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LU-15220 lustre: use 'fallthrough' pseudo keyword for switch
[fs/lustre-release.git] / lustre / ptlrpc / pack_generic.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, but
11  * WITHOUT ANY WARRANTY; without even the implied warranty of
12  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
13  * General Public License version 2 for more details (a copy is included
14  * in the LICENSE file that accompanied this code).
15  *
16  * You should have received a copy of the GNU General Public License
17  * version 2 along with this program; If not, see
18  * http://www.gnu.org/licenses/gpl-2.0.html
19  *
20  * GPL HEADER END
21  */
22 /*
23  * Copyright (c) 2002, 2010, Oracle and/or its affiliates. All rights reserved.
24  * Use is subject to license terms.
25  *
26  * Copyright (c) 2011, 2017, Intel Corporation.
27  */
28 /*
29  * This file is part of Lustre, http://www.lustre.org/
30  *
31  * lustre/ptlrpc/pack_generic.c
32  *
33  * (Un)packing of OST requests
34  *
35  * Author: Peter J. Braam <braam@clusterfs.com>
36  * Author: Phil Schwan <phil@clusterfs.com>
37  * Author: Eric Barton <eeb@clusterfs.com>
38  */
39
40 #define DEBUG_SUBSYSTEM S_RPC
41
42 #include <linux/crc32.h>
43
44 #include <libcfs/libcfs.h>
45
46 #include <llog_swab.h>
47 #include <lustre_net.h>
48 #include <lustre_swab.h>
49 #include <obd_cksum.h>
50 #include <obd_class.h>
51 #include <obd_support.h>
52 #include "ptlrpc_internal.h"
53
54 static inline __u32 lustre_msg_hdr_size_v2(__u32 count)
55 {
56         return cfs_size_round(offsetof(struct lustre_msg_v2,
57                                        lm_buflens[count]));
58 }
59
60 __u32 lustre_msg_hdr_size(__u32 magic, __u32 count)
61 {
62         LASSERT(count > 0);
63
64         switch (magic) {
65         case LUSTRE_MSG_MAGIC_V2:
66                 return lustre_msg_hdr_size_v2(count);
67         default:
68                 LASSERTF(0, "incorrect message magic: %08x\n", magic);
69                 return 0;
70         }
71 }
72
73 static inline int lustre_msg_check_version_v2(struct lustre_msg_v2 *msg,
74                                               enum lustre_msg_version version)
75 {
76         enum lustre_msg_version ver = lustre_msg_get_version(msg);
77
78         return (ver & LUSTRE_VERSION_MASK) != version;
79 }
80
81 int lustre_msg_check_version(struct lustre_msg *msg,
82                              enum lustre_msg_version version)
83 {
84 #define LUSTRE_MSG_MAGIC_V1 0x0BD00BD0
85         switch (msg->lm_magic) {
86         case LUSTRE_MSG_MAGIC_V1:
87                 CERROR("msg v1 not supported - please upgrade you system\n");
88                 return -EINVAL;
89         case LUSTRE_MSG_MAGIC_V2:
90                 return lustre_msg_check_version_v2(msg, version);
91         default:
92                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
93                 return -EPROTO;
94         }
95 #undef LUSTRE_MSG_MAGIC_V1
96 }
97
98 __u32 lustre_msg_early_size;
99 EXPORT_SYMBOL(lustre_msg_early_size);
100
101 /* early reply size */
102 void lustre_msg_early_size_init(void)
103 {
104         __u32 pblen = sizeof(struct ptlrpc_body);
105
106         lustre_msg_early_size = lustre_msg_size(LUSTRE_MSG_MAGIC_V2, 1, &pblen);
107 }
108
109 __u32 lustre_msg_size_v2(int count, __u32 *lengths)
110 {
111         __u32 size;
112         int i;
113
114         LASSERT(count > 0);
115         size = lustre_msg_hdr_size_v2(count);
116         for (i = 0; i < count; i++)
117                 size += cfs_size_round(lengths[i]);
118
119         return size;
120 }
121 EXPORT_SYMBOL(lustre_msg_size_v2);
122
123 /*
124  * This returns the size of the buffer that is required to hold a lustre_msg
125  * with the given sub-buffer lengths.
126  * NOTE: this should only be used for NEW requests, and should always be
127  *       in the form of a v2 request.  If this is a connection to a v1
128  *       target then the first buffer will be stripped because the ptlrpc
129  *       data is part of the lustre_msg_v1 header. b=14043
130  */
131 __u32 lustre_msg_size(__u32 magic, int count, __u32 *lens)
132 {
133         __u32 size[] = { sizeof(struct ptlrpc_body) };
134
135         if (!lens) {
136                 LASSERT(count == 1);
137                 lens = size;
138         }
139
140         LASSERT(count > 0);
141         LASSERT(lens[MSG_PTLRPC_BODY_OFF] >= sizeof(struct ptlrpc_body_v2));
142
143         switch (magic) {
144         case LUSTRE_MSG_MAGIC_V2:
145                 return lustre_msg_size_v2(count, lens);
146         default:
147                 LASSERTF(0, "incorrect message magic: %08x\n", magic);
148                 return 0;
149         }
150 }
151
152 /*
153  * This is used to determine the size of a buffer that was already packed
154  * and will correctly handle the different message formats.
155  */
156 __u32 lustre_packed_msg_size(struct lustre_msg *msg)
157 {
158         switch (msg->lm_magic) {
159         case LUSTRE_MSG_MAGIC_V2:
160                 return lustre_msg_size_v2(msg->lm_bufcount, msg->lm_buflens);
161         default:
162                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
163                 return 0;
164         }
165 }
166 EXPORT_SYMBOL(lustre_packed_msg_size);
167
168 void lustre_init_msg_v2(struct lustre_msg_v2 *msg, int count, __u32 *lens,
169                         char **bufs)
170 {
171         char *ptr;
172         int i;
173
174         LASSERT(count > 0);
175
176         msg->lm_bufcount = count;
177         /* XXX: lm_secflvr uninitialized here */
178         msg->lm_magic = LUSTRE_MSG_MAGIC_V2;
179
180         for (i = 0; i < count; i++)
181                 msg->lm_buflens[i] = lens[i];
182
183         if (bufs == NULL)
184                 return;
185
186         ptr = (char *)msg + lustre_msg_hdr_size_v2(count);
187         for (i = 0; i < count; i++) {
188                 char *tmp = bufs[i];
189
190                 if (tmp)
191                         memcpy(ptr, tmp, lens[i]);
192                 ptr += cfs_size_round(lens[i]);
193         }
194 }
195 EXPORT_SYMBOL(lustre_init_msg_v2);
196
197 static int lustre_pack_request_v2(struct ptlrpc_request *req,
198                                   int count, __u32 *lens, char **bufs)
199 {
200         int reqlen, rc;
201
202         reqlen = lustre_msg_size_v2(count, lens);
203
204         rc = sptlrpc_cli_alloc_reqbuf(req, reqlen);
205         if (rc)
206                 return rc;
207
208         req->rq_reqlen = reqlen;
209
210         lustre_init_msg_v2(req->rq_reqmsg, count, lens, bufs);
211         lustre_msg_add_version(req->rq_reqmsg, PTLRPC_MSG_VERSION);
212         return 0;
213 }
214
215 int lustre_pack_request(struct ptlrpc_request *req, __u32 magic, int count,
216                         __u32 *lens, char **bufs)
217 {
218         __u32 size[] = { sizeof(struct ptlrpc_body) };
219
220         if (!lens) {
221                 LASSERT(count == 1);
222                 lens = size;
223         }
224
225         LASSERT(count > 0);
226         LASSERT(lens[MSG_PTLRPC_BODY_OFF] == sizeof(struct ptlrpc_body));
227
228         /* only use new format, we don't need to be compatible with 1.4 */
229         magic = LUSTRE_MSG_MAGIC_V2;
230
231         switch (magic) {
232         case LUSTRE_MSG_MAGIC_V2:
233                 return lustre_pack_request_v2(req, count, lens, bufs);
234         default:
235                 LASSERTF(0, "incorrect message magic: %08x\n", magic);
236                 return -EINVAL;
237         }
238 }
239
240 #if RS_DEBUG
241 struct list_head ptlrpc_rs_debug_lru =
242         LIST_HEAD_INIT(ptlrpc_rs_debug_lru);
243 spinlock_t ptlrpc_rs_debug_lock;
244
245 #define PTLRPC_RS_DEBUG_LRU_ADD(rs)                                     \
246 do {                                                                    \
247         spin_lock(&ptlrpc_rs_debug_lock);                               \
248         list_add_tail(&(rs)->rs_debug_list, &ptlrpc_rs_debug_lru);      \
249         spin_unlock(&ptlrpc_rs_debug_lock);                             \
250 } while (0)
251
252 #define PTLRPC_RS_DEBUG_LRU_DEL(rs)                                     \
253 do {                                                                    \
254         spin_lock(&ptlrpc_rs_debug_lock);                               \
255         list_del(&(rs)->rs_debug_list);                         \
256         spin_unlock(&ptlrpc_rs_debug_lock);                             \
257 } while (0)
258 #else
259 # define PTLRPC_RS_DEBUG_LRU_ADD(rs) do {} while(0)
260 # define PTLRPC_RS_DEBUG_LRU_DEL(rs) do {} while(0)
261 #endif
262
263 struct ptlrpc_reply_state *
264 lustre_get_emerg_rs(struct ptlrpc_service_part *svcpt)
265 {
266         struct ptlrpc_reply_state *rs = NULL;
267
268         spin_lock(&svcpt->scp_rep_lock);
269
270         /* See if we have anything in a pool, and wait if nothing */
271         while (list_empty(&svcpt->scp_rep_idle)) {
272                 int                     rc;
273
274                 spin_unlock(&svcpt->scp_rep_lock);
275                 /* If we cannot get anything for some long time, we better
276                  * bail out instead of waiting infinitely */
277                 rc = wait_event_idle_timeout(svcpt->scp_rep_waitq,
278                                              !list_empty(&svcpt->scp_rep_idle),
279                                              cfs_time_seconds(10));
280                 if (rc <= 0)
281                         goto out;
282                 spin_lock(&svcpt->scp_rep_lock);
283         }
284
285         rs = list_first_entry(&svcpt->scp_rep_idle,
286                               struct ptlrpc_reply_state, rs_list);
287         list_del(&rs->rs_list);
288
289         spin_unlock(&svcpt->scp_rep_lock);
290
291         memset(rs, 0, svcpt->scp_service->srv_max_reply_size);
292         rs->rs_size = svcpt->scp_service->srv_max_reply_size;
293         rs->rs_svcpt = svcpt;
294         rs->rs_prealloc = 1;
295 out:
296         return rs;
297 }
298
299 void lustre_put_emerg_rs(struct ptlrpc_reply_state *rs)
300 {
301         struct ptlrpc_service_part *svcpt = rs->rs_svcpt;
302
303         spin_lock(&svcpt->scp_rep_lock);
304         list_add(&rs->rs_list, &svcpt->scp_rep_idle);
305         spin_unlock(&svcpt->scp_rep_lock);
306         wake_up(&svcpt->scp_rep_waitq);
307 }
308
309 int lustre_pack_reply_v2(struct ptlrpc_request *req, int count,
310                          __u32 *lens, char **bufs, int flags)
311 {
312         struct ptlrpc_reply_state *rs;
313         int msg_len, rc;
314         ENTRY;
315
316         LASSERT(req->rq_reply_state == NULL);
317         LASSERT(count > 0);
318
319         if ((flags & LPRFL_EARLY_REPLY) == 0) {
320                 spin_lock(&req->rq_lock);
321                 req->rq_packed_final = 1;
322                 spin_unlock(&req->rq_lock);
323         }
324
325         msg_len = lustre_msg_size_v2(count, lens);
326         rc = sptlrpc_svc_alloc_rs(req, msg_len);
327         if (rc)
328                 RETURN(rc);
329
330         rs = req->rq_reply_state;
331         atomic_set(&rs->rs_refcount, 1); /* 1 ref for rq_reply_state */
332         rs->rs_cb_id.cbid_fn = reply_out_callback;
333         rs->rs_cb_id.cbid_arg = rs;
334         rs->rs_svcpt = req->rq_rqbd->rqbd_svcpt;
335         INIT_LIST_HEAD(&rs->rs_exp_list);
336         INIT_LIST_HEAD(&rs->rs_obd_list);
337         INIT_LIST_HEAD(&rs->rs_list);
338         spin_lock_init(&rs->rs_lock);
339
340         req->rq_replen = msg_len;
341         req->rq_reply_state = rs;
342         req->rq_repmsg = rs->rs_msg;
343
344         lustre_init_msg_v2(rs->rs_msg, count, lens, bufs);
345         lustre_msg_add_version(rs->rs_msg, PTLRPC_MSG_VERSION);
346
347         PTLRPC_RS_DEBUG_LRU_ADD(rs);
348
349         RETURN(0);
350 }
351 EXPORT_SYMBOL(lustre_pack_reply_v2);
352
353 int lustre_pack_reply_flags(struct ptlrpc_request *req, int count, __u32 *lens,
354                             char **bufs, int flags)
355 {
356         int rc = 0;
357         __u32 size[] = { sizeof(struct ptlrpc_body) };
358
359         if (!lens) {
360                 LASSERT(count == 1);
361                 lens = size;
362         }
363
364         LASSERT(count > 0);
365         LASSERT(lens[MSG_PTLRPC_BODY_OFF] == sizeof(struct ptlrpc_body));
366
367         switch (req->rq_reqmsg->lm_magic) {
368         case LUSTRE_MSG_MAGIC_V2:
369                 rc = lustre_pack_reply_v2(req, count, lens, bufs, flags);
370                 break;
371         default:
372                 LASSERTF(0, "incorrect message magic: %08x\n",
373                          req->rq_reqmsg->lm_magic);
374                 rc = -EINVAL;
375         }
376         if (rc != 0)
377                 CERROR("lustre_pack_reply failed: rc=%d size=%d\n", rc,
378                        lustre_msg_size(req->rq_reqmsg->lm_magic, count, lens));
379         return rc;
380 }
381
382 int lustre_pack_reply(struct ptlrpc_request *req, int count, __u32 *lens,
383                       char **bufs)
384 {
385         return lustre_pack_reply_flags(req, count, lens, bufs, 0);
386 }
387 EXPORT_SYMBOL(lustre_pack_reply);
388
389 void *lustre_msg_buf_v2(struct lustre_msg_v2 *m, __u32 n, __u32 min_size)
390 {
391         __u32 i, offset, buflen, bufcount;
392
393         LASSERT(m != NULL);
394         LASSERT(m->lm_bufcount > 0);
395
396         bufcount = m->lm_bufcount;
397         if (unlikely(n >= bufcount)) {
398                 CDEBUG(D_INFO, "msg %p buffer[%d] not present (count %d)\n",
399                        m, n, bufcount);
400                 return NULL;
401         }
402
403         buflen = m->lm_buflens[n];
404         if (unlikely(buflen < min_size)) {
405                 CERROR("msg %p buffer[%d] size %d too small "
406                        "(required %d, opc=%d)\n", m, n, buflen, min_size,
407                        n == MSG_PTLRPC_BODY_OFF ? -1 : lustre_msg_get_opc(m));
408                 return NULL;
409         }
410
411         offset = lustre_msg_hdr_size_v2(bufcount);
412         for (i = 0; i < n; i++)
413                 offset += cfs_size_round(m->lm_buflens[i]);
414
415         return (char *)m + offset;
416 }
417
418 void *lustre_msg_buf(struct lustre_msg *m, __u32 n, __u32 min_size)
419 {
420         switch (m->lm_magic) {
421         case LUSTRE_MSG_MAGIC_V2:
422                 return lustre_msg_buf_v2(m, n, min_size);
423         default:
424                 LASSERTF(0, "incorrect message magic: %08x (msg:%p)\n",
425                          m->lm_magic, m);
426                 return NULL;
427         }
428 }
429 EXPORT_SYMBOL(lustre_msg_buf);
430
431 static int lustre_shrink_msg_v2(struct lustre_msg_v2 *msg, __u32 segment,
432                                 unsigned int newlen, int move_data)
433 {
434         char *tail = NULL, *newpos;
435         int tail_len = 0, n;
436
437         LASSERT(msg);
438         LASSERT(msg->lm_bufcount > segment);
439         LASSERT(msg->lm_buflens[segment] >= newlen);
440
441         if (msg->lm_buflens[segment] == newlen)
442                 goto out;
443
444         if (move_data && msg->lm_bufcount > segment + 1) {
445                 tail = lustre_msg_buf_v2(msg, segment + 1, 0);
446                 for (n = segment + 1; n < msg->lm_bufcount; n++)
447                         tail_len += cfs_size_round(msg->lm_buflens[n]);
448         }
449
450         msg->lm_buflens[segment] = newlen;
451
452         if (tail && tail_len) {
453                 newpos = lustre_msg_buf_v2(msg, segment + 1, 0);
454                 LASSERT(newpos <= tail);
455                 if (newpos != tail)
456                         memmove(newpos, tail, tail_len);
457         }
458 out:
459         return lustre_msg_size_v2(msg->lm_bufcount, msg->lm_buflens);
460 }
461
462 /*
463  * for @msg, shrink @segment to size @newlen. if @move_data is non-zero,
464  * we also move data forward from @segment + 1.
