1 #include <linux/ceph/ceph_debug.h>
4 #include <linux/wait.h>
5 #include <linux/slab.h>
6 #include <linux/sched.h>
7 #include <linux/debugfs.h>
8 #include <linux/seq_file.h>
11 #include "mds_client.h"
13 #include <linux/ceph/ceph_features.h>
14 #include <linux/ceph/messenger.h>
15 #include <linux/ceph/decode.h>
16 #include <linux/ceph/pagelist.h>
17 #include <linux/ceph/auth.h>
18 #include <linux/ceph/debugfs.h>
21 * A cluster of MDS (metadata server) daemons is responsible for
22 * managing the file system namespace (the directory hierarchy and
23 * inodes) and for coordinating shared access to storage. Metadata is
24 * partitioning hierarchically across a number of servers, and that
25 * partition varies over time as the cluster adjusts the distribution
26 * in order to balance load.
28 * The MDS client is primarily responsible to managing synchronous
29 * metadata requests for operations like open, unlink, and so forth.
30 * If there is a MDS failure, we find out about it when we (possibly
31 * request and) receive a new MDS map, and can resubmit affected
34 * For the most part, though, we take advantage of a lossless
35 * communications channel to the MDS, and do not need to worry about
36 * timing out or resubmitting requests.
38 * We maintain a stateful "session" with each MDS we interact with.
39 * Within each session, we sent periodic heartbeat messages to ensure
40 * any capabilities or leases we have been issues remain valid. If
41 * the session times out and goes stale, our leases and capabilities
42 * are no longer valid.
45 struct ceph_reconnect_state
{
46 struct ceph_pagelist
*pagelist
;
50 static void __wake_requests(struct ceph_mds_client
*mdsc
,
51 struct list_head
*head
);
53 static const struct ceph_connection_operations mds_con_ops
;
61 * parse individual inode info
63 static int parse_reply_info_in(void **p
, void *end
,
64 struct ceph_mds_reply_info_in
*info
,
70 *p
+= sizeof(struct ceph_mds_reply_inode
) +
71 sizeof(*info
->in
->fragtree
.splits
) *
72 le32_to_cpu(info
->in
->fragtree
.nsplits
);
74 ceph_decode_32_safe(p
, end
, info
->symlink_len
, bad
);
75 ceph_decode_need(p
, end
, info
->symlink_len
, bad
);
77 *p
+= info
->symlink_len
;
79 if (features
& CEPH_FEATURE_DIRLAYOUTHASH
)
80 ceph_decode_copy_safe(p
, end
, &info
->dir_layout
,
81 sizeof(info
->dir_layout
), bad
);
83 memset(&info
->dir_layout
, 0, sizeof(info
->dir_layout
));
85 ceph_decode_32_safe(p
, end
, info
->xattr_len
, bad
);
86 ceph_decode_need(p
, end
, info
->xattr_len
, bad
);
87 info
->xattr_data
= *p
;
88 *p
+= info
->xattr_len
;
95 * parse a normal reply, which may contain a (dir+)dentry and/or a
98 static int parse_reply_info_trace(void **p
, void *end
,
99 struct ceph_mds_reply_info_parsed
*info
,
104 if (info
->head
->is_dentry
) {
105 err
= parse_reply_info_in(p
, end
, &info
->diri
, features
);
109 if (unlikely(*p
+ sizeof(*info
->dirfrag
) > end
))
112 *p
+= sizeof(*info
->dirfrag
) +
113 sizeof(u32
)*le32_to_cpu(info
->dirfrag
->ndist
);
114 if (unlikely(*p
> end
))
117 ceph_decode_32_safe(p
, end
, info
->dname_len
, bad
);
118 ceph_decode_need(p
, end
, info
->dname_len
, bad
);
120 *p
+= info
->dname_len
;
122 *p
+= sizeof(*info
->dlease
);
125 if (info
->head
->is_target
) {
126 err
= parse_reply_info_in(p
, end
, &info
->targeti
, features
);
131 if (unlikely(*p
!= end
))
138 pr_err("problem parsing mds trace %d\n", err
);
143 * parse readdir results
145 static int parse_reply_info_dir(void **p
, void *end
,
146 struct ceph_mds_reply_info_parsed
*info
,
153 if (*p
+ sizeof(*info
->dir_dir
) > end
)
155 *p
+= sizeof(*info
->dir_dir
) +
156 sizeof(u32
)*le32_to_cpu(info
->dir_dir
->ndist
);
160 ceph_decode_need(p
, end
, sizeof(num
) + 2, bad
);
161 num
= ceph_decode_32(p
);
162 info
->dir_end
= ceph_decode_8(p
);
163 info
->dir_complete
= ceph_decode_8(p
);
167 /* alloc large array */
169 info
->dir_in
= kcalloc(num
, sizeof(*info
->dir_in
) +
170 sizeof(*info
->dir_dname
) +
171 sizeof(*info
->dir_dname_len
) +
172 sizeof(*info
->dir_dlease
),
174 if (info
