di,
196                       const struct dt_key *key)
197 {
198         const struct lod_it *it = (const struct lod_it *)di;
199
200         LOD_CHECK_IT(env, it);
201         return it->lit_obj->do_index_ops->dio_it.get(env, it->lit_it, key);
202 }
203
204 /**
205  * Implementation of dt_it_ops::put.
206  *
207  * Used with regular (non-striped) objects.
208  *
209  * \see dt_it_ops::put() in the API description for details.
210  */
211 static void lod_it_put(const struct lu_env *env, struct dt_it *di)
212 {
213         struct lod_it *it = (struct lod_it *)di;
214
215         LOD_CHECK_IT(env, it);
216         return it->lit_obj->do_index_ops->dio_it.put(env, it->lit_it);
217 }
218
219 /**
220  * Implementation of dt_it_ops::next.
221  *
222  * Used with regular (non-striped) objects
223  *
224  * \see dt_it_ops::next() in the API description for details.
225  */
226 static int lod_it_next(const struct lu_env *env, struct dt_it *di)
227 {
228         struct lod_it *it = (struct lod_it *)di;
229
230         LOD_CHECK_IT(env, it);
231         return it->lit_obj->do_index_ops->dio_it.next(env, it->lit_it);
232 }
233
234 /**
235  * Implementation of dt_it_ops::key.
236  *
237  * Used with regular (non-striped) objects.
238  *
239  * \see dt_it_ops::key() in the API description for details.
240  */
241 static struct dt_key *lod_it_key(const struct lu_env *env,
242                                  const struct dt_it *di)
243 {
244         const struct lod_it *it = (const struct lod_it *)di;
245
246         LOD_CHECK_IT(env, it);
247         return it->lit_obj->do_index_ops->dio_it.key(env, it->lit_it);
248 }
249
250 /**
251  * Implementation of dt_it_ops::key_size.
252  *
253  * Used with regular (non-striped) objects.
254  *
255  * \see dt_it_ops::key_size() in the API description for details.
256  */
257 static int lod_it_key_size(const struct lu_env *env, const struct dt_it *di)
258 {
259         struct lod_it *it = (struct lod_it *)di;
260
261         LOD_CHECK_IT(env, it);
262         return it->lit_obj->do_index_ops->dio_it.key_size(env, it->lit_it);
263 }
264
265 /**
266  * Implementation of dt_it_ops::rec.
267  *
268  * Used with regular (non-striped) objects.
269  *
270  * \see dt_it_ops::rec() in the API description for details.
271  */
272 static int lod_it_rec(const struct lu_env *env, const struct dt_it *di,
273                       struct dt_rec *rec, __u32 attr)
274 {
275         const struct lod_it *it = (const struct lod_it *)di;
276
277         LOD_CHECK_IT(env, it);
278         return it->lit_obj->do_index_ops->dio_it.rec(env, it->lit_it, rec,
279                                                      attr);
280 }
281
282 /**
283  * Implementation of dt_it_ops::rec_size.
284  *
285  * Used with regular (non-striped) objects.
286  *
287  * \see dt_it_ops::rec_size() in the API description for details.
288  */
289 static int lod_it_rec_size(const struct lu_env *env, const struct dt_it *di,
290                            __u32 attr)
291 {
292         const struct lod_it *it = (const struct lod_it *)di;
293
294         LOD_CHECK_IT(env, it);
295         return it->lit_obj->do_index_ops->dio_it.rec_size(env, it->lit_it,
296                                                           attr);
297 }
298
299 /**
300  * Implementation of dt_it_ops::store.
301  *
302  * Used with regular (non-striped) objects.
303  *
304  * \see dt_it_ops::store() in the API description for details.
305  */
306 static __u64 lod_it_store(const struct lu_env *env, const struct dt_it *di)
307 {
308         const struct lod_it *it = (const struct lod_it *)di;
309
310         LOD_CHECK_IT(env, it);
311         return it->lit_obj->do_index_ops->dio_it.store(env, it->lit_it);
312 }
313
314 /**
315  * Implementation of dt_it_ops::load.
316  *
317  * Used with regular (non-striped) objects.
318  *
319  * \see dt_it_ops::load() in the API description for details.
320  */
321 static int lod_it_load(const struct lu_env *env, const struct dt_it *di,
322                        __u64 hash)
323 {
324         const struct lod_it *it = (const struct lod_it *)di;
325
326         LOD_CHECK_IT(env, it);
327         return it->lit_obj->do_index_ops->dio_it.load(env, it->lit_it, hash);
328 }
329
330 /**
331  * Implementation of dt_it_ops::key_rec.
332  *
333  * Used with regular (non-striped) objects.
334  *
335  * \see dt_it_ops::rec() in the API description for details.
336  */
337 static int lod_it_key_rec(const struct lu_env *env, const struct dt_it *di,
338                           void *key_rec)
339 {
340         const struct lod_it *it = (const struct lod_it *)di;
341
342         LOD_CHECK_IT(env, it);
343         return it->lit_obj->do_index_ops->dio_it.key_rec(env, it->lit_it,
344                                                          key_rec);
345 }
346
347 static struct dt_index_operations lod_index_ops = {
348         .dio_lookup             = lod_lookup,
349         .dio_declare_insert     = lod_declare_insert,
350         .dio_insert             = lod_insert,
351         .dio_declare_delete     = lod_declare_delete,
352         .dio_delete             = lod_delete,
353         .dio_it = {
354                 .init           = lod_it_init,
355                 .fini           = lod_it_fini,
356                 .get            = lod_it_get,
357                 .put            = lod_it_put,
358                 .next           = lod_it_next,
359                 .key            = lod_it_key,
360                 .key_size       = lod_it_key_size,
361                 .rec            = lod_it_rec,
362                 .rec_size       = lod_it_rec_size,
363                 .store          = lod_it_store,
364                 .load           = lod_it_load,
365                 .key_rec        = lod_it_key_rec,
366         }
367 };
368
369 /**
370  * Implementation of dt_it_ops::init.
371  *
372  * Used with striped objects. Internally just initializes the iterator
373  * on the first stripe.
374  *
375  * \see dt_it_ops::init() in the API description for details.
376  */
377 static struct dt_it *lod_striped_it_init(const struct lu_env *env,
378                                          struct dt_object *dt, __u32 attr)
379 {
380         struct lod_object       *lo = lod_dt_obj(dt);
381         struct dt_object        *next;
382         struct lod_it           *it = &lod_env_info(env)->lti_it;
383         struct dt_it            *it_next;
384         ENTRY;
385
386         LASSERT(lo->ldo_dir_stripe_count > 0);
387         next = lo->ldo_stripe[0];
388         LASSERT(next != NULL);
389         LASSERT(next->do_index_ops != NULL);
390
391         it_next = next->do_index_ops->dio_it.init(env, next, attr);
392         if (IS_ERR(it_next))
393                 return it_next;
394
395         /* currently we do not use more than one iterator per thread
396          * so we store it in thread info. if at some point we need
397          * more active iterators in a single thread, we can allocate
398          * additional ones */
399         LASSERT(it->lit_obj == NULL);
400
401         it->lit_stripe_index = 0;
402         it->lit_attr = attr;
403         it->lit_it = it_next;
404         it->lit_obj = dt;
405
406         return (struct dt_it *)it;
407 }
408
409 #define LOD_CHECK_STRIPED_IT(env, it, lo)                               \
410 do {                                                                    \
411         LASSERT((it)->lit_obj != NULL);                                 \
412         LASSERT((it)->lit_it != NULL);                                  \
413         LASSERT((lo)->ldo_dir_stripe_count > 0);                        \
414         LASSERT((it)->lit_stripe_index < (lo)->ldo_dir_stripe_count);   \
415 } while (0)
416
417 /**
418  * Implementation of dt_it_ops::fini.
419  *
420  * Used with striped objects.
421  *
422  * \see dt_it_ops::fini() in the API description for details.
423  */
424 static void lod_striped_it_fini(const struct lu_env *env, struct dt_it *di)
425 {
426         struct lod_it           *it = (struct lod_it *)di;
427         struct lod_object       *lo = lod_dt_obj(it->lit_obj);
428         struct dt_object        *next;
429
430         /* If lit_it == NULL, then it means the sub_it has been finished,
431          * which only happens in failure cases, see lod_striped_it_next() */
432         if (it->lit_it != NULL) {
433                 LOD_CHECK_STRIPED_IT(env, it, lo);
434
435                 next = lo->ldo_stripe[it->lit_stripe_index];
436                 LASSERT(next != NULL);
437                 LASSERT(next->do_index_ops != NULL);
438
439                 next->do_index_ops->dio_it.fini(env, it->lit_it);
440         }
441
442         /* the iterator not in use any more */
443         it->lit_obj = NULL;
444         it->lit_it = NULL;
445         it->lit_stripe_index = 0;
446 }
447
448 /**
449  * Implementation of dt_it_ops::get.
450  *
451  * Right now it's not used widely, only to reset the iterator to the
452  * initial position. It should be possible to implement a full version
453  * which chooses a correct stripe to be able to position with any key.
454  *
455  * \see dt_it_ops::get() in the API description for details.
456  */
457 static int lod_striped_it_get(const struct lu_env *env, struct dt_it *di,
458                               const struct dt_key *key)
459 {
460         const struct lod_it     *it = (const struct lod_it *)di;
461         struct lod_object       *lo = lod_dt_obj(it->lit_obj);
462         struct dt_object        *next;
463         ENTRY;
464
465         LOD_CHECK_STRIPED_IT(env, it, lo);
466
467         next = lo->ldo_stripe[it->lit_stripe_index];
468         LASSERT(next != NULL);
469         LASSERT(next->do_index_ops != NULL);
470
471         return next->do_index_ops->dio_it.get(env, it->lit_it, key);
472 }
473
474 /**
475  * Implementation of dt_it_ops::put.
476  *
477  * Used with striped objects.
478  *
479  * \see dt_it_ops::put() in the API description for details.
480  */
481 static void lod_striped_it_put(const struct lu_env *env, struct dt_it *di)
482 {
483         struct lod_it           *it = (struct lod_it *)di;
484         struct lod_object       *lo = lod_dt_obj(it->lit_obj);
485         struct dt_object        *next;
486
487         LOD_CHECK_STRIPED_IT(env, it, lo);
488
489         next = lo->ldo_stripe[it->lit_stripe_index];
490         LASSERT(next != NULL);
491         LASSERT(next->do_index_ops != NULL);
492
493         return next->do_index_ops->dio_it.put(env, it->lit_it);
494 }
495
496 /**
497  * Implementation of dt_it_ops::next.
498  *
499  * Used with striped objects. When the end of the current stripe is
500  * reached, the method takes the next stripe's iterator.
501  *
502  * \see dt_it_ops::next() in the API description for details.
503  */
504 static int lod_striped_it_next(const struct lu_env *env, struct dt_it *di)
505 {
506         struct lod_it           *it = (struct lod_it *)di;
507         struct lod_object       *lo = lod_dt_obj(it->lit_obj);
508         struct dt_object        *next;
509         struct dt_it            *it_next;
510         int                     rc;
511         ENTRY;
512
513         LOD_CHECK_STRIPED_IT(env, it, lo);
514
515         next = lo->ldo_stripe[it->lit_stripe_index];
516         LASSERT(next != NULL);
517         LASSERT(next->do_index_ops != NULL);
518 again:
519         rc = next->do_index_ops->dio_it.next(env, it->lit_it);
520         if (rc < 0)
521                 RETURN(rc);
522
523         if (rc == 0 && it->lit_stripe_index == 0)
524                 RETURN(rc);
525
526         if (rc == 0 && it->lit_stripe_index > 0) {
527                 struct lu_dirent *ent;
528
529                 ent = (struct lu_dirent *)lod_env_info(env)->lti_key;
530
531                 rc = next->do_index_ops->dio_it.rec(env, it->lit_it,
532                                                     (struct dt_rec *)ent,
533                                                     it->lit_attr);
534                 if (rc != 0)
535                         RETURN(rc);
536
537                 /* skip . and .. for slave stripe */
538                 if ((strncmp(ent->lde_name, ".",
539                              le16_to_cpu(ent->lde_namelen)) == 0 &&
540                      le16_to_cpu(ent->lde_namelen) == 1) ||
541                     (strncmp(ent->lde_name, "..",
542                              le16_to_cpu(ent->lde_namelen)) == 0 &&
543                      le16_to_cpu(ent->lde_namelen) == 2))
544                         goto again;
545
546                 RETURN(rc);
547         }
548
549         /* go to next stripe */
550         if (it->lit_stripe_index + 1 >= lo->ldo_dir_stripe_count)
551                 RETURN(1);
552
553         it->lit_stripe_index++;
554
555         next->do_index_ops->dio_it.put(env, it->lit_it);
556         next->do_index_ops->dio_it.fini(env, it->lit_it);
557         it->lit_it = NULL;
558
559         next = lo->ldo_stripe[it->lit_stripe_index];
560         LASSERT(next != NULL);
561         rc = next->do_ops->do_index_try(env, next, &dt_directory_features);
562         if (rc != 0)
563                 RETURN(rc);
564
565         LASSERT(next->do_index_ops != NULL);
566
567         it_next = next->do_index_ops->dio_it.init(env, next, it->lit_attr);
568         if (!IS_ERR(it_next)) {
569                 it->lit_it = it_next;
570                 goto again;
571         } else {
572                 rc = PTR_ERR(it_next);
573         }
574
575         RETURN(rc);
576 }
577
578 /**
579  * Implementation of dt_it_ops::key.
580  *
581  * Used with striped objects.
582  *
583  * \see dt_it_ops::key() in the API description for details.
584  */
585 static struct dt_key *lod_striped_it_key(const struct lu_env *env,
586                                          const struct dt_it *di)
587 {
588         const struct lod_it     *it = (const struct lod_it *)di;
589         struct lod_object       *lo = lod_dt_obj(it->lit_obj);
590         struct dt_object        *next;
591
592         LOD_CHECK_STRIPED_IT(env, it, lo);
593
594         next = lo->ldo_stripe[it->lit_stripe_index];
595         LASSERT(next != NULL);
596         LASSERT(next->do_index_ops != NULL);
597
598         return next->do_index_ops->dio_it.key(env, it->lit_it);
599 }
600
601 /**
602  * Implementation of dt_it_ops::key_size.
603  *
604  * Used with striped objects.
605  *
606  * \see dt_it_ops::size() in the API description for details.
607  */
608 static int lod_striped_it_key_size(const struct lu_env *env,
609                                    const struct dt_it *di)
610 {
611         struct lod_it           *it = (struct lod_it *)di;
612         struct lod_object       *lo = lod_dt_obj(it->lit_obj);
613         struct dt_object        *next;
614
615         LOD_CHECK_STRIPED_IT(env, it, lo);
616
617         next = lo->ldo_stripe[it->lit_stripe_index];
618         LASSERT(next != NULL);
619         LASSERT(next->do_index_ops != NULL);
620
621         return next->do_index_ops->dio_it.key_size(env, it->lit_it);
622 }
623
624 /**
625  * Implementation of dt_it_ops::rec.
626  *
627  * Used with striped objects.
628  *
629  * \see dt_it_ops::rec() in the API description for details.
630  */
631 static int lod_striped_it_rec(const struct lu_env *env, const struct dt_it *di,
632                               struct dt_rec *rec, __u32 attr)
633 {
634         const struct lod_it     *it = (const struct lod_it *)di;
635         struct lod_object       *lo = lod_dt_obj(it->lit_obj);
636         struct dt_object        *next;
637
638         LOD_CHECK_STRIPED_IT(env, it, lo);
639
640         next = lo->ldo_stripe[it->lit_stripe_index];
641         LASSERT(next != NULL);
642         LASSERT(next->do_index_ops != NULL);
643
644         return next->do_index_ops->dio_it.rec(env, it->lit_it, rec, attr);
645 }
646
647 /**
648  * Implementation of dt_it_ops::rec_size.
649  *
650  * Used with striped objects.
651  *
652  * \see dt_it_ops::rec_size() in the API description for details.
653  */
654 static int lod_striped_it_rec_size(const struct lu_env *env,
655                                    const struct dt_it *di, __u32 attr)
656 {
657         struct lod_it           *it = (struct lod_it *)di;
658         struct lod_object       *lo = lod_dt_obj(it->lit_obj);
659         struct dt_object        *next;
660
661         LOD_CHECK_STRIPED_IT(env, it, lo);
662
663         next = lo->ldo_stripe[it->lit_stripe_index];
664         LASSERT(next != NULL);
665         LASSERT(next->do_index_ops != NULL);
666
667         return next->do_index_ops->dio_it.rec_size(env, it->lit_it, attr);
668 }
669
670 /**
671  * Implementation of dt_it_ops::store.
672  *
673  * Used with striped objects.
674  *
675  * \see dt_it_ops::store() in the API description for details.
676  */
677 static __u64 lod_striped_it_store(const struct lu_env *env,
678                                   const struct dt_it *di)
679 {
680         const struct lod_it     *it = (const struct lod_it *)di;
681         struct lod_object       *lo = lod_dt_obj(it->lit_obj);
682         struct dt_object        *next;
683
684         LOD_CHECK_STRIPED_IT(env, it, lo);
685
686         next = lo->ldo_stripe[it->lit_stripe_index];
687         LASSERT(next != NULL);
688         LASSERT(next->do_index_ops != NULL);
689
690         return next->do_index_ops->dio_it.store(env, it->lit_it);
691 }
692
693 /**
694  * Implementation of dt_it_ops::load.
695  *
696  * Used with striped objects.
697  *
698  * \see dt_it_ops::load() in the API description for details.
699  */
700 static int lod_striped_it_load(const struct lu_env *env,
701                                const struct dt_it *di, __u64 hash)
702 {
703         const struct lod_it     *it = (const struct lod_it *)di;
704         struct lod_object       *lo = lod_dt_obj(it->lit_obj);
705         struct dt_object        *next;
706
707         LOD_CHECK_STRIPED_IT(env, it, lo);
708
709         next = lo->ldo_stripe[it->lit_stripe_index];
710         LASSERT(next != NULL);
711         LASSERT(next->do_index_ops != NULL);
712
713         return next->do_index_ops->dio_it.load(env, it->lit_it, hash);
714 }
715
716 static struct dt_index_operations lod_striped_index_ops = {
717         .dio_lookup             = lod_lookup,
718         .dio_declare_insert     = lod_declare_insert,
719         .dio_insert             = lod_insert,
720         .dio_declare_delete     = lod_declare_delete,
721         .dio_delete             = lod_delete,
722         .dio_it = {
723                 .init           = lod_striped_it_init,
724                 .fini           = lod_striped_it_fini,
725                 .get            = lod_striped_it_get,
726                 .put            = lod_striped_it_put,
727                 .next           = lod_striped_it_next,
728                 .key            = lod_striped_it_key,
729                 .key_size       = lod_striped_it_key_size,
730                 .rec            = lod_striped_it_rec,
731                 .rec_size       = lod_striped_it_rec_size,
732                 .store          = lod_striped_it_store,
733                 .load           = lod_striped_it_load,
734         }
735 };
736
737 /**
738  * Append the FID for each shard of the striped directory after the
739  * given LMV EA header.
740  *
741  * To simplify striped directory and the consistency verification,
742  * we only store the LMV EA header on disk, for both master object
743  * and slave objects. When someone wants to know the whole LMV EA,
744  * such as client readdir(), we can build the entrie LMV EA on the
745  * MDT side (in RAM) via iterating the sub-directory entries that
746  * are contained in the master object of the stripe directory.
747  *
748  * For the master object of the striped directroy, the valid name
749  * for each shard is composed of the ${shard_FID}:${shard_idx}.
750  *
751  * There may be holes in the LMV EA if some shards' name entries
752  * are corrupted or lost.
753  *
754  * \param[in] env       pointer to the thread context
755  * \param[in] lo        pointer to the master object of the striped directory
756  * \param[in] buf       pointer to the lu_buf which will hold the LMV EA
757  * \param[in] resize    whether re-allocate the buffer if it is not big enough
758  *
759  * \retval              positive size of the LMV EA
760  * \retval              0 for nothing to be loaded
761  * \retval              negative error number on failure
762  */
763 int lod_load_lmv_shards(const struct lu_env *env, struct lod_object *lo,
764                         struct lu_buf *buf, bool resize)
765 {
766         struct lu_dirent        *ent    =
767                         (struct lu_dirent *)lod_env_info(env)->lti_key;
768         struct lod_device       *lod    = lu2lod_dev(lo->ldo_obj.do_lu.lo_dev);
769         struct dt_object        *obj    = dt_object_child(&lo->ldo_obj);
770         struct lmv_mds_md_v1    *lmv1   = buf->lb_buf;
771         struct dt_it            *it;
772         const struct dt_it_ops  *iops;
773         __u32                    stripes;
774         __u32                    magic  = le32_to_cpu(lmv1->lmv_magic);
775         size_t                   lmv1_size;
776         int                      rc;
777         ENTRY;
778
779         if (magic != LMV_MAGIC_V1)
780                 RETURN(0);
781
782         stripes = le32_to_cpu(lmv1->lmv_stripe_count);
783         if (stripes < 1)
784                 RETURN(0);
785
786         rc = lmv_mds_md_size(stripes, magic);
787         if (rc < 0)
788                 RETURN(rc);
789         lmv1_size = rc;
790         if (buf->lb_len < lmv1_size) {
791                 struct lu_buf tbuf;
792
793                 if (!resize)
794                         RETURN(-ERANGE);
795
796                 tbuf = *buf;
797                 buf->lb_buf = NULL;
798                 buf->lb_len = 0;
799                 lu_buf_alloc(buf, lmv1_size);
800                 lmv1 = buf->lb_buf;
801                 if (lmv1 == NULL)
802                         RETURN(-ENOMEM);
803
804                 memcpy(buf->lb_buf, tbuf.lb_buf, tbuf.lb_len);
805         }
806
807         if (unlikely(!dt_try_as_dir(env, obj)))
808                 RETURN(-ENOTDIR);
809
810         memset(&lmv1->lmv_stripe_fids[0], 0, stripes * sizeof(struct lu_fid));
811         iops = &obj->do_index_ops->dio_it;
812         it = iops->init(env, obj, LUDA_64BITHASH);
813         if (IS_ERR(it))
814                 RETURN(PTR_ERR(it));
815
816         rc = iops->load(env, it, 0);
817         if (rc == 0)
818                 rc = iops->next(env, it);
819         else if (rc > 0)
820                 rc = 0;
821
822         while (rc == 0) {
823                 char             name[FID_LEN + 2] = "";
824                 struct lu_fid    fid;
825                 __u32            index;
826                 int              len;
827
828                 rc = iops->rec(env, it, (struct dt_rec *)ent, LUDA_64BITHASH);
829                 if (rc != 0)
830                         break;
831
832                 rc = -EIO;
833
834                 fid_le_to_cpu(&fid, &ent->lde_fid);
835                 ent->lde_namelen = le16_to_cpu(ent->lde_namelen);
836                 if (ent->lde_name[0] == '.') {
837                         if (ent->lde_namelen == 1)
838                                 goto next;
839
840                         if (ent->lde_namelen == 2 && ent->lde_name[1] == '.')
841                                 goto next;
842                 }
843
844                 len = snprintf(name, sizeof(name),
845                                DFID":", PFID(&ent->lde_fid));
846                 /* The ent->lde_name is composed of ${FID}:${index} */
847                 if (ent->lde_namelen < len + 1 ||
848                     memcmp(ent->lde_name, name, len) != 0) {
849                         CDEBUG(lod->lod_lmv_failout ? D_ERROR : D_INFO,
850                                "%s: invalid shard name %.*s with the FID "DFID
851                                " for the striped directory "DFID", %s\n",
852                                lod2obd(lod)->obd_name, ent->lde_namelen,
853                                ent->lde_name, PFID(&fid),
854                                PFID(lu_object_fid(&obj->do_lu)),
855                                lod->lod_lmv_failout ? "failout" : "skip");
856
857                         if (lod->lod_lmv_failout)
858                                 break;
859
860                         goto next;
861                 }
862
863                 index = 0;
864                 do {
865                         if (ent->lde_name[len] < '0' ||
866                             ent->lde_name[len] > '9') {
867                                 CDEBUG(lod->lod_lmv_failout ? D_ERROR : D_INFO,
868                                        "%s: invalid shard name %.*s with the "
869                                        "FID "DFID" for the striped directory "
870                                        DFID", %s\n",
871                                        lod2obd(lod)->obd_name, ent->lde_namelen,
872                                        ent->lde_name, PFID(&fid),
873                                        PFID(lu_object_fid(&obj->do_lu)),
874                                        lod->lod_lmv_failout ?
875                                        "failout" : "skip");
876
877                                 if (lod->lod_lmv_failout)
878                                         break;
879
880                                 goto next;
881                         }
882
883                         index = index * 10 + ent->lde_name[len++] - '0';
884                 } while (len < ent->lde_namelen);
885
886                 if (len == ent->lde_namelen) {
887                         /* Out of LMV EA range. */
888                         if (index >= stripes) {
889                                 CERROR("%s: the shard %.*s for the striped "
890                                        "directory "DFID" is out of the known "
891                                        "LMV EA range [0 - %u], failout\n",
892                                        lod2obd(lod)->obd_name, ent->lde_namelen,
893                                        ent->lde_name,
894                                        PFID(lu_object_fid(&obj->do_lu)),
895                                        stripes - 1);
896
897                                 break;
898                         }
899
900                         /* The slot has been occupied. */
901                         if (!fid_is_zero(&lmv1->lmv_stripe_fids[index])) {
902                                 struct lu_fid fid0;
903
904                                 fid_le_to_cpu(&fid0,
905                                         &lmv1->lmv_stripe_fids[index]);
906                                 CERROR("%s: both the shard "DFID" and "DFID
907                                        " for the striped directory "DFID
908                                        " claim the same LMV EA slot at the "
909                                        "index %d, failout\n",
910                                        lod2obd(lod)->obd_name,
911                                        PFID(&fid0), PFID(&fid),
912                                        PFID(lu_object_fid(&obj->do_lu)), index);
913
914                                 break;
915                         }
916
917                         /* stored as LE mode */
918                         lmv1->lmv_stripe_fids[index] = ent->lde_fid;
919
920 next:
921                         rc = iops->next(env, it);
922                 }
923         }
924
925         iops->put(env, it);
926         iops->fini(env, it);
927
928         RETURN(rc > 0 ? lmv_mds_md_size(stripes, magic) : rc);
929 }
930
931 /**
932  * Implementation of dt_object_operations::do_index_try.
933  *
934  * \see dt_object_operations::do_index_try() in the API description for details.
935  */
936 static int lod_index_try(const struct lu_env *env, struct dt_object *dt,
937                          const struct dt_index_features *feat)
938 {
939         struct lod_object       *lo = lod_dt_obj(dt);
940         struct dt_object        *next = dt_object_child(dt);
941         int                     rc;
942         ENTRY;
943
944         LASSERT(next->do_ops);
945         LASSERT(next->do_ops->do_index_try);
946
947         rc = lod_striping_load(env, lo);
948         if (rc != 0)
949                 RETURN(rc);
950
951         rc = next->do_ops->do_index_try(env, next, feat);
952         if (rc != 0)
953                 RETURN(rc);
954
955         if (lo->ldo_dir_stripe_count > 0) {
956                 int i;
957
958                 for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
959                         if (dt_object_exists(lo->ldo_stripe[i]) == 0)
960                                 continue;
961                         rc = lo->ldo_stripe[i]->do_ops->do_index_try(env,
962                                                 lo->ldo_stripe[i], feat);
963                         if (rc != 0)
964                                 RETURN(rc);
965                 }
966                 dt->do_index_ops = &lod_striped_index_ops;
967         } else {
968                 dt->do_index_ops = &lod_index_ops;
969         }
970
971         RETURN(rc);
972 }
973
974 /**
975  * Implementation of dt_object_operations::do_read_lock.
976  *
977  * \see dt_object_operations::do_read_lock() in the API description for details.
978  */
979 static void lod_read_lock(const struct lu_env *env, struct dt_object *dt,
980                           unsigned role)
981 {
982         dt_read_lock(env, dt_object_child(dt), role);
983 }
984
985 /**
986  * Implementation of dt_object_operations::do_write_lock.
987  *
988  * \see dt_object_operations::do_write_lock() in the API description for
989  * details.
990  */
991 static void lod_write_lock(const struct lu_env *env, struct dt_object *dt,
992                            unsigned role)
993 {
994         dt_write_lock(env, dt_object_child(dt), role);
995 }
996
997 /**
998  * Implementation of dt_object_operations::do_read_unlock.
999  *
1000  * \see dt_object_operations::do_read_unlock() in the API description for
1001  * details.
1002  */
1003 static void lod_read_unlock(const struct lu_env *env, struct dt_object *dt)
1004 {
1005         dt_read_unlock(env, dt_object_child(dt));
1006 }
1007
1008 /**
1009  * Implementation of dt_object_operations::do_write_unlock.
1010  *
1011  * \see dt_object_operations::do_write_unlock() in the API description for
1012  * details.
1013  */
1014 static void lod_write_unlock(const struct lu_env *env, struct dt_object *dt)
1015 {
1016         dt_write_unlock(env, dt_object_child(dt));
1017 }
1018
1019 /**
1020  * Implementation of dt_object_operations::do_write_locked.
1021  *
1022  * \see dt_object_operations::do_write_locked() in the API description for
1023  * details.
1024  */
1025 static int lod_write_locked(const struct lu_env *env, struct dt_object *dt)
1026 {
1027         return dt_write_locked(env, dt_object_child(dt));
1028 }
1029
1030 /**
1031  * Implementation of dt_object_operations::do_attr_get.
1032  *
1033  * \see dt_object_operations::do_attr_get() in the API description for details.
1034  */
1035 static int lod_attr_get(const struct lu_env *env,
1036                         struct dt_object *dt,
1037                         struct lu_attr *attr)
1038 {
1039         /* Note: for striped directory, client will merge attributes
1040          * from all of the sub-stripes see lmv_merge_attr(), and there
1041          * no MDD logic depend on directory nlink/size/time, so we can
1042          * always use master inode nlink and size for now. */
1043         return dt_attr_get(env, dt_object_child(dt), attr);
1044 }
1045
1046 static inline void lod_adjust_stripe_info(struct lod_layout_component *comp,
1047                                           struct lov_desc *desc)
1048 {
1049         if (comp->llc_pattern != LOV_PATTERN_MDT) {
1050                 if (!comp->llc_stripe_count)
1051                         comp->llc_stripe_count =
1052                                 desc->ld_default_stripe_count;
1053         }
1054         if (comp->llc_stripe_size <= 0)
1055                 comp->llc_stripe_size = desc->ld_default_stripe_size;
1056 }
1057
1058 int lod_obj_for_each_stripe(const struct lu_env *env, struct lod_object *lo,
1059                             struct thandle *th,
1060                             struct lod_obj_stripe_cb_data *data)
1061 {
1062         struct lod_layout_component *lod_comp;
1063         int i, j, rc;
1064         ENTRY;
1065
1066         LASSERT(lo->ldo_comp_cnt != 0 && lo->ldo_comp_entries != NULL);
1067         for (i = 0; i < lo->ldo_comp_cnt; i++) {
1068                 lod_comp = &lo->ldo_comp_entries[i];
1069
1070                 if (lod_comp->llc_stripe == NULL)
1071                         continue;
1072
1073                 /* has stripe but not inited yet, this component has been
1074                  * declared to be created, but hasn't created yet.
1075                  */
1076                 if (!lod_comp_inited(lod_comp))
1077                         continue;
1078
1079                 if (data->locd_comp_skip_cb &&
1080                     data->locd_comp_skip_cb(env, lo, i, data))
1081                         continue;
1082
1083                 if (data->locd_comp_cb) {
1084                         rc = data->locd_comp_cb(env, lo, i, data);
1085                         if (rc)
1086                                 RETURN(rc);
1087                 }
1088
1089                 /* could used just to do sth about component, not each
1090                  * stripes
1091                  */
1092                 if (!data->locd_stripe_cb)
1093                         continue;
1094
1095                 LASSERT(lod_comp->llc_stripe_count > 0);
1096                 for (j = 0; j < lod_comp->llc_stripe_count; j++) {
1097                         struct dt_object *dt = lod_comp->llc_stripe[j];
1098
1099                         if (dt == NULL)
1100                                 continue;
1101                         rc = data->locd_stripe_cb(env, lo, dt, th, i, j, data);
1102                         if (rc != 0)
1103                                 RETURN(rc);
1104                 }
1105         }
1106         RETURN(0);
1107 }
1108
1109 static bool lod_obj_attr_set_comp_skip_cb(const struct lu_env *env,
1110                 struct lod_object *lo, int comp_idx,
1111                 struct lod_obj_stripe_cb_data *data)
1112 {
1113         struct lod_layout_component *lod_comp = &lo->ldo_comp_entries[comp_idx];
1114         bool skipped = false;
1115
1116         if (!(data->locd_attr->la_valid & LA_LAYOUT_VERSION))
1117                 return skipped;
1118
1119         switch (lo->ldo_flr_state) {
1120         case LCM_FL_WRITE_PENDING: {
1121                 int i;
1122
1123                 /* skip stale components */
1124                 if (lod_comp->llc_flags & LCME_FL_STALE) {
1125                         skipped = true;
1126                         break;
1127                 }
1128
1129                 /* skip valid and overlapping components, therefore any
1130                  * attempts to write overlapped components will never succeed
1131                  * because client will get EINPROGRESS. */
1132                 for (i = 0; i < lo->ldo_comp_cnt; i++) {
1133                         if (i == comp_idx)
1134                                 continue;
1135
1136                         if (lo->ldo_comp_entries[i].llc_flags & LCME_FL_STALE)
1137                                 continue;
1138
1139                         if (lu_extent_is_overlapped(&lod_comp->llc_extent,
1140                                         &lo->ldo_comp_entries[i].llc_extent)) {
1141                                 skipped = true;
1142                                 break;
1143                         }
1144                 }
1145                 break;
1146         }
1147         default:
1148                 LASSERTF(0, "impossible: %d\n", lo->ldo_flr_state);
1149         case LCM_FL_SYNC_PENDING:
1150                 break;
1151         }
1152
1153         CDEBUG(D_LAYOUT, DFID": %s to set component %x to version: %u\n",
1154                PFID(lu_object_fid(&lo->ldo_obj.do_lu)),
1155                skipped ? "skipped" : "chose", lod_comp->llc_id,
1156                data->locd_attr->la_layout_version);
1157
1158         return skipped;
1159 }
1160
1161 static inline int
1162 lod_obj_stripe_attr_set_cb(const struct lu_env *env, struct lod_object *lo,
1163                            struct dt_object *dt, struct thandle *th,
1164                            int comp_idx, int stripe_idx,
1165                            struct lod_obj_stripe_cb_data *data)
1166 {
1167         if (data->locd_declare)
1168                 return lod_sub_declare_attr_set(env, dt, data->locd_attr, th);
1169
1170         if (data->locd_attr->la_valid & LA_LAYOUT_VERSION) {
1171                 CDEBUG(D_LAYOUT, DFID": set layout version: %u, comp_idx: %d\n",
1172                        PFID(lu_object_fid(&dt->do_lu)),
1173                        data->locd_attr->la_layout_version, comp_idx);
1174         }
1175
1176         return lod_sub_attr_set(env, dt, data->locd_attr, th);
1177 }
1178
1179 /**
1180  * Implementation of dt_object_operations::do_declare_attr_set.