465  *
466  * if @newlen == 0, we remove the segment completely, but we still keep the
467  * totally bufcount the same to save possible data moving. this will leave a
468  * unused segment with size 0 at the tail, but that's ok.
469  *
470  * return new msg size after shrinking.
471  *
472  * CAUTION:
473  * + if any buffers higher than @segment has been filled in, must call shrink
474  *   with non-zero @move_data.
475  * + caller should NOT keep pointers to msg buffers which higher than @segment
476  *   after call shrink.
477  */
478 int lustre_shrink_msg(struct lustre_msg *msg, int segment,
479                       unsigned int newlen, int move_data)
480 {
481         switch (msg->lm_magic) {
482         case LUSTRE_MSG_MAGIC_V2:
483                 return lustre_shrink_msg_v2(msg, segment, newlen, move_data);
484         default:
485                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
486         }
487 }
488 EXPORT_SYMBOL(lustre_shrink_msg);
489
490 static int lustre_grow_msg_v2(struct lustre_msg_v2 *msg, __u32 segment,
491                               unsigned int newlen)
492 {
493         char *tail = NULL, *newpos;
494         int tail_len = 0, n;
495
496         LASSERT(msg);
497         LASSERT(msg->lm_bufcount > segment);
498         LASSERT(msg->lm_buflens[segment] <= newlen);
499
500         if (msg->lm_buflens[segment] == newlen)
501                 goto out;
502
503         if (msg->lm_bufcount > segment + 1) {
504                 tail = lustre_msg_buf_v2(msg, segment + 1, 0);
505                 for (n = segment + 1; n < msg->lm_bufcount; n++)
506                         tail_len += cfs_size_round(msg->lm_buflens[n]);
507         }
508
509         msg->lm_buflens[segment] = newlen;
510
511         if (tail && tail_len) {
512                 newpos = lustre_msg_buf_v2(msg, segment + 1, 0);
513                 memmove(newpos, tail, tail_len);
514         }
515 out:
516         return lustre_msg_size_v2(msg->lm_bufcount, msg->lm_buflens);
517 }
518
519 /*
520  * for @msg, grow @segment to size @newlen.
521  * Always move higher buffer forward.
522  *
523  * return new msg size after growing.
524  *
525  * CAUTION:
526  * - caller must make sure there is enough space in allocated message buffer
527  * - caller should NOT keep pointers to msg buffers which higher than @segment
528  *   after call shrink.
529  */
530 int lustre_grow_msg(struct lustre_msg *msg, int segment, unsigned int newlen)
531 {
532         switch (msg->lm_magic) {
533         case LUSTRE_MSG_MAGIC_V2:
534                 return lustre_grow_msg_v2(msg, segment, newlen);
535         default:
536                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
537         }
538 }
539 EXPORT_SYMBOL(lustre_grow_msg);
540
541 void lustre_free_reply_state(struct ptlrpc_reply_state *rs)
542 {
543         PTLRPC_RS_DEBUG_LRU_DEL(rs);
544
545         LASSERT(atomic_read(&rs->rs_refcount) == 0);
546         LASSERT(!rs->rs_difficult || rs->rs_handled);
547         LASSERT(!rs->rs_difficult || rs->rs_unlinked);
548         LASSERT(!rs->rs_scheduled);
549         LASSERT(rs->rs_export == NULL);
550         LASSERT(rs->rs_nlocks == 0);
551         LASSERT(list_empty(&rs->rs_exp_list));
552         LASSERT(list_empty(&rs->rs_obd_list));
553
554         sptlrpc_svc_free_rs(rs);
555 }
556
557 static int lustre_unpack_msg_v2(struct lustre_msg_v2 *m, int len)
558 {
559         int swabbed, required_len, i, buflen;
560
561         /* Now we know the sender speaks my language. */
562         required_len = lustre_msg_hdr_size_v2(0);
563         if (len < required_len) {
564                 /* can't even look inside the message */
565                 CERROR("message length %d too small for lustre_msg\n", len);
566                 return -EINVAL;
567         }
568
569         swabbed = (m->lm_magic == LUSTRE_MSG_MAGIC_V2_SWABBED);
570
571         if (swabbed) {
572                 __swab32s(&m->lm_magic);
573                 __swab32s(&m->lm_bufcount);
574                 __swab32s(&m->lm_secflvr);
575                 __swab32s(&m->lm_repsize);
576                 __swab32s(&m->lm_cksum);
577                 __swab32s(&m->lm_flags);
578                 BUILD_BUG_ON(offsetof(typeof(*m), lm_padding_2) == 0);
579                 BUILD_BUG_ON(offsetof(typeof(*m), lm_padding_3) == 0);
580         }
581
582         if (m->lm_bufcount == 0 || m->lm_bufcount > PTLRPC_MAX_BUFCOUNT) {
583                 CERROR("message bufcount %d is not valid\n", m->lm_bufcount);
584                 return -EINVAL;
585         }
586         required_len = lustre_msg_hdr_size_v2(m->lm_bufcount);
587         if (len < required_len) {
588                 /* didn't receive all the buffer lengths */
589                 CERROR("message length %d too small for %d buflens\n",
590                        len, m->lm_bufcount);
591                 return -EINVAL;
592         }
593
594         for (i = 0; i < m->lm_bufcount; i++) {
595                 if (swabbed)
596                         __swab32s(&m->lm_buflens[i]);
597                 buflen = cfs_size_round(m->lm_buflens[i]);
598                 if (buflen < 0 || buflen > PTLRPC_MAX_BUFLEN) {
599                         CERROR("buffer %d length %d is not valid\n", i, buflen);
600                         return -EINVAL;
601                 }
602                 required_len += buflen;
603         }
604         if (len < required_len || required_len > PTLRPC_MAX_BUFLEN) {
605                 CERROR("len: %d, required_len %d, bufcount: %d\n",
606                        len, required_len, m->lm_bufcount);
607                 for (i = 0; i < m->lm_bufcount; i++)
608                         CERROR("buffer %d length %d\n", i, m->lm_buflens[i]);
609                 return -EINVAL;
610         }
611
612         return swabbed;
613 }
614
615 int __lustre_unpack_msg(struct lustre_msg *m, int len)
616 {
617         int required_len, rc;
618
619         ENTRY;
620         /*
621          * We can provide a slightly better error log, if we check the
622          * message magic and version first.  In the future, struct
623          * lustre_msg may grow, and we'd like to log a version mismatch,
624          * rather than a short message.
625          */
626         required_len = offsetof(struct lustre_msg, lm_magic) +
627                                 sizeof(m->lm_magic);
628         if (len < required_len) {
629                 /* can't even look inside the message */
630                 CERROR("message length %d too small for magic/version check\n",
631                        len);
632                 RETURN(-EINVAL);
633         }
634
635         rc = lustre_unpack_msg_v2(m, len);
636
637         RETURN(rc);
638 }
639 EXPORT_SYMBOL(__lustre_unpack_msg);
640
641 int ptlrpc_unpack_req_msg(struct ptlrpc_request *req, int len)
642 {
643         int rc;
644
645         rc = __lustre_unpack_msg(req->rq_reqmsg, len);
646         if (rc == 1) {
647                 req_capsule_set_req_swabbed(&req->rq_pill,
648                                             MSG_PTLRPC_HEADER_OFF);
649                 rc = 0;
650         }
651         return rc;
652 }
653
654 int ptlrpc_unpack_rep_msg(struct ptlrpc_request *req, int len)
655 {
656         int rc;
657
658         rc = __lustre_unpack_msg(req->rq_repmsg, len);
659         if (rc == 1) {
660                 req_capsule_set_rep_swabbed(&req->rq_pill,
661                                             MSG_PTLRPC_HEADER_OFF);
662                 rc = 0;
663         }
664         return rc;
665 }
666
667 static inline int
668 lustre_unpack_ptlrpc_body_v2(struct ptlrpc_request *req,
669                              enum req_location loc, int offset)
670 {
671         struct ptlrpc_body *pb;
672         struct lustre_msg_v2 *m;
673
674         m = loc == RCL_CLIENT ? req->rq_reqmsg : req->rq_repmsg;
675
676         pb = lustre_msg_buf_v2(m, offset, sizeof(struct ptlrpc_body_v2));
677         if (!pb) {
678                 CERROR("error unpacking ptlrpc body\n");
679                 return -EFAULT;
680         }
681         if (req_capsule_need_swab(&req->rq_pill, loc, offset)) {
682                 lustre_swab_ptlrpc_body(pb);
683                 req_capsule_set_swabbed(&req->rq_pill, loc, offset);
684         }
685
686         if ((pb->pb_version & ~LUSTRE_VERSION_MASK) != PTLRPC_MSG_VERSION) {
687                 CERROR("wrong lustre_msg version %08x\n", pb->pb_version);
688                 return -EINVAL;
689         }
690
691         if (loc == RCL_SERVER)
692                 pb->pb_status = ptlrpc_status_ntoh(pb->pb_status);
693
694         return 0;
695 }
696
697 int lustre_unpack_req_ptlrpc_body(struct ptlrpc_request *req, int offset)
698 {
699         switch (req->rq_reqmsg->lm_magic) {
700         case LUSTRE_MSG_MAGIC_V2:
701                 return lustre_unpack_ptlrpc_body_v2(req, RCL_CLIENT, offset);
702         default:
703                 CERROR("bad lustre msg magic: %08x\n",
704                        req->rq_reqmsg->lm_magic);
705                 return -EINVAL;
706         }
707 }
708
709 int lustre_unpack_rep_ptlrpc_body(struct ptlrpc_request *req, int offset)
710 {
711         switch (req->rq_repmsg->lm_magic) {
712         case LUSTRE_MSG_MAGIC_V2:
713                 return lustre_unpack_ptlrpc_body_v2(req, RCL_SERVER, offset);
714         default:
715                 CERROR("bad lustre msg magic: %08x\n",
716                        req->rq_repmsg->lm_magic);
717                 return -EINVAL;
718         }
719 }
720
721 static inline __u32 lustre_msg_buflen_v2(struct lustre_msg_v2 *m, __u32 n)
722 {
723         if (n >= m->lm_bufcount)
724                 return 0;
725
726         return m->lm_buflens[n];
727 }
728
729 /**
730  * lustre_msg_buflen - return the length of buffer \a n in message \a m
731  * \param m lustre_msg (request or reply) to look at
732  * \param n message index (base 0)
733  *
734  * returns zero for non-existent message indices
735  */
736 __u32 lustre_msg_buflen(struct lustre_msg *m, __u32 n)
737 {
738         switch (m->lm_magic) {
739         case LUSTRE_MSG_MAGIC_V2:
740                 return lustre_msg_buflen_v2(m, n);
741         default:
742                 CERROR("incorrect message magic: %08x\n", m->lm_magic);
743                 return 0;
744         }
745 }
746 EXPORT_SYMBOL(lustre_msg_buflen);
747
748 static inline void
749 lustre_msg_set_buflen_v2(struct lustre_msg_v2 *m, __u32 n, __u32 len)
750 {
751         if (n >= m->lm_bufcount)
752                 LBUG();
753
754         m->lm_buflens[n] = len;
755 }
756
757 void lustre_msg_set_buflen(struct lustre_msg *m, __u32 n, __u32 len)
758 {
759         switch (m->lm_magic) {
760         case LUSTRE_MSG_MAGIC_V2:
761                 lustre_msg_set_buflen_v2(m, n, len);
762                 return;
763         default:
764                 LASSERTF(0, "incorrect message magic: %08x\n", m->lm_magic);
765         }
766 }
767
768 /*
769  * NB return the bufcount for lustre_msg_v2 format, so if message is packed
770  * in V1 format, the result is one bigger. (add struct ptlrpc_body).