->dir_in
== NULL
) {
178 info
->dir_dname
= (void *)(info
->dir_in
+ num
);
179 info
->dir_dname_len
= (void *)(info
->dir_dname
+ num
);
180 info
->dir_dlease
= (void *)(info
->dir_dname_len
+ num
);
184 ceph_decode_need(p
, end
, sizeof(u32
)*2, bad
);
185 info
->dir_dname_len
[i
] = ceph_decode_32(p
);
186 ceph_decode_need(p
, end
, info
->dir_dname_len
[i
], bad
);
187 info
->dir_dname
[i
] = *p
;
188 *p
+= info
->dir_dname_len
[i
];
189 dout("parsed dir dname '%.*s'\n", info
->dir_dname_len
[i
],
191 info
->dir_dlease
[i
] = *p
;
192 *p
+= sizeof(struct ceph_mds_reply_lease
);
195 err
= parse_reply_info_in(p
, end
, &info
->dir_in
[i
], features
);
210 pr_err("problem parsing dir contents %d\n", err
);
215 * parse fcntl F_GETLK results
217 static int parse_reply_info_filelock(void **p
, void *end
,
218 struct ceph_mds_reply_info_parsed
*info
,
221 if (*p
+ sizeof(*info
->filelock_reply
) > end
)
224 info
->filelock_reply
= *p
;
225 *p
+= sizeof(*info
->filelock_reply
);
227 if (unlikely(*p
!= end
))
236 * parse extra results
238 static int parse_reply_info_extra(void **p
, void *end
,
239 struct ceph_mds_reply_info_parsed
*info
,
242 if (info
->head
->op
== CEPH_MDS_OP_GETFILELOCK
)
243 return parse_reply_info_filelock(p
, end
, info
, features
);
245 return parse_reply_info_dir(p
, end
, info
, features
);
249 * parse entire mds reply
251 static int parse_reply_info(struct ceph_msg
*msg
,
252 struct ceph_mds_reply_info_parsed
*info
,
259 info
->head
= msg
->front
.iov_base
;
260 p
= msg
->front
.iov_base
+ sizeof(struct ceph_mds_reply_head
);
261 end
= p
+ msg
->front
.iov_len
- sizeof(struct ceph_mds_reply_head
);
264 ceph_decode_32_safe(&p
, end
, len
, bad
);
266 ceph_decode_need(&p
, end
, len
, bad
);
267 err
= parse_reply_info_trace(&p
, p
+len
, info
, features
);
273 ceph_decode_32_safe(&p
, end
, len
, bad
);
275 ceph_decode_need(&p
, end
, len
, bad
);
276 err
= parse_reply_info_extra(&p
, p
+len
, info
, features
);
282 ceph_decode_32_safe(&p
, end
, len
, bad
);
283 info
->snapblob_len
= len
;
294 pr_err("mds parse_reply err %d\n", err
);
298 static void destroy_reply_info(struct ceph_mds_reply_info_parsed
*info
)
307 static const char *session_state_name(int s
)
310 case CEPH_MDS_SESSION_NEW
: return "new";
311 case CEPH_MDS_SESSION_OPENING
: return "opening";
312 case CEPH_MDS_SESSION_OPEN
: return "open";
313 case CEPH_MDS_SESSION_HUNG
: return "hung";
314 case CEPH_MDS_SESSION_CLOSING
: return "closing";
315 case CEPH_MDS_SESSION_RESTARTING
: return "restarting";
316 case CEPH_MDS_SESSION_RECONNECTING
: return "reconnecting";
317 default: return "???";
321 static struct ceph_mds_session
*get_session(struct ceph_mds_session
*s
)
323 if (atomic_inc_not_zero(&s
->s_ref
)) {
324 dout("mdsc get_session %p %d -> %d\n", s
,
325 atomic_read(&s
->s_ref
)-1, atomic_read(&s
->s_ref
));
328 dout("mdsc get_session %p 0 -- FAIL", s
);
333 void ceph_put_mds_session(struct ceph_mds_session
*s
)
335 dout("mdsc put_session %p %d -> %d\n", s
,
336 atomic_read(&s
->s_ref
), atomic_read(&s
->s_ref
)-1);
337 if (atomic_dec_and_test(&s
->s_ref
)) {
338 if (s
->s_auth
.authorizer
)
339 s
->s_mdsc
->fsc
->client
->monc
.auth
->ops
->destroy_authorizer(
340 s
->s_mdsc
->fsc
->client
->monc
.auth
,
341 s
->s_auth
.authorizer
);
347 * called under mdsc->mutex
349 struct ceph_mds_session
*__ceph_lookup_mds_session(struct ceph_mds_client
*mdsc
,
352 struct ceph_mds_session
*session
;
354 if (mds
>= mdsc
->max_sessions
|| mdsc
->sessions
[mds
] == NULL
)
356 session
= mdsc
->sessions
[mds
];
357 dout("lookup_mds_session %p %d\n", session
,
358 atomic_read(&session
->s_ref
));
359 get_session(session
);
363 static bool __have_session(struct ceph_mds_client
*mdsc
, int mds
)
365 if (mds
>= mdsc
->max_sessions
)
367 return mdsc
->sessions
[mds
];
370 static int __verify_registered_session(struct ceph_mds_client
*mdsc
,
371 struct ceph_mds_session
*s
)
373 if (s
->s_mds
>= mdsc
->max_sessions
||
374 mdsc
->sessions
[s
->s_mds
] != s
)
380 * create+register a new session for given mds.