1181  *
1182  * If the object is striped, then apply the changes to all the stripes.
1183  *
1184  * \see dt_object_operations::do_declare_attr_set() in the API description
1185  * for details.
1186  */
1187 static int lod_declare_attr_set(const struct lu_env *env,
1188                                 struct dt_object *dt,
1189                                 const struct lu_attr *attr,
1190                                 struct thandle *th)
1191 {
1192         struct dt_object  *next = dt_object_child(dt);
1193         struct lod_object *lo = lod_dt_obj(dt);
1194         int                rc, i;
1195         ENTRY;
1196
1197         /*
1198          * declare setattr on the local object
1199          */
1200         rc = lod_sub_declare_attr_set(env, next, attr, th);
1201         if (rc)
1202                 RETURN(rc);
1203
1204         /* osp_declare_attr_set() ignores all attributes other than
1205          * UID, GID, PROJID, and size, and osp_attr_set() ignores all
1206          * but UID, GID and PROJID. Declaration of size attr setting
1207          * happens through lod_declare_init_size(), and not through
1208          * this function. Therefore we need not load striping unless
1209          * ownership is changing.  This should save memory and (we hope)
1210          * speed up rename().
1211          */
1212         if (!S_ISDIR(dt->do_lu.lo_header->loh_attr)) {
1213                 if (!(attr->la_valid & LA_REMOTE_ATTR_SET))
1214                         RETURN(rc);
1215
1216                 if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_BAD_OWNER))
1217                         RETURN(0);
1218         } else {
1219                 if (!(attr->la_valid & (LA_UID | LA_GID | LA_PROJID | LA_MODE |
1220                                         LA_ATIME | LA_MTIME | LA_CTIME |
1221                                         LA_FLAGS)))
1222                         RETURN(rc);
1223         }
1224         /*
1225          * load striping information, notice we don't do this when object
1226          * is being initialized as we don't need this information till
1227          * few specific cases like destroy, chown
1228          */
1229         rc = lod_striping_load(env, lo);
1230         if (rc)
1231                 RETURN(rc);
1232
1233         if (!lod_obj_is_striped(dt))
1234                 RETURN(0);
1235
1236         /*
1237          * if object is striped declare changes on the stripes
1238          */
1239         if (S_ISDIR(dt->do_lu.lo_header->loh_attr)) {
1240                 LASSERT(lo->ldo_stripe);
1241                 for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
1242                         if (lo->ldo_stripe[i] == NULL)
1243                                 continue;
1244                         rc = lod_sub_declare_attr_set(env, lo->ldo_stripe[i],
1245                                                       attr, th);
1246                         if (rc != 0)
1247                                 RETURN(rc);
1248                 }
1249         } else {
1250                 struct lod_obj_stripe_cb_data data = { { 0 } };
1251
1252                 data.locd_attr = attr;
1253                 data.locd_declare = true;
1254                 data.locd_stripe_cb = lod_obj_stripe_attr_set_cb;
1255                 rc = lod_obj_for_each_stripe(env, lo, th, &data);
1256         }
1257
1258         if (rc)
1259                 RETURN(rc);
1260
1261         if (!dt_object_exists(next) || dt_object_remote(next) ||
1262             !S_ISREG(attr->la_mode))
1263                 RETURN(0);
1264
1265         if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_LOST_STRIPE)) {
1266                 rc = lod_sub_declare_xattr_del(env, next, XATTR_NAME_LOV, th);
1267                 RETURN(rc);
1268         }
1269
1270         if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_CHANGE_STRIPE) ||
1271             OBD_FAIL_CHECK(OBD_FAIL_LFSCK_BAD_PFL_RANGE)) {
1272                 struct lod_thread_info *info = lod_env_info(env);
1273                 struct lu_buf *buf = &info->lti_buf;
1274
1275                 buf->lb_buf = info->lti_ea_store;
1276                 buf->lb_len = info->lti_ea_store_size;
1277                 rc = lod_sub_declare_xattr_set(env, next, buf, XATTR_NAME_LOV,
1278                                                LU_XATTR_REPLACE, th);
1279         }
1280
1281         RETURN(rc);
1282 }
1283
1284 /**
1285  * Implementation of dt_object_operations::do_attr_set.
1286  *
1287  * If the object is striped, then apply the changes to all or subset of
1288  * the stripes depending on the object type and specific attributes.
1289  *
1290  * \see dt_object_operations::do_attr_set() in the API description for details.
1291  */
1292 static int lod_attr_set(const struct lu_env *env,
1293                         struct dt_object *dt,
1294                         const struct lu_attr *attr,
1295                         struct thandle *th)
1296 {
1297         struct dt_object        *next = dt_object_child(dt);
1298         struct lod_object       *lo = lod_dt_obj(dt);
1299         int                     rc, i;
1300         ENTRY;
1301
1302         /*
1303          * apply changes to the local object
1304          */
1305         rc = lod_sub_attr_set(env, next, attr, th);
1306         if (rc)
1307                 RETURN(rc);
1308
1309         if (!S_ISDIR(dt->do_lu.lo_header->loh_attr)) {
1310                 if (!(attr->la_valid & LA_REMOTE_ATTR_SET))
1311                         RETURN(rc);
1312
1313                 if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_BAD_OWNER))
1314                         RETURN(0);
1315         } else {
1316                 if (!(attr->la_valid & (LA_UID | LA_GID | LA_MODE | LA_PROJID |
1317                                         LA_ATIME | LA_MTIME | LA_CTIME |
1318                                         LA_FLAGS)))
1319                         RETURN(rc);
1320         }
1321
1322         /* FIXME: a tricky case in the code path of mdd_layout_change():
1323          * the in-memory striping information has been freed in lod_xattr_set()
1324          * due to layout change. It has to load stripe here again. It only
1325          * changes flags of layout so declare_attr_set() is still accurate */
1326         rc = lod_striping_load(env, lo);
1327         if (rc)
1328                 RETURN(rc);
1329
1330         if (!lod_obj_is_striped(dt))
1331                 RETURN(0);
1332
1333         /*
1334          * if object is striped, apply changes to all the stripes
1335          */
1336         if (S_ISDIR(dt->do_lu.lo_header->loh_attr)) {
1337                 LASSERT(lo->ldo_stripe);
1338                 for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
1339                         if (unlikely(lo->ldo_stripe[i] == NULL))
1340                                 continue;
1341
1342                         if ((dt_object_exists(lo->ldo_stripe[i]) == 0))
1343                                 continue;
1344
1345                         rc = lod_sub_attr_set(env, lo->ldo_stripe[i], attr, th);
1346                         if (rc != 0)
1347                                 break;
1348                 }
1349         } else {
1350                 struct lod_obj_stripe_cb_data data = { { 0 } };
1351
1352                 data.locd_attr = attr;
1353                 data.locd_declare = false;
1354                 data.locd_comp_skip_cb = lod_obj_attr_set_comp_skip_cb;
1355                 data.locd_stripe_cb = lod_obj_stripe_attr_set_cb;
1356                 rc = lod_obj_for_each_stripe(env, lo, th, &data);
1357         }
1358
1359         if (rc)
1360                 RETURN(rc);
1361
1362         if (!dt_object_exists(next) || dt_object_remote(next) ||
1363             !S_ISREG(attr->la_mode))
1364                 RETURN(0);
1365
1366         if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_LOST_STRIPE)) {
1367                 rc = lod_sub_xattr_del(env, next, XATTR_NAME_LOV, th);
1368                 RETURN(rc);
1369         }
1370
1371         if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_CHANGE_STRIPE)) {
1372                 struct lod_thread_info *info = lod_env_info(env);
1373                 struct lu_buf *buf = &info->lti_buf;
1374                 struct ost_id *oi = &info->lti_ostid;
1375                 struct lu_fid *fid = &info->lti_fid;
1376                 struct lov_mds_md_v1 *lmm;
1377                 struct lov_ost_data_v1 *objs;
1378                 __u32 magic;
1379
1380                 rc = lod_get_lov_ea(env, lo);
1381                 if (rc <= 0)
1382                         RETURN(rc);
1383
1384                 buf->lb_buf = info->lti_ea_store;
1385                 buf->lb_len = info->lti_ea_store_size;
1386                 lmm = info->lti_ea_store;
1387                 magic = le32_to_cpu(lmm->lmm_magic);
1388                 if (magic == LOV_MAGIC_COMP_V1) {
1389                         struct lov_comp_md_v1 *lcm = buf->lb_buf;
1390                         struct lov_comp_md_entry_v1 *lcme =
1391                                                 &lcm->lcm_entries[0];
1392
1393                         lmm = buf->lb_buf + le32_to_cpu(lcme->lcme_offset);
1394                         magic = le32_to_cpu(lmm->lmm_magic);
1395                 }
1396
1397                 if (magic == LOV_MAGIC_V1)
1398                         objs = &(lmm->lmm_objects[0]);
1399                 else
1400                         objs = &((struct lov_mds_md_v3 *)lmm)->lmm_objects[0];
1401                 ostid_le_to_cpu(&objs->l_ost_oi, oi);
1402                 ostid_to_fid(fid, oi, le32_to_cpu(objs->l_ost_idx));
1403                 fid->f_oid--;
1404                 fid_to_ostid(fid, oi);
1405                 ostid_cpu_to_le(oi, &objs->l_ost_oi);
1406
1407                 rc = lod_sub_xattr_set(env, next, buf, XATTR_NAME_LOV,
1408                                        LU_XATTR_REPLACE, th);
1409         } else if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_BAD_PFL_RANGE)) {
1410                 struct lod_thread_info *info = lod_env_info(env);
1411                 struct lu_buf *buf = &info->lti_buf;
1412                 struct lov_comp_md_v1 *lcm;
1413                 struct lov_comp_md_entry_v1 *lcme;
1414
1415                 rc = lod_get_lov_ea(env, lo);
1416                 if (rc <= 0)
1417                         RETURN(rc);
1418
1419                 buf->lb_buf = info->lti_ea_store;
1420                 buf->lb_len = info->lti_ea_store_size;
1421                 lcm = buf->lb_buf;
1422                 if (le32_to_cpu(lcm->lcm_magic) != LOV_MAGIC_COMP_V1)
1423                         RETURN(-EINVAL);
1424
1425                 le32_add_cpu(&lcm->lcm_layout_gen, 1);
1426                 lcme = &lcm->lcm_entries[0];
1427                 le64_add_cpu(&lcme->lcme_extent.e_start, 1);
1428                 le64_add_cpu(&lcme->lcme_extent.e_end, -1);
1429
1430                 rc = lod_sub_xattr_set(env, next, buf, XATTR_NAME_LOV,
1431                                        LU_XATTR_REPLACE, th);
1432         }
1433
1434         RETURN(rc);
1435 }
1436
1437 /**
1438  * Implementation of dt_object_operations::do_xattr_get.
1439  *
1440  * If LOV EA is requested from the root object and it's not
1441  * found, then return default striping for the filesystem.
1442  *
1443  * \see dt_object_operations::do_xattr_get() in the API description for details.
1444  */
1445 static int lod_xattr_get(const struct lu_env *env, struct dt_object *dt,
1446                          struct lu_buf *buf, const char *name)
1447 {
1448         struct lod_thread_info *info = lod_env_info(env);
1449         struct lod_device *dev = lu2lod_dev(dt->do_lu.lo_dev);
1450         int is_root;
1451         int rc;
1452         ENTRY;
1453
1454         rc = dt_xattr_get(env, dt_object_child(dt), buf, name);
1455         if (strcmp(name, XATTR_NAME_LMV) == 0) {
1456                 struct lmv_mds_md_v1    *lmv1;
1457                 int                      rc1 = 0;
1458
1459                 if (rc > (typeof(rc))sizeof(*lmv1))
1460                         RETURN(rc);
1461
1462                 if (rc < (typeof(rc))sizeof(*lmv1))
1463                         RETURN(rc = rc > 0 ? -EINVAL : rc);
1464
1465                 if (buf->lb_buf == NULL || buf->lb_len == 0) {
1466                         CLASSERT(sizeof(*lmv1) <= sizeof(info->lti_key));
1467
1468                         info->lti_buf.lb_buf = info->lti_key;
1469                         info->lti_buf.lb_len = sizeof(*lmv1);
1470                         rc = dt_xattr_get(env, dt_object_child(dt),
1471                                           &info->lti_buf, name);
1472                         if (unlikely(rc != sizeof(*lmv1)))
1473                                 RETURN(rc = rc > 0 ? -EINVAL : rc);
1474
1475                         lmv1 = info->lti_buf.lb_buf;
1476                         /* The on-disk LMV EA only contains header, but the
1477                          * returned LMV EA size should contain the space for
1478                          * the FIDs of all shards of the striped directory. */
1479                         if (le32_to_cpu(lmv1->lmv_magic) == LMV_MAGIC_V1)
1480                                 rc = lmv_mds_md_size(
1481                                         le32_to_cpu(lmv1->lmv_stripe_count),
1482                                         LMV_MAGIC_V1);
1483                 } else {
1484                         rc1 = lod_load_lmv_shards(env, lod_dt_obj(dt),
1485                                                   buf, false);
1486                 }
1487
1488                 RETURN(rc = rc1 != 0 ? rc1 : rc);
1489         }
1490
1491         if (rc != -ENODATA || !S_ISDIR(dt->do_lu.lo_header->loh_attr & S_IFMT))
1492                 RETURN(rc);
1493
1494         /*
1495          * XXX: Only used by lfsck
1496          *
1497          * lod returns default striping on the real root of the device
1498          * this is like the root stores default striping for the whole
1499          * filesystem. historically we've been using a different approach
1500          * and store it in the config.
1501          */
1502         dt_root_get(env, dev->lod_child, &info->lti_fid);
1503         is_root = lu_fid_eq(&info->lti_fid, lu_object_fid(&dt->do_lu));
1504
1505         if (is_root && strcmp(XATTR_NAME_LOV, name) == 0) {
1506                 struct lov_user_md *lum = buf->lb_buf;
1507                 struct lov_desc    *desc = &dev->lod_desc;
1508
1509                 if (buf->lb_buf == NULL) {
1510                         rc = sizeof(*lum);
1511                 } else if (buf->lb_len >= sizeof(*lum)) {
1512                         lum->lmm_magic = cpu_to_le32(LOV_USER_MAGIC_V1);
1513                         lmm_oi_set_seq(&lum->lmm_oi, FID_SEQ_LOV_DEFAULT);
1514                         lmm_oi_set_id(&lum->lmm_oi, 0);
1515                         lmm_oi_cpu_to_le(&lum->lmm_oi, &lum->lmm_oi);
1516                         lum->lmm_pattern = cpu_to_le32(desc->ld_pattern);
1517                         lum->lmm_stripe_size = cpu_to_le32(
1518                                                 desc->ld_default_stripe_size);
1519                         lum->lmm_stripe_count = cpu_to_le16(
1520                                                 desc->ld_default_stripe_count);
1521                         lum->lmm_stripe_offset = cpu_to_le16(
1522                                                 desc->ld_default_stripe_offset);
1523                         rc = sizeof(*lum);
1524                 } else {
1525                         rc = -ERANGE;
1526                 }
1527         }
1528
1529         RETURN(rc);
1530 }
1531
1532 /**
1533  * Verify LVM EA.
1534  *
1535  * Checks that the magic of the stripe is sane.
1536  *
1537  * \param[in] lod       lod device
1538  * \param[in] lum       a buffer storing LMV EA to verify
1539  *
1540  * \retval              0 if the EA is sane
1541  * \retval              negative otherwise
1542  */
1543 static int lod_verify_md_striping(struct lod_device *lod,
1544                                   const struct lmv_user_md_v1 *lum)
1545 {
1546         if (unlikely(le32_to_cpu(lum->lum_magic) != LMV_USER_MAGIC)) {
1547                 CERROR("%s: invalid lmv_user_md: magic = %x, "
1548                        "stripe_offset = %d, stripe_count = %u: rc = %d\n",
1549                        lod2obd(lod)->obd_name, le32_to_cpu(lum->lum_magic),
1550                        (int)le32_to_cpu(lum->lum_stripe_offset),
1551                        le32_to_cpu(lum->lum_stripe_count), -EINVAL);
1552                 return -EINVAL;
1553         }
1554
1555         return 0;
1556 }
1557
1558 /**
1559  * Initialize LMV EA for a slave.
1560  *
1561  * Initialize slave's LMV EA from the master's LMV EA.
1562  *
1563  * \param[in] master_lmv        a buffer containing master's EA
1564  * \param[out] slave_lmv        a buffer where slave's EA will be stored
1565  *
1566  */
1567 static void lod_prep_slave_lmv_md(struct lmv_mds_md_v1 *slave_lmv,
1568                                   const struct lmv_mds_md_v1 *master_lmv)
1569 {
1570         *slave_lmv = *master_lmv;
1571         slave_lmv->lmv_magic = cpu_to_le32(LMV_MAGIC_STRIPE);
1572 }
1573
1574 /**
1575  * Generate LMV EA.
1576  *
1577  * Generate LMV EA from the object passed as \a dt. The object must have
1578  * the stripes created and initialized.
1579  *
1580  * \param[in] env       execution environment
1581  * \param[in] dt        object
1582  * \param[out] lmv_buf  buffer storing generated LMV EA
1583  *
1584  * \retval              0 on success
1585  * \retval              negative if failed
1586  */
1587 static int lod_prep_lmv_md(const struct lu_env *env, struct dt_object *dt,
1588                            struct lu_buf *lmv_buf)
1589 {
1590         struct lod_thread_info  *info = lod_env_info(env);
1591         struct lod_device       *lod = lu2lod_dev(dt->do_lu.lo_dev);
1592         struct lod_object       *lo = lod_dt_obj(dt);
1593         struct lmv_mds_md_v1    *lmm1;
1594         int                     stripe_count;
1595         int                     type = LU_SEQ_RANGE_ANY;
1596         int                     rc;
1597         __u32                   mdtidx;
1598         ENTRY;
1599
1600         LASSERT(lo->ldo_dir_striped != 0);
1601         LASSERT(lo->ldo_dir_stripe_count > 0);
1602         stripe_count = lo->ldo_dir_stripe_count;
1603         /* Only store the LMV EA heahder on the disk. */
1604         if (info->lti_ea_store_size < sizeof(*lmm1)) {
1605                 rc = lod_ea_store_resize(info, sizeof(*lmm1));
1606                 if (rc != 0)
1607                         RETURN(rc);
1608         } else {
1609                 memset(info->lti_ea_store, 0, sizeof(*lmm1));
1610         }
1611
1612         lmm1 = (struct lmv_mds_md_v1 *)info->lti_ea_store;
1613         memset(lmm1, 0, sizeof(*lmm1));
1614         lmm1->lmv_magic = cpu_to_le32(LMV_MAGIC);
1615         lmm1->lmv_stripe_count = cpu_to_le32(stripe_count);
1616         lmm1->lmv_hash_type = cpu_to_le32(lo->ldo_dir_hash_type);
1617         if (lo->ldo_dir_hash_type & LMV_HASH_FLAG_MIGRATION) {
1618                 lmm1->lmv_migrate_hash = cpu_to_le32(lo->ldo_dir_migrate_hash);
1619                 lmm1->lmv_migrate_offset =
1620                         cpu_to_le32(lo->ldo_dir_migrate_offset);
1621         }
1622         rc = lod_fld_lookup(env, lod, lu_object_fid(&dt->do_lu),
1623                             &mdtidx, &type);
1624         if (rc != 0)
1625                 RETURN(rc);
1626
1627         lmm1->lmv_master_mdt_index = cpu_to_le32(mdtidx);
1628         lmv_buf->lb_buf = info->lti_ea_store;
1629         lmv_buf->lb_len = sizeof(*lmm1);
1630
1631         RETURN(rc);
1632 }
1633
1634 /**
1635  * Create in-core represenation for a striped directory.
1636  *
1637  * Parse the buffer containing LMV EA and instantiate LU objects
1638  * representing the stripe objects. The pointers to the objects are
1639  * stored in ldo_stripe field of \a lo. This function is used when
1640  * we need to access an already created object (i.e. load from a disk).
1641  *
1642  * \param[in] env       execution environment
1643  * \param[in] lo        lod object
1644  * \param[in] buf       buffer containing LMV EA
1645  *
1646  * \retval              0 on success
1647  * \retval              negative if failed
1648  */
1649 int lod_parse_dir_striping(const struct lu_env *env, struct lod_object *lo,
1650                            const struct lu_buf *buf)
1651 {
1652         struct lod_thread_info  *info = lod_env_info(env);
1653         struct lod_device       *lod = lu2lod_dev(lo->ldo_obj.do_lu.lo_dev);
1654         struct lod_tgt_descs    *ltd = &lod->lod_mdt_descs;
1655         struct dt_object        **stripe;
1656         union lmv_mds_md        *lmm = buf->lb_buf;
1657         struct lmv_mds_md_v1    *lmv1 = &lmm->lmv_md_v1;
1658         struct lu_fid           *fid = &info->lti_fid;
1659         unsigned int            i;
1660         int                     rc = 0;
1661         ENTRY;
1662
1663         LASSERT(mutex_is_locked(&lo->ldo_layout_mutex));
1664
1665         if (le32_to_cpu(lmv1->lmv_hash_type) & LMV_HASH_FLAG_MIGRATION)
1666                 RETURN(0);
1667
1668         if (le32_to_cpu(lmv1->lmv_magic) == LMV_MAGIC_STRIPE) {
1669                 lo->ldo_dir_slave_stripe = 1;
1670                 RETURN(0);
1671         }
1672
1673         if (le32_to_cpu(lmv1->lmv_magic) != LMV_MAGIC_V1)
1674                 RETURN(-EINVAL);
1675
1676         if (le32_to_cpu(lmv1->lmv_stripe_count) < 1)
1677                 RETURN(0);
1678
1679         LASSERT(lo->ldo_stripe == NULL);
1680         OBD_ALLOC(stripe, sizeof(stripe[0]) *
1681                   (le32_to_cpu(lmv1->lmv_stripe_count)));
1682         if (stripe == NULL)
1683                 RETURN(-ENOMEM);
1684
1685         for (i = 0; i < le32_to_cpu(lmv1->lmv_stripe_count); i++) {
1686                 struct dt_device        *tgt_dt;
1687                 struct dt_object        *dto;
1688                 int                     type = LU_SEQ_RANGE_ANY;
1689                 __u32                   idx;
1690
1691                 fid_le_to_cpu(fid, &lmv1->lmv_stripe_fids[i]);
1692                 if (!fid_is_sane(fid))
1693                         GOTO(out, rc = -ESTALE);
1694
1695                 rc = lod_fld_lookup(env, lod, fid, &idx, &type);
1696                 if (rc != 0)
1697                         GOTO(out, rc);
1698
1699                 if (idx == lod2lu_dev(lod)->ld_site->ld_seq_site->ss_node_id) {
1700                         tgt_dt = lod->lod_child;
1701                 } else {
1702                         struct lod_tgt_desc     *tgt;
1703
1704                         tgt = LTD_TGT(ltd, idx);
1705                         if (tgt == NULL)
1706                                 GOTO(out, rc = -ESTALE);
1707                         tgt_dt = tgt->ltd_tgt;
1708                 }
1709
1710                 dto = dt_locate_at(env, tgt_dt, fid,
1711                                   lo->ldo_obj.do_lu.lo_dev->ld_site->ls_top_dev,
1712                                   NULL);
1713                 if (IS_ERR(dto))
1714                         GOTO(out, rc = PTR_ERR(dto));
1715
1716                 stripe[i] = dto;
1717         }
1718 out:
1719         lo->ldo_stripe = stripe;
1720         lo->ldo_dir_stripe_count = le32_to_cpu(lmv1->lmv_stripe_count);
1721         lo->ldo_dir_stripes_allocated = le32_to_cpu(lmv1->lmv_stripe_count);
1722         if (rc != 0)
1723                 lod_striping_free_nolock(env, lo);
1724
1725         RETURN(rc);
1726 }
1727
1728 /**
1729  * Declare create a striped directory.
1730  *
1731  * Declare creating a striped directory with a given stripe pattern on the
1732  * specified MDTs. A striped directory is represented as a regular directory
1733  * - an index listing all the stripes. The stripes point back to the master
1734  * object with ".." and LinkEA. The master object gets LMV EA which
1735  * identifies it as a striped directory. The function allocates FIDs
1736  * for all stripes.
1737  *
1738  * \param[in] env       execution environment
1739  * \param[in] dt        object
1740  * \param[in] attr      attributes to initialize the objects with
1741  * \param[in] dof       type of objects to be created
1742  * \param[in] th        transaction handle
1743  *
1744  * \retval              0 on success
1745  * \retval              negative if failed
1746  */
1747 static int lod_dir_declare_create_stripes(const struct lu_env *env,
1748                                           struct dt_object *dt,
1749                                           struct lu_attr *attr,
1750                                           struct dt_object_format *dof,
1751                                           struct thandle *th)
1752 {
1753         struct lod_thread_info  *info = lod_env_info(env);
1754         struct lu_buf           lmv_buf;
1755         struct lu_buf           slave_lmv_buf;
1756         struct lmv_mds_md_v1    *lmm;
1757         struct lmv_mds_md_v1    *slave_lmm = NULL;
1758         struct dt_insert_rec    *rec = &info->lti_dt_rec;
1759         struct lod_object       *lo = lod_dt_obj(dt);
1760         int                     rc;
1761         __u32                   i;
1762         ENTRY;
1763
1764         rc = lod_prep_lmv_md(env, dt, &lmv_buf);
1765         if (rc != 0)
1766                 GOTO(out, rc);
1767         lmm = lmv_buf.lb_buf;
1768
1769         OBD_ALLOC_PTR(slave_lmm);
1770         if (slave_lmm == NULL)
1771                 GOTO(out, rc = -ENOMEM);
1772
1773         lod_prep_slave_lmv_md(slave_lmm, lmm);
1774         slave_lmv_buf.lb_buf = slave_lmm;
1775         slave_lmv_buf.lb_len = sizeof(*slave_lmm);
1776
1777         if (!dt_try_as_dir(env, dt_object_child(dt)))
1778                 GOTO(out, rc = -EINVAL);
1779
1780         rec->rec_type = S_IFDIR;
1781         for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
1782                 struct dt_object        *dto = lo->ldo_stripe[i];
1783                 char                    *stripe_name = info->lti_key;
1784                 struct lu_name          *sname;
1785                 struct linkea_data       ldata          = { NULL };
1786                 struct lu_buf           linkea_buf;
1787
1788                 rc = lod_sub_declare_create(env, dto, attr, NULL, dof, th);
1789                 if (rc != 0)
1790                         GOTO(out, rc);
1791
1792                 if (!dt_try_as_dir(env, dto))
1793                         GOTO(out, rc = -EINVAL);
1794
1795                 rc = lod_sub_declare_ref_add(env, dto, th);
1796                 if (rc != 0)
1797                         GOTO(out, rc);
1798
1799                 rec->rec_fid = lu_object_fid(&dto->do_lu);
1800                 rc = lod_sub_declare_insert(env, dto,
1801                                             (const struct dt_rec *)rec,
1802                                             (const struct dt_key *)dot, th);
1803                 if (rc != 0)
1804                         GOTO(out, rc);
1805
1806                 /* master stripe FID will be put to .. */
1807                 rec->rec_fid = lu_object_fid(&dt->do_lu);
1808                 rc = lod_sub_declare_insert(env, dto,
1809                                             (const struct dt_rec *)rec,
1810                                             (const struct dt_key *)dotdot, th);
1811                 if (rc != 0)
1812                         GOTO(out, rc);
1813
1814                 if (!OBD_FAIL_CHECK(OBD_FAIL_LFSCK_LOST_SLAVE_LMV) ||
1815                     cfs_fail_val != i) {
1816                         if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_BAD_SLAVE_LMV) &&
1817                             cfs_fail_val == i)
1818                                 slave_lmm->lmv_master_mdt_index =
1819                                                         cpu_to_le32(i + 1);
1820                         else
1821                                 slave_lmm->lmv_master_mdt_index =
1822                                                         cpu_to_le32(i);
1823                         rc = lod_sub_declare_xattr_set(env, dto, &slave_lmv_buf,
1824                                                        XATTR_NAME_LMV, 0, th);
1825                         if (rc != 0)
1826                                 GOTO(out, rc);
1827                 }
1828
1829                 if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_BAD_SLAVE_NAME) &&
1830                     cfs_fail_val == i)
1831                         snprintf(stripe_name, sizeof(info->lti_key), DFID":%u",
1832                                 PFID(lu_object_fid(&dto->do_lu)), i + 1);
1833                 else
1834                         snprintf(stripe_name, sizeof(info->lti_key), DFID":%u",
1835                                 PFID(lu_object_fid(&dto->do_lu)), i);
1836
1837                 sname = lod_name_get(env, stripe_name, strlen(stripe_name));
1838                 rc = linkea_links_new(&ldata, &info->lti_linkea_buf,
1839                                       sname, lu_object_fid(&dt->do_lu));
1840                 if (rc != 0)
1841                         GOTO(out, rc);
1842
1843                 linkea_buf.lb_buf = ldata.ld_buf->lb_buf;
1844                 linkea_buf.lb_len = ldata.ld_leh->leh_len;
1845                 rc = lod_sub_declare_xattr_set(env, dto, &linkea_buf,
1846                                                XATTR_NAME_LINK, 0, th);
1847                 if (rc != 0)
1848                         GOTO(out, rc);
1849
1850                 rec->rec_fid = lu_object_fid(&dto->do_lu);
1851                 rc = lod_sub_declare_insert(env, dt_object_child(dt),
1852                                             (const struct dt_rec *)rec,
1853                                             (const struct dt_key *)stripe_name,
1854                                             th);
1855                 if (rc != 0)
1856                         GOTO(out, rc);
1857
1858                 rc = lod_sub_declare_ref_add(env, dt_object_child(dt), th);
1859                 if (rc != 0)
1860                         GOTO(out, rc);
1861         }
1862
1863         rc = lod_sub_declare_xattr_set(env, dt_object_child(dt),
1864                                        &lmv_buf, XATTR_NAME_LMV, 0, th);
1865         if (rc != 0)
1866                 GOTO(out, rc);
1867 out:
1868         if (slave_lmm != NULL)
1869                 OBD_FREE_PTR(slave_lmm);
1870
1871         RETURN(rc);
1872 }
1873
1874 static int lod_prep_md_striped_create(const struct lu_env *env,
1875                                       struct dt_object *dt,
1876                                       struct lu_attr *attr,
1877                                       const struct lmv_user_md_v1 *lum,
1878                                       struct dt_object_format *dof,
1879                                       struct thandle *th)
1880 {
1881         struct lod_thread_info  *info = lod_env_info(env);
1882         struct lod_device       *lod = lu2lod_dev(dt->do_lu.lo_dev);
1883         struct lod_tgt_descs    *ltd = &lod->lod_mdt_descs;
1884         struct lod_object       *lo = lod_dt_obj(dt);
1885         struct dt_object        **stripe;
1886         __u32                   stripe_count;
1887         int                     *idx_array;
1888         __u32                   master_index;
1889         int                     rc = 0;
1890         __u32                   i;
1891         __u32                   j;
1892         bool                    is_specific = false;
1893         ENTRY;
1894
1895         /* The lum has been verifed in lod_verify_md_striping */
1896         LASSERT(le32_to_cpu(lum->lum_magic) == LMV_USER_MAGIC ||
1897                 le32_to_cpu(lum->lum_magic) == LMV_USER_MAGIC_SPECIFIC);
1898         LASSERT(le32_to_cpu(lum->lum_stripe_count) > 0);
1899
1900         stripe_count = le32_to_cpu(lum->lum_stripe_count);
1901
1902         OBD_ALLOC(idx_array, sizeof(idx_array[0]) * stripe_count);
1903         if (idx_array == NULL)
1904                 RETURN(-ENOMEM);
1905
1906         OBD_ALLOC(stripe, sizeof(stripe[0]) * stripe_count);
1907         if (stripe == NULL)
1908                 GOTO(out_free, rc = -ENOMEM);
1909
1910         /* Start index must be the master MDT */
1911         master_index = lu_site2seq(lod2lu_dev(lod)->ld_site)->ss_node_id;
1912         idx_array[0] = master_index;
1913         if (le32_to_cpu(lum->lum_magic) == LMV_USER_MAGIC_SPECIFIC) {
1914                 is_specific = true;
1915                 for (i = 1; i < stripe_count; i++)
1916                         idx_array[i] = le32_to_cpu(lum->lum_objects[i].lum_mds);
1917         }
1918
1919         for (i = 0; i < stripe_count; i++) {
1920                 struct lod_tgt_desc     *tgt = NULL;
1921                 struct dt_object        *dto;
1922                 struct lu_fid           fid = { 0 };
1923                 int                     idx;
1924                 struct lu_object_conf   conf = { 0 };
1925                 struct dt_device        *tgt_dt = NULL;
1926
1927                 /* Try to find next avaible target */
1928                 idx = idx_array[i];
1929                 for (j = 0; j < lod->lod_remote_mdt_count;
1930                      j++, idx = (idx + 1) % (lod->lod_remote_mdt_count + 1)) {
1931                         bool already_allocated = false;
1932                         __u32 k;
1933
1934                         CDEBUG(D_INFO, "try idx %d, mdt cnt %u, allocated %u\n",
1935                                idx, lod->lod_remote_mdt_count + 1, i);
1936
1937                         if (likely(!is_specific &&
1938                                    !OBD_FAIL_CHECK(OBD_FAIL_LARGE_STRIPE))) {
1939                                 /* check whether the idx already exists
1940                                  * in current allocated array */
1941                                 for (k = 0; k < i; k++) {
1942                                         if (idx_array[k] == idx) {
1943                                                 already_allocated = true;
1944                                                 break;
1945                                         }
1946                                 }
1947
1948                                 if (already_allocated)
1949                                         continue;
1950                         }
1951
1952                         /* Sigh, this index is not in the bitmap, let's check
1953                          * next available target */
1954                         if (!cfs_bitmap_check(ltd->ltd_tgt_bitmap, idx) &&
1955                             idx != master_index)
1956                                 continue;
1957
1958                         if (idx == master_index) {
1959                                 /* Allocate the FID locally */
1960                                 rc = obd_fid_alloc(env, lod->lod_child_exp,
1961                                                    &fid, NULL);
1962                                 if (rc < 0)
1963                                         GOTO(out_put, rc);
1964                                 tgt_dt = lod->lod_child;
1965                                 break;
1966                         }
1967
1968                         /* check the status of the OSP */
1969                         tgt = LTD_TGT(ltd, idx);
1970                         if (tgt == NULL)
1971                                 continue;
1972
1973                         tgt_dt = tgt->ltd_tgt;
1974                         rc = dt_statfs(env, tgt_dt, &info->lti_osfs);
1975                         if (rc) {
1976                                 /* this OSP doesn't feel well */
1977                                 rc = 0;
1978                                 continue;
1979                         }
1980
1981                         rc = obd_fid_alloc(env, tgt->ltd_exp, &fid, NULL);
1982                         if (rc < 0) {
1983                                 rc = 0;
1984                                 continue;
1985                         }
1986
1987                         break;
1988                 }
1989
1990                 /* Can not allocate more stripes */
1991                 if (j == lod->lod_remote_mdt_count) {
1992                         CDEBUG(D_INFO, "%s: require stripes %u only get %d\n",
1993                                lod2obd(lod)->obd_name, stripe_count, i);
1994                         break;
1995                 }
1996
1997                 CDEBUG(D_INFO, "Get idx %d, for stripe %d "DFID"\n",
1998                        idx, i, PFID(&fid));
1999                 idx_array[i] = idx;
2000                 /* Set the start index for next stripe allocation */
2001                 if (!is_specific && i < stripe_count - 1) {
2002                         /*
2003                          * for large dir test, put all other slaves on one
2004                          * remote MDT, otherwise we may save too many local
2005                          * slave locks which will exceed RS_MAX_LOCKS.