771  */
772 __u32 lustre_msg_bufcount(struct lustre_msg *m)
773 {
774         switch (m->lm_magic) {
775         case LUSTRE_MSG_MAGIC_V2:
776                 return m->lm_bufcount;
777         default:
778                 CERROR("incorrect message magic: %08x\n", m->lm_magic);
779                 return 0;
780         }
781 }
782
783 char *lustre_msg_string(struct lustre_msg *m, __u32 index, __u32 max_len)
784 {
785         /* max_len == 0 means the string should fill the buffer */
786         char *str;
787         __u32 slen, blen;
788
789         switch (m->lm_magic) {
790         case LUSTRE_MSG_MAGIC_V2:
791                 str = lustre_msg_buf_v2(m, index, 0);
792                 blen = lustre_msg_buflen_v2(m, index);
793                 break;
794         default:
795                 LASSERTF(0, "incorrect message magic: %08x\n", m->lm_magic);
796         }
797
798         if (str == NULL) {
799                 CERROR("can't unpack string in msg %p buffer[%d]\n", m, index);
800                 return NULL;
801         }
802
803         slen = strnlen(str, blen);
804
805         if (slen == blen) { /* not NULL terminated */
806                 CERROR("can't unpack non-NULL terminated string in msg %p buffer[%d] len %d\n",
807                        m, index, blen);
808                 return NULL;
809         }
810         if (blen > PTLRPC_MAX_BUFLEN) {
811                 CERROR("buffer length of msg %p buffer[%d] is invalid(%d)\n",
812                        m, index, blen);
813                 return NULL;
814         }
815
816         if (max_len == 0) {
817                 if (slen != blen - 1) {
818                         CERROR("can't unpack short string in msg %p buffer[%d] len %d: strlen %d\n",
819                                m, index, blen, slen);
820                         return NULL;
821                 }
822         } else if (slen > max_len) {
823                 CERROR("can't unpack oversized string in msg %p buffer[%d] len %d strlen %d: max %d expected\n",
824                        m, index, blen, slen, max_len);
825                 return NULL;
826         }
827
828         return str;
829 }
830
831 /* Wrap up the normal fixed length cases */
832 static inline void *__lustre_swab_buf(struct lustre_msg *msg, __u32 index,
833                                       __u32 min_size, void *swabber)
834 {
835         void *ptr = NULL;
836
837         LASSERT(msg != NULL);
838         switch (msg->lm_magic) {
839         case LUSTRE_MSG_MAGIC_V2:
840                 ptr = lustre_msg_buf_v2(msg, index, min_size);
841                 break;
842         default:
843                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
844         }
845
846         if (ptr != NULL && swabber != NULL)
847                 ((void (*)(void *))swabber)(ptr);
848
849         return ptr;
850 }
851
852 static inline struct ptlrpc_body *lustre_msg_ptlrpc_body(struct lustre_msg *msg)
853 {
854         return lustre_msg_buf_v2(msg, MSG_PTLRPC_BODY_OFF,
855                                  sizeof(struct ptlrpc_body_v2));
856 }
857
858 enum lustre_msghdr lustre_msghdr_get_flags(struct lustre_msg *msg)
859 {
860         switch (msg->lm_magic) {
861         case LUSTRE_MSG_MAGIC_V2:
862                 /* already in host endian */
863                 return msg->lm_flags;
864         default:
865                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
866                 return 0;
867         }
868 }
869 EXPORT_SYMBOL(lustre_msghdr_get_flags);
870
871 void lustre_msghdr_set_flags(struct lustre_msg *msg, __u32 flags)
872 {
873         switch (msg->lm_magic) {
874         case LUSTRE_MSG_MAGIC_V2:
875                 msg->lm_flags = flags;
876                 return;
877         default:
878                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
879         }
880 }
881
882 __u32 lustre_msg_get_flags(struct lustre_msg *msg)
883 {
884         switch (msg->lm_magic) {
885         case LUSTRE_MSG_MAGIC_V2: {
886                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
887                 if (pb != NULL)
888                         return pb->pb_flags;
889
890                 CERROR("invalid msg %p: no ptlrpc body!\n", msg);
891         }
892         fallthrough;
893         default:
894                 /*
895                  * flags might be printed in debug code while message
896                  * uninitialized
897                  */
898                 return 0;
899         }
900 }
901 EXPORT_SYMBOL(lustre_msg_get_flags);
902
903 void lustre_msg_add_flags(struct lustre_msg *msg, __u32 flags)
904 {
905         switch (msg->lm_magic) {
906         case LUSTRE_MSG_MAGIC_V2: {
907                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
908                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
909                 pb->pb_flags |= flags;
910                 return;
911         }
912         default:
913                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
914         }
915 }
916 EXPORT_SYMBOL(lustre_msg_add_flags);
917
918 void lustre_msg_set_flags(struct lustre_msg *msg, __u32 flags)
919 {
920         switch (msg->lm_magic) {
921         case LUSTRE_MSG_MAGIC_V2: {
922                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
923                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
924                 pb->pb_flags = flags;
925                 return;
926         }
927         default:
928                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
929         }
930 }
931
932 void lustre_msg_clear_flags(struct lustre_msg *msg, __u32 flags)
933 {
934         switch (msg->lm_magic) {
935         case LUSTRE_MSG_MAGIC_V2: {
936                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
937                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
938                 pb->pb_flags &= ~flags;
939
940                 return;
941         }
942         default:
943                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
944         }
945 }
946 EXPORT_SYMBOL(lustre_msg_clear_flags);
947
948 __u32 lustre_msg_get_op_flags(struct lustre_msg *msg)
949 {
950         switch (msg->lm_magic) {
951         case LUSTRE_MSG_MAGIC_V2: {
952                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
953                 if (pb != NULL)
954                         return pb->pb_op_flags;
955
956                 CERROR("invalid msg %p: no ptlrpc body!\n", msg);
957         }
958         fallthrough;
959         default:
960                 return 0;
961         }
962 }
963
964 void lustre_msg_add_op_flags(struct lustre_msg *msg, __u32 flags)
965 {
966         switch (msg->lm_magic) {
967         case LUSTRE_MSG_MAGIC_V2: {
968                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
969                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
970                 pb->pb_op_flags |= flags;
971                 return;
972         }
973         default:
974                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
975         }
976 }
977 EXPORT_SYMBOL(lustre_msg_add_op_flags);
978
979 struct lustre_handle *lustre_msg_get_handle(struct lustre_msg *msg)
980 {
981         switch (msg->lm_magic) {
982         case LUSTRE_MSG_MAGIC_V2: {
983                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
984                 if (pb == NULL) {
985                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
986                         return NULL;
987                 }
988                 return &pb->pb_handle;
989         }
990         default:
991                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
992                 return NULL;
993         }
994 }
995
996 __u32 lustre_msg_get_type(struct lustre_msg *msg)
997 {
998         switch (msg->lm_magic) {
999         case LUSTRE_MSG_MAGIC_V2: {
1000                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1001                 if (pb == NULL) {
1002                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1003                         return PTL_RPC_MSG_ERR;
1004                 }
1005                 return pb->pb_type;
1006         }
1007         default:
1008                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1009                 return PTL_RPC_MSG_ERR;
1010         }
1011 }
1012 EXPORT_SYMBOL(lustre_msg_get_type);
1013
1014 enum lustre_msg_version lustre_msg_get_version(struct lustre_msg *msg)
1015 {
1016         switch (msg->lm_magic) {
1017         case LUSTRE_MSG_MAGIC_V2: {
1018                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1019                 if (pb == NULL) {
1020                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1021                         return 0;
1022                 }
1023                 return pb->pb_version;
1024         }
1025         default:
1026                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1027                 return 0;
1028         }
1029 }
1030
1031 void lustre_msg_add_version(struct lustre_msg *msg, __u32 version)
1032 {
1033         switch (msg->lm_magic) {
1034         case LUSTRE_MSG_MAGIC_V2: {
1035                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1036                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
1037                 pb->pb_version |= version;
1038                 return;
1039         }
1040         default:
1041                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1042         }
1043 }
1044
1045 __u32 lustre_msg_get_opc(struct lustre_msg *msg)
1046 {
1047         switch (msg->lm_magic) {
1048         case LUSTRE_MSG_MAGIC_V2: {
1049                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1050                 if (pb == NULL) {
1051                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1052                         return 0;
1053                 }
1054                 return pb->pb_opc;
1055         }
1056         default:
1057                 CERROR("incorrect message magic: %08x (msg:%p)\n",
1058                        msg->lm_magic, msg);
1059                 return 0;
1060         }
1061 }
1062 EXPORT_SYMBOL(lustre_msg_get_opc);
1063
1064 __u64 lustre_msg_get_last_xid(struct lustre_msg *msg)
1065 {
1066         switch (msg->lm_magic) {
1067         case LUSTRE_MSG_MAGIC_V2: {
1068                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1069                 if (pb == NULL) {
1070                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1071                         return 0;
1072                 }
1073                 return pb->pb_last_xid;
1074         }
1075         default:
1076                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1077                 return 0;
1078         }
1079 }
1080 EXPORT_SYMBOL(lustre_msg_get_last_xid);
1081
1082 __u16 lustre_msg_get_tag(struct lustre_msg *msg)
1083 {
1084         switch (msg->lm_magic) {
1085         case LUSTRE_MSG_MAGIC_V2: {
1086                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1087                 if (!pb) {
1088                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1089                         return 0;
1090                 }
1091                 return pb->pb_tag;
1092         }
1093         default:
1094                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1095                 return 0;
1096         }
1097 }
1098 EXPORT_SYMBOL(lustre_msg_get_tag);
1099
1100 __u64 lustre_msg_get_last_committed(struct lustre_msg *msg)
1101 {
1102         switch (msg->lm_magic) {
1103         case LUSTRE_MSG_MAGIC_V2: {
1104                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1105                 if (pb == NULL) {
1106                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1107                         return 0;
1108                 }
1109                 return pb->pb_last_committed;
1110         }
1111         default:
1112                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1113                 return 0;
1114         }
1115 }
1116 EXPORT_SYMBOL(lustre_msg_get_last_committed);
1117
1118 __u64 *lustre_msg_get_versions(struct lustre_msg *msg)
1119 {
1120         switch (msg->lm_magic) {
1121         case LUSTRE_MSG_MAGIC_V2: {
1122                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1123                 if (pb == NULL) {
1124                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1125                         return NULL;
1126                 }
1127                 return pb->pb_pre_versions;
1128         }
1129         default:
1130                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1131                 return NULL;
1132         }
1133 }
1134 EXPORT_SYMBOL(lustre_msg_get_versions);
1135
1136 __u64 lustre_msg_get_transno(struct lustre_msg *msg)
1137 {
1138         switch (msg->lm_magic) {
1139         case LUSTRE_MSG_MAGIC_V2: {
1140                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1141                 if (pb == NULL) {
1142                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1143                         return 0;
1144                 }
1145                 return pb->pb_transno;
1146         }
1147         default:
1148                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1149                 return 0;
1150         }
1151 }
1152 EXPORT_SYMBOL(lustre_msg_get_transno);
1153
1154 int lustre_msg_get_status(struct lustre_msg *msg)
1155 {
1156         switch (msg->lm_magic) {
1157         case LUSTRE_MSG_MAGIC_V2: {
1158                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1159                 if (pb != NULL)
1160                         return pb->pb_status;
1161                 CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1162         }
1163         fallthrough;
1164         default:
1165                 /*
1166                  * status might be printed in debug code while message
1167                  * uninitialized
1168                  */
1169                 return -EINVAL;
1170         }
1171 }
1172 EXPORT_SYMBOL(lustre_msg_get_status);
1173
1174 __u64 lustre_msg_get_slv(struct lustre_msg *msg)
1175 {
1176         switch (msg->lm_magic) {
1177         case LUSTRE_MSG_MAGIC_V2: {
1178                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1179                 if (pb == NULL) {
1180                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1181                         return -EINVAL;
1182                 }
1183                 return pb->pb_slv;
1184         }
1185         default:
1186                 CERROR("invalid msg magic %08x\n", msg->lm_magic);
1187                 return -EINVAL;
1188         }
1189 }
1190
1191
1192 void lustre_msg_set_slv(struct lustre_msg *msg, __u64 slv)
1193 {
1194         switch (msg->lm_magic) {
1195         case LUSTRE_MSG_MAGIC_V2: {
1196                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1197                 if (pb == NULL) {
1198                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1199                         return;
1200                 }
1201                 pb->pb_slv = slv;
1202                 return;
1203         }
1204         default:
1205                 CERROR("invalid msg magic %x\n", msg->lm_magic);
1206                 return;
1207         }
1208 }
1209
1210 __u32 lustre_msg_get_limit(struct lustre_msg *msg)
1211 {
1212         switch (msg->lm_magic) {
1213         case LUSTRE_MSG_MAGIC_V2: {
1214                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1215                 if (pb == NULL) {
1216                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1217                         return -EINVAL;
1218                 }
1219                 return pb->pb_limit;
1220         }
1221         default:
1222                 CERROR("invalid msg magic %x\n", msg->lm_magic);
1223                 return -EINVAL;
1224         }
1225 }
1226
1227
1228 void lustre_msg_set_limit(struct lustre_msg *msg, __u64 limit)
1229 {
1230         switch (msg->lm_magic) {
1231         case LUSTRE_MSG_MAGIC_V2: {
1232                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1233                 if (pb == NULL) {
1234                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1235                         return;
1236                 }
1237                 pb->pb_limit = limit;
1238                 return;
1239         }
1240         default:
1241                 CERROR("invalid msg magic %08x\n", msg->lm_magic);
1242                 return;
1243         }
1244 }
1245
1246 __u32 lustre_msg_get_conn_cnt(struct lustre_msg *msg)
1247 {
1248         switch (msg->lm_magic) {
1249         case LUSTRE_MSG_MAGIC_V2: {
1250                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1251                 if (pb == NULL) {
1252                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1253                         return 0;
1254                 }
1255                 return pb->pb_conn_cnt;
1256         }
1257         default:
1258                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1259                 return 0;
1260         }
1261 }
1262 EXPORT_SYMBOL(lustre_msg_get_conn_cnt);
1263
1264 __u32 lustre_msg_get_magic(struct lustre_msg *msg)
1265 {
1266         switch (msg->lm_magic) {
1267         case LUSTRE_MSG_MAGIC_V2:
1268                 return msg->lm_magic;
1269         default:
1270                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1271                 return 0;
1272         }
1273 }
1274
1275 timeout_t lustre_msg_get_timeout(struct lustre_msg *msg)
1276 {
1277         switch (msg->lm_magic) {
1278         case LUSTRE_MSG_MAGIC_V2: {
1279                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1280
1281                 if (pb == NULL) {
1282                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1283                         return 0;
1284                 }
1285                 return pb->pb_timeout;
1286         }
1287         default:
1288                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1289                 return 0;
1290         }
1291 }
1292
1293 timeout_t lustre_msg_get_service_timeout(struct lustre_msg *msg)