381 * called under mdsc->mutex.
383 static struct ceph_mds_session
*register_session(struct ceph_mds_client
*mdsc
,
386 struct ceph_mds_session
*s
;
388 s
= kzalloc(sizeof(*s
), GFP_NOFS
);
390 return ERR_PTR(-ENOMEM
);
393 s
->s_state
= CEPH_MDS_SESSION_NEW
;
396 mutex_init(&s
->s_mutex
);
398 ceph_con_init(&s
->s_con
, s
, &mds_con_ops
, &mdsc
->fsc
->client
->msgr
);
400 spin_lock_init(&s
->s_gen_ttl_lock
);
402 s
->s_cap_ttl
= jiffies
- 1;
404 spin_lock_init(&s
->s_cap_lock
);
405 s
->s_renew_requested
= 0;
407 INIT_LIST_HEAD(&s
->s_caps
);
410 atomic_set(&s
->s_ref
, 1);
411 INIT_LIST_HEAD(&s
->s_waiting
);
412 INIT_LIST_HEAD(&s
->s_unsafe
);
413 s
->s_num_cap_releases
= 0;
414 s
->s_cap_iterator
= NULL
;
415 INIT_LIST_HEAD(&s
->s_cap_releases
);
416 INIT_LIST_HEAD(&s
->s_cap_releases_done
);
417 INIT_LIST_HEAD(&s
->s_cap_flushing
);
418 INIT_LIST_HEAD(&s
->s_cap_snaps_flushing
);
420 dout("register_session mds%d\n", mds
);
421 if (mds
>= mdsc
->max_sessions
) {
422 int newmax
= 1 << get_count_order(mds
+1);
423 struct ceph_mds_session
**sa
;
425 dout("register_session realloc to %d\n", newmax
);
426 sa
= kcalloc(newmax
, sizeof(void *), GFP_NOFS
);
429 if (mdsc
->sessions
) {
430 memcpy(sa
, mdsc
->sessions
,
431 mdsc
->max_sessions
* sizeof(void *));
432 kfree(mdsc
->sessions
);
435 mdsc
->max_sessions
= newmax
;
437 mdsc
->sessions
[mds
] = s
;
438 atomic_inc(&s
->s_ref
); /* one ref to sessions[], one to caller */
440 ceph_con_open(&s
->s_con
, CEPH_ENTITY_TYPE_MDS
, mds
,
441 ceph_mdsmap_get_addr(mdsc
->mdsmap
, mds
));
447 return ERR_PTR(-ENOMEM
);
451 * called under mdsc->mutex
453 static void __unregister_session(struct ceph_mds_client
*mdsc
,
454 struct ceph_mds_session
*s
)
456 dout("__unregister_session mds%d %p\n", s
->s_mds
, s
);
457 BUG_ON(mdsc
->sessions
[s
->s_mds
] != s
);
458 mdsc
->sessions
[s
->s_mds
] = NULL
;
459 ceph_con_close(&s
->s_con
);
460 ceph_put_mds_session(s
);
464 * drop session refs in request.
466 * should be last request ref, or hold mdsc->mutex
468 static void put_request_session(struct ceph_mds_request
*req
)
470 if (req
->r_session
) {
471 ceph_put_mds_session(req
->r_session
);
472 req
->r_session
= NULL
;
476 void ceph_mdsc_release_request(struct kref
*kref
)
478 struct ceph_mds_request
*req
= container_of(kref
,
479 struct ceph_mds_request
,
482 ceph_msg_put(req
->r_request
);
484 ceph_msg_put(req
->r_reply
);
485 destroy_reply_info(&req
->r_reply_info
);
488 ceph_put_cap_refs(ceph_inode(req
->r_inode
), CEPH_CAP_PIN
);
491 if (req
->r_locked_dir
)
492 ceph_put_cap_refs(ceph_inode(req
->r_locked_dir
), CEPH_CAP_PIN
);
493 if (req
->r_target_inode
)
494 iput(req
->r_target_inode
);
497 if (req
->r_old_dentry
) {
499 * track (and drop pins for) r_old_dentry_dir
500 * separately, since r_old_dentry's d_parent may have
501 * changed between the dir mutex being dropped and
502 * this request being freed.
504 ceph_put_cap_refs(ceph_inode(req
->r_old_dentry_dir
),
506 dput(req
->r_old_dentry
);
507 iput(req
->r_old_dentry_dir
);
511 put_request_session(req
);
512 ceph_unreserve_caps(req
->r_mdsc
, &req
->r_caps_reservation
);
517 * lookup session, bump ref if found.
519 * called under mdsc->mutex.
521 static struct ceph_mds_request
*__lookup_request(struct ceph_mds_client
*mdsc
,
524 struct ceph_mds_request
*req
;
525 struct rb_node
*n
= mdsc
->request_tree
.rb_node
;
528 req
= rb_entry(n
, struct ceph_mds_request
, r_node
);
529 if (tid
< req
->r_tid
)
531 else if (tid
> req
->r_tid
)
534 ceph_mdsc_get_request(req
);
541 static void __insert_request(struct ceph_mds_client
*mdsc
,
542 struct ceph_mds_request
*new)
544 struct rb_node
**p
= &mdsc
->request_tree
.rb_node
;
545 struct rb_node
*parent
= NULL
;
546 struct ceph_mds_request
*req
= NULL
;
550 req
= rb_entry(parent
, struct ceph_mds_request
, r_node
);
551 if (new->r_tid
< req
->r_tid
)
553 else if (new->r_tid
> req
->r_tid
)
559 rb_link_node(&new->r_node
, parent
, p
);
560 rb_insert_color(&new->r_node
, &mdsc
->request_tree
);
564 * Register an in-flight request, and assign a tid. Link to directory
565 * are modifying (if any).