2006                          */
2007                         if (unlikely(OBD_FAIL_CHECK(OBD_FAIL_LARGE_STRIPE)))
2008                                 idx = master_index;
2009                         idx_array[i + 1] = (idx + 1) %
2010                                            (lod->lod_remote_mdt_count + 1);
2011                 }
2012                 /* tgt_dt and fid must be ready after search avaible OSP
2013                  * in the above loop */
2014                 LASSERT(tgt_dt != NULL);
2015                 LASSERT(fid_is_sane(&fid));
2016                 conf.loc_flags = LOC_F_NEW;
2017                 dto = dt_locate_at(env, tgt_dt, &fid,
2018                                    dt->do_lu.lo_dev->ld_site->ls_top_dev,
2019                                    &conf);
2020                 if (IS_ERR(dto))
2021                         GOTO(out_put, rc = PTR_ERR(dto));
2022                 stripe[i] = dto;
2023         }
2024
2025         lo->ldo_dir_striped = 1;
2026         lo->ldo_stripe = stripe;
2027         lo->ldo_dir_stripe_count = i;
2028         lo->ldo_dir_stripes_allocated = stripe_count;
2029         smp_mb();
2030         lo->ldo_dir_stripe_loaded = 1;
2031
2032         if (lo->ldo_dir_stripe_count == 0)
2033                 GOTO(out_put, rc = -ENOSPC);
2034
2035         rc = lod_dir_declare_create_stripes(env, dt, attr, dof, th);
2036         if (rc != 0)
2037                 GOTO(out_put, rc);
2038
2039 out_put:
2040         if (rc < 0) {
2041                 for (i = 0; i < stripe_count; i++)
2042                         if (stripe[i] != NULL)
2043                                 dt_object_put(env, stripe[i]);
2044                 OBD_FREE(stripe, sizeof(stripe[0]) * stripe_count);
2045                 lo->ldo_dir_stripe_count = 0;
2046                 lo->ldo_dir_stripes_allocated = 0;
2047                 lo->ldo_stripe = NULL;
2048         }
2049
2050 out_free:
2051         OBD_FREE(idx_array, sizeof(idx_array[0]) * stripe_count);
2052
2053         RETURN(rc);
2054 }
2055
2056 /**
2057  * Declare create striped md object.
2058  *
2059  * The function declares intention to create a striped directory. This is a
2060  * wrapper for lod_prep_md_striped_create(). The only additional functionality
2061  * is to verify pattern \a lum_buf is good. Check that function for the details.
2062  *
2063  * \param[in] env       execution environment
2064  * \param[in] dt        object
2065  * \param[in] attr      attributes to initialize the objects with
2066  * \param[in] lum_buf   a pattern specifying the number of stripes and
2067  *                      MDT to start from
2068  * \param[in] dof       type of objects to be created
2069  * \param[in] th        transaction handle
2070  *
2071  * \retval              0 on success
2072  * \retval              negative if failed
2073  *
2074  */
2075 static int lod_declare_xattr_set_lmv(const struct lu_env *env,
2076                                      struct dt_object *dt,
2077                                      struct lu_attr *attr,
2078                                      const struct lu_buf *lum_buf,
2079                                      struct dt_object_format *dof,
2080                                      struct thandle *th)
2081 {
2082         struct lod_object       *lo = lod_dt_obj(dt);
2083         struct lmv_user_md_v1   *lum = lum_buf->lb_buf;
2084         int                     rc;
2085         ENTRY;
2086
2087         LASSERT(lum != NULL);
2088
2089         CDEBUG(D_INFO, "lum magic = %x count = %u offset = %d\n",
2090                le32_to_cpu(lum->lum_magic), le32_to_cpu(lum->lum_stripe_count),
2091                (int)le32_to_cpu(lum->lum_stripe_offset));
2092
2093         if (lo->ldo_dir_stripe_count == 0)
2094                 GOTO(out, rc = 0);
2095
2096         /* prepare dir striped objects */
2097         rc = lod_prep_md_striped_create(env, dt, attr, lum, dof, th);
2098         if (rc != 0) {
2099                 /* failed to create striping, let's reset
2100                  * config so that others don't get confused */
2101                 lod_striping_free(env, lo);
2102                 GOTO(out, rc);
2103         }
2104 out:
2105         RETURN(rc);
2106 }
2107
2108 /**
2109  * Append source stripes after target stripes for migrating directory. NB, we
2110  * only need to declare this, the append is done inside lod_xattr_set_lmv().
2111  *
2112  * \param[in] env       execution environment
2113  * \param[in] dt        target object
2114  * \param[in] buf       LMV buf which contains source stripe fids
2115  * \param[in] th        transaction handle
2116  *
2117  * \retval              0 on success
2118  * \retval              negative if failed
2119  */
2120 static int lod_dir_declare_layout_add(const struct lu_env *env,
2121                                       struct dt_object *dt,
2122                                       const struct lu_buf *buf,
2123                                       struct thandle *th)
2124 {
2125         struct lod_thread_info *info = lod_env_info(env);
2126         struct lod_device *lod = lu2lod_dev(dt->do_lu.lo_dev);
2127         struct lod_tgt_descs *ltd = &lod->lod_mdt_descs;
2128         struct lod_object *lo = lod_dt_obj(dt);
2129         struct dt_object *next = dt_object_child(dt);
2130         struct dt_object_format *dof = &info->lti_format;
2131         struct lmv_mds_md_v1 *lmv = buf->lb_buf;
2132         struct dt_object **stripe;
2133         __u32 stripe_count = le32_to_cpu(lmv->lmv_stripe_count);
2134         struct lu_fid *fid = &info->lti_fid;
2135         struct lod_tgt_desc *tgt;
2136         struct dt_object *dto;
2137         struct dt_device *tgt_dt;
2138         int type = LU_SEQ_RANGE_ANY;
2139         struct dt_insert_rec *rec = &info->lti_dt_rec;
2140         char *stripe_name = info->lti_key;
2141         struct lu_name *sname;
2142         struct linkea_data ldata = { NULL };
2143         struct lu_buf linkea_buf;
2144         __u32 idx;
2145         int i;
2146         int rc;
2147
2148         ENTRY;
2149
2150         if (le32_to_cpu(lmv->lmv_magic) != LMV_MAGIC_V1)
2151                 RETURN(-EINVAL);
2152
2153         if (stripe_count == 0)
2154                 RETURN(-EINVAL);
2155
2156         dof->dof_type = DFT_DIR;
2157
2158         OBD_ALLOC(stripe,
2159                   sizeof(*stripe) * (lo->ldo_dir_stripe_count + stripe_count));
2160         if (stripe == NULL)
2161                 RETURN(-ENOMEM);
2162
2163         for (i = 0; i < lo->ldo_dir_stripe_count; i++)
2164                 stripe[i] = lo->ldo_stripe[i];
2165
2166         for (i = 0; i < stripe_count; i++) {
2167                 fid_le_to_cpu(fid,
2168                         &lmv->lmv_stripe_fids[i]);
2169                 if (!fid_is_sane(fid))
2170                         GOTO(out, rc = -ESTALE);
2171
2172                 rc = lod_fld_lookup(env, lod, fid, &idx, &type);
2173                 if (rc)
2174                         GOTO(out, rc);
2175
2176                 if (idx == lod2lu_dev(lod)->ld_site->ld_seq_site->ss_node_id) {
2177                         tgt_dt = lod->lod_child;
2178                 } else {
2179                         tgt = LTD_TGT(ltd, idx);
2180                         if (tgt == NULL)
2181                                 GOTO(out, rc = -ESTALE);
2182                         tgt_dt = tgt->ltd_tgt;
2183                 }
2184
2185                 dto = dt_locate_at(env, tgt_dt, fid,
2186                                   lo->ldo_obj.do_lu.lo_dev->ld_site->ls_top_dev,
2187                                   NULL);
2188                 if (IS_ERR(dto))
2189                         GOTO(out, rc = PTR_ERR(dto));
2190
2191                 stripe[i + lo->ldo_dir_stripe_count] = dto;
2192
2193                 if (!dt_try_as_dir(env, dto))
2194                         GOTO(out, rc = -ENOTDIR);
2195
2196                 rc = lod_sub_declare_ref_add(env, dto, th);
2197                 if (rc)
2198                         GOTO(out, rc);
2199
2200                 rc = lod_sub_declare_insert(env, dto,
2201                                             (const struct dt_rec *)rec,
2202                                             (const struct dt_key *)dot, th);
2203                 if (rc)
2204                         GOTO(out, rc);
2205
2206                 rc = lod_sub_declare_insert(env, dto,
2207                                             (const struct dt_rec *)rec,
2208                                             (const struct dt_key *)dotdot, th);
2209                 if (rc)
2210                         GOTO(out, rc);
2211
2212                 rc = lod_sub_declare_xattr_set(env, dto, buf,
2213                                                 XATTR_NAME_LMV, 0, th);
2214                 if (rc)
2215                         GOTO(out, rc);
2216
2217                 snprintf(stripe_name, sizeof(info->lti_key), DFID":%u",
2218                          PFID(lu_object_fid(&dto->do_lu)),
2219                          i + lo->ldo_dir_stripe_count);
2220
2221                 sname = lod_name_get(env, stripe_name, strlen(stripe_name));
2222                 rc = linkea_links_new(&ldata, &info->lti_linkea_buf,
2223                                       sname, lu_object_fid(&dt->do_lu));
2224                 if (rc)
2225                         GOTO(out, rc);
2226
2227                 linkea_buf.lb_buf = ldata.ld_buf->lb_buf;
2228                 linkea_buf.lb_len = ldata.ld_leh->leh_len;
2229                 rc = lod_sub_declare_xattr_set(env, dto, &linkea_buf,
2230                                                XATTR_NAME_LINK, 0, th);
2231                 if (rc)
2232                         GOTO(out, rc);
2233
2234                 rc = lod_sub_declare_insert(env, next,
2235                                             (const struct dt_rec *)rec,
2236                                             (const struct dt_key *)stripe_name,
2237                                             th);
2238                 if (rc)
2239                         GOTO(out, rc);
2240
2241                 rc = lod_sub_declare_ref_add(env, next, th);
2242                 if (rc)
2243                         GOTO(out, rc);
2244         }
2245
2246         if (lo->ldo_stripe)
2247                 OBD_FREE(lo->ldo_stripe,
2248                          sizeof(*stripe) * lo->ldo_dir_stripes_allocated);
2249         lo->ldo_stripe = stripe;
2250         lo->ldo_dir_migrate_offset = lo->ldo_dir_stripe_count;
2251         lo->ldo_dir_migrate_hash = le32_to_cpu(lmv->lmv_hash_type);
2252         lo->ldo_dir_stripe_count += stripe_count;
2253         lo->ldo_dir_stripes_allocated += stripe_count;
2254         lo->ldo_dir_hash_type |= LMV_HASH_FLAG_MIGRATION;
2255
2256         RETURN(0);
2257 out:
2258         i = lo->ldo_dir_stripe_count;
2259         while (i < lo->ldo_dir_stripe_count + stripe_count && stripe[i])
2260                 dt_object_put(env, stripe[i++]);
2261
2262         OBD_FREE(stripe,
2263                  sizeof(*stripe) * (stripe_count + lo->ldo_dir_stripe_count));
2264         RETURN(rc);
2265 }
2266
2267 static int lod_dir_declare_layout_delete(const struct lu_env *env,
2268                                          struct dt_object *dt,
2269                                          const struct lu_buf *buf,
2270                                          struct thandle *th)
2271 {
2272         struct lod_thread_info *info = lod_env_info(env);
2273         struct lod_object *lo = lod_dt_obj(dt);
2274         struct dt_object *next = dt_object_child(dt);
2275         struct lmv_user_md *lmu = buf->lb_buf;
2276         __u32 final_stripe_count;
2277         char *stripe_name = info->lti_key;
2278         struct dt_object *dto;
2279         int i;
2280         int rc = 0;
2281
2282         if (!lmu)
2283                 return -EINVAL;
2284
2285         final_stripe_count = le32_to_cpu(lmu->lum_stripe_count);
2286         if (final_stripe_count >= lo->ldo_dir_stripe_count)
2287                 return -EINVAL;
2288
2289         for (i = final_stripe_count; i < lo->ldo_dir_stripe_count; i++) {
2290                 dto = lo->ldo_stripe[i];
2291                 LASSERT(dto);
2292
2293                 if (!dt_try_as_dir(env, dto))
2294                         return -ENOTDIR;
2295
2296                 rc = lod_sub_declare_delete(env, dto,
2297                                             (const struct dt_key *)dot, th);
2298                 if (rc)
2299                         return rc;
2300
2301                 rc = lod_sub_declare_ref_del(env, dto, th);
2302                 if (rc)
2303                         return rc;
2304
2305                 rc = lod_sub_declare_delete(env, dto,
2306                                         (const struct dt_key *)dotdot, th);
2307                 if (rc)
2308                         return rc;
2309
2310                 snprintf(stripe_name, sizeof(info->lti_key), DFID":%d",
2311                          PFID(lu_object_fid(&dto->do_lu)), i);
2312
2313                 rc = lod_sub_declare_delete(env, next,
2314                                         (const struct dt_key *)stripe_name, th);
2315                 if (rc)
2316                         return rc;
2317
2318                 rc = lod_sub_declare_ref_del(env, next, th);
2319                 if (rc)
2320                         return rc;
2321         }
2322
2323         return 0;
2324 }
2325
2326 /*
2327  * delete stripes from dir master object, the lum_stripe_count in argument is
2328  * the final stripe count, the stripes after that will be deleted, NB, they
2329  * are not destroyed, but deleted from it's parent namespace, this function
2330  * will be called in two places:
2331  * 1. mdd_migrate_create() delete stripes from source, and append them to
2332  *    target.
2333  * 2. mdd_dir_layout_shrink() delete stripes from source, and destroy them.
2334  */
2335 static int lod_dir_layout_delete(const struct lu_env *env,
2336                                  struct dt_object *dt,
2337                                  const struct lu_buf *buf,
2338                                  struct thandle *th)
2339 {
2340         struct lod_thread_info *info = lod_env_info(env);
2341         struct lod_object *lo = lod_dt_obj(dt);
2342         struct dt_object *next = dt_object_child(dt);
2343         struct lmv_user_md *lmu = buf->lb_buf;
2344         __u32 final_stripe_count;
2345         char *stripe_name = info->lti_key;
2346         struct dt_object *dto;
2347         int i;
2348         int rc = 0;
2349
2350         ENTRY;
2351
2352         if (!lmu)
2353                 RETURN(-EINVAL);
2354
2355         final_stripe_count = le32_to_cpu(lmu->lum_stripe_count);
2356         if (final_stripe_count >= lo->ldo_dir_stripe_count)
2357                 RETURN(-EINVAL);
2358
2359         for (i = final_stripe_count; i < lo->ldo_dir_stripe_count; i++) {
2360                 dto = lo->ldo_stripe[i];
2361                 LASSERT(dto);
2362
2363                 rc = lod_sub_delete(env, dto,
2364                                     (const struct dt_key *)dotdot, th);
2365                 if (rc)
2366                         break;
2367
2368                 snprintf(stripe_name, sizeof(info->lti_key), DFID":%d",
2369                          PFID(lu_object_fid(&dto->do_lu)), i);
2370
2371                 rc = lod_sub_delete(env, next,
2372                                     (const struct dt_key *)stripe_name, th);
2373                 if (rc)
2374                         break;
2375
2376                 rc = lod_sub_ref_del(env, next, th);
2377                 if (rc)
2378                         break;
2379         }
2380
2381         lod_striping_free(env, lod_dt_obj(dt));
2382
2383         RETURN(rc);
2384 }
2385
2386 /**
2387  * Implementation of dt_object_operations::do_declare_xattr_set.
2388  *
2389  * Used with regular (non-striped) objects. Basically it
2390  * initializes the striping information and applies the
2391  * change to all the stripes.
2392  *
2393  * \see dt_object_operations::do_declare_xattr_set() in the API description
2394  * for details.
2395  */
2396 static int lod_dir_declare_xattr_set(const struct lu_env *env,
2397                                      struct dt_object *dt,
2398                                      const struct lu_buf *buf,
2399                                      const char *name, int fl,
2400                                      struct thandle *th)
2401 {
2402         struct dt_object        *next = dt_object_child(dt);
2403         struct lod_device       *d = lu2lod_dev(dt->do_lu.lo_dev);
2404         struct lod_object       *lo = lod_dt_obj(dt);
2405         int                     i;
2406         int                     rc;
2407         ENTRY;
2408
2409         if (strcmp(name, XATTR_NAME_DEFAULT_LMV) == 0) {
2410                 struct lmv_user_md_v1 *lum;
2411
2412                 LASSERT(buf != NULL && buf->lb_buf != NULL);
2413                 lum = buf->lb_buf;
2414                 rc = lod_verify_md_striping(d, lum);
2415                 if (rc != 0)
2416                         RETURN(rc);
2417         } else if (strcmp(name, XATTR_NAME_LOV) == 0) {
2418                 rc = lod_verify_striping(d, lo, buf, false);
2419                 if (rc != 0)
2420                         RETURN(rc);
2421         }
2422
2423         rc = lod_sub_declare_xattr_set(env, next, buf, name, fl, th);
2424         if (rc != 0)
2425                 RETURN(rc);
2426
2427         /* Note: Do not set LinkEA on sub-stripes, otherwise
2428          * it will confuse the fid2path process(see mdt_path_current()).
2429          * The linkEA between master and sub-stripes is set in
2430          * lod_xattr_set_lmv(). */
2431         if (strcmp(name, XATTR_NAME_LINK) == 0)
2432                 RETURN(0);
2433
2434         /* set xattr to each stripes, if needed */
2435         rc = lod_striping_load(env, lo);
2436         if (rc != 0)
2437                 RETURN(rc);
2438
2439         if (lo->ldo_dir_stripe_count == 0)
2440                 RETURN(0);
2441
2442         for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
2443                 LASSERT(lo->ldo_stripe[i]);
2444
2445                 rc = lod_sub_declare_xattr_set(env, lo->ldo_stripe[i],
2446                                                buf, name, fl, th);
2447                 if (rc != 0)
2448                         break;
2449         }
2450
2451         RETURN(rc);
2452 }
2453
2454 static int
2455 lod_obj_stripe_replace_parent_fid_cb(const struct lu_env *env,
2456                                      struct lod_object *lo,
2457                                      struct dt_object *dt, struct thandle *th,
2458                                      int comp_idx, int stripe_idx,
2459                                      struct lod_obj_stripe_cb_data *data)
2460 {
2461         struct lod_thread_info *info = lod_env_info(env);
2462         struct lod_layout_component *comp = &lo->ldo_comp_entries[comp_idx];
2463         struct filter_fid *ff = &info->lti_ff;
2464         struct lu_buf *buf = &info->lti_buf;
2465         int rc;
2466
2467         buf->lb_buf = ff;
2468         buf->lb_len = sizeof(*ff);
2469         rc = dt_xattr_get(env, dt, buf, XATTR_NAME_FID);
2470         if (rc < 0) {
2471                 if (rc == -ENODATA)
2472                         return 0;
2473                 return rc;
2474         }
2475
2476         filter_fid_le_to_cpu(ff, ff, sizeof(*ff));
2477
2478         /*
2479          * mdd_declare_migrate_create() declares this via source object because
2480          * target is not ready yet, so declare anyway.
2481          */
2482         if (!data->locd_declare &&
2483             lu_fid_eq(lu_object_fid(&lo->ldo_obj.do_lu), &ff->ff_parent) &&
2484             ff->ff_layout.ol_comp_id == comp->llc_id)
2485                 return 0;
2486
2487         /* rewrite filter_fid */
2488         memset(ff, 0, sizeof(*ff));
2489         ff->ff_parent = *lu_object_fid(&lo->ldo_obj.do_lu);
2490         ff->ff_parent.f_ver = stripe_idx;
2491         ff->ff_layout.ol_stripe_size = comp->llc_stripe_size;
2492         ff->ff_layout.ol_stripe_count = comp->llc_stripe_count;
2493         ff->ff_layout.ol_comp_id = comp->llc_id;
2494         ff->ff_layout.ol_comp_start = comp->llc_extent.e_start;
2495         ff->ff_layout.ol_comp_end = comp->llc_extent.e_end;
2496         filter_fid_cpu_to_le(ff, ff, sizeof(*ff));
2497
2498         if (data->locd_declare)
2499                 rc = lod_sub_declare_xattr_set(env, dt, buf, XATTR_NAME_FID,
2500                                                LU_XATTR_REPLACE, th);
2501         else
2502                 rc = lod_sub_xattr_set(env, dt, buf, XATTR_NAME_FID,
2503                                        LU_XATTR_REPLACE, th);
2504
2505         return rc;
2506 }
2507
2508 /**
2509  * Reset parent FID on OST object
2510  *
2511  * Replace parent FID with @dt object FID, which is only called during migration
2512  * to reset the parent FID after the MDT object is migrated to the new MDT, i.e.
2513  * the FID is changed.
2514  *
2515  * \param[in] env execution environment
2516  * \param[in] dt dt_object whose stripes's parent FID will be reset
2517  * \parem[in] th thandle
2518  * \param[in] declare if it is declare
2519  *
2520  * \retval      0 if reset succeeds
2521  * \retval      negative errno if reset fails
2522  */
2523 static int lod_replace_parent_fid(const struct lu_env *env,
2524                                   struct dt_object *dt,
2525                                   struct thandle *th, bool declare)
2526 {
2527         struct lod_object *lo = lod_dt_obj(dt);
2528         struct lod_thread_info  *info = lod_env_info(env);
2529         struct lu_buf *buf = &info->lti_buf;
2530         struct filter_fid *ff;
2531         struct lod_obj_stripe_cb_data data = { { 0 } };
2532         int rc;
2533         ENTRY;
2534
2535         LASSERT(S_ISREG(dt->do_lu.lo_header->loh_attr));
2536
2537         /* set xattr to each stripes, if needed */
2538         rc = lod_striping_load(env, lo);
2539         if (rc != 0)
2540                 RETURN(rc);
2541
2542         if (!lod_obj_is_striped(dt))
2543                 RETURN(0);
2544
2545         if (info->lti_ea_store_size < sizeof(*ff)) {
2546                 rc = lod_ea_store_resize(info, sizeof(*ff));
2547                 if (rc != 0)
2548                         RETURN(rc);
2549         }
2550
2551         buf->lb_buf = info->lti_ea_store;
2552         buf->lb_len = info->lti_ea_store_size;
2553
2554         data.locd_declare = declare;
2555         data.locd_stripe_cb = lod_obj_stripe_replace_parent_fid_cb;
2556         rc = lod_obj_for_each_stripe(env, lo, th, &data);
2557
2558         RETURN(rc);
2559 }
2560
2561 inline __u16 lod_comp_entry_stripe_count(struct lod_object *lo,
2562                                          struct lod_layout_component *entry,
2563                                          bool is_dir)
2564 {
2565         struct lod_device *lod = lu2lod_dev(lod2lu_obj(lo)->lo_dev);
2566
2567         if (is_dir)
2568                 return  0;
2569         else if (lod_comp_inited(entry))
2570                 return entry->llc_stripe_count;
2571         else if ((__u16)-1 == entry->llc_stripe_count)
2572                 return lod->lod_desc.ld_tgt_count;
2573         else
2574                 return lod_get_stripe_count(lod, lo, entry->llc_stripe_count);
2575 }
2576
2577 static int lod_comp_md_size(struct lod_object *lo, bool is_dir)
2578 {
2579         int magic, size = 0, i;
2580         struct lod_layout_component *comp_entries;
2581         __u16 comp_cnt;
2582         bool is_composite;
2583
2584         if (is_dir) {
2585                 comp_cnt = lo->ldo_def_striping->lds_def_comp_cnt;
2586                 comp_entries = lo->ldo_def_striping->lds_def_comp_entries;
2587                 is_composite =
2588                         lo->ldo_def_striping->lds_def_striping_is_composite;
2589         } else {
2590                 comp_cnt = lo->ldo_comp_cnt;
2591                 comp_entries = lo->ldo_comp_entries;
2592                 is_composite = lo->ldo_is_composite;
2593         }
2594
2595
2596         LASSERT(comp_cnt != 0 && comp_entries != NULL);
2597         if (is_composite) {
2598                 size = sizeof(struct lov_comp_md_v1) +
2599                        sizeof(struct lov_comp_md_entry_v1) * comp_cnt;
2600                 LASSERT(size % sizeof(__u64) == 0);
2601         }
2602
2603         for (i = 0; i < comp_cnt; i++) {
2604                 __u16 stripe_count;
2605
2606                 magic = comp_entries[i].llc_pool ? LOV_MAGIC_V3 : LOV_MAGIC_V1;
2607                 stripe_count = lod_comp_entry_stripe_count(lo, &comp_entries[i],
2608                                                            is_dir);
2609                 if (!is_dir && is_composite)
2610                         lod_comp_shrink_stripe_count(&comp_entries[i],
2611                                                      &stripe_count);
2612
2613                 size += lov_user_md_size(stripe_count, magic);
2614                 LASSERT(size % sizeof(__u64) == 0);
2615         }
2616         return size;
2617 }
2618
2619 /**
2620  * Declare component add. The xattr name is XATTR_LUSTRE_LOV.add, and
2621  * the xattr value is binary lov_comp_md_v1 which contains component(s)
2622  * to be added.
2623   *
2624  * \param[in] env       execution environment
2625  * \param[in] dt        dt_object to add components on
2626  * \param[in] buf       buffer contains components to be added
2627  * \parem[in] th        thandle
2628  *
2629  * \retval      0 on success
2630  * \retval      negative errno on failure
2631  */
2632 static int lod_declare_layout_add(const struct lu_env *env,
2633                                   struct dt_object *dt,
2634                                   const struct lu_buf *buf,
2635                                   struct thandle *th)
2636 {
2637         struct lod_thread_info  *info = lod_env_info(env);
2638         struct lod_layout_component *comp_array, *lod_comp, *old_array;
2639         struct lod_device       *d = lu2lod_dev(dt->do_lu.lo_dev);
2640         struct dt_object *next = dt_object_child(dt);
2641         struct lov_desc         *desc = &d->lod_desc;
2642         struct lod_object       *lo = lod_dt_obj(dt);
2643         struct lov_user_md_v3   *v3;
2644         struct lov_comp_md_v1   *comp_v1 = buf->lb_buf;
2645         __u32   magic;
2646         int     i, rc, array_cnt, old_array_cnt;
2647         ENTRY;
2648
2649         LASSERT(lo->ldo_is_composite);
2650
2651         if (lo->ldo_flr_state != LCM_FL_NONE)
2652                 RETURN(-EBUSY);
2653
2654         rc = lod_verify_striping(d, lo, buf, false);
2655         if (rc != 0)
2656                 RETURN(rc);
2657
2658         magic = comp_v1->lcm_magic;
2659         if (magic == __swab32(LOV_USER_MAGIC_COMP_V1)) {
2660                 lustre_swab_lov_comp_md_v1(comp_v1);
2661                 magic = comp_v1->lcm_magic;
2662         }
2663
2664         if (magic != LOV_USER_MAGIC_COMP_V1)
2665                 RETURN(-EINVAL);
2666
2667         array_cnt = lo->ldo_comp_cnt + comp_v1->lcm_entry_count;
2668         OBD_ALLOC(comp_array, sizeof(*comp_array) * array_cnt);
2669         if (comp_array == NULL)
2670                 RETURN(-ENOMEM);
2671
2672         memcpy(comp_array, lo->ldo_comp_entries,
2673                sizeof(*comp_array) * lo->ldo_comp_cnt);
2674
2675         for (i = 0; i < comp_v1->lcm_entry_count; i++) {
2676                 struct lov_user_md_v1 *v1;
2677                 struct lu_extent *ext;
2678
2679                 v1 = (struct lov_user_md *)((char *)comp_v1 +
2680                                 comp_v1->lcm_entries[i].lcme_offset);
2681                 ext = &comp_v1->lcm_entries[i].lcme_extent;
2682
2683                 lod_comp = &comp_array[lo->ldo_comp_cnt + i];
2684                 lod_comp->llc_extent.e_start = ext->e_start;
2685                 lod_comp->llc_extent.e_end = ext->e_end;
2686                 lod_comp->llc_stripe_offset = v1->lmm_stripe_offset;
2687                 lod_comp->llc_flags = comp_v1->lcm_entries[i].lcme_flags;
2688
2689                 lod_comp->llc_stripe_count = v1->lmm_stripe_count;
2690                 lod_comp->llc_stripe_size = v1->lmm_stripe_size;
2691                 lod_adjust_stripe_info(lod_comp, desc);
2692
2693                 if (v1->lmm_magic == LOV_USER_MAGIC_V3) {
2694                         v3 = (struct lov_user_md_v3 *) v1;
2695                         if (v3->lmm_pool_name[0] != '\0') {
2696                                 rc = lod_set_pool(&lod_comp->llc_pool,
2697                                                   v3->lmm_pool_name);
2698                                 if (rc)
2699                                         GOTO(error, rc);
2700                         }
2701                 }
2702         }
2703
2704         old_array = lo->ldo_comp_entries;
2705         old_array_cnt = lo->ldo_comp_cnt;
2706
2707         lo->ldo_comp_entries = comp_array;
2708         lo->ldo_comp_cnt = array_cnt;
2709
2710         /* No need to increase layout generation here, it will be increased
2711          * later when generating component ID for the new components */
2712
2713         info->lti_buf.lb_len = lod_comp_md_size(lo, false);
2714         rc = lod_sub_declare_xattr_set(env, next, &info->lti_buf,
2715                                               XATTR_NAME_LOV, 0, th);
2716         if (rc) {
2717                 lo->ldo_comp_entries = old_array;
2718                 lo->ldo_comp_cnt = old_array_cnt;
2719                 GOTO(error, rc);
2720         }
2721
2722         OBD_FREE(old_array, sizeof(*lod_comp) * old_array_cnt);
2723
2724         LASSERT(lo->ldo_mirror_count == 1);
2725         lo->ldo_mirrors[0].lme_end = array_cnt - 1;
2726
2727         RETURN(0);
2728
2729 error:
2730         for (i = lo->ldo_comp_cnt; i < array_cnt; i++) {
2731                 lod_comp = &comp_array[i];
2732                 if (lod_comp->llc_pool != NULL) {
2733                         OBD_FREE(lod_comp->llc_pool,
2734                                  strlen(lod_comp->llc_pool) + 1);
2735                         lod_comp->llc_pool = NULL;
2736                 }
2737         }
2738         OBD_FREE(comp_array, sizeof(*comp_array) * array_cnt);
2739         RETURN(rc);
2740 }
2741
2742 /**
2743  * Declare component set. The xattr is name XATTR_LUSTRE_LOV.set.$field,
2744  * the '$field' can only be 'flags' now. The xattr value is binary
2745  * lov_comp_md_v1 which contains the component ID(s) and the value of
2746  * the field to be modified.