1294 {
1295         switch (msg->lm_magic) {
1296         case LUSTRE_MSG_MAGIC_V2: {
1297                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1298
1299                 if (pb == NULL) {
1300                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1301                         return 0;
1302                 }
1303                 return pb->pb_service_time;
1304         }
1305         default:
1306                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1307                 return 0;
1308         }
1309 }
1310
1311 char *lustre_msg_get_jobid(struct lustre_msg *msg)
1312 {
1313         switch (msg->lm_magic) {
1314         case LUSTRE_MSG_MAGIC_V2: {
1315                 struct ptlrpc_body *pb;
1316
1317                 /* the old pltrpc_body_v2 is smaller; doesn't include jobid */
1318                 if (msg->lm_buflens[MSG_PTLRPC_BODY_OFF] <
1319                     sizeof(struct ptlrpc_body))
1320                         return NULL;
1321
1322                 pb = lustre_msg_buf_v2(msg, MSG_PTLRPC_BODY_OFF,
1323                                           sizeof(struct ptlrpc_body));
1324                 if (!pb)
1325                         return NULL;
1326
1327                 return pb->pb_jobid;
1328         }
1329         default:
1330                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1331                 return NULL;
1332         }
1333 }
1334 EXPORT_SYMBOL(lustre_msg_get_jobid);
1335
1336 __u32 lustre_msg_get_cksum(struct lustre_msg *msg)
1337 {
1338         switch (msg->lm_magic) {
1339         case LUSTRE_MSG_MAGIC_V2:
1340                 return msg->lm_cksum;
1341         default:
1342                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1343                 return 0;
1344         }
1345 }
1346
1347 __u64 lustre_msg_get_mbits(struct lustre_msg *msg)
1348 {
1349         switch (msg->lm_magic) {
1350         case LUSTRE_MSG_MAGIC_V2: {
1351                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1352                 if (pb == NULL) {
1353                         CERROR("invalid msg %p: no ptlrpc body!\n", msg);
1354                         return 0;
1355                 }
1356                 return pb->pb_mbits;
1357         }
1358         default:
1359                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1360                 return 0;
1361         }
1362 }
1363
1364 __u32 lustre_msg_calc_cksum(struct lustre_msg *msg, __u32 buf)
1365 {
1366         switch (msg->lm_magic) {
1367         case LUSTRE_MSG_MAGIC_V2: {
1368                 struct ptlrpc_body *pb = lustre_msg_buf_v2(msg, buf, 0);
1369                 __u32 len = lustre_msg_buflen(msg, buf);
1370                 __u32 crc;
1371
1372 #if IS_ENABLED(CONFIG_CRC32)
1373                 /* about 10x faster than crypto_hash for small buffers */
1374                 crc = crc32_le(~(__u32)0, (unsigned char *)pb, len);
1375 #elif IS_ENABLED(CONFIG_CRYPTO_CRC32)
1376                 unsigned int hsize = 4;
1377
1378                 cfs_crypto_hash_digest(CFS_HASH_ALG_CRC32, (unsigned char *)pb,
1379                                        len, NULL, 0, (unsigned char *)&crc,
1380                                        &hsize);
1381 #else
1382 #error "need either CONFIG_CRC32 or CONFIG_CRYPTO_CRC32 enabled in the kernel"
1383 #endif
1384                 return crc;
1385         }
1386         default:
1387                 CERROR("incorrect message magic: %08x\n", msg->lm_magic);
1388                 return 0;
1389         }
1390 }
1391
1392 void lustre_msg_set_handle(struct lustre_msg *msg, struct lustre_handle *handle)
1393 {
1394         switch (msg->lm_magic) {
1395         case LUSTRE_MSG_MAGIC_V2: {
1396                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1397                 LASSERTF(pb, "invalid msg %p: no ptlrpc body!\n", msg);
1398                 pb->pb_handle = *handle;
1399                 return;
1400         }
1401         default:
1402                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1403         }
1404 }
1405
1406 void lustre_msg_set_type(struct lustre_msg *msg, __u32 type)
1407 {
1408         switch (msg->lm_magic) {
1409         case LUSTRE_MSG_MAGIC_V2: {
1410                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1411                 LASSERTF(pb, "invalid msg %p: no ptlrpc body!\n", msg);
1412                 pb->pb_type = type;
1413                 return;
1414                 }
1415         default:
1416                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1417         }
1418 }
1419
1420 void lustre_msg_set_opc(struct lustre_msg *msg, __u32 opc)
1421 {
1422         switch (msg->lm_magic) {
1423         case LUSTRE_MSG_MAGIC_V2: {
1424                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1425                 LASSERTF(pb, "invalid msg %p: no ptlrpc body!\n", msg);
1426                 pb->pb_opc = opc;
1427                 return;
1428         }
1429         default:
1430                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1431         }
1432 }
1433
1434 void lustre_msg_set_last_xid(struct lustre_msg *msg, __u64 last_xid)
1435 {
1436         switch (msg->lm_magic) {
1437         case LUSTRE_MSG_MAGIC_V2: {
1438                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1439                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
1440                 pb->pb_last_xid = last_xid;
1441                 return;
1442         }
1443         default:
1444                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1445         }
1446 }
1447 EXPORT_SYMBOL(lustre_msg_set_last_xid);
1448
1449 void lustre_msg_set_tag(struct lustre_msg *msg, __u16 tag)
1450 {
1451         switch (msg->lm_magic) {
1452         case LUSTRE_MSG_MAGIC_V2: {
1453                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1454                 LASSERTF(pb, "invalid msg %p: no ptlrpc body!\n", msg);
1455                 pb->pb_tag = tag;
1456                 return;
1457         }
1458         default:
1459                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1460         }
1461 }
1462 EXPORT_SYMBOL(lustre_msg_set_tag);
1463
1464 void lustre_msg_set_last_committed(struct lustre_msg *msg, __u64 last_committed)
1465 {
1466         switch (msg->lm_magic) {
1467         case LUSTRE_MSG_MAGIC_V2: {
1468                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1469                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
1470                 pb->pb_last_committed = last_committed;
1471                 return;
1472         }
1473         default:
1474                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1475         }
1476 }
1477
1478 void lustre_msg_set_versions(struct lustre_msg *msg, __u64 *versions)
1479 {
1480         switch (msg->lm_magic) {
1481         case LUSTRE_MSG_MAGIC_V2: {
1482                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1483                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
1484                 pb->pb_pre_versions[0] = versions[0];
1485                 pb->pb_pre_versions[1] = versions[1];
1486                 pb->pb_pre_versions[2] = versions[2];
1487                 pb->pb_pre_versions[3] = versions[3];
1488                 return;
1489         }
1490         default:
1491                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1492         }
1493 }
1494 EXPORT_SYMBOL(lustre_msg_set_versions);
1495
1496 void lustre_msg_set_transno(struct lustre_msg *msg, __u64 transno)
1497 {
1498         switch (msg->lm_magic) {
1499         case LUSTRE_MSG_MAGIC_V2: {
1500                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1501                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
1502                 pb->pb_transno = transno;
1503                 return;
1504         }
1505         default:
1506                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1507         }
1508 }
1509 EXPORT_SYMBOL(lustre_msg_set_transno);
1510
1511 void lustre_msg_set_status(struct lustre_msg *msg, __u32 status)
1512 {
1513         switch (msg->lm_magic) {
1514         case LUSTRE_MSG_MAGIC_V2: {
1515                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1516                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
1517                 pb->pb_status = status;
1518                 return;
1519         }
1520         default:
1521                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1522         }
1523 }
1524 EXPORT_SYMBOL(lustre_msg_set_status);
1525
1526 void lustre_msg_set_conn_cnt(struct lustre_msg *msg, __u32 conn_cnt)
1527 {
1528         switch (msg->lm_magic) {
1529         case LUSTRE_MSG_MAGIC_V2: {
1530                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1531                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
1532                 pb->pb_conn_cnt = conn_cnt;
1533                 return;
1534         }
1535         default:
1536                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1537         }
1538 }
1539
1540 void lustre_msg_set_timeout(struct lustre_msg *msg, timeout_t timeout)
1541 {
1542         switch (msg->lm_magic) {
1543         case LUSTRE_MSG_MAGIC_V2: {
1544                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1545
1546                 LASSERT(timeout >= 0);
1547                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
1548                 pb->pb_timeout = timeout;
1549                 return;
1550         }
1551         default:
1552                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1553         }
1554 }
1555
1556 void lustre_msg_set_service_timeout(struct lustre_msg *msg,
1557                                     timeout_t service_timeout)
1558 {
1559         switch (msg->lm_magic) {
1560         case LUSTRE_MSG_MAGIC_V2: {
1561                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1562
1563                 LASSERT(service_timeout >= 0);
1564                 LASSERTF(pb, "invalid msg %p: no ptlrpc body!\n", msg);
1565                 pb->pb_service_time = service_timeout;
1566                 return;
1567         }
1568         default:
1569                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1570         }
1571 }
1572
1573 void lustre_msg_set_jobid(struct lustre_msg *msg, char *jobid)
1574 {
1575         switch (msg->lm_magic) {
1576         case LUSTRE_MSG_MAGIC_V2: {
1577                 __u32 opc = lustre_msg_get_opc(msg);
1578                 struct ptlrpc_body *pb;
1579
1580                 /* Don't set jobid for ldlm ast RPCs, they've been shrinked.
1581                  * See the comment in ptlrpc_request_pack(). */
1582                 if (!opc || opc == LDLM_BL_CALLBACK ||
1583                     opc == LDLM_CP_CALLBACK || opc == LDLM_GL_CALLBACK)
1584                         return;
1585
1586                 pb = lustre_msg_buf_v2(msg, MSG_PTLRPC_BODY_OFF,
1587                                        sizeof(struct ptlrpc_body));
1588                 LASSERTF(pb, "invalid msg %p: no ptlrpc body!\n", msg);
1589
1590                 if (jobid != NULL)
1591                         memcpy(pb->pb_jobid, jobid, sizeof(pb->pb_jobid));
1592                 else if (pb->pb_jobid[0] == '\0')
1593                         lustre_get_jobid(pb->pb_jobid, sizeof(pb->pb_jobid));
1594                 return;
1595         }
1596         default:
1597                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1598         }
1599 }
1600 EXPORT_SYMBOL(lustre_msg_set_jobid);
1601
1602 void lustre_msg_set_cksum(struct lustre_msg *msg, __u32 cksum)
1603 {
1604         switch (msg->lm_magic) {
1605         case LUSTRE_MSG_MAGIC_V2:
1606                 msg->lm_cksum = cksum;
1607                 return;
1608         default:
1609                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1610         }
1611 }
1612
1613 void lustre_msg_set_mbits(struct lustre_msg *msg, __u64 mbits)
1614 {
1615         switch (msg->lm_magic) {
1616         case LUSTRE_MSG_MAGIC_V2: {
1617                 struct ptlrpc_body *pb = lustre_msg_ptlrpc_body(msg);
1618
1619                 LASSERTF(pb != NULL, "invalid msg %p: no ptlrpc body!\n", msg);
1620                 pb->pb_mbits = mbits;
1621                 return;
1622         }
1623         default:
1624                 LASSERTF(0, "incorrect message magic: %08x\n", msg->lm_magic);
1625         }
1626 }
1627
1628 void ptlrpc_request_set_replen(struct ptlrpc_request *req)
1629 {
1630         int count = req_capsule_filled_sizes(&req->rq_pill, RCL_SERVER);
1631
1632         req->rq_replen = lustre_msg_size(req->rq_reqmsg->lm_magic, count,
1633                                          req->rq_pill.rc_area[RCL_SERVER]);
1634         if (req->rq_reqmsg->lm_magic == LUSTRE_MSG_MAGIC_V2)
1635                 req->rq_reqmsg->lm_repsize = req->rq_replen;
1636 }
1637 EXPORT_SYMBOL(ptlrpc_request_set_replen);
1638
1639 void ptlrpc_req_set_repsize(struct ptlrpc_request *req, int count, __u32 *lens)
1640 {
1641         req->rq_replen = lustre_msg_size(req->rq_reqmsg->lm_magic, count, lens);
1642         if (req->rq_reqmsg->lm_magic == LUSTRE_MSG_MAGIC_V2)
1643                 req->rq_reqmsg->lm_repsize = req->rq_replen;
1644 }
1645
1646 /**
1647  * Send a remote set_info_async.
1648  *
1649  * This may go from client to server or server to client.
1650  */
1651 int do_set_info_async(struct obd_import *imp,
1652                       int opcode, int version,
1653                       size_t keylen, void *key,
1654                       size_t vallen, void *val,
1655                       struct ptlrpc_request_set *set)
1656 {
1657         struct ptlrpc_request *req;
1658         char *tmp;
1659         int rc;
1660
1661         ENTRY;
1662
1663         req = ptlrpc_request_alloc(imp, KEY_IS(KEY_CHANGELOG_CLEAR) ?
1664                                                 &RQF_MDT_SET_INFO :
1665                                                 &RQF_OBD_SET_INFO);
1666         if (req == NULL)
1667                 RETURN(-ENOMEM);
1668
1669         req_capsule_set_size(&req->rq_pill, &RMF_SETINFO_KEY,
1670                              RCL_CLIENT, keylen);
1671         req_capsule_set_size(&req->rq_pill, &RMF_SETINFO_VAL,
1672                              RCL_CLIENT, vallen);
1673         rc = ptlrpc_request_pack(req, version, opcode);
1674         if (rc) {
1675                 ptlrpc_request_free(req);
1676                 RETURN(rc);
1677         }
1678
1679         if (KEY_IS(KEY_CHANGELOG_CLEAR))
1680                 do_pack_body(req);
1681
1682         tmp = req_capsule_client_get(&req->rq_pill, &RMF_SETINFO_KEY);
1683         memcpy(tmp, key, keylen);
1684         tmp = req_capsule_client_get(&req->rq_pill, &RMF_SETINFO_VAL);
1685         memcpy(tmp, val, vallen);
1686
1687         ptlrpc_request_set_replen(req);
1688
1689         if (set) {
1690                 ptlrpc_set_add_req(set, req);
1691                 ptlrpc_check_set(NULL, set);
1692         } else {
1693                 rc = ptlrpc_queue_wait(req);
1694                 ptlrpc_req_finished(req);
1695         }
1696
1697         RETURN(rc);
1698 }
1699 EXPORT_SYMBOL(do_set_info_async);
1700
1701 /* byte flipping routines for all wire types declared in
1702  * lustre_idl.h implemented here.
1703  */
1704 void lustre_swab_ptlrpc_body(struct ptlrpc_body *body)
1705 {
1706         __swab32s(&body->pb_type);
1707         __swab32s(&body->pb_version);
1708         __swab32s(&body->pb_opc);
1709         __swab32s(&body->pb_status);
1710         __swab64s(&body->pb_last_xid);
1711         __swab16s(&body->pb_tag);
1712         BUILD_BUG_ON(offsetof(typeof(*body), pb_padding0) == 0);
1713         BUILD_BUG_ON(offsetof(typeof(*body), pb_padding1) == 0);
1714         __swab64s(&body->pb_last_committed);
1715         __swab64s(&body->pb_transno);
1716         __swab32s(&body->pb_flags);
1717         __swab32s(&body->pb_op_flags);
1718         __swab32s(&body->pb_conn_cnt);
1719         __swab32s(&body->pb_timeout);
1720         __swab32s(&body->pb_service_time);
1721         __swab32s(&body->pb_limit);
1722         __swab64s(&body->pb_slv);
1723         __swab64s(&body->pb_pre_versions[0]);
1724         __swab64s(&body->pb_pre_versions[1]);
1725         __swab64s(&body->pb_pre_versions[2]);
1726         __swab64s(&body->pb_pre_versions[3]);
1727         __swab64s(&body->pb_mbits);
1728         BUILD_BUG_ON(offsetof(typeof(*body), pb_padding64_0) == 0);
1729         BUILD_BUG_ON(offsetof(typeof(*body), pb_padding64_1) == 0);
1730         BUILD_BUG_ON(offsetof(typeof(*body), pb_padding64_2) == 0);
1731         /*
1732          * While we need to maintain compatibility between
1733          * clients and servers without ptlrpc_body_v2 (< 2.3)
1734          * do not swab any fields beyond pb_jobid, as we are
1735          * using this swab function for both ptlrpc_body
1736          * and ptlrpc_body_v2.
1737          */
1738         /* pb_jobid is an ASCII string and should not be swabbed */
1739         BUILD_BUG_ON(offsetof(typeof(*body), pb_jobid) == 0);
1740 }
1741
1742 void lustre_swab_connect(struct obd_connect_data *ocd)
1743 {
1744         __swab64s(&ocd->ocd_connect_flags);
1745         __swab32s(&ocd->ocd_version);
1746         __swab32s(&ocd->ocd_grant);
1747         __swab64s(&ocd->ocd_ibits_known);
1748         __swab32s(&ocd->ocd_index);
1749         __swab32s(&ocd->ocd_brw_size);
1750         /*
1751          * ocd_blocksize and ocd_inodespace don't need to be swabbed because
1752          * they are 8-byte values
1753          */
1754         __swab16s(&ocd->ocd_grant_tax_kb);
1755         __swab32s(&ocd->ocd_grant_max_blks);
1756         __swab64s(&ocd->ocd_transno);
1757         __swab32s(&ocd->ocd_group);
1758         __swab32s(&ocd->ocd_cksum_types);
1759         __swab32s(&ocd->ocd_instance);
1760         /*
1761          * Fields after ocd_cksum_types are only accessible by the receiver
1762          * if the corresponding flag in ocd_connect_flags is set. Accessing
1763          * any field after ocd_maxbytes on the receiver without a valid flag
1764          * may result in out-of-bound memory access and kernel oops.