567 * Called under mdsc->mutex.
569 static void __register_request(struct ceph_mds_client
*mdsc
,
570 struct ceph_mds_request
*req
,
573 req
->r_tid
= ++mdsc
->last_tid
;
575 ceph_reserve_caps(mdsc
, &req
->r_caps_reservation
,
577 dout("__register_request %p tid %lld\n", req
, req
->r_tid
);
578 ceph_mdsc_get_request(req
);
579 __insert_request(mdsc
, req
);
581 req
->r_uid
= current_fsuid();
582 req
->r_gid
= current_fsgid();
585 struct ceph_inode_info
*ci
= ceph_inode(dir
);
588 spin_lock(&ci
->i_unsafe_lock
);
589 req
->r_unsafe_dir
= dir
;
590 list_add_tail(&req
->r_unsafe_dir_item
, &ci
->i_unsafe_dirops
);
591 spin_unlock(&ci
->i_unsafe_lock
);
595 static void __unregister_request(struct ceph_mds_client
*mdsc
,
596 struct ceph_mds_request
*req
)
598 dout("__unregister_request %p tid %lld\n", req
, req
->r_tid
);
599 rb_erase(&req
->r_node
, &mdsc
->request_tree
);
600 RB_CLEAR_NODE(&req
->r_node
);
602 if (req
->r_unsafe_dir
) {
603 struct ceph_inode_info
*ci
= ceph_inode(req
->r_unsafe_dir
);
605 spin_lock(&ci
->i_unsafe_lock
);
606 list_del_init(&req
->r_unsafe_dir_item
);
607 spin_unlock(&ci
->i_unsafe_lock
);
609 iput(req
->r_unsafe_dir
);
610 req
->r_unsafe_dir
= NULL
;
613 ceph_mdsc_put_request(req
);
617 * Choose mds to send request to next. If there is a hint set in the
618 * request (e.g., due to a prior forward hint from the mds), use that.
619 * Otherwise, consult frag tree and/or caps to identify the
620 * appropriate mds. If all else fails, choose randomly.
622 * Called under mdsc->mutex.
624 static struct dentry
*get_nonsnap_parent(struct dentry
*dentry
)
627 * we don't need to worry about protecting the d_parent access
628 * here because we never renaming inside the snapped namespace
629 * except to resplice to another snapdir, and either the old or new
630 * result is a valid result.
632 while (!IS_ROOT(dentry
) && ceph_snap(dentry
->d_inode
) != CEPH_NOSNAP
)
633 dentry
= dentry
->d_parent
;
637 static int __choose_mds(struct ceph_mds_client
*mdsc
,
638 struct ceph_mds_request
*req
)
641 struct ceph_inode_info
*ci
;
642 struct ceph_cap
*cap
;
643 int mode
= req
->r_direct_mode
;
645 u32 hash
= req
->r_direct_hash
;
646 bool is_hash
= req
->r_direct_is_hash
;
649 * is there a specific mds we should try? ignore hint if we have
650 * no session and the mds is not up (active or recovering).
652 if (req
->r_resend_mds
>= 0 &&
653 (__have_session(mdsc
, req
->r_resend_mds
) ||
654 ceph_mdsmap_get_state(mdsc
->mdsmap
, req
->r_resend_mds
) > 0)) {
655 dout("choose_mds using resend_mds mds%d\n",
657 return req
->r_resend_mds
;
660 if (mode
== USE_RANDOM_MDS
)
665 inode
= req
->r_inode
;
666 } else if (req
->r_dentry
) {
667 /* ignore race with rename; old or new d_parent is okay */
668 struct dentry
*parent
= req
->r_dentry
->d_parent
;
669 struct inode
*dir
= parent
->d_inode
;
671 if (dir
->i_sb
!= mdsc
->fsc
->sb
) {
673 inode
= req
->r_dentry
->d_inode
;
674 } else if (ceph_snap(dir
) != CEPH_NOSNAP
) {
675 /* direct snapped/virtual snapdir requests
676 * based on parent dir inode */
677 struct dentry
*dn
= get_nonsnap_parent(parent
);
679 dout("__choose_mds using nonsnap parent %p\n", inode
);
680 } else if (req
->r_dentry
->d_inode
) {
682 inode
= req
->r_dentry
->d_inode
;
686 hash
= ceph_dentry_hash(dir
, req
->r_dentry
);
691 dout("__choose_mds %p is_hash=%d (%d) mode %d\n", inode
, (int)is_hash
,
695 ci
= ceph_inode(inode
);
697 if (is_hash
&& S_ISDIR(inode
->i_mode
)) {
698 struct ceph_inode_frag frag
;
701 ceph_choose_frag(ci
, hash
, &frag
, &found
);
703 if (mode
== USE_ANY_MDS
&& frag
.ndist
> 0) {
706 /* choose a random replica */
707 get_random_bytes(&r
, 1);
710 dout("choose_mds %p %llx.%llx "
711 "frag %u mds%d (%d/%d)\n",
712 inode
, ceph_vinop(inode
),
715 if (ceph_mdsmap_get_state(mdsc
->mdsmap
, mds
) >=
716 CEPH_MDS_STATE_ACTIVE
)
720 /* since this file/dir wasn't known to be