2747  *
2748  * \param[in] env       execution environment
2749  * \param[in] dt        dt_object to be modified
2750  * \param[in] op        operation string, like "set.flags"
2751  * \param[in] buf       buffer contains components to be set
2752  * \parem[in] th        thandle
2753  *
2754  * \retval      0 on success
2755  * \retval      negative errno on failure
2756  */
2757 static int lod_declare_layout_set(const struct lu_env *env,
2758                                   struct dt_object *dt,
2759                                   char *op, const struct lu_buf *buf,
2760                                   struct thandle *th)
2761 {
2762         struct lod_layout_component     *lod_comp;
2763         struct lod_thread_info  *info = lod_env_info(env);
2764         struct lod_device       *d = lu2lod_dev(dt->do_lu.lo_dev);
2765         struct lod_object       *lo = lod_dt_obj(dt);
2766         struct lov_comp_md_v1   *comp_v1 = buf->lb_buf;
2767         __u32   magic;
2768         int     i, j, rc;
2769         bool    changed = false;
2770         ENTRY;
2771
2772         if (strcmp(op, "set.flags") != 0) {
2773                 CDEBUG(D_LAYOUT, "%s: operation (%s) not supported.\n",
2774                        lod2obd(d)->obd_name, op);
2775                 RETURN(-ENOTSUPP);
2776         }
2777
2778         magic = comp_v1->lcm_magic;
2779         if (magic == __swab32(LOV_USER_MAGIC_COMP_V1)) {
2780                 lustre_swab_lov_comp_md_v1(comp_v1);
2781                 magic = comp_v1->lcm_magic;
2782         }
2783
2784         if (magic != LOV_USER_MAGIC_COMP_V1)
2785                 RETURN(-EINVAL);
2786
2787         if (comp_v1->lcm_entry_count == 0) {
2788                 CDEBUG(D_LAYOUT, "%s: entry count is zero.\n",
2789                        lod2obd(d)->obd_name);
2790                 RETURN(-EINVAL);
2791         }
2792
2793         for (i = 0; i < comp_v1->lcm_entry_count; i++) {
2794                 __u32 id = comp_v1->lcm_entries[i].lcme_id;
2795                 __u32 flags = comp_v1->lcm_entries[i].lcme_flags;
2796
2797                 if (flags & LCME_FL_INIT) {
2798                         if (changed)
2799                                 lod_striping_free(env, lo);
2800                         RETURN(-EINVAL);
2801                 }
2802
2803                 for (j = 0; j < lo->ldo_comp_cnt; j++) {
2804                         lod_comp = &lo->ldo_comp_entries[j];
2805                         if (id != lod_comp->llc_id)
2806                                 continue;
2807
2808                         if (flags & LCME_FL_NEG) {
2809                                 flags &= ~LCME_FL_NEG;
2810                                 lod_comp->llc_flags &= ~flags;
2811                         } else {
2812                                 lod_comp->llc_flags |= flags;
2813                         }
2814                         changed = true;
2815                 }
2816         }
2817
2818         if (!changed) {
2819                 CDEBUG(D_LAYOUT, "%s: requested component(s) not found.\n",
2820                        lod2obd(d)->obd_name);
2821                 RETURN(-EINVAL);
2822         }
2823
2824         lod_obj_inc_layout_gen(lo);
2825
2826         info->lti_buf.lb_len = lod_comp_md_size(lo, false);
2827         rc = lod_sub_declare_xattr_set(env, dt_object_child(dt), &info->lti_buf,
2828                                        XATTR_NAME_LOV, LU_XATTR_REPLACE, th);
2829         RETURN(rc);
2830 }
2831
2832 /**
2833  * Declare component deletion. The xattr name is XATTR_LUSTRE_LOV.del,
2834  * and the xattr value is a unique component ID or a special lcme_id.
2835  *
2836  * \param[in] env       execution environment
2837  * \param[in] dt        dt_object to be operated on
2838  * \param[in] buf       buffer contains component ID or lcme_id
2839  * \parem[in] th        thandle
2840  *
2841  * \retval      0 on success
2842  * \retval      negative errno on failure
2843  */
2844 static int lod_declare_layout_del(const struct lu_env *env,
2845                                   struct dt_object *dt,
2846                                   const struct lu_buf *buf,
2847                                   struct thandle *th)
2848 {
2849         struct lod_thread_info  *info = lod_env_info(env);
2850         struct dt_object *next = dt_object_child(dt);
2851         struct lod_device *d = lu2lod_dev(dt->do_lu.lo_dev);
2852         struct lod_object *lo = lod_dt_obj(dt);
2853         struct lu_attr *attr = &lod_env_info(env)->lti_attr;
2854         struct lov_comp_md_v1 *comp_v1 = buf->lb_buf;
2855         __u32 magic, id, flags, neg_flags = 0;
2856         int rc, i, j, left;
2857         ENTRY;
2858
2859         LASSERT(lo->ldo_is_composite);
2860
2861         if (lo->ldo_flr_state != LCM_FL_NONE)
2862                 RETURN(-EBUSY);
2863
2864         magic = comp_v1->lcm_magic;
2865         if (magic == __swab32(LOV_USER_MAGIC_COMP_V1)) {
2866                 lustre_swab_lov_comp_md_v1(comp_v1);
2867                 magic = comp_v1->lcm_magic;
2868         }
2869
2870         if (magic != LOV_USER_MAGIC_COMP_V1)
2871                 RETURN(-EINVAL);
2872
2873         id = comp_v1->lcm_entries[0].lcme_id;
2874         flags = comp_v1->lcm_entries[0].lcme_flags;
2875
2876         if (id > LCME_ID_MAX || (flags & ~LCME_KNOWN_FLAGS)) {
2877                 CDEBUG(D_LAYOUT, "%s: invalid component id %#x, flags %#x\n",
2878                        lod2obd(d)->obd_name, id, flags);
2879                 RETURN(-EINVAL);
2880         }
2881
2882         if (id != LCME_ID_INVAL && flags != 0) {
2883                 CDEBUG(D_LAYOUT, "%s: specified both id and flags.\n",
2884                        lod2obd(d)->obd_name);
2885                 RETURN(-EINVAL);
2886         }
2887
2888         if (id == LCME_ID_INVAL && !flags) {
2889                 CDEBUG(D_LAYOUT, "%s: no id or flags specified.\n",
2890                        lod2obd(d)->obd_name);
2891                 RETURN(-EINVAL);
2892         }
2893
2894         if (flags & LCME_FL_NEG) {
2895                 neg_flags = flags & ~LCME_FL_NEG;
2896                 flags = 0;
2897         }
2898
2899         left = lo->ldo_comp_cnt;
2900         if (left <= 0)
2901                 RETURN(-EINVAL);
2902
2903         for (i = (lo->ldo_comp_cnt - 1); i >= 0; i--) {
2904                 struct lod_layout_component *lod_comp;
2905
2906                 lod_comp = &lo->ldo_comp_entries[i];
2907
2908                 if (id != LCME_ID_INVAL && id != lod_comp->llc_id)
2909                         continue;
2910                 else if (flags && !(flags & lod_comp->llc_flags))
2911                         continue;
2912                 else if (neg_flags && (neg_flags & lod_comp->llc_flags))
2913                         continue;
2914
2915                 if (left != (i + 1)) {
2916                         CDEBUG(D_LAYOUT, "%s: this deletion will create "
2917                                "a hole.\n", lod2obd(d)->obd_name);
2918                         RETURN(-EINVAL);
2919                 }
2920                 left--;
2921
2922                 /* Mark the component as deleted */
2923                 lod_comp->llc_id = LCME_ID_INVAL;
2924
2925                 /* Not instantiated component */
2926                 if (lod_comp->llc_stripe == NULL)
2927                         continue;
2928
2929                 LASSERT(lod_comp->llc_stripe_count > 0);
2930                 for (j = 0; j < lod_comp->llc_stripe_count; j++) {
2931                         struct dt_object *obj = lod_comp->llc_stripe[j];
2932
2933                         if (obj == NULL)
2934                                 continue;
2935                         rc = lod_sub_declare_destroy(env, obj, th);
2936                         if (rc)
2937                                 RETURN(rc);
2938                 }
2939         }
2940
2941         LASSERTF(left >= 0, "left = %d\n", left);
2942         if (left == lo->ldo_comp_cnt) {
2943                 CDEBUG(D_LAYOUT, "%s: requested component id:%#x not found\n",
2944                        lod2obd(d)->obd_name, id);
2945                 RETURN(-EINVAL);
2946         }
2947
2948         memset(attr, 0, sizeof(*attr));
2949         attr->la_valid = LA_SIZE;
2950         rc = lod_sub_declare_attr_set(env, next, attr, th);
2951         if (rc)
2952                 RETURN(rc);
2953
2954         if (left > 0) {
2955                 info->lti_buf.lb_len = lod_comp_md_size(lo, false);
2956                 rc = lod_sub_declare_xattr_set(env, next, &info->lti_buf,
2957                                                XATTR_NAME_LOV, 0, th);
2958         } else {
2959                 rc = lod_sub_declare_xattr_del(env, next, XATTR_NAME_LOV, th);
2960         }
2961
2962         RETURN(rc);
2963 }
2964
2965 /**
2966  * Declare layout add/set/del operations issued by special xattr names:
2967  *
2968  * XATTR_LUSTRE_LOV.add         add component(s) to existing file
2969  * XATTR_LUSTRE_LOV.del         delete component(s) from existing file
2970  * XATTR_LUSTRE_LOV.set.$field  set specified field of certain component(s)
2971  *
2972  * \param[in] env       execution environment
2973  * \param[in] dt        object
2974  * \param[in] name      name of xattr
2975  * \param[in] buf       lu_buf contains xattr value
2976  * \param[in] th        transaction handle
2977  *
2978  * \retval              0 on success
2979  * \retval              negative if failed
2980  */
2981 static int lod_declare_modify_layout(const struct lu_env *env,
2982                                      struct dt_object *dt,
2983                                      const char *name,
2984                                      const struct lu_buf *buf,
2985                                      struct thandle *th)
2986 {
2987         struct lod_device *d = lu2lod_dev(dt->do_lu.lo_dev);
2988         struct lod_object *lo = lod_dt_obj(dt);
2989         char *op;
2990         int rc, len = strlen(XATTR_LUSTRE_LOV);
2991         ENTRY;
2992
2993         LASSERT(dt_object_exists(dt));
2994
2995         if (strlen(name) <= len || name[len] != '.') {
2996                 CDEBUG(D_LAYOUT, "%s: invalid xattr name: %s\n",
2997                        lod2obd(d)->obd_name, name);
2998                 RETURN(-EINVAL);
2999         }
3000         len++;
3001
3002         rc = lod_striping_load(env, lo);
3003         if (rc)
3004                 GOTO(unlock, rc);
3005
3006         /* the layout to be modified must be a composite layout */
3007         if (!lo->ldo_is_composite) {
3008                 CDEBUG(D_LAYOUT, "%s: object "DFID" isn't a composite file.\n",
3009                        lod2obd(d)->obd_name, PFID(lu_object_fid(&dt->do_lu)));
3010                 GOTO(unlock, rc = -EINVAL);
3011         }
3012
3013         op = (char *)name + len;
3014         if (strcmp(op, "add") == 0) {
3015                 rc = lod_declare_layout_add(env, dt, buf, th);
3016         } else if (strcmp(op, "del") == 0) {
3017                 rc = lod_declare_layout_del(env, dt, buf, th);
3018         } else if (strncmp(op, "set", strlen("set")) == 0) {
3019                 rc = lod_declare_layout_set(env, dt, op, buf, th);
3020         } else  {
3021                 CDEBUG(D_LAYOUT, "%s: unsupported xattr name:%s\n",
3022                        lod2obd(d)->obd_name, name);
3023                 GOTO(unlock, rc = -ENOTSUPP);
3024         }
3025 unlock:
3026         if (rc)
3027                 lod_striping_free(env, lo);
3028
3029         RETURN(rc);
3030 }
3031
3032 /**
3033  * Convert a plain file lov_mds_md to a composite layout.
3034  *
3035  * \param[in,out] info  the thread info::lti_ea_store buffer contains little
3036  *                      endian plain file layout
3037  *
3038  * \retval              0 on success, <0 on failure
3039  */
3040 static int lod_layout_convert(struct lod_thread_info *info)
3041 {
3042         struct lov_mds_md *lmm = info->lti_ea_store;
3043         struct lov_mds_md *lmm_save;
3044         struct lov_comp_md_v1 *lcm;
3045         struct lov_comp_md_entry_v1 *lcme;
3046         size_t size;
3047         __u32 blob_size;
3048         int rc = 0;
3049         ENTRY;
3050
3051         /* realloc buffer to a composite layout which contains one component */
3052         blob_size = lov_mds_md_size(le16_to_cpu(lmm->lmm_stripe_count),
3053                                     le32_to_cpu(lmm->lmm_magic));
3054         size = sizeof(*lcm) + sizeof(*lcme) + blob_size;
3055
3056         OBD_ALLOC_LARGE(lmm_save, blob_size);
3057         if (!lmm_save)
3058                 GOTO(out, rc = -ENOMEM);
3059
3060         memcpy(lmm_save, lmm, blob_size);
3061
3062         if (info->lti_ea_store_size < size) {
3063                 rc = lod_ea_store_resize(info, size);
3064                 if (rc)
3065                         GOTO(out, rc);
3066         }
3067
3068         lcm = info->lti_ea_store;
3069         lcm->lcm_magic = cpu_to_le32(LOV_MAGIC_COMP_V1);
3070         lcm->lcm_size = cpu_to_le32(size);
3071         lcm->lcm_layout_gen = cpu_to_le32(le16_to_cpu(
3072                                                 lmm_save->lmm_layout_gen));
3073         lcm->lcm_flags = cpu_to_le16(LCM_FL_NONE);
3074         lcm->lcm_entry_count = cpu_to_le16(1);
3075         lcm->lcm_mirror_count = 0;
3076
3077         lcme = &lcm->lcm_entries[0];
3078         lcme->lcme_flags = cpu_to_le32(LCME_FL_INIT);
3079         lcme->lcme_extent.e_start = 0;
3080         lcme->lcme_extent.e_end = cpu_to_le64(OBD_OBJECT_EOF);
3081         lcme->lcme_offset = cpu_to_le32(sizeof(*lcm) + sizeof(*lcme));
3082         lcme->lcme_size = cpu_to_le32(blob_size);
3083
3084         memcpy((char *)lcm + lcme->lcme_offset, (char *)lmm_save, blob_size);
3085
3086         EXIT;
3087 out:
3088         if (lmm_save)
3089                 OBD_FREE_LARGE(lmm_save, blob_size);
3090         return rc;
3091 }
3092
3093 /**
3094  * Merge layouts to form a mirrored file.
3095  */
3096 static int lod_declare_layout_merge(const struct lu_env *env,
3097                 struct dt_object *dt, const struct lu_buf *mbuf,
3098                 struct thandle *th)
3099 {
3100         struct lod_thread_info  *info = lod_env_info(env);
3101         struct lu_buf           *buf = &info->lti_buf;
3102         struct lod_object       *lo = lod_dt_obj(dt);
3103         struct lov_comp_md_v1   *lcm;
3104         struct lov_comp_md_v1   *cur_lcm;
3105         struct lov_comp_md_v1   *merge_lcm;
3106         struct lov_comp_md_entry_v1     *lcme;
3107         size_t size = 0;
3108         size_t offset;
3109         __u16 cur_entry_count;
3110         __u16 merge_entry_count;
3111         __u32 id = 0;
3112         __u16 mirror_id = 0;
3113         __u32 mirror_count;
3114         int     rc, i;
3115         ENTRY;
3116
3117         merge_lcm = mbuf->lb_buf;
3118         if (mbuf->lb_len < sizeof(*merge_lcm))
3119                 RETURN(-EINVAL);
3120
3121         /* must be an existing layout from disk */
3122         if (le32_to_cpu(merge_lcm->lcm_magic) != LOV_MAGIC_COMP_V1)
3123                 RETURN(-EINVAL);
3124
3125         merge_entry_count = le16_to_cpu(merge_lcm->lcm_entry_count);
3126
3127         /* do not allow to merge two mirrored files */
3128         if (le16_to_cpu(merge_lcm->lcm_mirror_count))
3129                 RETURN(-EBUSY);
3130
3131         /* verify the target buffer */
3132         rc = lod_get_lov_ea(env, lo);
3133         if (rc <= 0)
3134                 RETURN(rc ? : -ENODATA);
3135
3136         cur_lcm = info->lti_ea_store;
3137         switch (le32_to_cpu(cur_lcm->lcm_magic)) {
3138         case LOV_MAGIC_V1:
3139         case LOV_MAGIC_V3:
3140                 rc = lod_layout_convert(info);
3141                 break;
3142         case LOV_MAGIC_COMP_V1:
3143                 rc = 0;
3144                 break;
3145         default:
3146                 rc = -EINVAL;
3147         }
3148         if (rc)
3149                 RETURN(rc);
3150
3151         /* info->lti_ea_store could be reallocated in lod_layout_convert() */
3152         cur_lcm = info->lti_ea_store;
3153         cur_entry_count = le16_to_cpu(cur_lcm->lcm_entry_count);
3154
3155         /* 'lcm_mirror_count + 1' is the current # of mirrors the file has */
3156         mirror_count = le16_to_cpu(cur_lcm->lcm_mirror_count) + 1;
3157         if (mirror_count + 1 > LUSTRE_MIRROR_COUNT_MAX)
3158                 RETURN(-ERANGE);
3159
3160         /* size of new layout */
3161         size = le32_to_cpu(cur_lcm->lcm_size) +
3162                le32_to_cpu(merge_lcm->lcm_size) - sizeof(*cur_lcm);
3163
3164         memset(buf, 0, sizeof(*buf));
3165         lu_buf_alloc(buf, size);
3166         if (buf->lb_buf == NULL)
3167                 RETURN(-ENOMEM);
3168
3169         lcm = buf->lb_buf;
3170         memcpy(lcm, cur_lcm, sizeof(*lcm) + cur_entry_count * sizeof(*lcme));
3171
3172         offset = sizeof(*lcm) +
3173                  sizeof(*lcme) * (cur_entry_count + merge_entry_count);
3174         for (i = 0; i < cur_entry_count; i++) {
3175                 struct lov_comp_md_entry_v1 *cur_lcme;
3176
3177                 lcme = &lcm->lcm_entries[i];
3178                 cur_lcme = &cur_lcm->lcm_entries[i];
3179
3180                 lcme->lcme_offset = cpu_to_le32(offset);
3181                 memcpy((char *)lcm + offset,
3182                        (char *)cur_lcm + le32_to_cpu(cur_lcme->lcme_offset),
3183                        le32_to_cpu(lcme->lcme_size));
3184
3185                 offset += le32_to_cpu(lcme->lcme_size);
3186
3187                 if (mirror_count == 1 &&
3188                     mirror_id_of(le32_to_cpu(lcme->lcme_id)) == 0) {
3189                         /* Add mirror from a non-flr file, create new mirror ID.
3190                          * Otherwise, keep existing mirror's component ID, used
3191                          * for mirror extension.
3192                          */
3193                         id = pflr_id(1, i + 1);
3194                         lcme->lcme_id = cpu_to_le32(id);
3195                 }
3196
3197                 id = MAX(le32_to_cpu(lcme->lcme_id), id);
3198         }
3199
3200         mirror_id = mirror_id_of(id) + 1;
3201         for (i = 0; i < merge_entry_count; i++) {
3202                 struct lov_comp_md_entry_v1 *merge_lcme;
3203
3204                 merge_lcme = &merge_lcm->lcm_entries[i];
3205                 lcme = &lcm->lcm_entries[cur_entry_count + i];
3206
3207                 *lcme = *merge_lcme;
3208                 lcme->lcme_offset = cpu_to_le32(offset);
3209
3210                 id = pflr_id(mirror_id, i + 1);
3211                 lcme->lcme_id = cpu_to_le32(id);
3212
3213                 memcpy((char *)lcm + offset,
3214                        (char *)merge_lcm + le32_to_cpu(merge_lcme->lcme_offset),
3215                        le32_to_cpu(lcme->lcme_size));
3216
3217                 offset += le32_to_cpu(lcme->lcme_size);
3218         }
3219
3220         /* fixup layout information */
3221         lod_obj_inc_layout_gen(lo);
3222         lcm->lcm_layout_gen = cpu_to_le32(lo->ldo_layout_gen);
3223         lcm->lcm_size = cpu_to_le32(size);
3224         lcm->lcm_entry_count = cpu_to_le16(cur_entry_count + merge_entry_count);
3225         lcm->lcm_mirror_count = cpu_to_le16(mirror_count);
3226         if ((le16_to_cpu(lcm->lcm_flags) & LCM_FL_FLR_MASK) == LCM_FL_NONE)
3227                 lcm->lcm_flags = cpu_to_le32(LCM_FL_RDONLY);
3228
3229         rc = lod_striping_reload(env, lo, buf);
3230         if (rc)
3231                 GOTO(out, rc);
3232
3233         rc = lod_sub_declare_xattr_set(env, dt_object_child(dt), buf,
3234                                         XATTR_NAME_LOV, LU_XATTR_REPLACE, th);
3235
3236 out:
3237         lu_buf_free(buf);
3238         RETURN(rc);
3239 }
3240
3241 /**
3242  * Split layouts, just set the LOVEA with the layout from mbuf.
3243  */
3244 static int lod_declare_layout_split(const struct lu_env *env,
3245                 struct dt_object *dt, const struct lu_buf *mbuf,
3246                 struct thandle *th)
3247 {
3248         struct lod_object *lo = lod_dt_obj(dt);
3249         struct lov_comp_md_v1 *lcm = mbuf->lb_buf;
3250         int rc;
3251         ENTRY;
3252
3253         lod_obj_inc_layout_gen(lo);
3254         lcm->lcm_layout_gen = cpu_to_le32(lo->ldo_layout_gen);
3255
3256         rc = lod_striping_reload(env, lo, mbuf);
3257         if (rc)
3258                 RETURN(rc);
3259
3260         rc = lod_sub_declare_xattr_set(env, dt_object_child(dt), mbuf,
3261                                        XATTR_NAME_LOV, LU_XATTR_REPLACE, th);
3262         RETURN(rc);
3263 }
3264
3265 /**
3266  * Implementation of dt_object_operations::do_declare_xattr_set.
3267  *
3268  * \see dt_object_operations::do_declare_xattr_set() in the API description
3269  * for details.
3270  *
3271  * the extension to the API:
3272  *   - declaring LOVEA requests striping creation
3273  *   - LU_XATTR_REPLACE means layout swap
3274  */
3275 static int lod_declare_xattr_set(const struct lu_env *env,
3276                                  struct dt_object *dt,
3277                                  const struct lu_buf *buf,
3278                                  const char *name, int fl,
3279                                  struct thandle *th)
3280 {
3281         struct dt_object *next = dt_object_child(dt);
3282         struct lu_attr   *attr = &lod_env_info(env)->lti_attr;
3283         __u32             mode;
3284         int               rc;
3285         ENTRY;
3286
3287         mode = dt->do_lu.lo_header->loh_attr & S_IFMT;
3288         if ((S_ISREG(mode) || mode == 0) &&
3289             !(fl & (LU_XATTR_REPLACE | LU_XATTR_MERGE | LU_XATTR_SPLIT)) &&
3290             (strcmp(name, XATTR_NAME_LOV) == 0 ||
3291              strcmp(name, XATTR_LUSTRE_LOV) == 0)) {
3292                 /*
3293                  * this is a request to create object's striping.
3294                  *
3295                  * allow to declare predefined striping on a new (!mode) object
3296                  * which is supposed to be replay of regular file creation
3297                  * (when LOV setting is declared)
3298                  *
3299                  * LU_XATTR_REPLACE is set to indicate a layout swap
3300                  */
3301                 if (dt_object_exists(dt)) {
3302                         rc = dt_attr_get(env, next, attr);
3303                         if (rc)
3304                                 RETURN(rc);
3305                 } else {
3306                         memset(attr, 0, sizeof(*attr));
3307                         attr->la_valid = LA_TYPE | LA_MODE;
3308                         attr->la_mode = S_IFREG;
3309                 }
3310                 rc = lod_declare_striped_create(env, dt, attr, buf, th);
3311         } else if (fl & LU_XATTR_MERGE) {
3312                 LASSERT(strcmp(name, XATTR_NAME_LOV) == 0 ||
3313                         strcmp(name, XATTR_LUSTRE_LOV) == 0);
3314                 rc = lod_declare_layout_merge(env, dt, buf, th);
3315         } else if (fl & LU_XATTR_SPLIT) {
3316                 LASSERT(strcmp(name, XATTR_NAME_LOV) == 0 ||
3317                         strcmp(name, XATTR_LUSTRE_LOV) == 0);
3318                 rc = lod_declare_layout_split(env, dt, buf, th);
3319         } else if (S_ISREG(mode) &&
3320                    strlen(name) > strlen(XATTR_LUSTRE_LOV) + 1 &&
3321                    strncmp(name, XATTR_LUSTRE_LOV,
3322                            strlen(XATTR_LUSTRE_LOV)) == 0) {
3323                 /*
3324                  * this is a request to modify object's striping.
3325                  * add/set/del component(s).
3326                  */
3327                 if (!dt_object_exists(dt))
3328                         RETURN(-ENOENT);
3329
3330                 rc = lod_declare_modify_layout(env, dt, name, buf, th);
3331         } else if (strncmp(name, XATTR_NAME_LMV, strlen(XATTR_NAME_LMV)) == 0 &&
3332                    strlen(name) > strlen(XATTR_NAME_LMV) + 1) {
3333                 const char *op = name + strlen(XATTR_NAME_LMV) + 1;
3334
3335                 rc = -ENOTSUPP;
3336                 if (strcmp(op, "add") == 0)
3337                         rc = lod_dir_declare_layout_add(env, dt, buf, th);
3338                 else if (strcmp(op, "del") == 0)
3339                         rc = lod_dir_declare_layout_delete(env, dt, buf, th);
3340                 else if (strcmp(op, "set") == 0)
3341                         rc = lod_sub_declare_xattr_set(env, next, buf,
3342                                                        XATTR_NAME_LMV, fl, th);
3343
3344                 RETURN(rc);
3345         } else if (S_ISDIR(mode)) {
3346                 rc = lod_dir_declare_xattr_set(env, dt, buf, name, fl, th);
3347         } else if (strcmp(name, XATTR_NAME_FID) == 0) {
3348                 rc = lod_replace_parent_fid(env, dt, th, true);
3349         } else {
3350                 rc = lod_sub_declare_xattr_set(env, next, buf, name, fl, th);
3351         }
3352
3353         RETURN(rc);
3354 }
3355
3356 /**
3357  * Apply xattr changes to the object.
3358  *
3359  * Applies xattr changes to the object and the stripes if the latter exist.
3360  *
3361  * \param[in] env       execution environment
3362  * \param[in] dt        object
3363  * \param[in] buf       buffer pointing to the new value of xattr
3364  * \param[in] name      name of xattr
3365  * \param[in] fl        flags
3366  * \param[in] th        transaction handle
3367  *
3368  * \retval              0 on success
3369  * \retval              negative if failed
3370  */
3371 static int lod_xattr_set_internal(const struct lu_env *env,
3372                                   struct dt_object *dt,
3373                                   const struct lu_buf *buf,
3374                                   const char *name, int fl,
3375                                   struct thandle *th)
3376 {
3377         struct dt_object        *next = dt_object_child(dt);
3378         struct lod_object       *lo = lod_dt_obj(dt);
3379         int                     rc;
3380         int                     i;
3381         ENTRY;
3382
3383         rc = lod_sub_xattr_set(env, next, buf, name, fl, th);
3384         if (rc != 0 || !S_ISDIR(dt->do_lu.lo_header->loh_attr))
3385                 RETURN(rc);
3386
3387         /* Note: Do not set LinkEA on sub-stripes, otherwise
3388          * it will confuse the fid2path process(see mdt_path_current()).
3389          * The linkEA between master and sub-stripes is set in
3390          * lod_xattr_set_lmv(). */
3391         if (lo->ldo_dir_stripe_count == 0 || strcmp(name, XATTR_NAME_LINK) == 0)
3392                 RETURN(0);
3393
3394         for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
3395                 LASSERT(lo->ldo_stripe[i]);
3396
3397                 rc = lod_sub_xattr_set(env, lo->ldo_stripe[i], buf, name,
3398                                        fl, th);
3399                 if (rc != 0)
3400                         break;
3401         }
3402
3403         RETURN(rc);
3404 }
3405
3406 /**
3407  * Delete an extended attribute.
3408  *
3409  * Deletes specified xattr from the object and the stripes if the latter exist.
3410  *
3411  * \param[in] env       execution environment
3412  * \param[in] dt        object
3413  * \param[in] name      name of xattr
3414  * \param[in] th        transaction handle
3415  *
3416  * \retval              0 on success
3417  * \retval              negative if failed
3418  */
3419 static int lod_xattr_del_internal(const struct lu_env *env,
3420                                   struct dt_object *dt,
3421                                   const char *name, struct thandle *th)
3422 {
3423         struct dt_object        *next = dt_object_child(dt);
3424         struct lod_object       *lo = lod_dt_obj(dt);
3425         int                     rc;
3426         int                     i;
3427         ENTRY;
3428
3429         rc = lod_sub_xattr_del(env, next, name, th);
3430         if (rc != 0 || !S_ISDIR(dt->do_lu.lo_header->loh_attr))
3431                 RETURN(rc);
3432
3433         if (lo->ldo_dir_stripe_count == 0)
3434                 RETURN(rc);
3435
3436         for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
3437                 LASSERT(lo->ldo_stripe[i]);
3438
3439                 rc = lod_sub_xattr_del(env, lo->ldo_stripe[i], name, th);
3440                 if (rc != 0)
3441                         break;
3442         }
3443
3444         RETURN(rc);
3445 }
3446
3447 /**
3448  * Set default striping on a directory.
3449  *
3450  * Sets specified striping on a directory object unless it matches the default
3451  * striping (LOVEA_DELETE_VALUES() macro). In the latter case remove existing
3452  * EA. This striping will be used when regular file is being created in this
3453  * directory.
3454  *
3455  * \param[in] env       execution environment
3456  * \param[in] dt        the striped object
3457  * \param[in] buf       buffer with the striping
3458  * \param[in] name      name of EA
3459  * \param[in] fl        xattr flag (see OSD API description)
3460  * \param[in] th        transaction handle
3461  *
3462  * \retval              0 on success
3463  * \retval              negative if failed
3464  */
3465 static int lod_xattr_set_lov_on_dir(const struct lu_env *env,
3466                                     struct dt_object *dt,
3467                                     const struct lu_buf *buf,
3468                                     const char *name, int fl,
3469                                     struct thandle *th)
3470 {
3471         struct lov_user_md_v1   *lum;
3472         struct lov_user_md_v3   *v3 = NULL;
3473         const char              *pool_name = NULL;
3474         int                      rc;
3475         bool                     is_del;
3476         ENTRY;
3477
3478         LASSERT(buf != NULL && buf->lb_buf != NULL);
3479         lum = buf->lb_buf;
3480
3481         switch (lum->lmm_magic) {
3482         case LOV_USER_MAGIC_SPECIFIC:
3483         case LOV_USER_MAGIC_V3:
3484                 v3 = buf->lb_buf;
3485                 if (v3->lmm_pool_name[0] != '\0')
3486                         pool_name = v3->lmm_pool_name;
3487                 /* fall through */
3488         case LOV_USER_MAGIC_V1:
3489                 /* if { size, offset, count } = { 0, -1, 0 } and no pool
3490                  * (i.e. all default values specified) then delete default
3491                  * striping from dir. */
3492                 CDEBUG(D_LAYOUT,
3493                        "set default striping: sz %u # %u offset %d %s %s\n",
3494                        (unsigned)lum->lmm_stripe_size,
3495                        (unsigned)lum->lmm_stripe_count,
3496                        (int)lum->lmm_stripe_offset,
3497                        v3 ? "from" : "", v3 ? v3->lmm_pool_name : "");
3498
3499                 is_del = LOVEA_DELETE_VALUES(lum->lmm_stripe_size,
3500                                              lum->lmm_stripe_count,
3501                                              lum->lmm_stripe_offset,
3502                                              pool_name);
3503                 break;
3504         case LOV_USER_MAGIC_COMP_V1:
3505                 is_del = false;
3506                 break;
3507         default:
3508                 CERROR("Invalid magic %x\n", lum->lmm_magic);
3509                 RETURN(-EINVAL);
3510         }
3511
3512         if (is_del) {
3513                 rc = lod_xattr_del_internal(env, dt, name, th);
3514                 if (rc == -ENODATA)
3515                         rc = 0;
3516         } else {
3517                 rc = lod_xattr_set_internal(env, dt, buf, name, fl, th);
3518         }
3519
3520         RETURN(rc);
3521 }
3522
3523 /**
3524  * Set default striping on a directory object.
3525  *
3526  * Sets specified striping on a directory object unless it matches the default
3527  * striping (LOVEA_DELETE_VALUES() macro). In the latter case remove existing
3528  * EA. This striping will be used when a new directory is being created in the
3529  * directory.
3530  *
3531  * \param[in] env       execution environment
3532  * \param[in] dt        the striped object
3533  * \param[in] buf       buffer with the striping
3534  * \param[in] name      name of EA
3535  * \param[in] fl        xattr flag (see OSD API description)
3536  * \param[in] th        transaction handle
3537  *
3538  * \retval              0 on success
3539  * \retval              negative if failed
3540  */
3541 static int lod_xattr_set_default_lmv_on_dir(const struct lu_env *env,
3542                                             struct dt_object *dt,
3543                                             const struct lu_buf *buf,
3544                                             const char *name, int fl,
3545                                             struct thandle *th)
3546 {
3547         struct lmv_user_md_v1   *lum;
3548         int                      rc;
3549         ENTRY;
3550
3551         LASSERT(buf != NULL && buf->lb_buf != NULL);
3552         lum = buf->lb_buf;
3553
3554         CDEBUG(D_OTHER, "set default stripe_count # %u stripe_offset %d\n",
3555               le32_to_cpu(lum->lum_stripe_count),
3556               (int)le32_to_cpu(lum->lum_stripe_offset));
3557
3558         if (LMVEA_DELETE_VALUES((le32_to_cpu(lum->lum_stripe_count)),
3559                                  le32_to_cpu(lum->lum_stripe_offset)) &&
3560                                 le32_to_cpu(lum->lum_magic) == LMV_USER_MAGIC) {
3561                 rc = lod_xattr_del_internal(env, dt, name, th);
3562                 if (rc == -ENODATA)
3563                         rc = 0;
3564         } else {
3565                 rc = lod_xattr_set_internal(env, dt, buf, name, fl, th);
3566                 if (rc != 0)
3567                         RETURN(rc);
3568         }
3569
3570         RETURN(rc);
3571 }
3572
3573 /**
3574  * Turn directory into a striped directory.