1765          */
1766         if (ocd->ocd_connect_flags & OBD_CONNECT_MAX_EASIZE)
1767                 __swab32s(&ocd->ocd_max_easize);
1768         if (ocd->ocd_connect_flags & OBD_CONNECT_MAXBYTES)
1769                 __swab64s(&ocd->ocd_maxbytes);
1770         if (ocd->ocd_connect_flags & OBD_CONNECT_MULTIMODRPCS)
1771                 __swab16s(&ocd->ocd_maxmodrpcs);
1772         BUILD_BUG_ON(offsetof(typeof(*ocd), padding0) == 0);
1773         BUILD_BUG_ON(offsetof(typeof(*ocd), padding1) == 0);
1774         if (ocd->ocd_connect_flags & OBD_CONNECT_FLAGS2)
1775                 __swab64s(&ocd->ocd_connect_flags2);
1776         BUILD_BUG_ON(offsetof(typeof(*ocd), padding3) == 0);
1777         BUILD_BUG_ON(offsetof(typeof(*ocd), padding4) == 0);
1778         BUILD_BUG_ON(offsetof(typeof(*ocd), padding5) == 0);
1779         BUILD_BUG_ON(offsetof(typeof(*ocd), padding6) == 0);
1780         BUILD_BUG_ON(offsetof(typeof(*ocd), padding7) == 0);
1781         BUILD_BUG_ON(offsetof(typeof(*ocd), padding8) == 0);
1782         BUILD_BUG_ON(offsetof(typeof(*ocd), padding9) == 0);
1783         BUILD_BUG_ON(offsetof(typeof(*ocd), paddingA) == 0);
1784         BUILD_BUG_ON(offsetof(typeof(*ocd), paddingB) == 0);
1785         BUILD_BUG_ON(offsetof(typeof(*ocd), paddingC) == 0);
1786         BUILD_BUG_ON(offsetof(typeof(*ocd), paddingD) == 0);
1787         BUILD_BUG_ON(offsetof(typeof(*ocd), paddingE) == 0);
1788         BUILD_BUG_ON(offsetof(typeof(*ocd), paddingF) == 0);
1789 }
1790
1791 static void lustre_swab_ost_layout(struct ost_layout *ol)
1792 {
1793         __swab32s(&ol->ol_stripe_size);
1794         __swab32s(&ol->ol_stripe_count);
1795         __swab64s(&ol->ol_comp_start);
1796         __swab64s(&ol->ol_comp_end);
1797         __swab32s(&ol->ol_comp_id);
1798 }
1799
1800 void lustre_swab_obdo(struct obdo *o)
1801 {
1802         __swab64s(&o->o_valid);
1803         lustre_swab_ost_id(&o->o_oi);
1804         __swab64s(&o->o_parent_seq);
1805         __swab64s(&o->o_size);
1806         __swab64s(&o->o_mtime);
1807         __swab64s(&o->o_atime);
1808         __swab64s(&o->o_ctime);
1809         __swab64s(&o->o_blocks);
1810         __swab64s(&o->o_grant);
1811         __swab32s(&o->o_blksize);
1812         __swab32s(&o->o_mode);
1813         __swab32s(&o->o_uid);
1814         __swab32s(&o->o_gid);
1815         __swab32s(&o->o_flags);
1816         __swab32s(&o->o_nlink);
1817         __swab32s(&o->o_parent_oid);
1818         __swab32s(&o->o_misc);
1819         __swab64s(&o->o_ioepoch);
1820         __swab32s(&o->o_stripe_idx);
1821         __swab32s(&o->o_parent_ver);
1822         lustre_swab_ost_layout(&o->o_layout);
1823         __swab32s(&o->o_layout_version);
1824         __swab32s(&o->o_uid_h);
1825         __swab32s(&o->o_gid_h);
1826         __swab64s(&o->o_data_version);
1827         __swab32s(&o->o_projid);
1828         BUILD_BUG_ON(offsetof(typeof(*o), o_padding_4) == 0);
1829         BUILD_BUG_ON(offsetof(typeof(*o), o_padding_5) == 0);
1830         BUILD_BUG_ON(offsetof(typeof(*o), o_padding_6) == 0);
1831
1832 }
1833 EXPORT_SYMBOL(lustre_swab_obdo);
1834
1835 void lustre_swab_obd_statfs(struct obd_statfs *os)
1836 {
1837         __swab64s(&os->os_type);
1838         __swab64s(&os->os_blocks);
1839         __swab64s(&os->os_bfree);
1840         __swab64s(&os->os_bavail);
1841         __swab64s(&os->os_files);
1842         __swab64s(&os->os_ffree);
1843         /* no need to swab os_fsid */
1844         __swab32s(&os->os_bsize);
1845         __swab32s(&os->os_namelen);
1846         __swab64s(&os->os_maxbytes);
1847         __swab32s(&os->os_state);
1848         __swab32s(&os->os_fprecreated);
1849         __swab32s(&os->os_granted);
1850         BUILD_BUG_ON(offsetof(typeof(*os), os_spare3) == 0);
1851         BUILD_BUG_ON(offsetof(typeof(*os), os_spare4) == 0);
1852         BUILD_BUG_ON(offsetof(typeof(*os), os_spare5) == 0);
1853         BUILD_BUG_ON(offsetof(typeof(*os), os_spare6) == 0);
1854         BUILD_BUG_ON(offsetof(typeof(*os), os_spare7) == 0);
1855         BUILD_BUG_ON(offsetof(typeof(*os), os_spare8) == 0);
1856         BUILD_BUG_ON(offsetof(typeof(*os), os_spare9) == 0);
1857 }
1858
1859 void lustre_swab_obd_ioobj(struct obd_ioobj *ioo)
1860 {
1861         lustre_swab_ost_id(&ioo->ioo_oid);
1862         __swab32s(&ioo->ioo_max_brw);
1863         __swab32s(&ioo->ioo_bufcnt);
1864 }
1865
1866 void lustre_swab_niobuf_remote(struct niobuf_remote *nbr)
1867 {
1868         __swab64s(&nbr->rnb_offset);
1869         __swab32s(&nbr->rnb_len);
1870         __swab32s(&nbr->rnb_flags);
1871 }
1872
1873 void lustre_swab_ost_body(struct ost_body *b)
1874 {
1875         lustre_swab_obdo(&b->oa);
1876 }
1877
1878 void lustre_swab_ost_last_id(u64 *id)
1879 {
1880         __swab64s(id);
1881 }
1882
1883 void lustre_swab_generic_32s(__u32 *val)
1884 {
1885         __swab32s(val);
1886 }
1887
1888 void lustre_swab_gl_lquota_desc(struct ldlm_gl_lquota_desc *desc)
1889 {
1890         lustre_swab_lu_fid(&desc->gl_id.qid_fid);
1891         __swab64s(&desc->gl_flags);
1892         __swab64s(&desc->gl_ver);
1893         __swab64s(&desc->gl_hardlimit);
1894         __swab64s(&desc->gl_softlimit);
1895         __swab64s(&desc->gl_time);
1896         BUILD_BUG_ON(offsetof(typeof(*desc), gl_pad2) == 0);
1897 }
1898 EXPORT_SYMBOL(lustre_swab_gl_lquota_desc);
1899
1900 void lustre_swab_gl_barrier_desc(struct ldlm_gl_barrier_desc *desc)
1901 {
1902         __swab32s(&desc->lgbd_status);
1903         __swab32s(&desc->lgbd_timeout);
1904         BUILD_BUG_ON(offsetof(typeof(*desc), lgbd_padding) == 0);
1905 }
1906 EXPORT_SYMBOL(lustre_swab_gl_barrier_desc);
1907
1908 void lustre_swab_ost_lvb_v1(struct ost_lvb_v1 *lvb)
1909 {
1910         __swab64s(&lvb->lvb_size);
1911         __swab64s(&lvb->lvb_mtime);
1912         __swab64s(&lvb->lvb_atime);
1913         __swab64s(&lvb->lvb_ctime);
1914         __swab64s(&lvb->lvb_blocks);
1915 }
1916 EXPORT_SYMBOL(lustre_swab_ost_lvb_v1);
1917
1918 void lustre_swab_ost_lvb(struct ost_lvb *lvb)
1919 {
1920         __swab64s(&lvb->lvb_size);
1921         __swab64s(&lvb->lvb_mtime);
1922         __swab64s(&lvb->lvb_atime);
1923         __swab64s(&lvb->lvb_ctime);
1924         __swab64s(&lvb->lvb_blocks);
1925         __swab32s(&lvb->lvb_mtime_ns);
1926         __swab32s(&lvb->lvb_atime_ns);
1927         __swab32s(&lvb->lvb_ctime_ns);
1928         __swab32s(&lvb->lvb_padding);
1929 }
1930 EXPORT_SYMBOL(lustre_swab_ost_lvb);
1931
1932 void lustre_swab_lquota_lvb(struct lquota_lvb *lvb)
1933 {
1934         __swab64s(&lvb->lvb_flags);
1935         __swab64s(&lvb->lvb_id_may_rel);
1936         __swab64s(&lvb->lvb_id_rel);
1937         __swab64s(&lvb->lvb_id_qunit);
1938         __swab64s(&lvb->lvb_pad1);
1939 }
1940 EXPORT_SYMBOL(lustre_swab_lquota_lvb);
1941
1942 void lustre_swab_barrier_lvb(struct barrier_lvb *lvb)
1943 {
1944         __swab32s(&lvb->lvb_status);
1945         __swab32s(&lvb->lvb_index);
1946         BUILD_BUG_ON(offsetof(typeof(*lvb), lvb_padding) == 0);
1947 }
1948 EXPORT_SYMBOL(lustre_swab_barrier_lvb);
1949
1950 void lustre_swab_mdt_body(struct mdt_body *b)
1951 {
1952         lustre_swab_lu_fid(&b->mbo_fid1);
1953         lustre_swab_lu_fid(&b->mbo_fid2);
1954         /* handle is opaque */
1955         __swab64s(&b->mbo_valid);
1956         __swab64s(&b->mbo_size);
1957         __swab64s(&b->mbo_mtime);
1958         __swab64s(&b->mbo_atime);
1959         __swab64s(&b->mbo_ctime);
1960         __swab64s(&b->mbo_blocks);
1961         __swab64s(&b->mbo_version);
1962         __swab64s(&b->mbo_t_state);
1963         __swab32s(&b->mbo_fsuid);
1964         __swab32s(&b->mbo_fsgid);
1965         __swab32s(&b->mbo_capability);
1966         __swab32s(&b->mbo_mode);
1967         __swab32s(&b->mbo_uid);
1968         __swab32s(&b->mbo_gid);
1969         __swab32s(&b->mbo_flags);
1970         __swab32s(&b->mbo_rdev);
1971         __swab32s(&b->mbo_nlink);
1972         __swab32s(&b->mbo_layout_gen);
1973         __swab32s(&b->mbo_suppgid);
1974         __swab32s(&b->mbo_eadatasize);
1975         __swab32s(&b->mbo_aclsize);
1976         __swab32s(&b->mbo_max_mdsize);
1977         BUILD_BUG_ON(offsetof(typeof(*b), mbo_unused3) == 0);
1978         __swab32s(&b->mbo_uid_h);
1979         __swab32s(&b->mbo_gid_h);
1980         __swab32s(&b->mbo_projid);
1981         __swab64s(&b->mbo_dom_size);
1982         __swab64s(&b->mbo_dom_blocks);
1983         __swab64s(&b->mbo_btime);
1984         BUILD_BUG_ON(offsetof(typeof(*b), mbo_padding_9) == 0);
1985         BUILD_BUG_ON(offsetof(typeof(*b), mbo_padding_10) == 0);
1986 }
1987
1988 void lustre_swab_mdt_ioepoch(struct mdt_ioepoch *b)
1989 {
1990         /* mio_open_handle is opaque */
1991         BUILD_BUG_ON(offsetof(typeof(*b), mio_unused1) == 0);
1992         BUILD_BUG_ON(offsetof(typeof(*b), mio_unused2) == 0);
1993         BUILD_BUG_ON(offsetof(typeof(*b), mio_padding) == 0);
1994 }
1995
1996 void lustre_swab_mgs_target_info(struct mgs_target_info *mti)
1997 {
1998         int i;
1999
2000         __swab32s(&mti->mti_lustre_ver);
2001         __swab32s(&mti->mti_stripe_index);
2002         __swab32s(&mti->mti_config_ver);
2003         __swab32s(&mti->mti_flags);
2004         __swab32s(&mti->mti_instance);
2005         __swab32s(&mti->mti_nid_count);
2006         BUILD_BUG_ON(sizeof(lnet_nid_t) != sizeof(__u64));
2007         for (i = 0; i < MTI_NIDS_MAX; i++)
2008                 __swab64s(&mti->mti_nids[i]);
2009 }
2010
2011 void lustre_swab_mgs_nidtbl_entry(struct mgs_nidtbl_entry *entry)
2012 {
2013         __u8 i;
2014
2015         __swab64s(&entry->mne_version);
2016         __swab32s(&entry->mne_instance);
2017         __swab32s(&entry->mne_index);
2018         __swab32s(&entry->mne_length);
2019
2020         /* mne_nid_(count|type) must be one byte size because we're gonna
2021          * access it w/o swapping. */
2022         BUILD_BUG_ON(sizeof(entry->mne_nid_count) != sizeof(__u8));
2023         BUILD_BUG_ON(sizeof(entry->mne_nid_type) != sizeof(__u8));
2024
2025         /* remove this assertion if ipv6 is supported. */
2026         LASSERT(entry->mne_nid_type == 0);
2027         for (i = 0; i < entry->mne_nid_count; i++) {
2028                 BUILD_BUG_ON(sizeof(lnet_nid_t) != sizeof(__u64));
2029                 __swab64s(&entry->u.nids[i]);
2030         }
2031 }
2032 EXPORT_SYMBOL(lustre_swab_mgs_nidtbl_entry);
2033
2034 void lustre_swab_mgs_config_body(struct mgs_config_body *body)
2035 {
2036         __swab64s(&body->mcb_offset);
2037         __swab32s(&body->mcb_units);
2038         __swab16s(&body->mcb_type);
2039 }
2040
2041 void lustre_swab_mgs_config_res(struct mgs_config_res *body)
2042 {
2043         __swab64s(&body->mcr_offset);
2044         __swab64s(&body->mcr_size);
2045 }
2046
2047 static void lustre_swab_obd_dqinfo(struct obd_dqinfo *i)
2048 {
2049         __swab64s(&i->dqi_bgrace);
2050         __swab64s(&i->dqi_igrace);
2051         __swab32s(&i->dqi_flags);
2052         __swab32s(&i->dqi_valid);
2053 }
2054
2055 static void lustre_swab_obd_dqblk(struct obd_dqblk *b)
2056 {
2057         __swab64s(&b->dqb_ihardlimit);
2058         __swab64s(&b->dqb_isoftlimit);
2059         __swab64s(&b->dqb_curinodes);
2060         __swab64s(&b->dqb_bhardlimit);
2061         __swab64s(&b->dqb_bsoftlimit);
2062         __swab64s(&b->dqb_curspace);
2063         __swab64s(&b->dqb_btime);
2064         __swab64s(&b->dqb_itime);
2065         __swab32s(&b->dqb_valid);
2066         BUILD_BUG_ON(offsetof(typeof(*b), dqb_padding) == 0);
2067 }
2068
2069 int lustre_swab_obd_quotactl(struct obd_quotactl *q, __u32 len)
2070 {
2071         if (unlikely(len <= sizeof(struct obd_quotactl)))
2072                 return -EOVERFLOW;
2073
2074         __swab32s(&q->qc_cmd);
2075         __swab32s(&q->qc_type);
2076         __swab32s(&q->qc_id);
2077         __swab32s(&q->qc_stat);
2078         lustre_swab_obd_dqinfo(&q->qc_dqinfo);
2079         lustre_swab_obd_dqblk(&q->qc_dqblk);
2080
2081         return len;
2082 }
2083
2084 void lustre_swab_fid2path(struct getinfo_fid2path *gf)
2085 {
2086         lustre_swab_lu_fid(&gf->gf_fid);
2087         __swab64s(&gf->gf_recno);
2088         __swab32s(&gf->gf_linkno);
2089         __swab32s(&gf->gf_pathlen);
2090 }
2091 EXPORT_SYMBOL(lustre_swab_fid2path);
2092
2093 static void lustre_swab_fiemap_extent(struct fiemap_extent *fm_extent)
2094 {
2095         __swab64s(&fm_extent->fe_logical);
2096         __swab64s(&fm_extent->fe_physical);
2097         __swab64s(&fm_extent->fe_length);
2098         __swab32s(&fm_extent->fe_flags);
2099         __swab32s(&fm_extent->fe_device);
2100 }
2101
2102 static void lustre_swab_fiemap_hdr(struct fiemap *fiemap)
2103 {
2104         __swab64s(&fiemap->fm_start);
2105         __swab64s(&fiemap->fm_length);
2106         __swab32s(&fiemap->fm_flags);
2107         __swab32s(&fiemap->fm_mapped_extents);
2108         __swab32s(&fiemap->fm_extent_count);
2109         __swab32s(&fiemap->fm_reserved);
2110 }
2111
2112 int lustre_swab_fiemap(struct fiemap *fiemap, __u32 len)
2113 {
2114         __u32 i, size, count;