721 * replicated, then we want to look for the
722 * authoritative mds. */
725 /* choose auth mds */
727 dout("choose_mds %p %llx.%llx "
728 "frag %u mds%d (auth)\n",
729 inode
, ceph_vinop(inode
), frag
.frag
, mds
);
730 if (ceph_mdsmap_get_state(mdsc
->mdsmap
, mds
) >=
731 CEPH_MDS_STATE_ACTIVE
)
737 spin_lock(&ci
->i_ceph_lock
);
739 if (mode
== USE_AUTH_MDS
)
740 cap
= ci
->i_auth_cap
;
741 if (!cap
&& !RB_EMPTY_ROOT(&ci
->i_caps
))
742 cap
= rb_entry(rb_first(&ci
->i_caps
), struct ceph_cap
, ci_node
);
744 spin_unlock(&ci
->i_ceph_lock
);
747 mds
= cap
->session
->s_mds
;
748 dout("choose_mds %p %llx.%llx mds%d (%scap %p)\n",
749 inode
, ceph_vinop(inode
), mds
,
750 cap
== ci
->i_auth_cap
? "auth " : "", cap
);
751 spin_unlock(&ci
->i_ceph_lock
);
755 mds
= ceph_mdsmap_get_random_mds(mdsc
->mdsmap
);
756 dout("choose_mds chose random mds%d\n", mds
);
764 static struct ceph_msg
*create_session_msg(u32 op
, u64 seq
)
766 struct ceph_msg
*msg
;
767 struct ceph_mds_session_head
*h
;
769 msg
= ceph_msg_new(CEPH_MSG_CLIENT_SESSION
, sizeof(*h
), GFP_NOFS
,
772 pr_err("create_session_msg ENOMEM creating msg\n");
775 h
= msg
->front
.iov_base
;
776 h
->op
= cpu_to_le32(op
);
777 h
->seq
= cpu_to_le64(seq
);
782 * send session open request.
784 * called under mdsc->mutex
786 static int __open_session(struct ceph_mds_client
*mdsc
,
787 struct ceph_mds_session
*session
)
789 struct ceph_msg
*msg
;
791 int mds
= session
->s_mds
;
793 /* wait for mds to go active? */
794 mstate
= ceph_mdsmap_get_state(mdsc
->mdsmap
, mds
);
795 dout("open_session to mds%d (%s)\n", mds
,
796 ceph_mds_state_name(mstate
));
797 session
->s_state
= CEPH_MDS_SESSION_OPENING
;
798 session
->s_renew_requested
= jiffies
;
800 /* send connect message */
801 msg
= create_session_msg(CEPH_SESSION_REQUEST_OPEN
, session
->s_seq
);
804 ceph_con_send(&session
->s_con
, msg
);
809 * open sessions for any export targets for the given mds
811 * called under mdsc->mutex
813 static void __open_export_target_sessions(struct ceph_mds_client
*mdsc
,
814 struct ceph_mds_session
*session
)
816 struct ceph_mds_info
*mi
;
817 struct ceph_mds_session
*ts
;
818 int i
, mds
= session
->s_mds
;
821 if (mds
>= mdsc
->mdsmap
->m_max_mds
)
823 mi
= &mdsc
->mdsmap
->m_info
[mds
];
824 dout("open_export_target_sessions for mds%d (%d targets)\n",
825 session
->s_mds
, mi
->num_export_targets
);
827 for (i
= 0; i
< mi
->num_export_targets
; i
++) {
828 target
= mi
->export_targets
[i
];
829 ts
= __ceph_lookup_mds_session(mdsc
, target
);
831 ts
= register_session(mdsc
, target
);
835 if (session
->s_state
== CEPH_MDS_SESSION_NEW
||
836 session
->s_state
== CEPH_MDS_SESSION_CLOSING
)
837 __open_session(mdsc
, session
);
839 dout(" mds%d target mds%d %p is %s\n", session
->s_mds
,
840 i
, ts
, session_state_name(ts
->s_state
));
841 ceph_put_mds_session(ts
);
845 void ceph_mdsc_open_export_target_sessions(struct ceph_mds_client
*mdsc
,
846 struct ceph_mds_session
*session
)
848 mutex_lock(&mdsc
->mutex
);
849 __open_export_target_sessions(mdsc
, session
);
850 mutex_unlock(&mdsc
->mutex
);
858 * Free preallocated cap messages assigned to this session
860 static void cleanup_cap_releases(struct ceph_mds_session
*session
)
862 struct ceph_msg
*msg
;
864 spin_lock(&session
->s_cap_lock
);
865 while (!list_empty(&session
->s_cap_releases
)) {
866 msg
= list_first_entry(&session
->s_cap_releases
,
867 struct ceph_msg
, list_head
);
868 list_del_init(&msg
->list_head
);
871 while (!list_empty(&session
->s_cap_releases_done
)) {
872 msg
= list_first_entry(&session
->s_cap_releases_done
,
873 struct ceph_msg
, list_head
);
874 list_del_init(&msg
->list_head
);
877 spin_unlock(&session
->s_cap_lock
);
881 * Helper to safely iterate over all caps associated with a session, with
882 * special care taken to handle a racing __ceph_remove_cap().