3575  *
3576  * During replay the client sends the striping created before MDT
3577  * failure, then the layer above LOD sends this defined striping
3578  * using ->do_xattr_set(), so LOD uses this method to replay creation
3579  * of the stripes. Notice the original information for the striping
3580  * (#stripes, FIDs, etc) was transferred in declare path.
3581  *
3582  * \param[in] env       execution environment
3583  * \param[in] dt        the striped object
3584  * \param[in] buf       not used currently
3585  * \param[in] name      not used currently
3586  * \param[in] fl        xattr flag (see OSD API description)
3587  * \param[in] th        transaction handle
3588  *
3589  * \retval              0 on success
3590  * \retval              negative if failed
3591  */
3592 static int lod_xattr_set_lmv(const struct lu_env *env, struct dt_object *dt,
3593                              const struct lu_buf *buf, const char *name,
3594                              int fl, struct thandle *th)
3595 {
3596         struct lod_object       *lo = lod_dt_obj(dt);
3597         struct lod_thread_info  *info = lod_env_info(env);
3598         struct lu_attr          *attr = &info->lti_attr;
3599         struct dt_object_format *dof = &info->lti_format;
3600         struct lu_buf           lmv_buf;
3601         struct lu_buf           slave_lmv_buf;
3602         struct lmv_mds_md_v1    *lmm;
3603         struct lmv_mds_md_v1    *slave_lmm = NULL;
3604         struct dt_insert_rec    *rec = &info->lti_dt_rec;
3605         int                     i;
3606         int                     rc;
3607         ENTRY;
3608
3609         if (!S_ISDIR(dt->do_lu.lo_header->loh_attr))
3610                 RETURN(-ENOTDIR);
3611
3612         /* The stripes are supposed to be allocated in declare phase,
3613          * if there are no stripes being allocated, it will skip */
3614         if (lo->ldo_dir_stripe_count == 0)
3615                 RETURN(0);
3616
3617         rc = dt_attr_get(env, dt_object_child(dt), attr);
3618         if (rc != 0)
3619                 RETURN(rc);
3620
3621         attr->la_valid = LA_ATIME | LA_MTIME | LA_CTIME |
3622                          LA_MODE | LA_UID | LA_GID | LA_TYPE | LA_PROJID;
3623         dof->dof_type = DFT_DIR;
3624
3625         rc = lod_prep_lmv_md(env, dt, &lmv_buf);
3626         if (rc != 0)
3627                 RETURN(rc);
3628         lmm = lmv_buf.lb_buf;
3629
3630         OBD_ALLOC_PTR(slave_lmm);
3631         if (slave_lmm == NULL)
3632                 RETURN(-ENOMEM);
3633
3634         lod_prep_slave_lmv_md(slave_lmm, lmm);
3635         slave_lmv_buf.lb_buf = slave_lmm;
3636         slave_lmv_buf.lb_len = sizeof(*slave_lmm);
3637
3638         rec->rec_type = S_IFDIR;
3639         for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
3640                 struct dt_object *dto = lo->ldo_stripe[i];
3641                 char *stripe_name = info->lti_key;
3642                 struct lu_name *sname;
3643                 struct linkea_data ldata = { NULL };
3644                 struct lu_buf linkea_buf;
3645
3646                 /* if it's source stripe of migrating directory, don't create */
3647                 if (!((lo->ldo_dir_hash_type & LMV_HASH_FLAG_MIGRATION) &&
3648                       i >= lo->ldo_dir_migrate_offset)) {
3649                         dt_write_lock(env, dto, MOR_TGT_CHILD);
3650                         rc = lod_sub_create(env, dto, attr, NULL, dof, th);
3651                         if (rc != 0) {
3652                                 dt_write_unlock(env, dto);
3653                                 GOTO(out, rc);
3654                         }
3655
3656                         rc = lod_sub_ref_add(env, dto, th);
3657                         dt_write_unlock(env, dto);
3658                         if (rc != 0)
3659                                 GOTO(out, rc);
3660
3661                         rec->rec_fid = lu_object_fid(&dto->do_lu);
3662                         rc = lod_sub_insert(env, dto,
3663                                             (const struct dt_rec *)rec,
3664                                             (const struct dt_key *)dot, th, 0);
3665                         if (rc != 0)
3666                                 GOTO(out, rc);
3667                 }
3668
3669                 rec->rec_fid = lu_object_fid(&dt->do_lu);
3670                 rc = lod_sub_insert(env, dto, (struct dt_rec *)rec,
3671                                     (const struct dt_key *)dotdot, th, 0);
3672                 if (rc != 0)
3673                         GOTO(out, rc);
3674
3675                 if (!OBD_FAIL_CHECK(OBD_FAIL_LFSCK_LOST_SLAVE_LMV) ||
3676                     cfs_fail_val != i) {
3677                         if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_BAD_SLAVE_LMV) &&
3678                             cfs_fail_val == i)
3679                                 slave_lmm->lmv_master_mdt_index =
3680                                                         cpu_to_le32(i + 1);
3681                         else
3682                                 slave_lmm->lmv_master_mdt_index =
3683                                                         cpu_to_le32(i);
3684
3685                         rc = lod_sub_xattr_set(env, dto, &slave_lmv_buf,
3686                                                XATTR_NAME_LMV, fl, th);
3687                         if (rc != 0)
3688                                 GOTO(out, rc);
3689                 }
3690
3691                 if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_BAD_SLAVE_NAME) &&
3692                     cfs_fail_val == i)
3693                         snprintf(stripe_name, sizeof(info->lti_key), DFID":%d",
3694                                  PFID(lu_object_fid(&dto->do_lu)), i + 1);
3695                 else
3696                         snprintf(stripe_name, sizeof(info->lti_key), DFID":%d",
3697                                  PFID(lu_object_fid(&dto->do_lu)), i);
3698
3699                 sname = lod_name_get(env, stripe_name, strlen(stripe_name));
3700                 rc = linkea_links_new(&ldata, &info->lti_linkea_buf,
3701                                       sname, lu_object_fid(&dt->do_lu));
3702                 if (rc != 0)
3703                         GOTO(out, rc);
3704
3705                 linkea_buf.lb_buf = ldata.ld_buf->lb_buf;
3706                 linkea_buf.lb_len = ldata.ld_leh->leh_len;
3707                 rc = lod_sub_xattr_set(env, dto, &linkea_buf,
3708                                        XATTR_NAME_LINK, 0, th);
3709                 if (rc != 0)
3710                         GOTO(out, rc);
3711
3712                 rec->rec_fid = lu_object_fid(&dto->do_lu);
3713                 rc = lod_sub_insert(env, dt_object_child(dt),
3714                                     (const struct dt_rec *)rec,
3715                                     (const struct dt_key *)stripe_name, th, 0);
3716                 if (rc != 0)
3717                         GOTO(out, rc);
3718
3719                 rc = lod_sub_ref_add(env, dt_object_child(dt), th);
3720                 if (rc != 0)
3721                         GOTO(out, rc);
3722         }
3723
3724         if (!OBD_FAIL_CHECK(OBD_FAIL_LFSCK_LOST_MASTER_LMV))
3725                 rc = lod_sub_xattr_set(env, dt_object_child(dt),
3726                                        &lmv_buf, XATTR_NAME_LMV, fl, th);
3727 out:
3728         if (slave_lmm != NULL)
3729                 OBD_FREE_PTR(slave_lmm);
3730
3731         RETURN(rc);
3732 }
3733
3734 /**
3735  * Helper function to declare/execute creation of a striped directory
3736  *
3737  * Called in declare/create object path, prepare striping for a directory
3738  * and prepare defaults data striping for the objects to be created in
3739  * that directory. Notice the function calls "declaration" or "execution"
3740  * methods depending on \a declare param. This is a consequence of the
3741  * current approach while we don't have natural distributed transactions:
3742  * we basically execute non-local updates in the declare phase. So, the
3743  * arguments for the both phases are the same and this is the reason for
3744  * this function to exist.
3745  *
3746  * \param[in] env       execution environment
3747  * \param[in] dt        object
3748  * \param[in] attr      attributes the stripes will be created with
3749  * \param[in] lmu       lmv_user_md if MDT indices are specified
3750  * \param[in] dof       format of stripes (see OSD API description)
3751  * \param[in] th        transaction handle
3752  * \param[in] declare   where to call "declare" or "execute" methods
3753  *
3754  * \retval              0 on success
3755  * \retval              negative if failed
3756  */
3757 static int lod_dir_striping_create_internal(const struct lu_env *env,
3758                                             struct dt_object *dt,
3759                                             struct lu_attr *attr,
3760                                             const struct lu_buf *lmu,
3761                                             struct dt_object_format *dof,
3762                                             struct thandle *th,
3763                                             bool declare)
3764 {
3765         struct lod_thread_info *info = lod_env_info(env);
3766         struct lod_object *lo = lod_dt_obj(dt);
3767         const struct lod_default_striping *lds = lo->ldo_def_striping;
3768         int rc;
3769         ENTRY;
3770
3771         LASSERT(ergo(lds != NULL,
3772                      lds->lds_def_striping_set ||
3773                      lds->lds_dir_def_striping_set));
3774
3775         if (!LMVEA_DELETE_VALUES(lo->ldo_dir_stripe_count,
3776                                  lo->ldo_dir_stripe_offset)) {
3777                 if (!lmu) {
3778                         struct lmv_user_md_v1 *v1 = info->lti_ea_store;
3779                         int stripe_count = lo->ldo_dir_stripe_count;
3780
3781                         if (info->lti_ea_store_size < sizeof(*v1)) {
3782                                 rc = lod_ea_store_resize(info, sizeof(*v1));
3783                                 if (rc != 0)
3784                                         RETURN(rc);
3785                                 v1 = info->lti_ea_store;
3786                         }
3787
3788                         memset(v1, 0, sizeof(*v1));
3789                         v1->lum_magic = cpu_to_le32(LMV_USER_MAGIC);
3790                         v1->lum_stripe_count = cpu_to_le32(stripe_count);
3791                         v1->lum_stripe_offset =
3792                                         cpu_to_le32(lo->ldo_dir_stripe_offset);
3793
3794                         info->lti_buf.lb_buf = v1;
3795                         info->lti_buf.lb_len = sizeof(*v1);
3796                         lmu = &info->lti_buf;
3797                 }
3798
3799                 if (declare)
3800                         rc = lod_declare_xattr_set_lmv(env, dt, attr, lmu, dof,
3801                                                        th);
3802                 else
3803                         rc = lod_xattr_set_lmv(env, dt, lmu, XATTR_NAME_LMV, 0,
3804                                                th);
3805                 if (rc != 0)
3806                         RETURN(rc);
3807         }
3808
3809         /* Transfer default LMV striping from the parent */
3810         if (lds != NULL && lds->lds_dir_def_striping_set &&
3811             !LMVEA_DELETE_VALUES(lds->lds_dir_def_stripe_count,
3812                                  lds->lds_dir_def_stripe_offset)) {
3813                 struct lmv_user_md_v1 *v1 = info->lti_ea_store;
3814
3815                 if (info->lti_ea_store_size < sizeof(*v1)) {
3816                         rc = lod_ea_store_resize(info, sizeof(*v1));
3817                         if (rc != 0)
3818                                 RETURN(rc);
3819                         v1 = info->lti_ea_store;
3820                 }
3821
3822                 memset(v1, 0, sizeof(*v1));
3823                 v1->lum_magic = cpu_to_le32(LMV_USER_MAGIC);
3824                 v1->lum_stripe_count =
3825                         cpu_to_le32(lds->lds_dir_def_stripe_count);
3826                 v1->lum_stripe_offset =
3827                         cpu_to_le32(lds->lds_dir_def_stripe_offset);
3828                 v1->lum_hash_type =
3829                         cpu_to_le32(lds->lds_dir_def_hash_type);
3830
3831                 info->lti_buf.lb_buf = v1;
3832                 info->lti_buf.lb_len = sizeof(*v1);
3833                 if (declare)
3834                         rc = lod_dir_declare_xattr_set(env, dt, &info->lti_buf,
3835                                                        XATTR_NAME_DEFAULT_LMV,
3836                                                        0, th);
3837                 else
3838                         rc = lod_xattr_set_default_lmv_on_dir(env, dt,
3839                                                   &info->lti_buf,
3840                                                   XATTR_NAME_DEFAULT_LMV, 0,
3841                                                   th);
3842                 if (rc != 0)
3843                         RETURN(rc);
3844         }
3845
3846         /* Transfer default LOV striping from the parent */
3847         if (lds != NULL && lds->lds_def_striping_set &&
3848             lds->lds_def_comp_cnt != 0) {
3849                 struct lov_mds_md *lmm;
3850                 int lmm_size = lod_comp_md_size(lo, true);
3851
3852                 if (info->lti_ea_store_size < lmm_size) {
3853                         rc = lod_ea_store_resize(info, lmm_size);
3854                         if (rc != 0)
3855                                 RETURN(rc);
3856                 }
3857                 lmm = info->lti_ea_store;
3858
3859                 rc = lod_generate_lovea(env, lo, lmm, &lmm_size, true);
3860                 if (rc != 0)
3861                         RETURN(rc);
3862
3863                 info->lti_buf.lb_buf = lmm;
3864                 info->lti_buf.lb_len = lmm_size;
3865
3866                 if (declare)
3867                         rc = lod_dir_declare_xattr_set(env, dt, &info->lti_buf,
3868                                                        XATTR_NAME_LOV, 0, th);
3869                 else
3870                         rc = lod_xattr_set_lov_on_dir(env, dt, &info->lti_buf,
3871                                                       XATTR_NAME_LOV, 0, th);
3872                 if (rc != 0)
3873                         RETURN(rc);
3874         }
3875
3876         RETURN(0);
3877 }
3878
3879 static int lod_declare_dir_striping_create(const struct lu_env *env,
3880                                            struct dt_object *dt,
3881                                            struct lu_attr *attr,
3882                                            struct lu_buf *lmu,
3883                                            struct dt_object_format *dof,
3884                                            struct thandle *th)
3885 {
3886         return lod_dir_striping_create_internal(env, dt, attr, lmu, dof, th,
3887                                                 true);
3888 }
3889
3890 static int lod_dir_striping_create(const struct lu_env *env,
3891                                    struct dt_object *dt,
3892                                    struct lu_attr *attr,
3893                                    struct dt_object_format *dof,
3894                                    struct thandle *th)
3895 {
3896         return lod_dir_striping_create_internal(env, dt, attr, NULL, dof, th,
3897                                                 false);
3898 }
3899
3900 /**
3901  * Make LOV EA for striped object.
3902  *
3903  * Generate striping information and store it in the LOV EA of the given
3904  * object. The caller must ensure nobody else is calling the function
3905  * against the object concurrently. The transaction must be started.
3906  * FLDB service must be running as well; it's used to map FID to the target,
3907  * which is stored in LOV EA.
3908  *
3909  * \param[in] env               execution environment for this thread
3910  * \param[in] lo                LOD object
3911  * \param[in] th                transaction handle
3912  *
3913  * \retval                      0 if LOV EA is stored successfully
3914  * \retval                      negative error number on failure
3915  */
3916 static int lod_generate_and_set_lovea(const struct lu_env *env,
3917                                       struct lod_object *lo,
3918                                       struct thandle *th)
3919 {
3920         struct lod_thread_info  *info = lod_env_info(env);
3921         struct dt_object        *next = dt_object_child(&lo->ldo_obj);
3922         struct lov_mds_md_v1    *lmm;
3923         int                      rc, lmm_size;
3924         ENTRY;
3925
3926         LASSERT(lo);
3927
3928         if (lo->ldo_comp_cnt == 0) {
3929                 lod_striping_free(env, lo);
3930                 rc = lod_sub_xattr_del(env, next, XATTR_NAME_LOV, th);
3931                 RETURN(rc);
3932         }
3933
3934         lmm_size = lod_comp_md_size(lo, false);
3935         if (info->lti_ea_store_size < lmm_size) {
3936                 rc = lod_ea_store_resize(info, lmm_size);
3937                 if (rc)
3938                         RETURN(rc);
3939         }
3940         lmm = info->lti_ea_store;
3941
3942         rc = lod_generate_lovea(env, lo, lmm, &lmm_size, false);
3943         if (rc)
3944                 RETURN(rc);
3945
3946         info->lti_buf.lb_buf = lmm;
3947         info->lti_buf.lb_len = lmm_size;
3948         rc = lod_sub_xattr_set(env, next, &info->lti_buf,
3949                                XATTR_NAME_LOV, 0, th);
3950         RETURN(rc);
3951 }
3952
3953 /**
3954  * Delete layout component(s)
3955  *
3956  * \param[in] env       execution environment for this thread
3957  * \param[in] dt        object
3958  * \param[in] th        transaction handle
3959  *
3960  * \retval      0 on success
3961  * \retval      negative error number on failure
3962  */
3963 static int lod_layout_del(const struct lu_env *env, struct dt_object *dt,
3964                           struct thandle *th)
3965 {
3966         struct lod_layout_component     *lod_comp;
3967         struct lod_object       *lo = lod_dt_obj(dt);
3968         struct dt_object        *next = dt_object_child(dt);
3969         struct lu_attr  *attr = &lod_env_info(env)->lti_attr;
3970         int     rc, i, j, left;
3971
3972         LASSERT(lo->ldo_is_composite);
3973         LASSERT(lo->ldo_comp_cnt > 0 && lo->ldo_comp_entries != NULL);
3974
3975         left = lo->ldo_comp_cnt;
3976         for (i = (lo->ldo_comp_cnt - 1); i >= 0; i--) {
3977                 lod_comp = &lo->ldo_comp_entries[i];
3978
3979                 if (lod_comp->llc_id != LCME_ID_INVAL)
3980                         break;
3981                 left--;
3982
3983                 /* Not instantiated component */
3984                 if (lod_comp->llc_stripe == NULL)
3985                         continue;
3986
3987                 LASSERT(lod_comp->llc_stripe_count > 0);
3988                 for (j = 0; j < lod_comp->llc_stripe_count; j++) {
3989                         struct dt_object *obj = lod_comp->llc_stripe[j];
3990
3991                         if (obj == NULL)
3992                                 continue;
3993                         rc = lod_sub_destroy(env, obj, th);
3994                         if (rc)
3995                                 GOTO(out, rc);
3996
3997                         lu_object_put(env, &obj->do_lu);
3998                         lod_comp->llc_stripe[j] = NULL;
3999                 }
4000                 OBD_FREE(lod_comp->llc_stripe, sizeof(struct dt_object *) *
4001                                         lod_comp->llc_stripes_allocated);
4002                 lod_comp->llc_stripe = NULL;
4003                 OBD_FREE(lod_comp->llc_ost_indices,
4004                          sizeof(__u32) * lod_comp->llc_stripes_allocated);
4005                 lod_comp->llc_ost_indices = NULL;
4006                 lod_comp->llc_stripes_allocated = 0;
4007                 lod_obj_set_pool(lo, i, NULL);
4008                 if (lod_comp->llc_ostlist.op_array) {
4009                         OBD_FREE(lod_comp->llc_ostlist.op_array,
4010                                  lod_comp->llc_ostlist.op_size);
4011                         lod_comp->llc_ostlist.op_array = NULL;
4012                         lod_comp->llc_ostlist.op_size = 0;
4013                 }
4014         }
4015
4016         LASSERTF(left >= 0 && left < lo->ldo_comp_cnt, "left = %d\n", left);
4017         if (left > 0) {
4018                 struct lod_layout_component     *comp_array;
4019
4020                 OBD_ALLOC(comp_array, sizeof(*comp_array) * left);
4021                 if (comp_array == NULL)
4022                         GOTO(out, rc = -ENOMEM);
4023
4024                 memcpy(&comp_array[0], &lo->ldo_comp_entries[0],
4025                        sizeof(*comp_array) * left);
4026
4027                 OBD_FREE(lo->ldo_comp_entries,
4028                          sizeof(*comp_array) * lo->ldo_comp_cnt);
4029                 lo->ldo_comp_entries = comp_array;
4030                 lo->ldo_comp_cnt = left;
4031
4032                 LASSERT(lo->ldo_mirror_count == 1);
4033                 lo->ldo_mirrors[0].lme_end = left - 1;
4034                 lod_obj_inc_layout_gen(lo);
4035         } else {
4036                 lod_free_comp_entries(lo);
4037         }
4038
4039         LASSERT(dt_object_exists(dt));
4040         rc = dt_attr_get(env, next, attr);
4041         if (rc)
4042                 GOTO(out, rc);
4043
4044         if (attr->la_size > 0) {
4045                 attr->la_size = 0;
4046                 attr->la_valid = LA_SIZE;
4047                 rc = lod_sub_attr_set(env, next, attr, th);
4048                 if (rc)
4049                         GOTO(out, rc);
4050         }
4051
4052         rc = lod_generate_and_set_lovea(env, lo, th);
4053         EXIT;
4054 out:
4055         if (rc)
4056                 lod_striping_free(env, lo);
4057         return rc;
4058 }
4059
4060
4061 static int lod_get_default_lov_striping(const struct lu_env *env,
4062                                         struct lod_object *lo,
4063                                         struct lod_default_striping *lds);
4064 /**
4065  * Implementation of dt_object_operations::do_xattr_set.
4066  *
4067  * Sets specified extended attribute on the object. Three types of EAs are
4068  * special:
4069  *   LOV EA - stores striping for a regular file or default striping (when set
4070  *            on a directory)
4071  *   LMV EA - stores a marker for the striped directories
4072  *   DMV EA - stores default directory striping
4073  *
4074  * When striping is applied to a non-striped existing object (this is called
4075  * late striping), then LOD notices the caller wants to turn the object into a
4076  * striped one. The stripe objects are created and appropriate EA is set:
4077  * LOV EA storing all the stripes directly or LMV EA storing just a small header
4078  * with striping configuration.
4079  *
4080  * \see dt_object_operations::do_xattr_set() in the API description for details.
4081  */
4082 static int lod_xattr_set(const struct lu_env *env,
4083                          struct dt_object *dt, const struct lu_buf *buf,
4084                          const char *name, int fl, struct thandle *th)
4085 {
4086         struct dt_object        *next = dt_object_child(dt);
4087         int                      rc;
4088         ENTRY;
4089
4090         if (S_ISDIR(dt->do_lu.lo_header->loh_attr) &&
4091             strcmp(name, XATTR_NAME_LMV) == 0) {
4092                 rc = lod_dir_striping_create(env, dt, NULL, NULL, th);
4093                 RETURN(rc);
4094         } else if (S_ISDIR(dt->do_lu.lo_header->loh_attr) &&
4095                    strncmp(name, XATTR_NAME_LMV, strlen(XATTR_NAME_LMV)) == 0 &&
4096                    strlen(name) > strlen(XATTR_NAME_LMV) + 1) {
4097                 const char *op = name + strlen(XATTR_NAME_LMV) + 1;
4098
4099                 rc = -ENOTSUPP;
4100                 /*
4101                  * XATTR_NAME_LMV".add" is never called, but only declared,
4102                  * because lod_xattr_set_lmv() will do the addition.
4103                  */
4104                 if (strcmp(op, "del") == 0)
4105                         rc = lod_dir_layout_delete(env, dt, buf, th);
4106                 else if (strcmp(op, "set") == 0)
4107                         rc = lod_sub_xattr_set(env, next, buf, XATTR_NAME_LMV,
4108                                                fl, th);
4109
4110                 RETURN(rc);
4111         } else if (S_ISDIR(dt->do_lu.lo_header->loh_attr) &&
4112             strcmp(name, XATTR_NAME_LOV) == 0) {
4113                 struct lod_thread_info *info = lod_env_info(env);
4114                 struct lod_default_striping *lds = &info->lti_def_striping;
4115                 struct lov_user_md_v1 *v1 = buf->lb_buf;
4116                 char pool[LOV_MAXPOOLNAME + 1];
4117                 bool is_del;
4118
4119                 /* get existing striping config */
4120                 rc = lod_get_default_lov_striping(env, lod_dt_obj(dt), lds);
4121                 if (rc)
4122                         RETURN(rc);
4123
4124                 memset(pool, 0, sizeof(pool));
4125                 if (lds->lds_def_striping_set == 1)
4126                         lod_layout_get_pool(lds->lds_def_comp_entries,
4127                                             lds->lds_def_comp_cnt, pool,
4128                                             sizeof(pool));
4129
4130                 is_del = LOVEA_DELETE_VALUES(v1->lmm_stripe_size,
4131                                              v1->lmm_stripe_count,
4132                                              v1->lmm_stripe_offset,
4133                                              NULL);
4134
4135                 /* Retain the pool name if it is not given */
4136                 if (v1->lmm_magic == LOV_USER_MAGIC_V1 && pool[0] != '\0' &&
4137                         !is_del) {
4138                         struct lod_thread_info *info = lod_env_info(env);
4139                         struct lov_user_md_v3 *v3  = info->lti_ea_store;
4140
4141                         memset(v3, 0, sizeof(*v3));
4142                         v3->lmm_magic = cpu_to_le32(LOV_USER_MAGIC_V3);
4143                         v3->lmm_pattern = cpu_to_le32(v1->lmm_pattern);
4144                         v3->lmm_stripe_count =
4145                                         cpu_to_le32(v1->lmm_stripe_count);
4146                         v3->lmm_stripe_offset =
4147                                         cpu_to_le32(v1->lmm_stripe_offset);
4148                         v3->lmm_stripe_size = cpu_to_le32(v1->lmm_stripe_size);
4149
4150                         strlcpy(v3->lmm_pool_name, pool,
4151                                 sizeof(v3->lmm_pool_name));
4152
4153                         info->lti_buf.lb_buf = v3;
4154                         info->lti_buf.lb_len = sizeof(*v3);
4155                         rc = lod_xattr_set_lov_on_dir(env, dt, &info->lti_buf,
4156                                                       name, fl, th);
4157                 } else {
4158                         rc = lod_xattr_set_lov_on_dir(env, dt, buf, name,
4159                                                       fl, th);
4160                 }
4161
4162                 if (lds->lds_def_striping_set == 1 &&
4163                     lds->lds_def_comp_entries != NULL)
4164                         lod_free_def_comp_entries(lds);
4165
4166                 RETURN(rc);
4167         } else if (S_ISDIR(dt->do_lu.lo_header->loh_attr) &&
4168                    strcmp(name, XATTR_NAME_DEFAULT_LMV) == 0) {
4169                 /* default LMVEA */
4170                 rc = lod_xattr_set_default_lmv_on_dir(env, dt, buf, name, fl,
4171                                                       th);
4172                 RETURN(rc);
4173         } else if (S_ISREG(dt->do_lu.lo_header->loh_attr) &&
4174                    (!strcmp(name, XATTR_NAME_LOV) ||
4175                     !strncmp(name, XATTR_LUSTRE_LOV,
4176                              strlen(XATTR_LUSTRE_LOV)))) {
4177                 /* in case of lov EA swap, just set it
4178                  * if not, it is a replay so check striping match what we
4179                  * already have during req replay, declare_xattr_set()
4180                  * defines striping, then create() does the work */
4181                 if (fl & LU_XATTR_REPLACE) {
4182                         /* free stripes, then update disk */
4183                         lod_striping_free(env, lod_dt_obj(dt));
4184
4185                         rc = lod_sub_xattr_set(env, next, buf, name, fl, th);
4186                 } else if (dt_object_remote(dt)) {
4187                         /* This only happens during migration, see
4188                          * mdd_migrate_create(), in which Master MDT will
4189                          * create a remote target object, and only set
4190                          * (migrating) stripe EA on the remote object,
4191                          * and does not need creating each stripes. */
4192                         rc = lod_sub_xattr_set(env, next, buf, name,
4193                                                       fl, th);
4194                 } else if (strcmp(name, XATTR_LUSTRE_LOV".del") == 0) {
4195                         /* delete component(s) */
4196                         LASSERT(lod_dt_obj(dt)->ldo_comp_cached);
4197                         rc = lod_layout_del(env, dt, th);
4198                 } else {
4199                         /*
4200                          * When 'name' is XATTR_LUSTRE_LOV or XATTR_NAME_LOV,
4201                          * it's going to create create file with specified
4202                          * component(s), the striping must have not being
4203                          * cached in this case;
4204                          *
4205                          * Otherwise, it's going to add/change component(s) to
4206                          * an existing file, the striping must have been cached
4207                          * in this case.
4208                          */
4209                         LASSERT(equi(!strcmp(name, XATTR_LUSTRE_LOV) ||
4210                                      !strcmp(name, XATTR_NAME_LOV),
4211                                 !lod_dt_obj(dt)->ldo_comp_cached));
4212
4213                         rc = lod_striped_create(env, dt, NULL, NULL, th);
4214                 }
4215                 RETURN(rc);
4216         } else if (strcmp(name, XATTR_NAME_FID) == 0) {
4217                 rc = lod_replace_parent_fid(env, dt, th, false);
4218
4219                 RETURN(rc);
4220         }
4221
4222         /* then all other xattr */
4223         rc = lod_xattr_set_internal(env, dt, buf, name, fl, th);
4224
4225         RETURN(rc);
4226 }
4227
4228 /**
4229  * Implementation of dt_object_operations::do_declare_xattr_del.
4230  *
4231  * \see dt_object_operations::do_declare_xattr_del() in the API description
4232  * for details.
4233  */
4234 static int lod_declare_xattr_del(const struct lu_env *env,
4235                                  struct dt_object *dt, const char *name,
4236                                  struct thandle *th)
4237 {
4238         struct lod_object *lo = lod_dt_obj(dt);
4239         struct dt_object *next = dt_object_child(dt);
4240         int i;
4241         int rc;
4242         ENTRY;
4243
4244         rc = lod_sub_declare_xattr_del(env, next, name, th);
4245         if (rc != 0)
4246                 RETURN(rc);
4247
4248         if (!S_ISDIR(dt->do_lu.lo_header->loh_attr))
4249                 RETURN(0);
4250
4251         /* set xattr to each stripes, if needed */
4252         rc = lod_striping_load(env, lo);
4253         if (rc != 0)
4254                 RETURN(rc);
4255
4256         if (lo->ldo_dir_stripe_count == 0)
4257                 RETURN(0);
4258
4259         for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
4260                 struct dt_object *dto = lo->ldo_stripe[i];
4261
4262                 LASSERT(dto);
4263                 rc = lod_sub_declare_xattr_del(env, dto, name, th);
4264                 if (rc != 0)
4265                         break;
4266         }
4267
4268         RETURN(rc);
4269 }
4270
4271 /**
4272  * Implementation of dt_object_operations::do_xattr_del.
4273  *
4274  * If EA storing a regular striping is being deleted, then release
4275  * all the references to the stripe objects in core.
4276  *
4277  * \see dt_object_operations::do_xattr_del() in the API description for details.
4278  */
4279 static int lod_xattr_del(const struct lu_env *env, struct dt_object *dt,
4280                          const char *name, struct thandle *th)
4281 {
4282         struct dt_object        *next = dt_object_child(dt);
4283         struct lod_object       *lo = lod_dt_obj(dt);
4284         int                     rc;
4285         int                     i;
4286         ENTRY;
4287
4288         if (!strcmp(name, XATTR_NAME_LOV) || !strcmp(name, XATTR_NAME_LMV))
4289                 lod_striping_free(env, lod_dt_obj(dt));
4290
4291         rc = lod_sub_xattr_del(env, next, name, th);
4292         if (rc != 0 || !S_ISDIR(dt->do_lu.lo_header->loh_attr))
4293                 RETURN(rc);
4294
4295         if (lo->ldo_dir_stripe_count == 0)
4296                 RETURN(0);
4297
4298         for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
4299                 struct dt_object *dto = lo->ldo_stripe[i];
4300
4301                 LASSERT(dto);
4302
4303                 rc = lod_sub_xattr_del(env, dto, name, th);
4304                 if (rc != 0)
4305                         break;
4306         }
4307
4308         RETURN(rc);
4309 }
4310
4311 /**
4312  * Implementation of dt_object_operations::do_xattr_list.
4313  *
4314  * \see dt_object_operations::do_xattr_list() in the API description
4315  * for details.
4316  */
4317 static int lod_xattr_list(const struct lu_env *env,
4318                           struct dt_object *dt, const struct lu_buf *buf)
4319 {
4320         return dt_xattr_list(env, dt_object_child(dt), buf);
4321 }
4322
4323 static inline int lod_object_will_be_striped(int is_reg, const struct lu_fid *fid)
4324 {
4325         return (is_reg && fid_seq(fid) != FID_SEQ_LOCAL_FILE);
4326 }
4327
4328 /**
4329  * Copy OST list from layout provided by user.
4330  *
4331  * \param[in] lod_comp          layout_component to be filled
4332  * \param[in] v3                LOV EA V3 user data
4333  *
4334  * \retval              0 on success
4335  * \retval              negative if failed
4336  */
4337 int lod_comp_copy_ost_lists(struct lod_layout_component *lod_comp,
4338                             struct lov_user_md_v3 *v3)
4339 {
4340         int j;
4341
4342         ENTRY;
4343
4344         if (v3->lmm_stripe_offset == LOV_OFFSET_DEFAULT)
4345                 v3->lmm_stripe_offset = v3->lmm_objects[0].l_ost_idx;
4346
4347         if (lod_comp->llc_ostlist.op_array) {
4348                 if (lod_comp->llc_ostlist.op_size >=
4349                     v3->lmm_stripe_count * sizeof(__u32))  {
4350                         lod_comp->llc_ostlist.op_count =
4351                                         v3->lmm_stripe_count;
4352                         goto skip;
4353                 }
4354                 OBD_FREE(lod_comp->llc_ostlist.op_array,
4355                          lod_comp->llc_ostlist.op_size);
4356         }
4357
4358         /* copy ost list from lmm */
4359         lod_comp->llc_ostlist.op_count = v3->lmm_stripe_count;
4360         lod_comp->llc_ostlist.op_size = v3->lmm_stripe_count * sizeof(__u32);
4361         OBD_ALLOC(lod_comp->llc_ostlist.op_array,
4362                   lod_comp->llc_ostlist.op_size);
4363         if (!lod_comp->llc_ostlist.op_array)
4364                 RETURN(-ENOMEM);
4365 skip:
4366         for (j = 0; j < v3->lmm_stripe_count; j++) {
4367                 lod_comp->llc_ostlist.op_array[j] =
4368                         v3->lmm_objects[j].l_ost_idx;
4369         }
4370
4371         RETURN(0);
4372 }
4373
4374
4375 /**
4376  * Get default striping.