2115
2116         lustre_swab_fiemap_hdr(fiemap);
2117
2118         size = fiemap_count_to_size(fiemap->fm_mapped_extents);
2119         count = fiemap->fm_mapped_extents;
2120         if (unlikely(size > len)) {
2121                 count = (len - sizeof(struct fiemap)) /
2122                         sizeof(struct fiemap_extent);
2123                 fiemap->fm_mapped_extents = count;
2124                 size = -EOVERFLOW;
2125         }
2126         /* still swab extents as we cannot yet pass rc to callers */
2127         for (i = 0; i < count; i++)
2128                 lustre_swab_fiemap_extent(&fiemap->fm_extents[i]);
2129
2130         return size;
2131 }
2132
2133 void lustre_swab_fiemap_info_key(struct ll_fiemap_info_key *fiemap_info)
2134 {
2135         lustre_swab_obdo(&fiemap_info->lfik_oa);
2136         lustre_swab_fiemap_hdr(&fiemap_info->lfik_fiemap);
2137 }
2138
2139 void lustre_swab_idx_info(struct idx_info *ii)
2140 {
2141         __swab32s(&ii->ii_magic);
2142         __swab32s(&ii->ii_flags);
2143         __swab16s(&ii->ii_count);
2144         __swab32s(&ii->ii_attrs);
2145         lustre_swab_lu_fid(&ii->ii_fid);
2146         __swab64s(&ii->ii_version);
2147         __swab64s(&ii->ii_hash_start);
2148         __swab64s(&ii->ii_hash_end);
2149         __swab16s(&ii->ii_keysize);
2150         __swab16s(&ii->ii_recsize);
2151 }
2152
2153 void lustre_swab_lip_header(struct lu_idxpage *lip)
2154 {
2155         /* swab header */
2156         __swab32s(&lip->lip_magic);
2157         __swab16s(&lip->lip_flags);
2158         __swab16s(&lip->lip_nr);
2159 }
2160 EXPORT_SYMBOL(lustre_swab_lip_header);
2161
2162 void lustre_swab_mdt_rec_reint (struct mdt_rec_reint *rr)
2163 {
2164         __swab32s(&rr->rr_opcode);
2165         __swab32s(&rr->rr_cap);
2166         __swab32s(&rr->rr_fsuid);
2167         /* rr_fsuid_h is unused */
2168         __swab32s(&rr->rr_fsgid);
2169         /* rr_fsgid_h is unused */
2170         __swab32s(&rr->rr_suppgid1);
2171         /* rr_suppgid1_h is unused */
2172         __swab32s(&rr->rr_suppgid2);
2173         /* rr_suppgid2_h is unused */
2174         lustre_swab_lu_fid(&rr->rr_fid1);
2175         lustre_swab_lu_fid(&rr->rr_fid2);
2176         __swab64s(&rr->rr_mtime);
2177         __swab64s(&rr->rr_atime);
2178         __swab64s(&rr->rr_ctime);
2179         __swab64s(&rr->rr_size);
2180         __swab64s(&rr->rr_blocks);
2181         __swab32s(&rr->rr_bias);
2182         __swab32s(&rr->rr_mode);
2183         __swab32s(&rr->rr_flags);
2184         __swab32s(&rr->rr_flags_h);
2185         __swab32s(&rr->rr_umask);
2186         __swab16s(&rr->rr_mirror_id);
2187
2188         BUILD_BUG_ON(offsetof(typeof(*rr), rr_padding_4) == 0);
2189 };
2190
2191 void lustre_swab_lov_desc(struct lov_desc *ld)
2192 {
2193         __swab32s(&ld->ld_tgt_count);
2194         __swab32s(&ld->ld_active_tgt_count);
2195         __swab32s(&ld->ld_default_stripe_count);
2196         __swab32s(&ld->ld_pattern);
2197         __swab64s(&ld->ld_default_stripe_size);
2198         __swab64s(&ld->ld_default_stripe_offset);
2199         __swab32s(&ld->ld_qos_maxage);
2200         /* uuid endian insensitive */
2201 }
2202 EXPORT_SYMBOL(lustre_swab_lov_desc);
2203
2204 void lustre_swab_lmv_desc(struct lmv_desc *ld)
2205 {
2206         __swab32s(&ld->ld_tgt_count);
2207         __swab32s(&ld->ld_active_tgt_count);
2208         __swab32s(&ld->ld_default_stripe_count);
2209         __swab32s(&ld->ld_pattern);
2210         __swab64s(&ld->ld_default_hash_size);
2211         __swab32s(&ld->ld_qos_maxage);
2212         /* uuid endian insensitive */
2213 }
2214
2215 /* This structure is always in little-endian */
2216 static void lustre_swab_lmv_mds_md_v1(struct lmv_mds_md_v1 *lmm1)
2217 {
2218         int i;
2219
2220         __swab32s(&lmm1->lmv_magic);
2221         __swab32s(&lmm1->lmv_stripe_count);
2222         __swab32s(&lmm1->lmv_master_mdt_index);
2223         __swab32s(&lmm1->lmv_hash_type);
2224         __swab32s(&lmm1->lmv_layout_version);
2225         for (i = 0; i < lmm1->lmv_stripe_count; i++)
2226                 lustre_swab_lu_fid(&lmm1->lmv_stripe_fids[i]);
2227 }
2228
2229 void lustre_swab_lmv_mds_md(union lmv_mds_md *lmm)
2230 {
2231         switch (lmm->lmv_magic) {
2232         case LMV_MAGIC_V1:
2233                 lustre_swab_lmv_mds_md_v1(&lmm->lmv_md_v1);
2234                 break;
2235         default:
2236                 break;
2237         }
2238 }
2239 EXPORT_SYMBOL(lustre_swab_lmv_mds_md);
2240
2241 void lustre_swab_lmv_user_md_objects(struct lmv_user_mds_data *lmd,
2242                                      int stripe_count)
2243 {
2244         int i;
2245
2246         for (i = 0; i < stripe_count; i++)
2247                 __swab32s(&(lmd[i].lum_mds));
2248 }
2249 EXPORT_SYMBOL(lustre_swab_lmv_user_md_objects);
2250
2251
2252 void lustre_swab_lmv_user_md(struct lmv_user_md *lum)
2253 {
2254         __u32 count;
2255
2256         if (lum->lum_magic == LMV_MAGIC_FOREIGN) {
2257                 __swab32s(&lum->lum_magic);
2258                 __swab32s(&((struct lmv_foreign_md *)lum)->lfm_length);
2259                 __swab32s(&((struct lmv_foreign_md *)lum)->lfm_type);
2260                 __swab32s(&((struct lmv_foreign_md *)lum)->lfm_flags);
2261                 return;
2262         }
2263
2264         count = lum->lum_stripe_count;
2265         __swab32s(&lum->lum_magic);
2266         __swab32s(&lum->lum_stripe_count);
2267         __swab32s(&lum->lum_stripe_offset);
2268         __swab32s(&lum->lum_hash_type);
2269         __swab32s(&lum->lum_type);
2270         /* lum_max_inherit and lum_max_inherit_rr do not need to be swabbed */
2271         BUILD_BUG_ON(offsetof(typeof(*lum), lum_padding1) == 0);
2272         BUILD_BUG_ON(offsetof(typeof(*lum), lum_padding2) == 0);
2273         BUILD_BUG_ON(offsetof(typeof(*lum), lum_padding3) == 0);
2274         switch (lum->lum_magic) {
2275         case LMV_USER_MAGIC_SPECIFIC:
2276                 count = lum->lum_stripe_count;
2277                 fallthrough;
2278         case __swab32(LMV_USER_MAGIC_SPECIFIC):
2279                 lustre_swab_lmv_user_md_objects(lum->lum_objects, count);
2280                 break;
2281         default:
2282                 break;
2283         }
2284 }
2285 EXPORT_SYMBOL(lustre_swab_lmv_user_md);
2286
2287 static void lustre_print_v1v3(unsigned int lvl, struct lov_user_md *lum,
2288                               const char *msg)
2289 {
2290         CDEBUG(lvl, "%s lov_user_md %p:\n", msg, lum);
2291         CDEBUG(lvl, "\tlmm_magic: %#x\n", lum->lmm_magic);
2292         CDEBUG(lvl, "\tlmm_pattern: %#x\n", lum->lmm_pattern);
2293         CDEBUG(lvl, "\tlmm_object_id: %llu\n", lmm_oi_id(&lum->lmm_oi));
2294         CDEBUG(lvl, "\tlmm_object_gr: %llu\n", lmm_oi_seq(&lum->lmm_oi));
2295         CDEBUG(lvl, "\tlmm_stripe_size: %#x\n", lum->lmm_stripe_size);
2296         CDEBUG(lvl, "\tlmm_stripe_count: %#x\n", lum->lmm_stripe_count);
2297         CDEBUG(lvl, "\tlmm_stripe_offset/lmm_layout_gen: %#x\n",
2298                lum->lmm_stripe_offset);
2299         if (lum->lmm_magic == LOV_USER_MAGIC_V3) {
2300                 struct lov_user_md_v3 *v3 = (void *)lum;
2301                 CDEBUG(lvl, "\tlmm_pool_name: %s\n", v3->lmm_pool_name);
2302         }
2303         if (lum->lmm_magic == LOV_USER_MAGIC_SPECIFIC) {
2304                 struct lov_user_md_v3 *v3 = (void *)lum;
2305                 int i;
2306
2307                 if (v3->lmm_pool_name[0] != '\0')
2308                         CDEBUG(lvl, "\tlmm_pool_name: %s\n", v3->lmm_pool_name);
2309
2310                 CDEBUG(lvl, "\ttarget list:\n");
2311                 for (i = 0; i < v3->lmm_stripe_count; i++)
2312                         CDEBUG(lvl, "\t\t%u\n", v3->lmm_objects[i].l_ost_idx);
2313         }
2314 }
2315
2316 void lustre_print_user_md(unsigned int lvl, struct lov_user_md *lum,
2317                           const char *msg)
2318 {
2319         struct lov_comp_md_v1   *comp_v1;
2320         int                      i;
2321
2322         if (likely(!cfs_cdebug_show(lvl, DEBUG_SUBSYSTEM)))
2323                 return;
2324
2325         if (lum->lmm_magic == LOV_USER_MAGIC_V1 ||
2326             lum->lmm_magic == LOV_USER_MAGIC_V3) {
2327                 lustre_print_v1v3(lvl, lum, msg);
2328                 return;
2329         }
2330
2331         if (lum->lmm_magic != LOV_USER_MAGIC_COMP_V1) {
2332                 CDEBUG(lvl, "%s: bad magic: %x\n", msg, lum->lmm_magic);
2333                 return;
2334         }
2335
2336         comp_v1 = (struct lov_comp_md_v1 *)lum;
2337         CDEBUG(lvl, "%s: lov_comp_md_v1 %p:\n", msg, lum);
2338         CDEBUG(lvl, "\tlcm_magic: %#x\n", comp_v1->lcm_magic);
2339         CDEBUG(lvl, "\tlcm_size: %#x\n", comp_v1->lcm_size);
2340         CDEBUG(lvl, "\tlcm_layout_gen: %#x\n", comp_v1->lcm_layout_gen);
2341         CDEBUG(lvl, "\tlcm_flags: %#x\n", comp_v1->lcm_flags);
2342         CDEBUG(lvl, "\tlcm_entry_count: %#x\n\n", comp_v1->lcm_entry_count);
2343         CDEBUG(lvl, "\tlcm_mirror_count: %#x\n\n", comp_v1->lcm_mirror_count);
2344
2345         for (i = 0; i < comp_v1->lcm_entry_count; i++) {
2346                 struct lov_comp_md_entry_v1 *ent = &comp_v1->lcm_entries[i];
2347                 struct lov_user_md *v1;
2348
2349                 CDEBUG(lvl, "\tentry %d:\n", i);
2350                 CDEBUG(lvl, "\tlcme_id: %#x\n", ent->lcme_id);
2351                 CDEBUG(lvl, "\tlcme_flags: %#x\n", ent->lcme_flags);
2352                 if (ent->lcme_flags & LCME_FL_NOSYNC)
2353                         CDEBUG(lvl, "\tlcme_timestamp: %llu\n",
2354                                         ent->lcme_timestamp);
2355                 CDEBUG(lvl, "\tlcme_extent.e_start: %llu\n",
2356                        ent->lcme_extent.e_start);
2357                 CDEBUG(lvl, "\tlcme_extent.e_end: %llu\n",
2358                        ent->lcme_extent.e_end);
2359                 CDEBUG(lvl, "\tlcme_offset: %#x\n", ent->lcme_offset);
2360                 CDEBUG(lvl, "\tlcme_size: %#x\n\n", ent->lcme_size);
2361
2362                 v1 = (struct lov_user_md *)((char *)comp_v1 +
2363                                 comp_v1->lcm_entries[i].lcme_offset);
2364                 lustre_print_v1v3(lvl, v1, msg);
2365         }
2366 }
2367 EXPORT_SYMBOL(lustre_print_user_md);
2368
2369 static void lustre_swab_lmm_oi(struct ost_id *oi)
2370 {
2371         __swab64s(&oi->oi.oi_id);
2372         __swab64s(&oi->oi.oi_seq);
2373 }
2374
2375 static void lustre_swab_lov_user_md_common(struct lov_user_md_v1 *lum)
2376 {
2377         ENTRY;
2378         __swab32s(&lum->lmm_magic);
2379         __swab32s(&lum->lmm_pattern);
2380         lustre_swab_lmm_oi(&lum->lmm_oi);
2381         __swab32s(&lum->lmm_stripe_size);
2382         __swab16s(&lum->lmm_stripe_count);
2383         __swab16s(&lum->lmm_stripe_offset);
2384         EXIT;
2385 }
2386
2387 void lustre_swab_lov_user_md_v1(struct lov_user_md_v1 *lum)
2388 {
2389         ENTRY;
2390         CDEBUG(D_IOCTL, "swabbing lov_user_md v1\n");
2391         lustre_swab_lov_user_md_common(lum);
2392         EXIT;
2393 }
2394 EXPORT_SYMBOL(lustre_swab_lov_user_md_v1);
2395
2396 void lustre_swab_lov_user_md_v3(struct lov_user_md_v3 *lum)
2397 {
2398         ENTRY;
2399         CDEBUG(D_IOCTL, "swabbing lov_user_md v3\n");
2400         lustre_swab_lov_user_md_common((struct lov_user_md_v1 *)lum);
2401         /* lmm_pool_name nothing to do with char */
2402         EXIT;
2403 }
2404 EXPORT_SYMBOL(lustre_swab_lov_user_md_v3);
2405
2406 void lustre_swab_lov_comp_md_v1(struct lov_comp_md_v1 *lum)
2407 {
2408         struct lov_comp_md_entry_v1     *ent;
2409         struct lov_user_md_v1   *v1;
2410         struct lov_user_md_v3   *v3;
2411         int     i;
2412         bool    cpu_endian;
2413         __u32   off, size;
2414         __u16   ent_count, stripe_count;
2415         ENTRY;
2416
2417         cpu_endian = lum->lcm_magic == LOV_USER_MAGIC_COMP_V1;
2418         ent_count = lum->lcm_entry_count;
2419         if (!cpu_endian)
2420                 __swab16s(&ent_count);
2421
2422         CDEBUG(D_IOCTL, "swabbing lov_user_comp_md v1\n");
2423         __swab32s(&lum->lcm_magic);
2424         __swab32s(&lum->lcm_size);
2425         __swab32s(&lum->lcm_layout_gen);
2426         __swab16s(&lum->lcm_flags);
2427         __swab16s(&lum->lcm_entry_count);
2428         __swab16s(&lum->lcm_mirror_count);
2429         BUILD_BUG_ON(offsetof(typeof(*lum), lcm_padding1) == 0);
2430         BUILD_BUG_ON(offsetof(typeof(*lum), lcm_padding2) == 0);
2431
2432         for (i = 0; i < ent_count; i++) {
2433                 ent = &lum->lcm_entries[i];
2434                 off = ent->lcme_offset;
2435                 size = ent->lcme_size;
2436
2437                 if (!cpu_endian) {
2438                         __swab32s(&off);
2439                         __swab32s(&size);
2440                 }
2441                 __swab32s(&ent->lcme_id);
2442                 __swab32s(&ent->lcme_flags);
2443                 __swab64s(&ent->lcme_timestamp);