884 * Caller must hold session s_mutex.
886 static int iterate_session_caps(struct ceph_mds_session
*session
,
887 int (*cb
)(struct inode
*, struct ceph_cap
*,
891 struct ceph_cap
*cap
;
892 struct inode
*inode
, *last_inode
= NULL
;
893 struct ceph_cap
*old_cap
= NULL
;
896 dout("iterate_session_caps %p mds%d\n", session
, session
->s_mds
);
897 spin_lock(&session
->s_cap_lock
);
898 p
= session
->s_caps
.next
;
899 while (p
!= &session
->s_caps
) {
900 cap
= list_entry(p
, struct ceph_cap
, session_caps
);
901 inode
= igrab(&cap
->ci
->vfs_inode
);
906 session
->s_cap_iterator
= cap
;
907 spin_unlock(&session
->s_cap_lock
);
914 ceph_put_cap(session
->s_mdsc
, old_cap
);
918 ret
= cb(inode
, cap
, arg
);
921 spin_lock(&session
->s_cap_lock
);
923 if (cap
->ci
== NULL
) {
924 dout("iterate_session_caps finishing cap %p removal\n",
926 BUG_ON(cap
->session
!= session
);
927 list_del_init(&cap
->session_caps
);
928 session
->s_nr_caps
--;
930 old_cap
= cap
; /* put_cap it w/o locks held */
937 session
->s_cap_iterator
= NULL
;
938 spin_unlock(&session
->s_cap_lock
);
943 ceph_put_cap(session
->s_mdsc
, old_cap
);
948 static int remove_session_caps_cb(struct inode
*inode
, struct ceph_cap
*cap
,
951 struct ceph_inode_info
*ci
= ceph_inode(inode
);
954 dout("removing cap %p, ci is %p, inode is %p\n",
955 cap
, ci
, &ci
->vfs_inode
);
956 spin_lock(&ci
->i_ceph_lock
);
957 __ceph_remove_cap(cap
);
958 if (!__ceph_is_any_real_caps(ci
)) {
959 struct ceph_mds_client
*mdsc
=
960 ceph_sb_to_client(inode
->i_sb
)->mdsc
;
962 spin_lock(&mdsc
->cap_dirty_lock
);
963 if (!list_empty(&ci
->i_dirty_item
)) {
964 pr_info(" dropping dirty %s state for %p %lld\n",
965 ceph_cap_string(ci
->i_dirty_caps
),
966 inode
, ceph_ino(inode
));
967 ci
->i_dirty_caps
= 0;
968 list_del_init(&ci
->i_dirty_item
);
971 if (!list_empty(&ci
->i_flushing_item
)) {
972 pr_info(" dropping dirty+flushing %s state for %p %lld\n",
973 ceph_cap_string(ci
->i_flushing_caps
),
974 inode
, ceph_ino(inode
));
975 ci
->i_flushing_caps
= 0;
976 list_del_init(&ci
->i_flushing_item
);
977 mdsc
->num_cap_flushing
--;
980 if (drop
&& ci
->i_wrbuffer_ref
) {
981 pr_info(" dropping dirty data for %p %lld\n",
982 inode
, ceph_ino(inode
));
983 ci
->i_wrbuffer_ref
= 0;
984 ci
->i_wrbuffer_ref_head
= 0;
987 spin_unlock(&mdsc
->cap_dirty_lock
);
989 spin_unlock(&ci
->i_ceph_lock
);
996 * caller must hold session s_mutex
998 static void remove_session_caps(struct ceph_mds_session
*session
)
1000 dout("remove_session_caps on %p\n", session
);
1001 iterate_session_caps(session
, remove_session_caps_cb
, NULL
);
1002 BUG_ON(session
->s_nr_caps
> 0);
1003 BUG_ON(!list_empty(&session
->s_cap_flushing
));
1004 cleanup_cap_releases(session
);
1008 * wake up any threads waiting on this session's caps. if the cap is
1009 * old (didn't get renewed on the client reconnect), remove it now.
1011 * caller must hold s_mutex.
1013 static int wake_up_session_cb(struct inode
*inode
, struct ceph_cap
*cap
,
1016 struct ceph_inode_info
*ci
= ceph_inode(inode
);
1018 wake_up_all(&ci
->i_cap_wq
);
1020 spin_lock(&ci
->i_ceph_lock
);
1021 ci
->i_wanted_max_size
= 0;
1022 ci
->i_requested_max_size
= 0;
1023 spin_unlock(&ci
->i_ceph_lock
);
1028 static void wake_up_session_caps(struct ceph_mds_session
*session
,
1031 dout("wake_up_session_caps %p mds%d\n", session
, session
->s_mds
);
1032 iterate_session_caps(session
, wake_up_session_cb
,
1033 (void *)(unsigned long)reconnect
);
1037 * Send periodic message to MDS renewing all currently held caps. The
1038 * ack will reset the expiration for all caps from this session.