4377  *
4378  * \param[in] env               execution environment
4379  * \param[in] lo                object
4380  * \param[out] lds              default striping
4381  *
4382  * \retval              0 on success
4383  * \retval              negative if failed
4384  */
4385 static int lod_get_default_lov_striping(const struct lu_env *env,
4386                                         struct lod_object *lo,
4387                                         struct lod_default_striping *lds)
4388 {
4389         struct lod_thread_info *info = lod_env_info(env);
4390         struct lov_user_md_v1 *v1 = NULL;
4391         struct lov_user_md_v3 *v3 = NULL;
4392         struct lov_comp_md_v1 *comp_v1 = NULL;
4393         __u16   comp_cnt;
4394         __u16   mirror_cnt;
4395         bool    composite;
4396         int     rc, i, j;
4397         ENTRY;
4398
4399         lds->lds_def_striping_set = 0;
4400
4401         rc = lod_get_lov_ea(env, lo);
4402         if (rc < 0)
4403                 RETURN(rc);
4404
4405         if (rc < (typeof(rc))sizeof(struct lov_user_md))
4406                 RETURN(0);
4407
4408         v1 = info->lti_ea_store;
4409         if (v1->lmm_magic == __swab32(LOV_USER_MAGIC_V1)) {
4410                 lustre_swab_lov_user_md_v1(v1);
4411         } else if (v1->lmm_magic == __swab32(LOV_USER_MAGIC_V3)) {
4412                 v3 = (struct lov_user_md_v3 *)v1;
4413                 lustre_swab_lov_user_md_v3(v3);
4414         } else if (v1->lmm_magic == __swab32(LOV_USER_MAGIC_SPECIFIC)) {
4415                 v3 = (struct lov_user_md_v3 *)v1;
4416                 lustre_swab_lov_user_md_v3(v3);
4417                 lustre_swab_lov_user_md_objects(v3->lmm_objects,
4418                                                 v3->lmm_stripe_count);
4419         } else if (v1->lmm_magic == __swab32(LOV_USER_MAGIC_COMP_V1)) {
4420                 comp_v1 = (struct lov_comp_md_v1 *)v1;
4421                 lustre_swab_lov_comp_md_v1(comp_v1);
4422         }
4423
4424         if (v1->lmm_magic != LOV_MAGIC_V3 && v1->lmm_magic != LOV_MAGIC_V1 &&
4425             v1->lmm_magic != LOV_MAGIC_COMP_V1 &&
4426             v1->lmm_magic != LOV_USER_MAGIC_SPECIFIC)
4427                 RETURN(-ENOTSUPP);
4428
4429         if (v1->lmm_magic == LOV_MAGIC_COMP_V1) {
4430                 comp_v1 = (struct lov_comp_md_v1 *)v1;
4431                 comp_cnt = comp_v1->lcm_entry_count;
4432                 if (comp_cnt == 0)
4433                         RETURN(-EINVAL);
4434                 mirror_cnt = comp_v1->lcm_mirror_count + 1;
4435                 composite = true;
4436         } else {
4437                 comp_cnt = 1;
4438                 mirror_cnt = 0;
4439                 composite = false;
4440         }
4441
4442         /* realloc default comp entries if necessary */
4443         rc = lod_def_striping_comp_resize(lds, comp_cnt);
4444         if (rc < 0)
4445                 RETURN(rc);
4446
4447         lds->lds_def_comp_cnt = comp_cnt;
4448         lds->lds_def_striping_is_composite = composite;
4449         lds->lds_def_mirror_cnt = mirror_cnt;
4450
4451         for (i = 0; i < comp_cnt; i++) {
4452                 struct lod_layout_component *lod_comp;
4453                 struct lu_extent *ext;
4454                 char *pool;
4455
4456                 lod_comp = &lds->lds_def_comp_entries[i];
4457                 /*
4458                  * reset lod_comp values, llc_stripes is always NULL in
4459                  * the default striping template, llc_pool will be reset
4460                  * later below.
4461                  */
4462                 memset(lod_comp, 0, offsetof(typeof(*lod_comp), llc_pool));
4463
4464                 if (composite) {
4465                         v1 = (struct lov_user_md *)((char *)comp_v1 +
4466                                         comp_v1->lcm_entries[i].lcme_offset);
4467                         ext = &comp_v1->lcm_entries[i].lcme_extent;
4468                         lod_comp->llc_extent = *ext;
4469                 }
4470
4471                 if (v1->lmm_pattern != LOV_PATTERN_RAID0 &&
4472                     v1->lmm_pattern != LOV_PATTERN_MDT &&
4473                     v1->lmm_pattern != 0) {
4474                         lod_free_def_comp_entries(lds);
4475                         RETURN(-EINVAL);
4476                 }
4477
4478                 CDEBUG(D_LAYOUT, DFID" stripe_count=%d stripe_size=%d "
4479                        "stripe_offset=%d\n",
4480                        PFID(lu_object_fid(&lo->ldo_obj.do_lu)),
4481                        (int)v1->lmm_stripe_count, (int)v1->lmm_stripe_size,
4482                        (int)v1->lmm_stripe_offset);
4483
4484                 lod_comp->llc_stripe_count = v1->lmm_stripe_count;
4485                 lod_comp->llc_stripe_size = v1->lmm_stripe_size;
4486                 lod_comp->llc_stripe_offset = v1->lmm_stripe_offset;
4487                 lod_comp->llc_pattern = v1->lmm_pattern;
4488
4489                 pool = NULL;
4490                 if (v1->lmm_magic == LOV_USER_MAGIC_V3) {
4491                         /* XXX: sanity check here */
4492                         v3 = (struct lov_user_md_v3 *) v1;
4493                         if (v3->lmm_pool_name[0] != '\0')
4494                                 pool = v3->lmm_pool_name;
4495                 }
4496                 lod_set_def_pool(lds, i, pool);
4497                 if (v1->lmm_magic == LOV_USER_MAGIC_SPECIFIC) {
4498                         v3 = (struct lov_user_md_v3 *)v1;
4499                         rc = lod_comp_copy_ost_lists(lod_comp, v3);
4500                         if (rc)
4501                                 RETURN(rc);
4502                 } else if (lod_comp->llc_ostlist.op_array &&
4503                            lod_comp->llc_ostlist.op_count) {
4504                         for (j = 0; j < lod_comp->llc_ostlist.op_count; j++)
4505                                 lod_comp->llc_ostlist.op_array[j] = -1;
4506                         lod_comp->llc_ostlist.op_count = 0;
4507                 }
4508         }
4509
4510         lds->lds_def_striping_set = 1;
4511         RETURN(rc);
4512 }
4513
4514 /**
4515  * Get default directory striping.
4516  *
4517  * \param[in] env               execution environment
4518  * \param[in] lo                object
4519  * \param[out] lds              default striping
4520  *
4521  * \retval              0 on success
4522  * \retval              negative if failed
4523  */
4524 static int lod_get_default_lmv_striping(const struct lu_env *env,
4525                                         struct lod_object *lo,
4526                                         struct lod_default_striping *lds)
4527 {
4528         struct lod_thread_info  *info = lod_env_info(env);
4529         struct lmv_user_md_v1   *v1 = NULL;
4530         int                      rc;
4531         ENTRY;
4532
4533         lds->lds_dir_def_striping_set = 0;
4534         rc = lod_get_default_lmv_ea(env, lo);
4535         if (rc < 0)
4536                 RETURN(rc);
4537
4538         if (rc < (typeof(rc))sizeof(struct lmv_user_md))
4539                 RETURN(0);
4540
4541         v1 = info->lti_ea_store;
4542
4543         lds->lds_dir_def_stripe_count = le32_to_cpu(v1->lum_stripe_count);
4544         lds->lds_dir_def_stripe_offset = le32_to_cpu(v1->lum_stripe_offset);
4545         lds->lds_dir_def_hash_type = le32_to_cpu(v1->lum_hash_type);
4546         lds->lds_dir_def_striping_set = 1;
4547
4548         RETURN(0);
4549 }
4550
4551 /**
4552  * Get default striping in the object.
4553  *
4554  * Get object default striping and default directory striping.
4555  *
4556  * \param[in] env               execution environment
4557  * \param[in] lo                object
4558  * \param[out] lds              default striping
4559  *
4560  * \retval              0 on success
4561  * \retval              negative if failed
4562  */
4563 static int lod_get_default_striping(const struct lu_env *env,
4564                                     struct lod_object *lo,
4565                                     struct lod_default_striping *lds)
4566 {
4567         int rc, rc1;
4568
4569         rc = lod_get_default_lov_striping(env, lo, lds);
4570         rc1 = lod_get_default_lmv_striping(env, lo, lds);
4571         if (rc == 0 && rc1 < 0)
4572                 rc = rc1;
4573
4574         return rc;
4575 }
4576
4577 /**
4578  * Apply default striping on object.
4579  *
4580  * If object striping pattern is not set, set to the one in default striping.
4581  * The default striping is from parent or fs.
4582  *
4583  * \param[in] lo                new object
4584  * \param[in] lds               default striping
4585  * \param[in] mode              new object's mode
4586  */
4587 static void lod_striping_from_default(struct lod_object *lo,
4588                                       const struct lod_default_striping *lds,
4589                                       umode_t mode)
4590 {
4591         struct lod_device *d = lu2lod_dev(lo->ldo_obj.do_lu.lo_dev);
4592         struct lov_desc *desc = &d->lod_desc;
4593         int i, rc;
4594
4595         if (lds->lds_def_striping_set && S_ISREG(mode)) {
4596                 rc = lod_alloc_comp_entries(lo, lds->lds_def_mirror_cnt,
4597                                             lds->lds_def_comp_cnt);
4598                 if (rc != 0)
4599                         return;
4600
4601                 lo->ldo_is_composite = lds->lds_def_striping_is_composite;
4602                 if (lds->lds_def_mirror_cnt > 1)
4603                         lo->ldo_flr_state = LCM_FL_RDONLY;
4604
4605                 for (i = 0; i < lo->ldo_comp_cnt; i++) {
4606                         struct lod_layout_component *obj_comp =
4607                                                 &lo->ldo_comp_entries[i];
4608                         struct lod_layout_component *def_comp =
4609                                                 &lds->lds_def_comp_entries[i];
4610
4611                         CDEBUG(D_LAYOUT, "Inherite from default: size:%hu "
4612                                "nr:%u offset:%u pattern %#x %s\n",
4613                                def_comp->llc_stripe_size,
4614                                def_comp->llc_stripe_count,
4615                                def_comp->llc_stripe_offset,
4616                                def_comp->llc_pattern,
4617                                def_comp->llc_pool ?: "");
4618
4619                         *obj_comp = *def_comp;
4620                         if (def_comp->llc_pool != NULL) {
4621                                 /* pointer was copied from def_comp */
4622                                 obj_comp->llc_pool = NULL;
4623                                 lod_obj_set_pool(lo, i, def_comp->llc_pool);
4624                         }
4625
4626                         /* copy ost list */
4627                         if (def_comp->llc_ostlist.op_array &&
4628                             def_comp->llc_ostlist.op_count) {
4629                                 OBD_ALLOC(obj_comp->llc_ostlist.op_array,
4630                                           obj_comp->llc_ostlist.op_size);
4631                                 if (!obj_comp->llc_ostlist.op_array)
4632                                         return;
4633                                 memcpy(obj_comp->llc_ostlist.op_array,
4634                                        def_comp->llc_ostlist.op_array,
4635                                        obj_comp->llc_ostlist.op_size);
4636                         } else if (def_comp->llc_ostlist.op_array) {
4637                                 obj_comp->llc_ostlist.op_array = NULL;
4638                         }
4639
4640                         /*
4641                          * Don't initialize these fields for plain layout
4642                          * (v1/v3) here, they are inherited in the order of
4643                          * 'parent' -> 'fs default (root)' -> 'global default
4644                          * values for stripe_count & stripe_size'.
4645                          *
4646                          * see lod_ah_init().
4647                          */
4648                         if (!lo->ldo_is_composite)
4649                                 continue;
4650
4651                         lod_adjust_stripe_info(obj_comp, desc);
4652                 }
4653         } else if (lds->lds_dir_def_striping_set && S_ISDIR(mode)) {
4654                 if (lo->ldo_dir_stripe_count == 0)
4655                         lo->ldo_dir_stripe_count =
4656                                 lds->lds_dir_def_stripe_count;
4657                 if (lo->ldo_dir_stripe_offset == -1)
4658                         lo->ldo_dir_stripe_offset =
4659                                 lds->lds_dir_def_stripe_offset;
4660                 if (lo->ldo_dir_hash_type == 0)
4661                         lo->ldo_dir_hash_type = lds->lds_dir_def_hash_type;
4662
4663                 CDEBUG(D_LAYOUT, "striping from default dir: count:%hu, "
4664                        "offset:%u, hash_type:%u\n",
4665                        lo->ldo_dir_stripe_count, lo->ldo_dir_stripe_offset,
4666                        lo->ldo_dir_hash_type);
4667         }
4668 }
4669
4670 static inline bool lod_need_inherit_more(struct lod_object *lo, bool from_root)
4671 {
4672         struct lod_layout_component *lod_comp;
4673
4674         if (lo->ldo_comp_cnt == 0)
4675                 return true;
4676
4677         if (lo->ldo_is_composite)
4678                 return false;
4679
4680         lod_comp = &lo->ldo_comp_entries[0];
4681
4682         if (lod_comp->llc_stripe_count <= 0 ||
4683             lod_comp->llc_stripe_size <= 0)
4684                 return true;
4685
4686         if (from_root && (lod_comp->llc_pool == NULL ||
4687                           lod_comp->llc_stripe_offset == LOV_OFFSET_DEFAULT))
4688                 return true;
4689
4690         return false;
4691 }
4692
4693 /**
4694  * Implementation of dt_object_operations::do_ah_init.
4695  *
4696  * This method is used to make a decision on the striping configuration for the
4697  * object being created. It can be taken from the \a parent object if it exists,
4698  * or filesystem's default. The resulting configuration (number of stripes,
4699  * stripe size/offset, pool name, etc) is stored in the object itself and will
4700  * be used by the methods like ->doo_declare_create().
4701  *
4702  * \see dt_object_operations::do_ah_init() in the API description for details.
4703  */
4704 static void lod_ah_init(const struct lu_env *env,
4705                         struct dt_allocation_hint *ah,
4706                         struct dt_object *parent,
4707                         struct dt_object *child,
4708                         umode_t child_mode)
4709 {
4710         struct lod_device *d = lu2lod_dev(child->do_lu.lo_dev);
4711         struct lod_thread_info *info = lod_env_info(env);
4712         struct lod_default_striping *lds = &info->lti_def_striping;
4713         struct dt_object *nextp = NULL;
4714         struct dt_object *nextc;
4715         struct lod_object *lp = NULL;
4716         struct lod_object *lc;
4717         struct lov_desc *desc;
4718         struct lod_layout_component *lod_comp;
4719         int rc;
4720         ENTRY;
4721
4722         LASSERT(child);
4723
4724         if (likely(parent)) {
4725                 nextp = dt_object_child(parent);
4726                 lp = lod_dt_obj(parent);
4727         }
4728
4729         nextc = dt_object_child(child);
4730         lc = lod_dt_obj(child);
4731
4732         LASSERT(!lod_obj_is_striped(child));
4733         /* default layout template may have been set on the regular file
4734          * when this is called from mdd_create_data() */
4735         if (S_ISREG(child_mode))
4736                 lod_free_comp_entries(lc);
4737
4738         if (!dt_object_exists(nextc))
4739                 nextc->do_ops->do_ah_init(env, ah, nextp, nextc, child_mode);
4740
4741         if (S_ISDIR(child_mode)) {
4742                 const struct lmv_user_md_v1 *lum1 = ah->dah_eadata;
4743
4744                 /* other default values are 0 */
4745                 lc->ldo_dir_stripe_offset = -1;
4746
4747                 /* get default striping from parent object */
4748                 if (likely(lp != NULL))
4749                         lod_get_default_striping(env, lp, lds);
4750
4751                 /* set child default striping info, default value is NULL */
4752                 if (lds->lds_def_striping_set || lds->lds_dir_def_striping_set)
4753                         lc->ldo_def_striping = lds;
4754
4755                 /* It should always honour the specified stripes */
4756                 /* Note: old client (< 2.7)might also do lfs mkdir, whose EA
4757                  * will have old magic. In this case, we should ignore the
4758                  * stripe count and try to create dir by default stripe.
4759                  */
4760                 if (ah->dah_eadata != NULL && ah->dah_eadata_len != 0 &&
4761                     (le32_to_cpu(lum1->lum_magic) == LMV_USER_MAGIC ||
4762                      le32_to_cpu(lum1->lum_magic) == LMV_USER_MAGIC_SPECIFIC)) {
4763                         lc->ldo_dir_stripe_count =
4764                                 le32_to_cpu(lum1->lum_stripe_count);
4765                         lc->ldo_dir_stripe_offset =
4766                                 le32_to_cpu(lum1->lum_stripe_offset);
4767                         lc->ldo_dir_hash_type =
4768                                 le32_to_cpu(lum1->lum_hash_type);
4769                         CDEBUG(D_INFO,
4770                                "set dirstripe: count %hu, offset %d, hash %u\n",
4771                                 lc->ldo_dir_stripe_count,
4772                                 (int)lc->ldo_dir_stripe_offset,
4773                                 lc->ldo_dir_hash_type);
4774                 } else {
4775                         /* transfer defaults LMV to new directory */
4776                         lod_striping_from_default(lc, lds, child_mode);
4777
4778                         /* set count 0 to create normal directory */
4779                         if (lc->ldo_dir_stripe_count == 1)
4780                                 lc->ldo_dir_stripe_count = 0;
4781                 }
4782
4783                 /* shrink the stripe_count to the avaible MDT count */
4784                 if (lc->ldo_dir_stripe_count > d->lod_remote_mdt_count + 1 &&
4785                     !OBD_FAIL_CHECK(OBD_FAIL_LARGE_STRIPE)) {
4786                         lc->ldo_dir_stripe_count = d->lod_remote_mdt_count + 1;
4787                         if (lc->ldo_dir_stripe_count == 1)
4788                                 lc->ldo_dir_stripe_count = 0;
4789                 }
4790
4791                 CDEBUG(D_INFO, "final dir stripe [%hu %d %u]\n",
4792                        lc->ldo_dir_stripe_count,
4793                        (int)lc->ldo_dir_stripe_offset, lc->ldo_dir_hash_type);
4794
4795                 RETURN_EXIT;
4796         }
4797
4798         /* child object regular file*/
4799
4800         if (!lod_object_will_be_striped(S_ISREG(child_mode),
4801                                         lu_object_fid(&child->do_lu)))
4802                 RETURN_EXIT;
4803
4804         /* If object is going to be striped over OSTs, transfer default
4805          * striping information to the child, so that we can use it
4806          * during declaration and creation.
4807          *
4808          * Try from the parent first.
4809          */
4810         if (likely(lp != NULL)) {
4811                 rc = lod_get_default_lov_striping(env, lp, lds);
4812                 if (rc == 0)
4813                         lod_striping_from_default(lc, lds, child_mode);
4814         }
4815
4816         /* Initialize lod_device::lod_md_root object reference */
4817         if (d->lod_md_root == NULL) {
4818                 struct dt_object *root;
4819                 struct lod_object *lroot;
4820
4821                 lu_root_fid(&info->lti_fid);
4822                 root = dt_locate(env, &d->lod_dt_dev, &info->lti_fid);
4823                 if (!IS_ERR(root)) {
4824                         lroot = lod_dt_obj(root);
4825
4826                         spin_lock(&d->lod_lock);
4827                         if (d->lod_md_root != NULL)
4828                                 dt_object_put(env, &d->lod_md_root->ldo_obj);
4829                         d->lod_md_root = lroot;
4830                         spin_unlock(&d->lod_lock);
4831                 }
4832         }
4833
4834         /* try inherit layout from the root object (fs default) when:
4835          *  - parent does not have default layout; or
4836          *  - parent has plain(v1/v3) default layout, and some attributes
4837          *    are not specified in the default layout;
4838          */
4839         if (d->lod_md_root != NULL && lod_need_inherit_more(lc, true)) {
4840                 rc = lod_get_default_lov_striping(env, d->lod_md_root, lds);
4841                 if (rc)
4842                         goto out;
4843                 if (lc->ldo_comp_cnt == 0) {
4844                         lod_striping_from_default(lc, lds, child_mode);
4845                 } else if (!lds->lds_def_striping_is_composite) {
4846                         struct lod_layout_component *def_comp;
4847
4848                         LASSERT(!lc->ldo_is_composite);
4849                         lod_comp = &lc->ldo_comp_entries[0];
4850                         def_comp = &lds->lds_def_comp_entries[0];
4851
4852                         if (lod_comp->llc_stripe_count <= 0)
4853                                 lod_comp->llc_stripe_count =
4854                                         def_comp->llc_stripe_count;
4855                         if (lod_comp->llc_stripe_size <= 0)
4856                                 lod_comp->llc_stripe_size =
4857                                         def_comp->llc_stripe_size;
4858                         if (lod_comp->llc_stripe_offset == LOV_OFFSET_DEFAULT)
4859                                 lod_comp->llc_stripe_offset =
4860                                         def_comp->llc_stripe_offset;
4861                         if (lod_comp->llc_pool == NULL)
4862                                 lod_obj_set_pool(lc, 0, def_comp->llc_pool);
4863                 }
4864         }
4865 out:
4866         /*
4867          * fs default striping may not be explicitly set, or historically set
4868          * in config log, use them.
4869          */
4870         if (lod_need_inherit_more(lc, false)) {
4871                 if (lc->ldo_comp_cnt == 0) {
4872                         rc = lod_alloc_comp_entries(lc, 0, 1);
4873                         if (rc)
4874                                 /* fail to allocate memory, will create a
4875                                  * non-striped file. */
4876                                 RETURN_EXIT;
4877                         lc->ldo_is_composite = 0;
4878                         lod_comp = &lc->ldo_comp_entries[0];
4879                         lod_comp->llc_stripe_offset = LOV_OFFSET_DEFAULT;
4880                 }
4881                 LASSERT(!lc->ldo_is_composite);
4882                 lod_comp = &lc->ldo_comp_entries[0];
4883                 desc = &d->lod_desc;
4884                 lod_adjust_stripe_info(lod_comp, desc);
4885         }
4886
4887         EXIT;
4888 }
4889
4890 #define ll_do_div64(aaa,bbb)    do_div((aaa), (bbb))
4891 /**
4892  * Size initialization on late striping.
4893  *
4894  * Propagate the size of a truncated object to a deferred striping.
4895  * This function handles a special case when truncate was done on a
4896  * non-striped object and now while the striping is being created
4897  * we can't lose that size, so we have to propagate it to the stripes
4898  * being created.
4899  *
4900  * \param[in] env       execution environment
4901  * \param[in] dt        object
4902  * \param[in] th        transaction handle
4903  *
4904  * \retval              0 on success
4905  * \retval              negative if failed
4906  */
4907 static int lod_declare_init_size(const struct lu_env *env,
4908                                  struct dt_object *dt, struct thandle *th)
4909 {
4910         struct dt_object        *next = dt_object_child(dt);
4911         struct lod_object       *lo = lod_dt_obj(dt);
4912         struct dt_object        **objects = NULL;
4913         struct lu_attr  *attr = &lod_env_info(env)->lti_attr;
4914         uint64_t        size, offs;
4915         int     i, rc, stripe, stripe_count = 0, stripe_size = 0;
4916         struct lu_extent size_ext;
4917         ENTRY;
4918
4919         if (!lod_obj_is_striped(dt))
4920                 RETURN(0);
4921
4922         rc = dt_attr_get(env, next, attr);
4923         LASSERT(attr->la_valid & LA_SIZE);
4924         if (rc)
4925                 RETURN(rc);
4926
4927         size = attr->la_size;
4928         if (size == 0)
4929                 RETURN(0);
4930
4931         size_ext = (typeof(size_ext)){ .e_start = size - 1, .e_end = size };
4932         for (i = 0; i < lo->ldo_comp_cnt; i++) {
4933                 struct lod_layout_component *lod_comp;
4934                 struct lu_extent *extent;
4935
4936                 lod_comp = &lo->ldo_comp_entries[i];
4937
4938                 if (lod_comp->llc_stripe == NULL)
4939                         continue;
4940
4941                 extent = &lod_comp->llc_extent;
4942                 CDEBUG(D_INFO, "%lld "DEXT"\n", size, PEXT(extent));
4943                 if (!lo->ldo_is_composite ||
4944                     lu_extent_is_overlapped(extent, &size_ext)) {
4945                         objects = lod_comp->llc_stripe;
4946                         stripe_count = lod_comp->llc_stripe_count;
4947                         stripe_size = lod_comp->llc_stripe_size;
4948
4949                         /* next mirror */
4950                         if (stripe_count == 0)
4951                                 continue;
4952
4953                         LASSERT(objects != NULL && stripe_size != 0);
4954                         /* ll_do_div64(a, b) returns a % b, and a = a / b */
4955                         ll_do_div64(size, (__u64)stripe_size);
4956                         stripe = ll_do_div64(size, (__u64)stripe_count);
4957                         LASSERT(objects[stripe] != NULL);
4958
4959                         size = size * stripe_size;
4960                         offs = attr->la_size;
4961                         size += ll_do_div64(offs, stripe_size);
4962
4963                         attr->la_valid = LA_SIZE;
4964                         attr->la_size = size;
4965
4966                         rc = lod_sub_declare_attr_set(env, objects[stripe],
4967                                                       attr, th);
4968                 }
4969         }
4970
4971         RETURN(rc);
4972 }
4973
4974 /**
4975  * Declare creation of striped object.
4976  *
4977  * The function declares creation stripes for a regular object. The function
4978  * also declares whether the stripes will be created with non-zero size if
4979  * previously size was set non-zero on the master object. If object \a dt is
4980  * not local, then only fully defined striping can be applied in \a lovea.
4981  * Otherwise \a lovea can be in the form of pattern, see lod_qos_parse_config()
4982  * for the details.
4983  *
4984  * \param[in] env       execution environment
4985  * \param[in] dt        object
4986  * \param[in] attr      attributes the stripes will be created with
4987  * \param[in] lovea     a buffer containing striping description
4988  * \param[in] th        transaction handle
4989  *
4990  * \retval              0 on success
4991  * \retval              negative if failed
4992  */
4993 int lod_declare_striped_create(const struct lu_env *env, struct dt_object *dt,
4994                                struct lu_attr *attr,
4995                                const struct lu_buf *lovea, struct thandle *th)
4996 {
4997         struct lod_thread_info  *info = lod_env_info(env);
4998         struct dt_object        *next = dt_object_child(dt);
4999         struct lod_object       *lo = lod_dt_obj(dt);
5000         int                      rc;
5001         ENTRY;
5002
5003         if (OBD_FAIL_CHECK(OBD_FAIL_MDS_ALLOC_OBDO))
5004                 GOTO(out, rc = -ENOMEM);
5005
5006         if (!dt_object_remote(next)) {
5007                 /* choose OST and generate appropriate objects */
5008                 rc = lod_prepare_create(env, lo, attr, lovea, th);
5009                 if (rc)
5010                         GOTO(out, rc);
5011
5012                 /*
5013                  * declare storage for striping data
5014                  */
5015                 info->lti_buf.lb_len = lod_comp_md_size(lo, false);
5016         } else {
5017                 /* LOD can not choose OST objects for remote objects, i.e.
5018                  * stripes must be ready before that. Right now, it can only
5019                  * happen during migrate, i.e. migrate process needs to create
5020                  * remote regular file (mdd_migrate_create), then the migrate
5021                  * process will provide stripeEA. */
5022                 LASSERT(lovea != NULL);
5023                 info->lti_buf = *lovea;
5024         }
5025
5026         rc = lod_sub_declare_xattr_set(env, next, &info->lti_buf,
5027                                        XATTR_NAME_LOV, 0, th);
5028         if (rc)
5029                 GOTO(out, rc);
5030
5031         /*
5032          * if striping is created with local object's size > 0,
5033          * we have to propagate this size to specific object
5034          * the case is possible only when local object was created previously
5035          */
5036         if (dt_object_exists(next))
5037                 rc = lod_declare_init_size(env, dt, th);
5038
5039 out:
5040         /* failed to create striping or to set initial size, let's reset
5041          * config so that others don't get confused */
5042         if (rc)
5043                 lod_striping_free(env, lo);
5044
5045         RETURN(rc);
5046 }
5047
5048 /**
5049  * Implementation of dt_object_operations::do_declare_create.
5050  *
5051  * The method declares creation of a new object. If the object will be striped,
5052  * then helper functions are called to find FIDs for the stripes, declare
5053  * creation of the stripes and declare initialization of the striping
5054  * information to be stored in the master object.
5055  *
5056  * \see dt_object_operations::do_declare_create() in the API description
5057  * for details.
5058  */
5059 static int lod_declare_create(const struct lu_env *env, struct dt_object *dt,
5060                               struct lu_attr *attr,
5061                               struct dt_allocation_hint *hint,
5062                               struct dt_object_format *dof, struct thandle *th)
5063 {
5064         struct dt_object   *next = dt_object_child(dt);
5065         struct lod_object  *lo = lod_dt_obj(dt);
5066         int                 rc;
5067         ENTRY;
5068
5069         LASSERT(dof);
5070         LASSERT(attr);
5071         LASSERT(th);
5072
5073         /*
5074          * first of all, we declare creation of local object
5075          */
5076         rc = lod_sub_declare_create(env, next, attr, hint, dof, th);
5077         if (rc != 0)
5078                 GOTO(out, rc);
5079
5080         /*
5081          * it's lod_ah_init() that has decided the object will be striped
5082          */
5083         if (dof->dof_type == DFT_REGULAR) {
5084                 /* callers don't want stripes */
5085                 /* XXX: all tricky interactions with ->ah_make_hint() decided
5086                  * to use striping, then ->declare_create() behaving differently
5087                  * should be cleaned */
5088                 if (dof->u.dof_reg.striped != 0)
5089                         rc = lod_declare_striped_create(env, dt, attr,
5090                                                         NULL, th);
5091         } else if (dof->dof_type == DFT_DIR) {
5092                 struct seq_server_site *ss;
5093                 struct lu_buf buf = { NULL };
5094                 struct lu_buf *lmu = NULL;
5095
5096                 ss = lu_site2seq(dt->do_lu.lo_dev->ld_site);
5097
5098                 /* If the parent has default stripeEA, and client
5099                  * did not find it before sending create request,
5100                  * then MDT will return -EREMOTE, and client will
5101                  * retrieve the default stripeEA and re-create the
5102                  * sub directory.
5103                  *
5104                  * Note: if dah_eadata != NULL, it means creating the
5105                  * striped directory with specified stripeEA, then it
5106                  * should ignore the default stripeEA */
5107                 if (hint != NULL && hint->dah_eadata == NULL) {
5108                         if (OBD_FAIL_CHECK(OBD_FAIL_MDS_STALE_DIR_LAYOUT))
5109                                 GOTO(out, rc = -EREMOTE);
5110
5111                         if (lo->ldo_dir_stripe_offset == -1) {
5112                                 /* child and parent should be in the same MDT */
5113                                 if (hint->dah_parent != NULL &&
5114                                     dt_object_remote(hint->dah_parent))
5115                                         GOTO(out, rc = -EREMOTE);
5116                         } else if (lo->ldo_dir_stripe_offset !=
5117                                    ss->ss_node_id) {
5118                                 struct lod_device *lod;
5119                                 struct lod_tgt_descs *ltd;
5120                                 struct lod_tgt_desc *tgt = NULL;
5121                                 bool found_mdt = false;
5122                                 int i;
5123
5124                                 lod = lu2lod_dev(lo->ldo_obj.do_lu.lo_dev);
5125                                 ltd = &lod->lod_mdt_descs;
5126                                 cfs_foreach_bit(ltd->ltd_tgt_bitmap, i) {
5127                                         tgt = LTD_TGT(ltd, i);
5128                                         if (tgt->ltd_index ==
5129                                                 lo->ldo_dir_stripe_offset) {
5130                                                 found_mdt = true;
5131                                                 break;
5132                                         }
5133                                 }
5134
5135                                 /* If the MDT indicated by stripe_offset can be
5136                                  * found, then tell client to resend the create
5137                                  * request to the correct MDT, otherwise return
5138                                  * error to client */
5139                                 if (found_mdt)
5140                                         GOTO(out, rc = -EREMOTE);
5141                                 else
5142                                         GOTO(out, rc = -EINVAL);
5143                         }
5144                 } else if (hint && hint->dah_eadata) {
5145                         lmu = &buf;
5146                         lmu->lb_buf = (void *)hint->dah_eadata;
5147                         lmu->lb_len = hint->dah_eadata_len;
5148                 }
5149
5150                 rc = lod_declare_dir_striping_create(env, dt, attr, lmu, dof,
5151                                                      th);
5152         }
5153 out:
5154         /* failed to create striping or to set initial size, let's reset
5155          * config so that others don't get confused */
5156         if (rc)
5157                 lod_striping_free(env, lo);
5158         RETURN(rc);
5159 }
5160
5161 /**
5162  * Generate component ID for new created component.