2444                 __swab64s(&ent->lcme_extent.e_start);
2445                 __swab64s(&ent->lcme_extent.e_end);
2446                 __swab32s(&ent->lcme_offset);
2447                 __swab32s(&ent->lcme_size);
2448                 __swab32s(&ent->lcme_layout_gen);
2449                 BUILD_BUG_ON(offsetof(typeof(*ent), lcme_padding_1) == 0);
2450
2451                 v1 = (struct lov_user_md_v1 *)((char *)lum + off);
2452                 stripe_count = v1->lmm_stripe_count;
2453                 if (!cpu_endian)
2454                         __swab16s(&stripe_count);
2455
2456                 if (v1->lmm_magic == __swab32(LOV_USER_MAGIC_V1) ||
2457                     v1->lmm_magic == LOV_USER_MAGIC_V1) {
2458                         lustre_swab_lov_user_md_v1(v1);
2459                         if (size > sizeof(*v1))
2460                                 lustre_swab_lov_user_md_objects(v1->lmm_objects,
2461                                                                 stripe_count);
2462                 } else if (v1->lmm_magic == __swab32(LOV_USER_MAGIC_V3) ||
2463                            v1->lmm_magic == LOV_USER_MAGIC_V3 ||
2464                            v1->lmm_magic == __swab32(LOV_USER_MAGIC_SPECIFIC) ||
2465                            v1->lmm_magic == LOV_USER_MAGIC_SPECIFIC) {
2466                         v3 = (struct lov_user_md_v3 *)v1;
2467                         lustre_swab_lov_user_md_v3(v3);
2468                         if (size > sizeof(*v3))
2469                                 lustre_swab_lov_user_md_objects(v3->lmm_objects,
2470                                                                 stripe_count);
2471                 } else {
2472                         CERROR("Invalid magic %#x\n", v1->lmm_magic);
2473                 }
2474         }
2475 }
2476 EXPORT_SYMBOL(lustre_swab_lov_comp_md_v1);
2477
2478 void lustre_swab_lov_user_md_objects(struct lov_user_ost_data *lod,
2479                                      int stripe_count)
2480 {
2481         int i;
2482
2483         ENTRY;
2484         for (i = 0; i < stripe_count; i++) {
2485                 lustre_swab_ost_id(&(lod[i].l_ost_oi));
2486                 __swab32s(&(lod[i].l_ost_gen));
2487                 __swab32s(&(lod[i].l_ost_idx));
2488         }
2489         EXIT;
2490 }
2491 EXPORT_SYMBOL(lustre_swab_lov_user_md_objects);
2492
2493 void lustre_swab_lov_user_md(struct lov_user_md *lum, size_t size)
2494 {
2495         struct lov_user_md_v1 *v1;
2496         struct lov_user_md_v3 *v3;
2497         struct lov_foreign_md *lfm;
2498         __u16 stripe_count;
2499         ENTRY;
2500
2501         CDEBUG(D_IOCTL, "swabbing lov_user_md\n");
2502         switch (lum->lmm_magic) {
2503         case __swab32(LOV_MAGIC_V1):
2504         case LOV_USER_MAGIC_V1:
2505         {
2506                 v1 = (struct lov_user_md_v1 *)lum;
2507                 stripe_count = v1->lmm_stripe_count;
2508
2509                 if (lum->lmm_magic != LOV_USER_MAGIC_V1)
2510                         __swab16s(&stripe_count);
2511
2512                 lustre_swab_lov_user_md_v1(v1);
2513                 if (size > sizeof(*v1))
2514                         lustre_swab_lov_user_md_objects(v1->lmm_objects,
2515                                                         stripe_count);
2516
2517                 break;
2518         }
2519         case __swab32(LOV_MAGIC_V3):
2520         case LOV_USER_MAGIC_V3:
2521         {
2522                 v3 = (struct lov_user_md_v3 *)lum;
2523                 stripe_count = v3->lmm_stripe_count;
2524
2525                 if (lum->lmm_magic != LOV_USER_MAGIC_V3)
2526                         __swab16s(&stripe_count);
2527
2528                 lustre_swab_lov_user_md_v3(v3);
2529                 if (size > sizeof(*v3))
2530                         lustre_swab_lov_user_md_objects(v3->lmm_objects,
2531                                                         stripe_count);
2532                 break;
2533         }
2534         case __swab32(LOV_USER_MAGIC_SPECIFIC):
2535         case LOV_USER_MAGIC_SPECIFIC:
2536         {
2537                 v3 = (struct lov_user_md_v3 *)lum;
2538                 stripe_count = v3->lmm_stripe_count;
2539
2540                 if (lum->lmm_magic != LOV_USER_MAGIC_SPECIFIC)
2541                         __swab16s(&stripe_count);
2542
2543                 lustre_swab_lov_user_md_v3(v3);
2544                 lustre_swab_lov_user_md_objects(v3->lmm_objects, stripe_count);
2545                 break;
2546         }
2547         case __swab32(LOV_MAGIC_COMP_V1):
2548         case LOV_USER_MAGIC_COMP_V1:
2549                 lustre_swab_lov_comp_md_v1((struct lov_comp_md_v1 *)lum);
2550                 break;
2551         case __swab32(LOV_MAGIC_FOREIGN):
2552         case LOV_USER_MAGIC_FOREIGN:
2553         {
2554                 lfm = (struct lov_foreign_md *)lum;
2555                 __swab32s(&lfm->lfm_magic);
2556                 __swab32s(&lfm->lfm_length);
2557                 __swab32s(&lfm->lfm_type);
2558                 __swab32s(&lfm->lfm_flags);
2559                 break;
2560         }
2561         default:
2562                 CDEBUG(D_IOCTL, "Invalid LOV magic %08x\n", lum->lmm_magic);
2563         }
2564 }
2565 EXPORT_SYMBOL(lustre_swab_lov_user_md);
2566
2567 void lustre_swab_lov_mds_md(struct lov_mds_md *lmm)
2568 {
2569         ENTRY;
2570         CDEBUG(D_IOCTL, "swabbing lov_mds_md\n");
2571         __swab32s(&lmm->lmm_magic);
2572         __swab32s(&lmm->lmm_pattern);
2573         lustre_swab_lmm_oi(&lmm->lmm_oi);
2574         __swab32s(&lmm->lmm_stripe_size);
2575         __swab16s(&lmm->lmm_stripe_count);
2576         __swab16s(&lmm->lmm_layout_gen);
2577         EXIT;
2578 }
2579 EXPORT_SYMBOL(lustre_swab_lov_mds_md);
2580
2581 void lustre_swab_ldlm_res_id(struct ldlm_res_id *id)
2582 {
2583         int i;
2584
2585         for (i = 0; i < RES_NAME_SIZE; i++)
2586                 __swab64s(&id->name[i]);
2587 }
2588
2589 void lustre_swab_ldlm_policy_data(union ldlm_wire_policy_data *d)
2590 {
2591         /* the lock data is a union and the first two fields are always an
2592          * extent so it's ok to process an LDLM_EXTENT and LDLM_FLOCK lock
2593          * data the same way.
2594          */
2595         __swab64s(&d->l_extent.start);
2596         __swab64s(&d->l_extent.end);
2597         __swab64s(&d->l_extent.gid);
2598         __swab64s(&d->l_flock.lfw_owner);
2599         __swab32s(&d->l_flock.lfw_pid);
2600 }
2601
2602 void lustre_swab_ldlm_intent(struct ldlm_intent *i)
2603 {
2604         __swab64s(&i->opc);
2605 }
2606
2607 void lustre_swab_ldlm_resource_desc(struct ldlm_resource_desc *r)
2608 {
2609         __swab32s(&r->lr_type);
2610         BUILD_BUG_ON(offsetof(typeof(*r), lr_pad) == 0);
2611         lustre_swab_ldlm_res_id(&r->lr_name);
2612 }
2613
2614 void lustre_swab_ldlm_lock_desc(struct ldlm_lock_desc *l)
2615 {
2616         lustre_swab_ldlm_resource_desc(&l->l_resource);
2617         __swab32s(&l->l_req_mode);
2618         __swab32s(&l->l_granted_mode);
2619         lustre_swab_ldlm_policy_data(&l->l_policy_data);
2620 }
2621
2622 void lustre_swab_ldlm_request(struct ldlm_request *rq)
2623 {
2624         __swab32s(&rq->lock_flags);
2625         lustre_swab_ldlm_lock_desc(&rq->lock_desc);
2626         __swab32s(&rq->lock_count);
2627         /* lock_handle[] opaque */
2628 }
2629
2630 void lustre_swab_ldlm_reply(struct ldlm_reply *r)
2631 {
2632         __swab32s(&r->lock_flags);
2633         BUILD_BUG_ON(offsetof(typeof(*r), lock_padding) == 0);
2634         lustre_swab_ldlm_lock_desc(&r->lock_desc);
2635         /* lock_handle opaque */
2636         __swab64s(&r->lock_policy_res1);
2637         __swab64s(&r->lock_policy_res2);
2638 }
2639
2640 void lustre_swab_quota_body(struct quota_body *b)
2641 {
2642         lustre_swab_lu_fid(&b->qb_fid);
2643         lustre_swab_lu_fid((struct lu_fid *)&b->qb_id);
2644         __swab32s(&b->qb_flags);
2645         __swab64s(&b->qb_count);
2646         __swab64s(&b->qb_usage);
2647         __swab64s(&b->qb_slv_ver);
2648 }
2649
2650 /* Dump functions */
2651 void dump_ioo(struct obd_ioobj *ioo)
2652 {
2653         CDEBUG(D_RPCTRACE,
2654                "obd_ioobj: ioo_oid="DOSTID", ioo_max_brw=%#x, "
2655                "ioo_bufct=%d\n", POSTID(&ioo->ioo_oid), ioo->ioo_max_brw,
2656                ioo->ioo_bufcnt);
2657 }
2658
2659 void dump_rniobuf(struct niobuf_remote *nb)
2660 {
2661         CDEBUG(D_RPCTRACE, "niobuf_remote: offset=%llu, len=%d, flags=%x\n",
2662                nb->rnb_offset, nb->rnb_len, nb->rnb_flags);
2663 }
2664
2665 void dump_obdo(struct obdo *oa)
2666 {
2667         u64 valid = oa->o_valid;
2668
2669         CDEBUG(D_RPCTRACE, "obdo: o_valid = %#llx\n", valid);
2670         if (valid & OBD_MD_FLID)
2671                 CDEBUG(D_RPCTRACE, "obdo: id = "DOSTID"\n", POSTID(&oa->o_oi));
2672         if (valid & OBD_MD_FLFID)
2673                 CDEBUG(D_RPCTRACE, "obdo: o_parent_seq = %#llx\n",
2674                        oa->o_parent_seq);
2675         if (valid & OBD_MD_FLSIZE)
2676                 CDEBUG(D_RPCTRACE, "obdo: o_size = %lld\n", oa->o_size);
2677         if (valid & OBD_MD_FLMTIME)
2678                 CDEBUG(D_RPCTRACE, "obdo: o_mtime = %lld\n", oa->o_mtime);
2679         if (valid & OBD_MD_FLATIME)
2680                 CDEBUG(D_RPCTRACE, "obdo: o_atime = %lld\n", oa->o_atime);
2681         if (valid & OBD_MD_FLCTIME)
2682                 CDEBUG(D_RPCTRACE, "obdo: o_ctime = %lld\n", oa->o_ctime);
2683         if (valid & OBD_MD_FLBLOCKS)   /* allocation of space */
2684                 CDEBUG(D_RPCTRACE, "obdo: o_blocks = %lld\n", oa->o_blocks);
2685         if (valid & OBD_MD_FLGRANT)
2686                 CDEBUG(D_RPCTRACE, "obdo: o_grant = %lld\n", oa->o_grant);
2687         if (valid & OBD_MD_FLBLKSZ)
2688                 CDEBUG(D_RPCTRACE, "obdo: o_blksize = %d\n", oa->o_blksize);
2689         if (valid & (OBD_MD_FLTYPE | OBD_MD_FLMODE))
2690                 CDEBUG(D_RPCTRACE, "obdo: o_mode = %o\n",
2691                        oa->o_mode & ((valid & OBD_MD_FLTYPE ?  S_IFMT : 0) |
2692                                      (valid & OBD_MD_FLMODE ? ~S_IFMT : 0)));
2693         if (valid & OBD_MD_FLUID)
2694                 CDEBUG(D_RPCTRACE, "obdo: o_uid = %u\n", oa->o_uid);
2695         if (valid & OBD_MD_FLUID)
2696                 CDEBUG(D_RPCTRACE, "obdo: o_uid_h = %u\n", oa->o_uid_h);
2697         if (valid & OBD_MD_FLGID)
2698                 CDEBUG(D_RPCTRACE, "obdo: o_gid = %u\n", oa->o_gid);
2699         if (valid & OBD_MD_FLGID)
2700                 CDEBUG(D_RPCTRACE, "obdo: o_gid_h = %u\n", oa->o_gid_h);
2701         if (valid & OBD_MD_FLFLAGS)
2702                 CDEBUG(D_RPCTRACE, "obdo: o_flags = %x\n", oa->o_flags);
2703         if (valid & OBD_MD_FLNLINK)
2704                 CDEBUG(D_RPCTRACE, "obdo: o_nlink = %u\n", oa->o_nlink);
2705         else if (valid & OBD_MD_FLCKSUM)
2706                 CDEBUG(D_RPCTRACE, "obdo: o_checksum (o_nlink) = %u\n",
2707                        oa->o_nlink);
2708         if (valid & OBD_MD_FLPARENT)
2709                 CDEBUG(D_RPCTRACE, "obdo: o_parent_oid = %x\n",
2710                        oa->o_parent_oid);
2711         if (valid & OBD_MD_FLFID) {
2712                 CDEBUG(D_RPCTRACE, "obdo: o_stripe_idx = %u\n",
2713                        oa->o_stripe_idx);
2714                 CDEBUG(D_RPCTRACE, "obdo: o_parent_ver = %x\n",
2715                        oa->o_parent_ver);
2716         }
2717         if (valid & OBD_MD_FLHANDLE)
2718                 CDEBUG(D_RPCTRACE, "obdo: o_handle = %lld\n",
2719                        oa->o_handle.cookie);
2720 }
2721
2722 void dump_ost_body(struct ost_body *ob)
2723 {
2724         dump_obdo(&ob->oa);
2725 }
2726
2727 void dump_rcs(__u32 *rc)
2728 {
2729         CDEBUG(D_RPCTRACE, "rmf_rcs: %d\n", *rc);
2730 }
2731
2732 static inline int req_ptlrpc_body_swabbed(struct ptlrpc_request *req)
2733 {
2734         LASSERT(req->rq_reqmsg);
2735
2736         switch (req->rq_reqmsg->lm_magic) {
2737         case LUSTRE_MSG_MAGIC_V2:
2738                 return req_capsule_req_swabbed(&req->rq_pill,
2739                                                MSG_PTLRPC_BODY_OFF);
2740         default:
2741                 CERROR("bad lustre msg magic: %#08X\n",
2742                        req->rq_reqmsg->lm_magic);
2743         }
2744         return 0;
2745 }
2746
2747 static inline int rep_ptlrpc_body_swabbed(struct ptlrpc_request *req)
2748 {
2749         if (unlikely(!req->rq_repmsg))
2750                 return 0;
2751
2752         switch (req->rq_repmsg->lm_magic) {
2753         case LUSTRE_MSG_MAGIC_V2:
2754                 return req_capsule_rep_swabbed(&req->rq_pill,
2755                                                MSG_PTLRPC_BODY_OFF);
2756         default:
2757                 /* uninitialized yet */
2758                 return 0;
2759         }
2760 }
2761
2762 void _debug_req(struct ptlrpc_request *req,
2763                 struct libcfs_debug_msg_data *msgdata, const char *fmt, ...)