1040 * caller holds s_mutex
1042 static int send_renew_caps(struct ceph_mds_client
*mdsc
,
1043 struct ceph_mds_session
*session
)
1045 struct ceph_msg
*msg
;
1048 if (time_after_eq(jiffies
, session
->s_cap_ttl
) &&
1049 time_after_eq(session
->s_cap_ttl
, session
->s_renew_requested
))
1050 pr_info("mds%d caps stale\n", session
->s_mds
);
1051 session
->s_renew_requested
= jiffies
;
1053 /* do not try to renew caps until a recovering mds has reconnected
1054 * with its clients. */
1055 state
= ceph_mdsmap_get_state(mdsc
->mdsmap
, session
->s_mds
);
1056 if (state
< CEPH_MDS_STATE_RECONNECT
) {
1057 dout("send_renew_caps ignoring mds%d (%s)\n",
1058 session
->s_mds
, ceph_mds_state_name(state
));
1062 dout("send_renew_caps to mds%d (%s)\n", session
->s_mds
,
1063 ceph_mds_state_name(state
));
1064 msg
= create_session_msg(CEPH_SESSION_REQUEST_RENEWCAPS
,
1065 ++session
->s_renew_seq
);
1068 ceph_con_send(&session
->s_con
, msg
);
1073 * Note new cap ttl, and any transition from stale -> not stale (fresh?).
1075 * Called under session->s_mutex
1077 static void renewed_caps(struct ceph_mds_client
*mdsc
,
1078 struct ceph_mds_session
*session
, int is_renew
)
1083 spin_lock(&session
->s_cap_lock
);
1084 was_stale
= is_renew
&& time_after_eq(jiffies
, session
->s_cap_ttl
);
1086 session
->s_cap_ttl
= session
->s_renew_requested
+
1087 mdsc
->mdsmap
->m_session_timeout
*HZ
;
1090 if (time_before(jiffies
, session
->s_cap_ttl
)) {
1091 pr_info("mds%d caps renewed\n", session
->s_mds
);
1094 pr_info("mds%d caps still stale\n", session
->s_mds
);
1097 dout("renewed_caps mds%d ttl now %lu, was %s, now %s\n",
1098 session
->s_mds
, session
->s_cap_ttl
, was_stale
? "stale" : "fresh",
1099 time_before(jiffies
, session
->s_cap_ttl
) ? "stale" : "fresh");
1100 spin_unlock(&session
->s_cap_lock
);
1103 wake_up_session_caps(session
, 0);
1107 * send a session close request
1109 static int request_close_session(struct ceph_mds_client
*mdsc
,
1110 struct ceph_mds_session
*session
)
1112 struct ceph_msg
*msg
;
1114 dout("request_close_session mds%d state %s seq %lld\n",
1115 session
->s_mds
, session_state_name(session
->s_state
),
1117 msg
= create_session_msg(CEPH_SESSION_REQUEST_CLOSE
, session
->s_seq
);
1120 ceph_con_send(&session
->s_con
, msg
);
1125 * Called with s_mutex held.
1127 static int __close_session(struct ceph_mds_client
*mdsc
,
1128 struct ceph_mds_session
*session
)
1130 if (session
->s_state
>= CEPH_MDS_SESSION_CLOSING
)
1132 session
->s_state
= CEPH_MDS_SESSION_CLOSING
;
1133 return request_close_session(mdsc
, session
);
1137 * Trim old(er) caps.
1139 * Because we can't cache an inode without one or more caps, we do
1140 * this indirectly: if a cap is unused, we prune its aliases, at which
1141 * point the inode will hopefully get dropped to.
1143 * Yes, this is a bit sloppy. Our only real goal here is to respond to
1144 * memory pressure from the MDS, though, so it needn't be perfect.
1146 static int trim_caps_cb(struct inode
*inode
, struct ceph_cap
*cap
, void *arg
)
1148 struct ceph_mds_session
*session
= arg
;
1149 struct ceph_inode_info
*ci
= ceph_inode(inode
);
1150 int used
, oissued
, mine
;
1152 if (session
->s_trim_caps
<= 0)
1155 spin_lock(&ci
->i_ceph_lock
);
1156 mine
= cap
->issued
| cap
->implemented
;
1157 used
= __ceph_caps_used(ci
);
1158 oissued
= __ceph_caps_issued_other(ci
, cap
);
1160 dout("trim_caps_cb %p cap %p mine %s oissued %s used %s\n",
1161 inode
, cap
, ceph_cap_string(mine
), ceph_cap_string(oissued
),
1162 ceph_cap_string(used
));
1163 if (ci
->i_dirty_caps
)
1164 goto out
; /* dirty caps */
1165 if ((used
& ~oissued
) & mine
)
1166 goto out
; /* we need these caps */
1168 session
->s_trim_caps
--;
1170 /* we aren't the only cap.. just remove us */
1171 __ceph_remove_cap(cap
);
1173 /* try to drop referring dentries */
1174 spin_unlock(&ci
->i_ceph_lock
);
1175 d_prune_aliases(inode
);
1176 dout("trim_caps_cb %p cap %p pruned, count now %d\n",
1177 inode
, cap
, atomic_read(&inode
->i_count
));
1182 spin_unlock(&ci
->i_ceph_lock
);
1187 * Trim session cap count down to some max number.