5163  *
5164  * \param[in] lo                LOD object
5165  * \param[in] comp_idx          index of ldo_comp_entries
5166  *
5167  * \retval                      component ID on success
5168  * \retval                      LCME_ID_INVAL on failure
5169  */
5170 static __u32 lod_gen_component_id(struct lod_object *lo,
5171                                   int mirror_id, int comp_idx)
5172 {
5173         struct lod_layout_component *lod_comp;
5174         __u32   id, start, end;
5175         int     i;
5176
5177         LASSERT(lo->ldo_comp_entries[comp_idx].llc_id == LCME_ID_INVAL);
5178
5179         lod_obj_inc_layout_gen(lo);
5180         id = lo->ldo_layout_gen;
5181         if (likely(id <= SEQ_ID_MAX))
5182                 RETURN(pflr_id(mirror_id, id & SEQ_ID_MASK));
5183
5184         /* Layout generation wraps, need to check collisions. */
5185         start = id & SEQ_ID_MASK;
5186         end = SEQ_ID_MAX;
5187 again:
5188         for (id = start; id <= end; id++) {
5189                 for (i = 0; i < lo->ldo_comp_cnt; i++) {
5190                         lod_comp = &lo->ldo_comp_entries[i];
5191                         if (pflr_id(mirror_id, id) == lod_comp->llc_id)
5192                                 break;
5193                 }
5194                 /* Found the ununsed ID */
5195                 if (i == lo->ldo_comp_cnt)
5196                         RETURN(pflr_id(mirror_id, id));
5197         }
5198         if (end == LCME_ID_MAX) {
5199                 start = 1;
5200                 end = min(lo->ldo_layout_gen & LCME_ID_MASK,
5201                           (__u32)(LCME_ID_MAX - 1));
5202                 goto again;
5203         }
5204
5205         RETURN(LCME_ID_INVAL);
5206 }
5207
5208 /**
5209  * Creation of a striped regular object.
5210  *
5211  * The function is called to create the stripe objects for a regular
5212  * striped file. This can happen at the initial object creation or
5213  * when the caller asks LOD to do so using ->do_xattr_set() method
5214  * (so called late striping). Notice all the information are already
5215  * prepared in the form of the list of objects (ldo_stripe field).
5216  * This is done during declare phase.
5217  *
5218  * \param[in] env       execution environment
5219  * \param[in] dt        object
5220  * \param[in] attr      attributes the stripes will be created with
5221  * \param[in] dof       format of stripes (see OSD API description)
5222  * \param[in] th        transaction handle
5223  *
5224  * \retval              0 on success
5225  * \retval              negative if failed
5226  */
5227 int lod_striped_create(const struct lu_env *env, struct dt_object *dt,
5228                        struct lu_attr *attr, struct dt_object_format *dof,
5229                        struct thandle *th)
5230 {
5231         struct lod_layout_component     *lod_comp;
5232         struct lod_object       *lo = lod_dt_obj(dt);
5233         __u16   mirror_id;
5234         int     rc = 0, i, j;
5235         ENTRY;
5236
5237         LASSERT(lo->ldo_comp_cnt != 0 && lo->ldo_comp_entries != NULL);
5238
5239         mirror_id = 0; /* non-flr file's mirror_id is 0 */
5240         if (lo->ldo_mirror_count > 1) {
5241                 for (i = 0; i < lo->ldo_comp_cnt; i++) {
5242                         lod_comp = &lo->ldo_comp_entries[i];
5243                         if (lod_comp->llc_id != LCME_ID_INVAL &&
5244                             mirror_id_of(lod_comp->llc_id) > mirror_id)
5245                                 mirror_id = mirror_id_of(lod_comp->llc_id);
5246                 }
5247         }
5248
5249         /* create all underlying objects */
5250         for (i = 0; i < lo->ldo_comp_cnt; i++) {
5251                 lod_comp = &lo->ldo_comp_entries[i];
5252
5253                 if (lod_comp->llc_id == LCME_ID_INVAL) {
5254                         /* only the component of FLR layout with more than 1
5255                          * mirror has mirror ID in its component ID.
5256                          */
5257                         if (lod_comp->llc_extent.e_start == 0 &&
5258                             lo->ldo_mirror_count > 1)
5259                                 ++mirror_id;
5260
5261                         lod_comp->llc_id = lod_gen_component_id(lo,
5262                                                                 mirror_id, i);
5263                         if (lod_comp->llc_id == LCME_ID_INVAL)
5264                                 GOTO(out, rc = -ERANGE);
5265                 }
5266
5267                 if (lod_comp_inited(lod_comp))
5268                         continue;
5269
5270                 if (lod_comp->llc_pattern & LOV_PATTERN_F_RELEASED)
5271                         lod_comp_set_init(lod_comp);
5272
5273                 if (lov_pattern(lod_comp->llc_pattern) == LOV_PATTERN_MDT)
5274                         lod_comp_set_init(lod_comp);
5275
5276                 if (lod_comp->llc_stripe == NULL)
5277                         continue;
5278
5279                 LASSERT(lod_comp->llc_stripe_count);
5280                 for (j = 0; j < lod_comp->llc_stripe_count; j++) {
5281                         struct dt_object *object = lod_comp->llc_stripe[j];
5282                         LASSERT(object != NULL);
5283                         rc = lod_sub_create(env, object, attr, NULL, dof, th);
5284                         if (rc)
5285                                 GOTO(out, rc);
5286                 }
5287                 lod_comp_set_init(lod_comp);
5288         }
5289
5290         rc = lod_fill_mirrors(lo);
5291         if (rc)
5292                 GOTO(out, rc);
5293
5294         rc = lod_generate_and_set_lovea(env, lo, th);
5295         if (rc)
5296                 GOTO(out, rc);
5297
5298         lo->ldo_comp_cached = 1;
5299         RETURN(0);
5300
5301 out:
5302         lod_striping_free(env, lo);
5303         RETURN(rc);
5304 }
5305
5306 /**
5307  * Implementation of dt_object_operations::do_create.
5308  *
5309  * If any of preceeding methods (like ->do_declare_create(),
5310  * ->do_ah_init(), etc) chose to create a striped object,
5311  * then this method will create the master and the stripes.
5312  *
5313  * \see dt_object_operations::do_create() in the API description for details.
5314  */
5315 static int lod_create(const struct lu_env *env, struct dt_object *dt,
5316                       struct lu_attr *attr, struct dt_allocation_hint *hint,
5317                       struct dt_object_format *dof, struct thandle *th)
5318 {
5319         int                 rc;
5320         ENTRY;
5321
5322         /* create local object */
5323         rc = lod_sub_create(env, dt_object_child(dt), attr, hint, dof, th);
5324         if (rc != 0)
5325                 RETURN(rc);
5326
5327         if (S_ISREG(dt->do_lu.lo_header->loh_attr) &&
5328             lod_obj_is_striped(dt) && dof->u.dof_reg.striped != 0) {
5329                 LASSERT(lod_dt_obj(dt)->ldo_comp_cached == 0);
5330                 rc = lod_striped_create(env, dt, attr, dof, th);
5331         }
5332
5333         RETURN(rc);
5334 }
5335
5336 static inline int
5337 lod_obj_stripe_destroy_cb(const struct lu_env *env, struct lod_object *lo,
5338                           struct dt_object *dt, struct thandle *th,
5339                           int comp_idx, int stripe_idx,
5340                           struct lod_obj_stripe_cb_data *data)
5341 {
5342         if (data->locd_declare)
5343                 return lod_sub_declare_destroy(env, dt, th);
5344         else if (!OBD_FAIL_CHECK(OBD_FAIL_LFSCK_LOST_SPEOBJ) ||
5345                  stripe_idx == cfs_fail_val)
5346                 return lod_sub_destroy(env, dt, th);
5347         else
5348                 return 0;
5349 }
5350
5351 /**
5352  * Implementation of dt_object_operations::do_declare_destroy.
5353  *
5354  * If the object is a striped directory, then the function declares reference
5355  * removal from the master object (this is an index) to the stripes and declares
5356  * destroy of all the stripes. In all the cases, it declares an intention to
5357  * destroy the object itself.
5358  *
5359  * \see dt_object_operations::do_declare_destroy() in the API description
5360  * for details.
5361  */
5362 static int lod_declare_destroy(const struct lu_env *env, struct dt_object *dt,
5363                                struct thandle *th)
5364 {
5365         struct dt_object   *next = dt_object_child(dt);
5366         struct lod_object  *lo = lod_dt_obj(dt);
5367         struct lod_thread_info *info = lod_env_info(env);
5368         char               *stripe_name = info->lti_key;
5369         int                 rc, i;
5370         ENTRY;
5371
5372         /*
5373          * load striping information, notice we don't do this when object
5374          * is being initialized as we don't need this information till
5375          * few specific cases like destroy, chown
5376          */
5377         rc = lod_striping_load(env, lo);
5378         if (rc)
5379                 RETURN(rc);
5380
5381         /* declare destroy for all underlying objects */
5382         if (S_ISDIR(dt->do_lu.lo_header->loh_attr)) {
5383                 rc = next->do_ops->do_index_try(env, next,
5384                                                 &dt_directory_features);
5385                 if (rc != 0)
5386                         RETURN(rc);
5387
5388                 for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
5389                         rc = lod_sub_declare_ref_del(env, next, th);
5390                         if (rc != 0)
5391                                 RETURN(rc);
5392
5393                         snprintf(stripe_name, sizeof(info->lti_key), DFID":%d",
5394                                 PFID(lu_object_fid(&lo->ldo_stripe[i]->do_lu)),
5395                                 i);
5396                         rc = lod_sub_declare_delete(env, next,
5397                                         (const struct dt_key *)stripe_name, th);
5398                         if (rc != 0)
5399                                 RETURN(rc);
5400                 }
5401         }
5402
5403         /*
5404          * we declare destroy for the local object
5405          */
5406         rc = lod_sub_declare_destroy(env, next, th);
5407         if (rc)
5408                 RETURN(rc);
5409
5410         if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_LOST_MDTOBJ) ||
5411             OBD_FAIL_CHECK(OBD_FAIL_LFSCK_LOST_MDTOBJ2))
5412                 RETURN(0);
5413
5414         if (!lod_obj_is_striped(dt))
5415                 RETURN(0);
5416
5417         /* declare destroy all striped objects */
5418         if (S_ISDIR(dt->do_lu.lo_header->loh_attr)) {
5419                 for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
5420                         if (lo->ldo_stripe[i] == NULL)
5421                                 continue;
5422
5423                         rc = lod_sub_declare_ref_del(env, lo->ldo_stripe[i],
5424                                                      th);
5425
5426                         rc = lod_sub_declare_destroy(env, lo->ldo_stripe[i],
5427                                                      th);
5428                         if (rc != 0)
5429                                 break;
5430                 }
5431         } else {
5432                 struct lod_obj_stripe_cb_data data = { { 0 } };
5433
5434                 data.locd_declare = true;
5435                 data.locd_stripe_cb = lod_obj_stripe_destroy_cb;
5436                 rc = lod_obj_for_each_stripe(env, lo, th, &data);
5437         }
5438
5439         RETURN(rc);
5440 }
5441
5442 /**
5443  * Implementation of dt_object_operations::do_destroy.
5444  *
5445  * If the object is a striped directory, then the function removes references
5446  * from the master object (this is an index) to the stripes and destroys all
5447  * the stripes. In all the cases, the function destroys the object itself.
5448  *
5449  * \see dt_object_operations::do_destroy() in the API description for details.
5450  */
5451 static int lod_destroy(const struct lu_env *env, struct dt_object *dt,
5452                        struct thandle *th)
5453 {
5454         struct dt_object  *next = dt_object_child(dt);
5455         struct lod_object *lo = lod_dt_obj(dt);
5456         struct lod_thread_info *info = lod_env_info(env);
5457         char               *stripe_name = info->lti_key;
5458         unsigned int       i;
5459         int                rc;
5460         ENTRY;
5461
5462         /* destroy sub-stripe of master object */
5463         if (S_ISDIR(dt->do_lu.lo_header->loh_attr)) {
5464                 rc = next->do_ops->do_index_try(env, next,
5465                                                 &dt_directory_features);
5466                 if (rc != 0)
5467                         RETURN(rc);
5468
5469                 for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
5470                         rc = lod_sub_ref_del(env, next, th);
5471                         if (rc != 0)
5472                                 RETURN(rc);
5473
5474                         snprintf(stripe_name, sizeof(info->lti_key), DFID":%d",
5475                                 PFID(lu_object_fid(&lo->ldo_stripe[i]->do_lu)),
5476                                 i);
5477
5478                         CDEBUG(D_INFO, DFID" delete stripe %s "DFID"\n",
5479                                PFID(lu_object_fid(&dt->do_lu)), stripe_name,
5480                                PFID(lu_object_fid(&lo->ldo_stripe[i]->do_lu)));
5481
5482                         rc = lod_sub_delete(env, next,
5483                                        (const struct dt_key *)stripe_name, th);
5484                         if (rc != 0)
5485                                 RETURN(rc);
5486                 }
5487         }
5488
5489         rc = lod_sub_destroy(env, next, th);
5490         if (rc != 0)
5491                 RETURN(rc);
5492
5493         if (OBD_FAIL_CHECK(OBD_FAIL_LFSCK_LOST_MDTOBJ) ||
5494             OBD_FAIL_CHECK(OBD_FAIL_LFSCK_LOST_MDTOBJ2))
5495                 RETURN(0);
5496
5497         if (!lod_obj_is_striped(dt))
5498                 RETURN(0);
5499
5500         /* destroy all striped objects */
5501         if (S_ISDIR(dt->do_lu.lo_header->loh_attr)) {
5502                 for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
5503                         if (lo->ldo_stripe[i] == NULL)
5504                                 continue;
5505                         if (!OBD_FAIL_CHECK(OBD_FAIL_LFSCK_LOST_SPEOBJ) ||
5506                             i == cfs_fail_val) {
5507                                 dt_write_lock(env, lo->ldo_stripe[i],
5508                                               MOR_TGT_CHILD);
5509                                 rc = lod_sub_ref_del(env, lo->ldo_stripe[i],
5510                                                      th);
5511                                 dt_write_unlock(env, lo->ldo_stripe[i]);
5512                                 if (rc != 0)
5513                                         break;
5514
5515                                 rc = lod_sub_destroy(env, lo->ldo_stripe[i],
5516                                                      th);
5517                                 if (rc != 0)
5518                                         break;
5519                         }
5520                 }
5521         } else {
5522                 struct lod_obj_stripe_cb_data data = { { 0 } };
5523
5524                 data.locd_declare = false;
5525                 data.locd_stripe_cb = lod_obj_stripe_destroy_cb;
5526                 rc = lod_obj_for_each_stripe(env, lo, th, &data);
5527         }
5528
5529         RETURN(rc);
5530 }
5531
5532 /**
5533  * Implementation of dt_object_operations::do_declare_ref_add.
5534  *
5535  * \see dt_object_operations::do_declare_ref_add() in the API description
5536  * for details.
5537  */
5538 static int lod_declare_ref_add(const struct lu_env *env,
5539                                struct dt_object *dt, struct thandle *th)
5540 {
5541         return lod_sub_declare_ref_add(env, dt_object_child(dt), th);
5542 }
5543
5544 /**
5545  * Implementation of dt_object_operations::do_ref_add.
5546  *
5547  * \see dt_object_operations::do_ref_add() in the API description for details.
5548  */
5549 static int lod_ref_add(const struct lu_env *env,
5550                        struct dt_object *dt, struct thandle *th)
5551 {
5552         return lod_sub_ref_add(env, dt_object_child(dt), th);
5553 }
5554
5555 /**
5556  * Implementation of dt_object_operations::do_declare_ref_del.
5557  *
5558  * \see dt_object_operations::do_declare_ref_del() in the API description
5559  * for details.
5560  */
5561 static int lod_declare_ref_del(const struct lu_env *env,
5562                                struct dt_object *dt, struct thandle *th)
5563 {
5564         return lod_sub_declare_ref_del(env, dt_object_child(dt), th);
5565 }
5566
5567 /**
5568  * Implementation of dt_object_operations::do_ref_del
5569  *
5570  * \see dt_object_operations::do_ref_del() in the API description for details.
5571  */
5572 static int lod_ref_del(const struct lu_env *env,
5573                        struct dt_object *dt, struct thandle *th)
5574 {
5575         return lod_sub_ref_del(env, dt_object_child(dt), th);
5576 }
5577
5578 /**
5579  * Implementation of dt_object_operations::do_object_sync.
5580  *
5581  * \see dt_object_operations::do_object_sync() in the API description
5582  * for details.
5583  */
5584 static int lod_object_sync(const struct lu_env *env, struct dt_object *dt,
5585                            __u64 start, __u64 end)
5586 {
5587         return dt_object_sync(env, dt_object_child(dt), start, end);
5588 }
5589
5590 /**
5591  * Implementation of dt_object_operations::do_object_unlock.
5592  *
5593  * Used to release LDLM lock(s).
5594  *
5595  * \see dt_object_operations::do_object_unlock() in the API description
5596  * for details.
5597  */
5598 static int lod_object_unlock(const struct lu_env *env, struct dt_object *dt,
5599                              struct ldlm_enqueue_info *einfo,
5600                              union ldlm_policy_data *policy)
5601 {
5602         struct lod_object *lo = lod_dt_obj(dt);
5603         struct lustre_handle_array *slave_locks = einfo->ei_cbdata;
5604         int slave_locks_size;
5605         int i;
5606         ENTRY;
5607
5608         if (slave_locks == NULL)
5609                 RETURN(0);
5610
5611         LASSERT(S_ISDIR(dt->do_lu.lo_header->loh_attr));
5612         /* Note: for remote lock for single stripe dir, MDT will cancel
5613          * the lock by lockh directly */
5614         LASSERT(!dt_object_remote(dt_object_child(dt)));
5615
5616         /* locks were unlocked in MDT layer */
5617         for (i = 0; i < slave_locks->ha_count; i++)
5618                 LASSERT(!lustre_handle_is_used(&slave_locks->ha_handles[i]));
5619
5620         /*
5621          * NB, ha_count may not equal to ldo_dir_stripe_count, because dir
5622          * layout may change, e.g., shrink dir layout after migration.
5623          */
5624         for (i = 0; i < lo->ldo_dir_stripe_count; i++)
5625                 dt_invalidate(env, lo->ldo_stripe[i]);
5626
5627         slave_locks_size = offsetof(typeof(*slave_locks),
5628                                     ha_handles[slave_locks->ha_count]);
5629         OBD_FREE(slave_locks, slave_locks_size);
5630         einfo->ei_cbdata = NULL;
5631
5632         RETURN(0);
5633 }
5634
5635 /**
5636  * Implementation of dt_object_operations::do_object_lock.
5637  *
5638  * Used to get LDLM lock on the non-striped and striped objects.
5639  *
5640  * \see dt_object_operations::do_object_lock() in the API description
5641  * for details.
5642  */
5643 static int lod_object_lock(const struct lu_env *env,
5644                            struct dt_object *dt,
5645                            struct lustre_handle *lh,
5646                            struct ldlm_enqueue_info *einfo,
5647                            union ldlm_policy_data *policy)
5648 {
5649         struct lod_object *lo = lod_dt_obj(dt);
5650         int slave_locks_size;
5651         struct lustre_handle_array *slave_locks = NULL;
5652         int i;
5653         int rc;
5654         ENTRY;
5655
5656         /* remote object lock */
5657         if (!einfo->ei_enq_slave) {
5658                 LASSERT(dt_object_remote(dt));
5659                 return dt_object_lock(env, dt_object_child(dt), lh, einfo,
5660                                       policy);
5661         }
5662
5663         if (!S_ISDIR(dt->do_lu.lo_header->loh_attr))
5664                 RETURN(-ENOTDIR);
5665
5666         rc = lod_striping_load(env, lo);
5667         if (rc != 0)
5668                 RETURN(rc);
5669
5670         /* No stripes */
5671         if (lo->ldo_dir_stripe_count <= 1)
5672                 RETURN(0);
5673
5674         slave_locks_size = offsetof(typeof(*slave_locks),
5675                                     ha_handles[lo->ldo_dir_stripe_count]);
5676         /* Freed in lod_object_unlock */
5677         OBD_ALLOC(slave_locks, slave_locks_size);
5678         if (!slave_locks)
5679                 RETURN(-ENOMEM);
5680         slave_locks->ha_count = lo->ldo_dir_stripe_count;
5681
5682         /* striped directory lock */
5683         for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
5684                 struct lustre_handle lockh;
5685                 struct ldlm_res_id *res_id;
5686
5687                 res_id = &lod_env_info(env)->lti_res_id;
5688                 fid_build_reg_res_name(lu_object_fid(&lo->ldo_stripe[i]->do_lu),
5689                                        res_id);
5690                 einfo->ei_res_id = res_id;
5691
5692                 LASSERT(lo->ldo_stripe[i] != NULL);
5693                 if (dt_object_remote(lo->ldo_stripe[i])) {
5694                         set_bit(i, (void *)slave_locks->ha_map);
5695                         rc = dt_object_lock(env, lo->ldo_stripe[i], &lockh,
5696                                             einfo, policy);
5697                 } else {
5698                         struct ldlm_namespace *ns = einfo->ei_namespace;
5699                         ldlm_blocking_callback blocking = einfo->ei_cb_local_bl;
5700                         ldlm_completion_callback completion = einfo->ei_cb_cp;
5701                         __u64 dlmflags = LDLM_FL_ATOMIC_CB;
5702
5703                         if (einfo->ei_mode == LCK_PW ||
5704                             einfo->ei_mode == LCK_EX)
5705                                 dlmflags |= LDLM_FL_COS_INCOMPAT;
5706
5707                         LASSERT(ns != NULL);
5708                         rc = ldlm_cli_enqueue_local(env, ns, res_id, LDLM_IBITS,
5709                                                     policy, einfo->ei_mode,
5710                                                     &dlmflags, blocking,
5711                                                     completion, NULL,
5712                                                     NULL, 0, LVB_T_NONE,
5713                                                     NULL, &lockh);
5714                 }
5715                 if (rc) {
5716                         while (i--)
5717                                 ldlm_lock_decref_and_cancel(
5718                                                 &slave_locks->ha_handles[i],
5719                                                 einfo->ei_mode);
5720                         OBD_FREE(slave_locks, slave_locks_size);
5721                         RETURN(rc);
5722                 }
5723                 slave_locks->ha_handles[i] = lockh;
5724         }
5725         einfo->ei_cbdata = slave_locks;
5726
5727         RETURN(0);
5728 }
5729
5730 /**
5731  * Implementation of dt_object_operations::do_invalidate.
5732  *
5733  * \see dt_object_operations::do_invalidate() in the API description for details
5734  */
5735 static int lod_invalidate(const struct lu_env *env, struct dt_object *dt)
5736 {
5737         return dt_invalidate(env, dt_object_child(dt));
5738 }
5739
5740 static int lod_layout_data_init(struct lod_thread_info *info, __u32 comp_cnt)
5741 {
5742         ENTRY;
5743
5744         /* clear memory region that will be used for layout change */
5745         memset(&info->lti_layout_attr, 0, sizeof(struct lu_attr));
5746         info->lti_count = 0;
5747
5748         if (info->lti_comp_size >= comp_cnt)
5749                 RETURN(0);
5750
5751         if (info->lti_comp_size > 0) {
5752                 OBD_FREE(info->lti_comp_idx,
5753                          info->lti_comp_size * sizeof(__u32));
5754                 info->lti_comp_size = 0;
5755         }
5756
5757         OBD_ALLOC(info->lti_comp_idx, comp_cnt * sizeof(__u32));
5758         if (!info->lti_comp_idx)
5759                 RETURN(-ENOMEM);
5760
5761         info->lti_comp_size = comp_cnt;
5762         RETURN(0);
5763 }
5764
5765 static int lod_declare_instantiate_components(const struct lu_env *env,
5766                 struct lod_object *lo, struct thandle *th)
5767 {
5768         struct lod_thread_info *info = lod_env_info(env);
5769         int i;
5770         int rc = 0;
5771         ENTRY;
5772
5773         LASSERT(info->lti_count < lo->ldo_comp_cnt);
5774
5775         for (i = 0; i < info->lti_count; i++) {
5776                 rc = lod_qos_prep_create(env, lo, NULL, th,
5777                                          info->lti_comp_idx[i]);
5778                 if (rc)
5779                         break;
5780         }
5781
5782         if (!rc) {
5783                 info->lti_buf.lb_len = lod_comp_md_size(lo, false);
5784                 rc = lod_sub_declare_xattr_set(env, lod_object_child(lo),
5785                                 &info->lti_buf, XATTR_NAME_LOV, 0, th);
5786         }
5787
5788         RETURN(rc);
5789 }
5790
5791 static int lod_declare_update_plain(const struct lu_env *env,
5792                 struct lod_object *lo, struct layout_intent *layout,
5793                 const struct lu_buf *buf, struct thandle *th)
5794 {
5795         struct lod_thread_info *info = lod_env_info(env);
5796         struct lod_device *d = lu2lod_dev(lo->ldo_obj.do_lu.lo_dev);
5797         struct lod_layout_component *lod_comp;
5798         struct lov_comp_md_v1 *comp_v1 = NULL;
5799         bool replay = false;
5800         int i, rc;
5801         ENTRY;
5802
5803         LASSERT(lo->ldo_flr_state == LCM_FL_NONE);
5804
5805         /*
5806          * In case the client is passing lovea, which only happens during
5807          * the replay of layout intent write RPC for now, we may need to
5808          * parse the lovea and apply new layout configuration.
5809          */
5810         if (buf && buf->lb_len)  {
5811                 struct lov_user_md_v1 *v1 = buf->lb_buf;
5812
5813                 if (v1->lmm_magic != (LOV_MAGIC_DEFINED | LOV_MAGIC_COMP_V1) &&
5814                     v1->lmm_magic != __swab32(LOV_MAGIC_DEFINED |
5815                                               LOV_MAGIC_COMP_V1)) {
5816                         CERROR("%s: the replay buffer of layout extend "
5817                                "(magic %#x) does not contain expected "
5818                                "composite layout.\n",
5819                                lod2obd(d)->obd_name, v1->lmm_magic);
5820                         GOTO(out, rc = -EINVAL);
5821                 }
5822
5823                 rc = lod_use_defined_striping(env, lo, buf);
5824                 if (rc)
5825                         GOTO(out, rc);
5826                 lo->ldo_comp_cached = 1;
5827
5828                 rc = lod_get_lov_ea(env, lo);
5829                 if (rc <= 0)
5830                         GOTO(out, rc);
5831                 /* old on-disk EA is stored in info->lti_buf */
5832                 comp_v1 = (struct lov_comp_md_v1 *)info->lti_buf.lb_buf;
5833                 replay = true;
5834         } else {
5835                 /* non replay path */
5836                 rc = lod_striping_load(env, lo);
5837                 if (rc)
5838                         GOTO(out, rc);
5839         }
5840
5841         /* Make sure defined layout covers the requested write range. */
5842         lod_comp = &lo->ldo_comp_entries[lo->ldo_comp_cnt - 1];
5843         if (lo->ldo_comp_cnt > 1 &&
5844             lod_comp->llc_extent.e_end != OBD_OBJECT_EOF &&
5845             lod_comp->llc_extent.e_end < layout->li_extent.e_end) {
5846                 CDEBUG(replay ? D_ERROR : D_LAYOUT,
5847                        "%s: the defined layout [0, %#llx) does not covers "
5848                        "the write range "DEXT"\n",
5849                        lod2obd(d)->obd_name, lod_comp->llc_extent.e_end,
5850                        PEXT(&layout->li_extent));
5851                 GOTO(out, rc = -EINVAL);
5852         }
5853
5854         CDEBUG(D_LAYOUT, "%s: "DFID": instantiate components "DEXT"\n",
5855                lod2obd(d)->obd_name, PFID(lod_object_fid(lo)),
5856                PEXT(&layout->li_extent));
5857
5858         /*
5859          * Iterate ld->ldo_comp_entries, find the component whose extent under
5860          * the write range and not instantianted.
5861          */
5862         for (i = 0; i < lo->ldo_comp_cnt; i++) {
5863                 lod_comp = &lo->ldo_comp_entries[i];
5864
5865                 if (lod_comp->llc_extent.e_start >= layout->li_extent.e_end)
5866                         break;
5867
5868                 if (!replay) {
5869                         if (lod_comp_inited(lod_comp))
5870                                 continue;
5871                 } else {
5872                         /**
5873                          * In replay path, lod_comp is the EA passed by
5874                          * client replay buffer,  comp_v1 is the pre-recovery
5875                          * on-disk EA, we'd sift out those components which
5876                          * were init-ed in the on-disk EA.
5877                          */
5878                         if (le32_to_cpu(comp_v1->lcm_entries[i].lcme_flags) &
5879                             LCME_FL_INIT)
5880                                 continue;
5881                 }
5882                 /*
5883                  * this component hasn't instantiated in normal path, or during
5884                  * replay it needs replay the instantiation.
5885                  */
5886
5887                 /* A released component is being extended */
5888                 if (lod_comp->llc_pattern & LOV_PATTERN_F_RELEASED)
5889                         GOTO(out, rc = -EINVAL);
5890
5891                 LASSERT(info->lti_comp_idx != NULL);
5892                 info->lti_comp_idx[info->lti_count++] = i;
5893         }
5894
5895         if (info->lti_count == 0)
5896                 RETURN(-EALREADY);
5897
5898         lod_obj_inc_layout_gen(lo);
5899         rc = lod_declare_instantiate_components(env, lo, th);
5900 out:
5901         if (rc)
5902                 lod_striping_free(env, lo);
5903         RETURN(rc);
5904 }
5905
5906 static inline int lod_comp_index(struct lod_object *lo,
5907                                  struct lod_layout_component *lod_comp)
5908 {
5909         LASSERT(lod_comp >= lo->ldo_comp_entries &&
5910                 lod_comp <= &lo->ldo_comp_entries[lo->ldo_comp_cnt - 1]);
5911
5912         return lod_comp - lo->ldo_comp_entries;
5913 }
5914
5915 /**
5916  * Stale other mirrors by writing extent.
5917  */
5918 static void lod_stale_components(struct lod_object *lo, int primary,
5919                                  struct lu_extent *extent)
5920 {
5921         struct lod_layout_component *pri_comp, *lod_comp;
5922         int i;
5923
5924         /* The writing extent decides which components in the primary
5925          * are affected... */
5926         CDEBUG(D_LAYOUT, "primary mirror %d, "DEXT"\n", primary, PEXT(extent));
5927         lod_foreach_mirror_comp(pri_comp, lo, primary) {
5928                 if (!lu_extent_is_overlapped(extent, &pri_comp->llc_extent))
5929                         continue;
5930
5931                 CDEBUG(D_LAYOUT, "primary comp %u "DEXT"\n",
5932                        lod_comp_index(lo, pri_comp),
5933                        PEXT(&pri_comp->llc_extent));
5934
5935                 for (i = 0; i < lo->ldo_mirror_count; i++) {
5936                         if (i == primary)
5937                                 continue;
5938
5939                         /* ... and then stale other components that are
5940                          * overlapping with primary components */
5941                         lod_foreach_mirror_comp(lod_comp, lo, i) {
5942                                 if (!lu_extent_is_overlapped(
5943                                                         &pri_comp->llc_extent,
5944                                                         &lod_comp->llc_extent))
5945                                         continue;
5946
5947                                 CDEBUG(D_LAYOUT, "stale: %u / %u\n",
5948                                       i, lod_comp_index(lo, lod_comp));
5949
5950                                 lod_comp->llc_flags |= LCME_FL_STALE;
5951                                 lo->ldo_mirrors[i].lme_stale = 1;
5952                         }
5953                 }
5954         }
5955 }
5956
5957 /**
5958  * check an OST's availability
5959  * \param[in] env       execution environment
5960  * \param[in] lo        lod object
5961  * \param[in] dt        dt object
5962  * \param[in] index     mirror index
5963  *
5964  * \retval      negative if failed
5965  * \retval      1 if \a dt is available
5966  * \retval      0 if \a dt is not available
5967  */
5968 static inline int lod_check_ost_avail(const struct lu_env *env,
5969                                       struct lod_object *lo,
5970                                       struct dt_object *dt, int index)
5971 {
5972         struct lod_device *lod = lu2lod_dev(lo->ldo_obj.do_lu.lo_dev);
5973         struct lod_tgt_desc *ost;
5974         __u32 idx;
5975         int type = LU_SEQ_RANGE_OST;
5976         int rc;
5977
5978         rc = lod_fld_lookup(env, lod, lu_object_fid(&dt->do_lu), &idx, &type);
5979         if (rc < 0) {
5980                 CERROR("%s: can't locate "DFID":rc = %d\n",
5981                        lod2obd(lod)->obd_name, PFID(lu_object_fid(&dt->do_lu)),
5982                        rc);
5983                 return rc;
5984         }
5985
5986         ost = OST_TGT(lod, idx);
5987         if (ost->ltd_statfs.os_state &
5988                 (OS_STATE_READONLY | OS_STATE_ENOSPC | OS_STATE_ENOINO |
5989                  OS_STATE_NOPRECREATE) ||
5990             ost->ltd_active == 0) {
5991                 CDEBUG(D_LAYOUT, DFID ": mirror %d OST%d unavail, rc = %d\n",
5992                        PFID(lod_object_fid(lo)), index, idx, rc);
5993                 return 0;
5994         }
5995
5996         return 1;
5997 }
5998
5999 /**
6000  * Pick primary mirror for write
6001  * \param[in] env       execution environment
6002  * \param[in] lo        object
6003  * \param[in] extent    write range
6004  */
6005 static int lod_primary_pick(const struct lu_env *env, struct lod_object *lo,
6006                             struct lu_extent *extent)
6007 {
6008         struct lod_device *lod = lu2lod_dev(lo->ldo_obj.do_lu.lo_dev);
6009         unsigned int seq = 0;
6010         struct lod_layout_component *lod_comp;
6011         int i, j, rc;
6012         int picked = -1, second_pick = -1, third_pick = -1;
6013         ENTRY;
6014
6015         if (OBD_FAIL_CHECK(OBD_FAIL_FLR_RANDOM_PICK_MIRROR)) {
6016                 get_random_bytes(&seq, sizeof(seq));
6017                 seq %= lo->ldo_mirror_count;
6018         }
6019
6020         /**
6021          * Pick a mirror as the primary, and check the availability of OSTs.