2764 {
2765         bool req_ok = req->rq_reqmsg != NULL;
2766         bool rep_ok = false;
2767         struct lnet_nid *nid = NULL;
2768         struct va_format vaf;
2769         va_list args;
2770         int rep_flags = -1;
2771         int rep_status = -1;
2772
2773         spin_lock(&req->rq_early_free_lock);
2774         if (req->rq_repmsg)
2775                 rep_ok = true;
2776
2777         if (req_capsule_req_need_swab(&req->rq_pill)) {
2778                 req_ok = req_ok && req_ptlrpc_body_swabbed(req);
2779                 rep_ok = rep_ok && rep_ptlrpc_body_swabbed(req);
2780         }
2781
2782         if (rep_ok) {
2783                 rep_flags = lustre_msg_get_flags(req->rq_repmsg);
2784                 rep_status = lustre_msg_get_status(req->rq_repmsg);
2785         }
2786         spin_unlock(&req->rq_early_free_lock);
2787
2788         if (req->rq_import && req->rq_import->imp_connection)
2789                 nid = &req->rq_import->imp_connection->c_peer.nid;
2790         else if (req->rq_export && req->rq_export->exp_connection)
2791                 nid = &req->rq_export->exp_connection->c_peer.nid;
2792
2793         va_start(args, fmt);
2794         vaf.fmt = fmt;
2795         vaf.va = &args;
2796         libcfs_debug_msg(msgdata,
2797                          "%pV req@%p x%llu/t%lld(%lld) o%d->%s@%s:%d/%d lens %d/%d e %d to %lld dl %lld ref %d fl " REQ_FLAGS_FMT "/%x/%x rc %d/%d job:'%s'\n",
2798                          &vaf,
2799                          req, req->rq_xid, req->rq_transno,
2800                          req_ok ? lustre_msg_get_transno(req->rq_reqmsg) : 0,
2801                          req_ok ? lustre_msg_get_opc(req->rq_reqmsg) : -1,
2802                          req->rq_import ?
2803                          req->rq_import->imp_obd->obd_name :
2804                          req->rq_export ?
2805                          req->rq_export->exp_client_uuid.uuid :
2806                          "<?>",
2807                          nid ? libcfs_nidstr(nid) : "<unknown>",
2808                          req->rq_request_portal, req->rq_reply_portal,
2809                          req->rq_reqlen, req->rq_replen,
2810                          req->rq_early_count, (s64)req->rq_timedout,
2811                          (s64)req->rq_deadline,
2812                          atomic_read(&req->rq_refcount),
2813                          DEBUG_REQ_FLAGS(req),
2814                          req_ok ? lustre_msg_get_flags(req->rq_reqmsg) : -1,
2815                          rep_flags, req->rq_status, rep_status,
2816                          req_ok ? lustre_msg_get_jobid(req->rq_reqmsg) ?: ""
2817                                 : "");
2818         va_end(args);
2819 }
2820 EXPORT_SYMBOL(_debug_req);
2821
2822 void lustre_swab_hsm_user_state(struct hsm_user_state *state)
2823 {
2824         __swab32s(&state->hus_states);
2825         __swab32s(&state->hus_archive_id);
2826 }
2827
2828 void lustre_swab_hsm_state_set(struct hsm_state_set *hss)
2829 {
2830         __swab32s(&hss->hss_valid);
2831         __swab64s(&hss->hss_setmask);
2832         __swab64s(&hss->hss_clearmask);
2833         __swab32s(&hss->hss_archive_id);
2834 }
2835
2836 static void lustre_swab_hsm_extent(struct hsm_extent *extent)
2837 {
2838         __swab64s(&extent->offset);
2839         __swab64s(&extent->length);
2840 }
2841
2842 void lustre_swab_hsm_current_action(struct hsm_current_action *action)
2843 {
2844         __swab32s(&action->hca_state);
2845         __swab32s(&action->hca_action);
2846         lustre_swab_hsm_extent(&action->hca_location);
2847 }
2848
2849 void lustre_swab_hsm_user_item(struct hsm_user_item *hui)
2850 {
2851         lustre_swab_lu_fid(&hui->hui_fid);
2852         lustre_swab_hsm_extent(&hui->hui_extent);
2853 }
2854
2855 void lustre_swab_lu_extent(struct lu_extent *le)
2856 {
2857         __swab64s(&le->e_start);
2858         __swab64s(&le->e_end);
2859 }
2860
2861 void lustre_swab_layout_intent(struct layout_intent *li)
2862 {
2863         __swab32s(&li->li_opc);
2864         __swab32s(&li->li_flags);
2865         lustre_swab_lu_extent(&li->li_extent);
2866 }
2867
2868 void lustre_swab_hsm_progress_kernel(struct hsm_progress_kernel *hpk)
2869 {
2870         lustre_swab_lu_fid(&hpk->hpk_fid);
2871         __swab64s(&hpk->hpk_cookie);
2872         __swab64s(&hpk->hpk_extent.offset);
2873         __swab64s(&hpk->hpk_extent.length);
2874         __swab16s(&hpk->hpk_flags);
2875         __swab16s(&hpk->hpk_errval);
2876 }
2877
2878 void lustre_swab_hsm_request(struct hsm_request *hr)
2879 {
2880         __swab32s(&hr->hr_action);
2881         __swab32s(&hr->hr_archive_id);
2882         __swab64s(&hr->hr_flags);
2883         __swab32s(&hr->hr_itemcount);
2884         __swab32s(&hr->hr_data_len);
2885 }
2886
2887 void lustre_swab_swap_layouts(struct mdc_swap_layouts *msl)
2888 {
2889         __swab64s(&msl->msl_flags);
2890 }
2891
2892 void lustre_swab_close_data(struct close_data *cd)
2893 {
2894         lustre_swab_lu_fid(&cd->cd_fid);
2895         __swab64s(&cd->cd_data_version);
2896 }
2897
2898 void lustre_swab_close_data_resync_done(struct close_data_resync_done *resync)
2899 {
2900         int i;
2901
2902         __swab32s(&resync->resync_count);
2903         /* after swab, resync_count must in CPU endian */
2904         if (resync->resync_count <= INLINE_RESYNC_ARRAY_SIZE) {
2905                 for (i = 0; i < resync->resync_count; i++)
2906                         __swab32s(&resync->resync_ids_inline[i]);
2907         }
2908 }
2909 EXPORT_SYMBOL(lustre_swab_close_data_resync_done);
2910
2911 void lustre_swab_lfsck_request(struct lfsck_request *lr)
2912 {
2913         __swab32s(&lr->lr_event);
2914         __swab32s(&lr->lr_index);
2915         __swab32s(&lr->lr_flags);
2916         __swab32s(&lr->lr_valid);
2917         __swab32s(&lr->lr_speed);
2918         __swab16s(&lr->lr_version);
2919         __swab16s(&lr->lr_active);
2920         __swab16s(&lr->lr_param);
2921         __swab16s(&lr->lr_async_windows);
2922         __swab32s(&lr->lr_flags);
2923         lustre_swab_lu_fid(&lr->lr_fid);
2924         lustre_swab_lu_fid(&lr->lr_fid2);
2925         __swab32s(&lr->lr_comp_id);
2926         BUILD_BUG_ON(offsetof(typeof(*lr), lr_padding_0) == 0);
2927         BUILD_BUG_ON(offsetof(typeof(*lr), lr_padding_1) == 0);
2928         BUILD_BUG_ON(offsetof(typeof(*lr), lr_padding_2) == 0);
2929         BUILD_BUG_ON(offsetof(typeof(*lr), lr_padding_3) == 0);
2930 }
2931
2932 void lustre_swab_lfsck_reply(struct lfsck_reply *lr)
2933 {
2934         __swab32s(&lr->lr_status);
2935         BUILD_BUG_ON(offsetof(typeof(*lr), lr_padding_1) == 0);
2936         __swab64s(&lr->lr_repaired);
2937 }
2938
2939 static void lustre_swab_orphan_rec(struct lu_orphan_rec *rec)
2940 {
2941         lustre_swab_lu_fid(&rec->lor_fid);
2942         __swab32s(&rec->lor_uid);
2943         __swab32s(&rec->lor_gid);
2944 }
2945
2946 void lustre_swab_orphan_ent(struct lu_orphan_ent *ent)
2947 {
2948         lustre_swab_lu_fid(&ent->loe_key);
2949         lustre_swab_orphan_rec(&ent->loe_rec);
2950 }
2951 EXPORT_SYMBOL(lustre_swab_orphan_ent);
2952
2953 void lustre_swab_orphan_ent_v2(struct lu_orphan_ent_v2 *ent)
2954 {
2955         lustre_swab_lu_fid(&ent->loe_key);
2956         lustre_swab_orphan_rec(&ent->loe_rec.lor_rec);
2957         lustre_swab_ost_layout(&ent->loe_rec.lor_layout);
2958         BUILD_BUG_ON(offsetof(typeof(ent->loe_rec), lor_padding) == 0);
2959 }
2960 EXPORT_SYMBOL(lustre_swab_orphan_ent_v2);
2961
2962 void lustre_swab_orphan_ent_v3(struct lu_orphan_ent_v3 *ent)
2963 {
2964         lustre_swab_lu_fid(&ent->loe_key);
2965         lustre_swab_orphan_rec(&ent->loe_rec.lor_rec);
2966         lustre_swab_ost_layout(&ent->loe_rec.lor_layout);
2967         __swab32s(&ent->loe_rec.lor_layout_version);
2968         __swab32s(&ent->loe_rec.lor_range);
2969         BUILD_BUG_ON(offsetof(typeof(ent->loe_rec), lor_padding_1) == 0);
2970         BUILD_BUG_ON(offsetof(typeof(ent->loe_rec), lor_padding_2) == 0);
2971 }
2972 EXPORT_SYMBOL(lustre_swab_orphan_ent_v3);
2973
2974 void lustre_swab_ladvise(struct lu_ladvise *ladvise)
2975 {
2976         __swab16s(&ladvise->lla_advice);
2977         __swab16s(&ladvise->lla_value1);
2978         __swab32s(&ladvise->lla_value2);
2979         __swab64s(&ladvise->lla_start);
2980         __swab64s(&ladvise->lla_end);
2981         __swab32s(&ladvise->lla_value3);
2982         __swab32s(&ladvise->lla_value4);
2983 }
2984 EXPORT_SYMBOL(lustre_swab_ladvise);
2985
2986 void lustre_swab_ladvise_hdr(struct ladvise_hdr *ladvise_hdr)
2987 {
2988         __swab32s(&ladvise_hdr->lah_magic);
2989         __swab32s(&ladvise_hdr->lah_count);
2990         __swab64s(&ladvise_hdr->lah_flags);
2991         __swab32s(&ladvise_hdr->lah_value1);
2992         __swab32s(&ladvise_hdr->lah_value2);
2993         __swab64s(&ladvise_hdr->lah_value3);
2994 }
2995 EXPORT_SYMBOL(lustre_swab_ladvise_hdr);