6022          *
6023          * This algo can be revised later after knowing the topology of
6024          * cluster.
6025          */
6026         lod_qos_statfs_update(env, lod);
6027         for (i = 0; i < lo->ldo_mirror_count; i++) {
6028                 bool ost_avail = true;
6029                 int index = (i + seq) % lo->ldo_mirror_count;
6030
6031                 if (lo->ldo_mirrors[index].lme_stale) {
6032                         CDEBUG(D_LAYOUT, DFID": mirror %d stale\n",
6033                                PFID(lod_object_fid(lo)), index);
6034                         continue;
6035                 }
6036
6037                 /* 2nd pick is for the primary mirror containing unavail OST */
6038                 if (lo->ldo_mirrors[index].lme_primary && second_pick < 0)
6039                         second_pick = index;
6040
6041                 /* 3rd pick is for non-primary mirror containing unavail OST */
6042                 if (second_pick < 0 && third_pick < 0)
6043                         third_pick = index;
6044
6045                 /**
6046                  * we found a non-primary 1st pick, we'd like to find a
6047                  * potential pirmary mirror.
6048                  */
6049                 if (picked >= 0 && !lo->ldo_mirrors[index].lme_primary)
6050                         continue;
6051
6052                 /* check the availability of OSTs */
6053                 lod_foreach_mirror_comp(lod_comp, lo, index) {
6054                         if (!lod_comp_inited(lod_comp) || !lod_comp->llc_stripe)
6055                                 continue;
6056
6057                         for (j = 0; j < lod_comp->llc_stripe_count; j++) {
6058                                 struct dt_object *dt = lod_comp->llc_stripe[j];
6059
6060                                 rc = lod_check_ost_avail(env, lo, dt, index);
6061                                 if (rc < 0)
6062                                         RETURN(rc);
6063
6064                                 ost_avail = !!rc;
6065                                 if (!ost_avail)
6066                                         break;
6067                         } /* for all dt object in one component */
6068                         if (!ost_avail)
6069                                 break;
6070                 } /* for all components in a mirror */
6071
6072                 /**
6073                  * the OSTs where allocated objects locates in the components
6074                  * of the mirror are available.
6075                  */
6076                 if (!ost_avail)
6077                         continue;
6078
6079                 /* this mirror has all OSTs available */
6080                 picked = index;
6081
6082                 /**
6083                  * primary with all OSTs are available, this is the perfect
6084                  * 1st pick.
6085                  */
6086                 if (lo->ldo_mirrors[index].lme_primary)
6087                         break;
6088         } /* for all mirrors */
6089
6090         /* failed to pick a sound mirror, lower our expectation */
6091         if (picked < 0)
6092                 picked = second_pick;
6093         if (picked < 0)
6094                 picked = third_pick;
6095         if (picked < 0)
6096                 RETURN(-ENODATA);
6097
6098         RETURN(picked);
6099 }
6100
6101 /**
6102  * figure out the components should be instantiated for resync.
6103  */
6104 static int lod_prepare_resync(const struct lu_env *env, struct lod_object *lo,
6105                               struct lu_extent *extent)
6106 {
6107         struct lod_thread_info *info = lod_env_info(env);
6108         struct lod_layout_component *lod_comp;
6109         unsigned int need_sync = 0;
6110         int i;
6111
6112         CDEBUG(D_LAYOUT,
6113                DFID": instantiate all stale components in "DEXT"\n",
6114                PFID(lod_object_fid(lo)), PEXT(extent));
6115
6116         /**
6117          * instantiate all components within this extent, even non-stale
6118          * components.
6119          */
6120         for (i = 0; i < lo->ldo_mirror_count; i++) {
6121                 if (!lo->ldo_mirrors[i].lme_stale)
6122                         continue;
6123
6124                 lod_foreach_mirror_comp(lod_comp, lo, i) {
6125                         if (!lu_extent_is_overlapped(extent,
6126                                                 &lod_comp->llc_extent))
6127                                 break;
6128
6129                         need_sync++;
6130
6131                         if (lod_comp_inited(lod_comp))
6132                                 continue;
6133
6134                         CDEBUG(D_LAYOUT, "resync instantiate %d / %d\n",
6135                                i, lod_comp_index(lo, lod_comp));
6136                         info->lti_comp_idx[info->lti_count++] =
6137                                         lod_comp_index(lo, lod_comp);
6138                 }
6139         }
6140
6141         return need_sync ? 0 : -EALREADY;
6142 }
6143
6144 static int lod_declare_update_rdonly(const struct lu_env *env,
6145                 struct lod_object *lo, struct md_layout_change *mlc,
6146                 struct thandle *th)
6147 {
6148         struct lod_thread_info *info = lod_env_info(env);
6149         struct lu_attr *layout_attr = &info->lti_layout_attr;
6150         struct lod_layout_component *lod_comp;
6151         struct lu_extent extent = { 0 };
6152         int rc;
6153         ENTRY;
6154
6155         LASSERT(lo->ldo_flr_state == LCM_FL_RDONLY);
6156         LASSERT(mlc->mlc_opc == MD_LAYOUT_WRITE ||
6157                 mlc->mlc_opc == MD_LAYOUT_RESYNC);
6158         LASSERT(lo->ldo_mirror_count > 0);
6159
6160         if (mlc->mlc_opc == MD_LAYOUT_WRITE) {
6161                 struct layout_intent *layout = mlc->mlc_intent;
6162                 int picked;
6163
6164                 extent = layout->li_extent;
6165                 CDEBUG(D_LAYOUT, DFID": trying to write :"DEXT"\n",
6166                        PFID(lod_object_fid(lo)), PEXT(&extent));
6167
6168                 picked = lod_primary_pick(env, lo, &extent);
6169                 if (picked < 0)
6170                         RETURN(picked);
6171
6172                 CDEBUG(D_LAYOUT, DFID": picked mirror id %u as primary\n",
6173                        PFID(lod_object_fid(lo)),
6174                        lo->ldo_mirrors[picked].lme_id);
6175
6176                 if (layout->li_opc == LAYOUT_INTENT_TRUNC) {
6177                         /**
6178                          * trunc transfers [0, size) in the intent extent, we'd
6179                          * stale components overlapping [size, eof).
6180                          */
6181                         extent.e_start = extent.e_end;
6182                         extent.e_end = OBD_OBJECT_EOF;
6183                 }
6184
6185                 /* stale overlapping components from other mirrors */
6186                 lod_stale_components(lo, picked, &extent);
6187
6188                 /* restore truncate intent extent */
6189                 if (layout->li_opc == LAYOUT_INTENT_TRUNC)
6190                         extent.e_end = extent.e_start;
6191
6192                 /* instantiate components for the picked mirror, start from 0 */
6193                 extent.e_start = 0;
6194
6195                 lod_foreach_mirror_comp(lod_comp, lo, picked) {
6196                         if (!lu_extent_is_overlapped(&extent,
6197                                                      &lod_comp->llc_extent))
6198                                 break;
6199
6200                         if (lod_comp_inited(lod_comp))
6201                                 continue;
6202
6203                         info->lti_comp_idx[info->lti_count++] =
6204                                                 lod_comp_index(lo, lod_comp);
6205                 }
6206
6207                 lo->ldo_flr_state = LCM_FL_WRITE_PENDING;
6208         } else { /* MD_LAYOUT_RESYNC */
6209                 int i;
6210
6211                 /**
6212                  * could contain multiple non-stale mirrors, so we need to
6213                  * prep uninited all components assuming any non-stale mirror
6214                  * could be picked as the primary mirror.
6215                  */
6216                 for (i = 0; i < lo->ldo_mirror_count; i++) {
6217                         if (lo->ldo_mirrors[i].lme_stale)
6218                                 continue;
6219
6220                         lod_foreach_mirror_comp(lod_comp, lo, i) {
6221                                 if (!lod_comp_inited(lod_comp))
6222                                         break;
6223
6224                                 if (extent.e_end < lod_comp->llc_extent.e_end)
6225                                         extent.e_end =
6226                                                 lod_comp->llc_extent.e_end;
6227                         }
6228                 }
6229
6230                 rc = lod_prepare_resync(env, lo, &extent);
6231                 if (rc)
6232                         GOTO(out, rc);
6233                 /* change the file state to SYNC_PENDING */
6234                 lo->ldo_flr_state = LCM_FL_SYNC_PENDING;
6235         }
6236
6237         /* Reset the layout version once it's becoming too large.
6238          * This way it can make sure that the layout version is
6239          * monotonously increased in this writing era. */
6240         lod_obj_inc_layout_gen(lo);
6241         if (lo->ldo_layout_gen > (LCME_ID_MAX >> 1)) {
6242                 __u32 layout_version;
6243
6244                 cfs_get_random_bytes(&layout_version, sizeof(layout_version));
6245                 lo->ldo_layout_gen = layout_version & 0xffff;
6246         }
6247
6248         rc = lod_declare_instantiate_components(env, lo, th);
6249         if (rc)
6250                 GOTO(out, rc);
6251
6252         layout_attr->la_valid = LA_LAYOUT_VERSION;
6253         layout_attr->la_layout_version = 0; /* set current version */
6254         if (mlc->mlc_opc == MD_LAYOUT_RESYNC)
6255                 layout_attr->la_layout_version = LU_LAYOUT_RESYNC;
6256         rc = lod_declare_attr_set(env, &lo->ldo_obj, layout_attr, th);
6257         if (rc)
6258                 GOTO(out, rc);
6259
6260 out:
6261         if (rc)
6262                 lod_striping_free(env, lo);
6263         RETURN(rc);
6264 }
6265
6266 static int lod_declare_update_write_pending(const struct lu_env *env,
6267                 struct lod_object *lo, struct md_layout_change *mlc,
6268                 struct thandle *th)
6269 {
6270         struct lod_thread_info *info = lod_env_info(env);
6271         struct lu_attr *layout_attr = &info->lti_layout_attr;
6272         struct lod_layout_component *lod_comp;
6273         struct lu_extent extent = { 0 };
6274         int primary = -1;
6275         int i;
6276         int rc;
6277         ENTRY;
6278
6279         LASSERT(lo->ldo_flr_state == LCM_FL_WRITE_PENDING);
6280         LASSERT(mlc->mlc_opc == MD_LAYOUT_WRITE ||
6281                 mlc->mlc_opc == MD_LAYOUT_RESYNC);
6282
6283         /* look for the primary mirror */
6284         for (i = 0; i < lo->ldo_mirror_count; i++) {
6285                 if (lo->ldo_mirrors[i].lme_stale)
6286                         continue;
6287
6288                 LASSERTF(primary < 0, DFID " has multiple primary: %u / %u",
6289                          PFID(lod_object_fid(lo)),
6290                          lo->ldo_mirrors[i].lme_id,
6291                          lo->ldo_mirrors[primary].lme_id);
6292
6293                 primary = i;
6294         }
6295         if (primary < 0) {
6296                 CERROR(DFID ": doesn't have a primary mirror\n",
6297                        PFID(lod_object_fid(lo)));
6298                 GOTO(out, rc = -ENODATA);
6299         }
6300
6301         CDEBUG(D_LAYOUT, DFID": found primary %u\n",
6302                PFID(lod_object_fid(lo)), lo->ldo_mirrors[primary].lme_id);
6303
6304         LASSERT(!lo->ldo_mirrors[primary].lme_stale);
6305
6306         /* for LAYOUT_WRITE opc, it has to do the following operations:
6307          * 1. stale overlapping componets from stale mirrors;
6308          * 2. instantiate components of the primary mirror;
6309          * 3. transfter layout version to all objects of the primary;
6310          *
6311          * for LAYOUT_RESYNC opc, it will do:
6312          * 1. instantiate components of all stale mirrors;
6313          * 2. transfer layout version to all objects to close write era. */
6314
6315         if (mlc->mlc_opc == MD_LAYOUT_WRITE) {
6316                 LASSERT(mlc->mlc_intent != NULL);
6317
6318                 extent = mlc->mlc_intent->li_extent;
6319
6320                 CDEBUG(D_LAYOUT, DFID": intent to write: "DEXT"\n",
6321                        PFID(lod_object_fid(lo)), PEXT(&extent));
6322
6323                 if (mlc->mlc_intent->li_opc == LAYOUT_INTENT_TRUNC) {
6324                         /**
6325                          * trunc transfers [0, size) in the intent extent, we'd
6326                          * stale components overlapping [size, eof).
6327                          */
6328                         extent.e_start = extent.e_end;
6329                         extent.e_end = OBD_OBJECT_EOF;
6330                 }
6331                 /* 1. stale overlapping components */
6332                 lod_stale_components(lo, primary, &extent);
6333
6334                 /* 2. find out the components need instantiating.
6335                  * instantiate [0, mlc->mlc_intent->e_end) */
6336
6337                 /* restore truncate intent extent */
6338                 if (mlc->mlc_intent->li_opc == LAYOUT_INTENT_TRUNC)
6339                         extent.e_end = extent.e_start;
6340                 extent.e_start = 0;
6341
6342                 lod_foreach_mirror_comp(lod_comp, lo, primary) {
6343                         if (!lu_extent_is_overlapped(&extent,
6344                                                      &lod_comp->llc_extent))
6345                                 break;
6346
6347                         if (lod_comp_inited(lod_comp))
6348                                 continue;
6349
6350                         CDEBUG(D_LAYOUT, "write instantiate %d / %d\n",
6351                                primary, lod_comp_index(lo, lod_comp));
6352                         info->lti_comp_idx[info->lti_count++] =
6353                                                 lod_comp_index(lo, lod_comp);
6354                 }
6355         } else { /* MD_LAYOUT_RESYNC */
6356                 lod_foreach_mirror_comp(lod_comp, lo, primary) {
6357                         if (!lod_comp_inited(lod_comp))
6358                                 break;
6359
6360                         extent.e_end = lod_comp->llc_extent.e_end;
6361                 }
6362
6363                 rc = lod_prepare_resync(env, lo, &extent);
6364                 if (rc)
6365                         GOTO(out, rc);
6366                 /* change the file state to SYNC_PENDING */
6367                 lo->ldo_flr_state = LCM_FL_SYNC_PENDING;
6368         }
6369
6370         rc = lod_declare_instantiate_components(env, lo, th);
6371         if (rc)
6372                 GOTO(out, rc);
6373
6374         /* 3. transfer layout version to OST objects.
6375          * transfer new layout version to OST objects so that stale writes
6376          * can be denied. It also ends an era of writing by setting
6377          * LU_LAYOUT_RESYNC. Normal client can never use this bit to
6378          * send write RPC; only resync RPCs could do it. */
6379         layout_attr->la_valid = LA_LAYOUT_VERSION;
6380         layout_attr->la_layout_version = 0; /* set current version */
6381         if (mlc->mlc_opc == MD_LAYOUT_RESYNC)
6382                 layout_attr->la_layout_version = LU_LAYOUT_RESYNC;
6383         rc = lod_declare_attr_set(env, &lo->ldo_obj, layout_attr, th);
6384         if (rc)
6385                 GOTO(out, rc);
6386
6387         lod_obj_inc_layout_gen(lo);
6388 out:
6389         if (rc)
6390                 lod_striping_free(env, lo);
6391         RETURN(rc);
6392 }
6393
6394 static int lod_declare_update_sync_pending(const struct lu_env *env,
6395                 struct lod_object *lo, struct md_layout_change *mlc,
6396                 struct thandle *th)
6397 {
6398         struct lod_thread_info  *info = lod_env_info(env);
6399         unsigned sync_components = 0;
6400         unsigned resync_components = 0;
6401         int i;
6402         int rc;
6403         ENTRY;
6404
6405         LASSERT(lo->ldo_flr_state == LCM_FL_SYNC_PENDING);
6406         LASSERT(mlc->mlc_opc == MD_LAYOUT_RESYNC_DONE ||
6407                 mlc->mlc_opc == MD_LAYOUT_WRITE);
6408
6409         CDEBUG(D_LAYOUT, DFID ": received op %d in sync pending\n",
6410                PFID(lod_object_fid(lo)), mlc->mlc_opc);
6411
6412         if (mlc->mlc_opc == MD_LAYOUT_WRITE) {
6413                 CDEBUG(D_LAYOUT, DFID": cocurrent write to sync pending\n",
6414                        PFID(lod_object_fid(lo)));
6415
6416                 lo->ldo_flr_state = LCM_FL_WRITE_PENDING;
6417                 return lod_declare_update_write_pending(env, lo, mlc, th);
6418         }
6419
6420         /* MD_LAYOUT_RESYNC_DONE */
6421
6422         for (i = 0; i < lo->ldo_comp_cnt; i++) {
6423                 struct lod_layout_component *lod_comp;
6424                 int j;
6425
6426                 lod_comp = &lo->ldo_comp_entries[i];
6427
6428                 if (!(lod_comp->llc_flags & LCME_FL_STALE)) {
6429                         sync_components++;
6430                         continue;
6431                 }
6432
6433                 for (j = 0; j < mlc->mlc_resync_count; j++) {
6434                         if (lod_comp->llc_id != mlc->mlc_resync_ids[j])
6435                                 continue;
6436
6437                         mlc->mlc_resync_ids[j] = LCME_ID_INVAL;
6438                         lod_comp->llc_flags &= ~LCME_FL_STALE;
6439                         resync_components++;
6440                         break;
6441                 }
6442         }
6443
6444         /* valid check */
6445         for (i = 0; i < mlc->mlc_resync_count; i++) {
6446                 if (mlc->mlc_resync_ids[i] == LCME_ID_INVAL)
6447                         continue;
6448
6449                 CDEBUG(D_LAYOUT, DFID": lcme id %u (%d / %zd) not exist "
6450                        "or already synced\n", PFID(lod_object_fid(lo)),
6451                        mlc->mlc_resync_ids[i], i, mlc->mlc_resync_count);
6452                 GOTO(out, rc = -EINVAL);
6453         }
6454
6455         if (!sync_components || (mlc->mlc_resync_count && !resync_components)) {
6456                 CDEBUG(D_LAYOUT, DFID": no mirror in sync\n",
6457                        PFID(lod_object_fid(lo)));
6458
6459                 /* tend to return an error code here to prevent
6460                  * the MDT from setting SoM attribute */
6461                 GOTO(out, rc = -EINVAL);
6462         }
6463
6464         CDEBUG(D_LAYOUT, DFID": resynced %u/%zu components\n",
6465                PFID(lod_object_fid(lo)),
6466                resync_components, mlc->mlc_resync_count);
6467
6468         lo->ldo_flr_state = LCM_FL_RDONLY;
6469         lod_obj_inc_layout_gen(lo);
6470
6471         info->lti_buf.lb_len = lod_comp_md_size(lo, false);
6472         rc = lod_sub_declare_xattr_set(env, lod_object_child(lo),
6473                                        &info->lti_buf, XATTR_NAME_LOV, 0, th);
6474         EXIT;
6475
6476 out:
6477         if (rc)
6478                 lod_striping_free(env, lo);
6479         RETURN(rc);
6480 }
6481
6482 static int lod_declare_layout_change(const struct lu_env *env,
6483                 struct dt_object *dt, struct md_layout_change *mlc,
6484                 struct thandle *th)
6485 {
6486         struct lod_thread_info  *info = lod_env_info(env);
6487         struct lod_object *lo = lod_dt_obj(dt);
6488         int rc;
6489         ENTRY;
6490
6491         if (!S_ISREG(dt->do_lu.lo_header->loh_attr) || !dt_object_exists(dt) ||
6492             dt_object_remote(dt_object_child(dt)))
6493                 RETURN(-EINVAL);
6494
6495         rc = lod_striping_load(env, lo);
6496         if (rc)
6497                 GOTO(out, rc);
6498
6499         LASSERT(lo->ldo_comp_cnt > 0);
6500
6501         rc = lod_layout_data_init(info, lo->ldo_comp_cnt);
6502         if (rc)
6503                 GOTO(out, rc);
6504
6505         switch (lo->ldo_flr_state) {
6506         case LCM_FL_NONE:
6507                 rc = lod_declare_update_plain(env, lo, mlc->mlc_intent,
6508                                               &mlc->mlc_buf, th);
6509                 break;
6510         case LCM_FL_RDONLY:
6511                 rc = lod_declare_update_rdonly(env, lo, mlc, th);
6512                 break;
6513         case LCM_FL_WRITE_PENDING:
6514                 rc = lod_declare_update_write_pending(env, lo, mlc, th);
6515                 break;
6516         case LCM_FL_SYNC_PENDING:
6517                 rc = lod_declare_update_sync_pending(env, lo, mlc, th);
6518                 break;
6519         default:
6520                 rc = -ENOTSUPP;
6521                 break;
6522         }
6523 out:
6524         RETURN(rc);
6525 }
6526
6527 /**
6528  * Instantiate layout component objects which covers the intent write offset.
6529  */
6530 static int lod_layout_change(const struct lu_env *env, struct dt_object *dt,
6531                              struct md_layout_change *mlc, struct thandle *th)
6532 {
6533         struct lu_attr *attr = &lod_env_info(env)->lti_attr;
6534         struct lu_attr *layout_attr = &lod_env_info(env)->lti_layout_attr;
6535         struct lod_object *lo = lod_dt_obj(dt);
6536         int rc;
6537
6538         rc = lod_striped_create(env, dt, attr, NULL, th);
6539         if (!rc && layout_attr->la_valid & LA_LAYOUT_VERSION) {
6540                 layout_attr->la_layout_version |= lo->ldo_layout_gen;
6541                 rc = lod_attr_set(env, dt, layout_attr, th);
6542         }
6543
6544         return rc;
6545 }
6546
6547 struct dt_object_operations lod_obj_ops = {
6548         .do_read_lock           = lod_read_lock,
6549         .do_write_lock          = lod_write_lock,
6550         .do_read_unlock         = lod_read_unlock,
6551         .do_write_unlock        = lod_write_unlock,
6552         .do_write_locked        = lod_write_locked,
6553         .do_attr_get            = lod_attr_get,
6554         .do_declare_attr_set    = lod_declare_attr_set,
6555         .do_attr_set            = lod_attr_set,
6556         .do_xattr_get           = lod_xattr_get,
6557         .do_declare_xattr_set   = lod_declare_xattr_set,
6558         .do_xattr_set           = lod_xattr_set,
6559         .do_declare_xattr_del   = lod_declare_xattr_del,
6560         .do_xattr_del           = lod_xattr_del,
6561         .do_xattr_list          = lod_xattr_list,
6562         .do_ah_init             = lod_ah_init,
6563         .do_declare_create      = lod_declare_create,
6564         .do_create              = lod_create,
6565         .do_declare_destroy     = lod_declare_destroy,
6566         .do_destroy             = lod_destroy,
6567         .do_index_try           = lod_index_try,
6568         .do_declare_ref_add     = lod_declare_ref_add,
6569         .do_ref_add             = lod_ref_add,
6570         .do_declare_ref_del     = lod_declare_ref_del,
6571         .do_ref_del             = lod_ref_del,
6572         .do_object_sync         = lod_object_sync,
6573         .do_object_lock         = lod_object_lock,
6574         .do_object_unlock       = lod_object_unlock,
6575         .do_invalidate          = lod_invalidate,
6576         .do_declare_layout_change = lod_declare_layout_change,
6577         .do_layout_change       = lod_layout_change,
6578 };
6579
6580 /**
6581  * Implementation of dt_body_operations::dbo_read.
6582  *
6583  * \see dt_body_operations::dbo_read() in the API description for details.
6584  */
6585 static ssize_t lod_read(const struct lu_env *env, struct dt_object *dt,
6586                         struct lu_buf *buf, loff_t *pos)
6587 {
6588         struct dt_object *next = dt_object_child(dt);
6589
6590         LASSERT(S_ISREG(dt->do_lu.lo_header->loh_attr) ||
6591                 S_ISLNK(dt->do_lu.lo_header->loh_attr));
6592         return next->do_body_ops->dbo_read(env, next, buf, pos);
6593 }
6594
6595 /**
6596  * Implementation of dt_body_operations::dbo_declare_write.
6597  *
6598  * \see dt_body_operations::dbo_declare_write() in the API description
6599  * for details.
6600  */
6601 static ssize_t lod_declare_write(const struct lu_env *env,
6602                                  struct dt_object *dt,
6603                                  const struct lu_buf *buf, loff_t pos,
6604                                  struct thandle *th)
6605 {
6606         return lod_sub_declare_write(env, dt_object_child(dt), buf, pos, th);
6607 }
6608
6609 /**
6610  * Implementation of dt_body_operations::dbo_write.
6611  *
6612  * \see dt_body_operations::dbo_write() in the API description for details.
6613  */
6614 static ssize_t lod_write(const struct lu_env *env, struct dt_object *dt,
6615                          const struct lu_buf *buf, loff_t *pos,
6616                          struct thandle *th, int iq)
6617 {
6618         LASSERT(S_ISREG(dt->do_lu.lo_header->loh_attr) ||
6619                 S_ISLNK(dt->do_lu.lo_header->loh_attr));
6620         return lod_sub_write(env, dt_object_child(dt), buf, pos, th, iq);
6621 }
6622
6623 static int lod_declare_punch(const struct lu_env *env, struct dt_object *dt,
6624                              __u64 start, __u64 end, struct thandle *th)
6625 {
6626         if (dt_object_remote(dt))
6627                 return -ENOTSUPP;
6628
6629         return lod_sub_declare_punch(env, dt_object_child(dt), start, end, th);
6630 }
6631
6632 static int lod_punch(const struct lu_env *env, struct dt_object *dt,
6633                      __u64 start, __u64 end, struct thandle *th)
6634 {
6635         if (dt_object_remote(dt))
6636                 return -ENOTSUPP;
6637
6638         LASSERT(S_ISREG(dt->do_lu.lo_header->loh_attr));
6639         return lod_sub_punch(env, dt_object_child(dt), start, end, th);
6640 }
6641
6642 /*
6643  * different type of files use the same body_ops because object may be created
6644  * in OUT, where there is no chance to set correct body_ops for each type, so
6645  * body_ops themselves will check file type inside, see lod_read/write/punch for
6646  * details.
6647  */
6648 const struct dt_body_operations lod_body_ops = {
6649         .dbo_read               = lod_read,
6650         .dbo_declare_write      = lod_declare_write,
6651         .dbo_write              = lod_write,
6652         .dbo_declare_punch      = lod_declare_punch,
6653         .dbo_punch              = lod_punch,
6654 };
6655
6656 /**
6657  * Implementation of lu_object_operations::loo_object_init.
6658  *
6659  * The function determines the type and the index of the target device using
6660  * sequence of the object's FID. Then passes control down to the
6661  * corresponding device:
6662  *  OSD for the local objects, OSP for remote
6663  *
6664  * \see lu_object_operations::loo_object_init() in the API description
6665  * for details.
6666  */
6667 static int lod_object_init(const struct lu_env *env, struct lu_object *lo,
6668                            const struct lu_object_conf *conf)
6669 {
6670         struct lod_device       *lod    = lu2lod_dev(lo->lo_dev);
6671         struct lu_device        *cdev   = NULL;
6672         struct lu_object        *cobj;
6673         struct lod_tgt_descs    *ltd    = NULL;
6674         struct lod_tgt_desc     *tgt;
6675         u32                      idx    = 0;
6676         int                      type   = LU_SEQ_RANGE_ANY;
6677         int                      rc;
6678         ENTRY;
6679
6680         rc = lod_fld_lookup(env, lod, lu_object_fid(lo), &idx, &type);
6681         if (rc != 0) {
6682                 /* Note: Sometimes, it will Return EAGAIN here, see
6683                  * ptrlpc_import_delay_req(), which might confuse
6684                  * lu_object_find_at() and make it wait there incorrectly.
6685                  * so we convert it to EIO here.*/
6686                 if (rc == -EAGAIN)
6687                         rc = -EIO;
6688
6689                 RETURN(rc);
6690         }
6691
6692         if (type == LU_SEQ_RANGE_MDT &&
6693             idx == lu_site2seq(lo->lo_dev->ld_site)->ss_node_id) {
6694                 cdev = &lod->lod_child->dd_lu_dev;
6695         } else if (type == LU_SEQ_RANGE_MDT) {
6696                 ltd = &lod->lod_mdt_descs;
6697                 lod_getref(ltd);
6698         } else if (type == LU_SEQ_RANGE_OST) {
6699                 ltd = &lod->lod_ost_descs;
6700                 lod_getref(ltd);
6701         } else {
6702                 LBUG();
6703         }
6704
6705         if (ltd != NULL) {
6706                 if (ltd->ltd_tgts_size > idx &&
6707                     cfs_bitmap_check(ltd->ltd_tgt_bitmap, idx)) {
6708                         tgt = LTD_TGT(ltd, idx);
6709
6710                         LASSERT(tgt != NULL);
6711                         LASSERT(tgt->ltd_tgt != NULL);
6712
6713                         cdev = &(tgt->ltd_tgt->dd_lu_dev);
6714                 }
6715                 lod_putref(lod, ltd);
6716         }
6717
6718         if (unlikely(cdev == NULL))
6719                 RETURN(-ENOENT);
6720
6721         cobj = cdev->ld_ops->ldo_object_alloc(env, lo->lo_header, cdev);
6722         if (unlikely(cobj == NULL))
6723                 RETURN(-ENOMEM);
6724
6725         lu2lod_obj(lo)->ldo_obj.do_body_ops = &lod_body_ops;
6726
6727         lu_object_add(lo, cobj);
6728
6729         RETURN(0);
6730 }
6731
6732 /**
6733  *
6734  * Release resources associated with striping.
6735  *
6736  * If the object is striped (regular or directory), then release
6737  * the stripe objects references and free the ldo_stripe array.
6738  *
6739  * \param[in] env       execution environment
6740  * \param[in] lo        object
6741  */
6742 void lod_striping_free_nolock(const struct lu_env *env, struct lod_object *lo)
6743 {
6744         struct lod_layout_component *lod_comp;
6745         int i, j;
6746
6747         if (lo->ldo_stripe != NULL) {
6748                 LASSERT(lo->ldo_comp_entries == NULL);
6749                 LASSERT(lo->ldo_dir_stripes_allocated > 0);
6750
6751                 for (i = 0; i < lo->ldo_dir_stripe_count; i++) {
6752                         if (lo->ldo_stripe[i])
6753                                 dt_object_put(env, lo->ldo_stripe[i]);
6754                 }
6755
6756                 j = sizeof(struct dt_object *) * lo->ldo_dir_stripes_allocated;
6757                 OBD_FREE(lo->ldo_stripe, j);
6758                 lo->ldo_stripe = NULL;
6759                 lo->ldo_dir_stripes_allocated = 0;
6760                 lo->ldo_dir_stripe_loaded = 0;
6761                 lo->ldo_dir_stripe_count = 0;
6762         } else if (lo->ldo_comp_entries != NULL) {
6763                 for (i = 0; i < lo->ldo_comp_cnt; i++) {
6764                         /* free lod_layout_component::llc_stripe array */
6765                         lod_comp = &lo->ldo_comp_entries[i];
6766
6767                         if (lod_comp->llc_stripe == NULL)
6768                                 continue;
6769                         LASSERT(lod_comp->llc_stripes_allocated != 0);
6770                         for (j = 0; j < lod_comp->llc_stripes_allocated; j++) {
6771                                 if (lod_comp->llc_stripe[j] != NULL)
6772                                         lu_object_put(env,
6773                                                &lod_comp->llc_stripe[j]->do_lu);
6774                         }
6775                         OBD_FREE(lod_comp->llc_stripe,
6776                                  sizeof(struct dt_object *) *
6777                                  lod_comp->llc_stripes_allocated);
6778                         lod_comp->llc_stripe = NULL;
6779                         OBD_FREE(lod_comp->llc_ost_indices,
6780                                  sizeof(__u32) *
6781                                  lod_comp->llc_stripes_allocated);
6782                         lod_comp->llc_ost_indices = NULL;
6783                         lod_comp->llc_stripes_allocated = 0;
6784                 }
6785                 lod_free_comp_entries(lo);
6786                 lo->ldo_comp_cached = 0;
6787         }
6788 }
6789
6790 void lod_striping_free(const struct lu_env *env, struct lod_object *lo)
6791 {
6792         mutex_lock(&lo->ldo_layout_mutex);
6793         lod_striping_free_nolock(env, lo);
6794         mutex_unlock(&lo->ldo_layout_mutex);
6795 }
6796
6797 /**
6798  * Implementation of lu_object_operations::loo_object_free.
6799  *
6800  * \see lu_object_operations::loo_object_free() in the API description
6801  * for details.
6802  */
6803 static void lod_object_free(const struct lu_env *env, struct lu_object *o)
6804 {
6805         struct lod_object *lo = lu2lod_obj(o);
6806
6807         /* release all underlying object pinned */
6808         lod_striping_free(env, lo);
6809         lu_object_fini(o);
6810         OBD_SLAB_FREE_PTR(lo, lod_object_kmem);
6811 }
6812
6813 /**
6814  * Implementation of lu_object_operations::loo_object_release.
6815  *
6816  * \see lu_object_operations::loo_object_release() in the API description
6817  * for details.
6818  */
6819 static void lod_object_release(const struct lu_env *env, struct lu_object *o)
6820 {
6821         /* XXX: shouldn't we release everything here in case if object
6822          * creation failed before? */
6823 }
6824
6825 /**
6826  * Implementation of lu_object_operations::loo_object_print.
6827  *
6828  * \see lu_object_operations::loo_object_print() in the API description
6829  * for details.
6830  */
6831 static int lod_object_print(const struct lu_env *env, void *cookie,
6832                             lu_printer_t p, const struct lu_object *l)
6833 {
6834         struct lod_object *o = lu2lod_obj((struct lu_object *) l);
6835
6836         return (*p)(env, cookie, LUSTRE_LOD_NAME"-object@%p", o);
6837 }
6838
6839 struct lu_object_operations lod_lu_obj_ops = {
6840         .loo_object_init        = lod_object_init,
6841         .loo_object_free        = lod_object_free,
6842         .loo_object_release     = lod_object_release,
6843         .loo_object_print       = lod_object_print,
6844 };