1189 static int trim_caps(struct ceph_mds_client
*mdsc
,
1190 struct ceph_mds_session
*session
,
1193 int trim_caps
= session
->s_nr_caps
- max_caps
;
1195 dout("trim_caps mds%d start: %d / %d, trim %d\n",
1196 session
->s_mds
, session
->s_nr_caps
, max_caps
, trim_caps
);
1197 if (trim_caps
> 0) {
1198 session
->s_trim_caps
= trim_caps
;
1199 iterate_session_caps(session
, trim_caps_cb
, session
);
1200 dout("trim_caps mds%d done: %d / %d, trimmed %d\n",
1201 session
->s_mds
, session
->s_nr_caps
, max_caps
,
1202 trim_caps
- session
->s_trim_caps
);
1203 session
->s_trim_caps
= 0;
1209 * Allocate cap_release messages. If there is a partially full message
1210 * in the queue, try to allocate enough to cover it's remainder, so that
1211 * we can send it immediately.
1213 * Called under s_mutex.
1215 int ceph_add_cap_releases(struct ceph_mds_client
*mdsc
,
1216 struct ceph_mds_session
*session
)
1218 struct ceph_msg
*msg
, *partial
= NULL
;
1219 struct ceph_mds_cap_release
*head
;
1221 int extra
= mdsc
->fsc
->mount_options
->cap_release_safety
;
1224 dout("add_cap_releases %p mds%d extra %d\n", session
, session
->s_mds
,
1227 spin_lock(&session
->s_cap_lock
);
1229 if (!list_empty(&session
->s_cap_releases
)) {
1230 msg
= list_first_entry(&session
->s_cap_releases
,
1233 head
= msg
->front
.iov_base
;
1234 num
= le32_to_cpu(head
->num
);
1236 dout(" partial %p with (%d/%d)\n", msg
, num
,
1237 (int)CEPH_CAPS_PER_RELEASE
);
1238 extra
+= CEPH_CAPS_PER_RELEASE
- num
;
1242 while (session
->s_num_cap_releases
< session
->s_nr_caps
+ extra
) {
1243 spin_unlock(&session
->s_cap_lock
);
1244 msg
= ceph_msg_new(CEPH_MSG_CLIENT_CAPRELEASE
, PAGE_CACHE_SIZE
,
1248 dout("add_cap_releases %p msg %p now %d\n", session
, msg
,
1249 (int)msg
->front
.iov_len
);
1250 head
= msg
->front
.iov_base
;
1251 head
->num
= cpu_to_le32(0);
1252 msg
->front
.iov_len
= sizeof(*head
);
1253 spin_lock(&session
->s_cap_lock
);
1254 list_add(&msg
->list_head
, &session
->s_cap_releases
);
1255 session
->s_num_cap_releases
+= CEPH_CAPS_PER_RELEASE
;
1259 head
= partial
->front
.iov_base
;
1260 num
= le32_to_cpu(head
->num
);
1261 dout(" queueing partial %p with %d/%d\n", partial
, num
,
1262 (int)CEPH_CAPS_PER_RELEASE
);
1263 list_move_tail(&partial
->list_head
,
1264 &session
->s_cap_releases_done
);
1265 session
->s_num_cap_releases
-= CEPH_CAPS_PER_RELEASE
- num
;
1268 spin_unlock(&session
->s_cap_lock
);
1274 * flush all dirty inode data to disk.
1276 * returns true if we've flushed through want_flush_seq
1278 static int check_cap_flush(struct ceph_mds_client
*mdsc
, u64 want_flush_seq
)
1282 dout("check_cap_flush want %lld\n", want_flush_seq
);
1283 mutex_lock(&mdsc
->mutex
);
1284 for (mds
= 0; ret
&& mds
< mdsc
->max_sessions
; mds
++) {
1285 struct ceph_mds_session
*session
= mdsc
->sessions
[mds
];
1289 get_session(session
);
1290 mutex_unlock(&mdsc
->mutex
);
1292 mutex_lock(&session
->s_mutex
);
1293 if (!list_empty(&session
->s_cap_flushing
)) {
1294 struct ceph_inode_info
*ci
=
1295 list_entry(session
->s_cap_flushing
.next
,
1296 struct ceph_inode_info
,
1298 struct inode
*inode
= &ci
->vfs_inode
;
1300 spin_lock(&ci
->i_ceph_lock
);
1301 if (ci
->i_cap_flush_seq
<= want_flush_seq
) {
1302 dout("check_cap_flush still flushing %p "
1303 "seq %lld <= %lld to mds%d\n", inode
,
1304 ci
->i_cap_flush_seq
, want_flush_seq
,
1308 spin_unlock(&ci
->i_ceph_lock
);
1310 mutex_unlock(&session
->s_mutex
);
1311 ceph_put_mds_session(session
);
1315 mutex_lock(&mdsc
->mutex
);
1318 mutex_unlock(&mdsc
->mutex
);
1319 dout("check_cap_flush ok, flushed thru %lld\n", want_flush_seq
);
1324 * called under s_mutex
1326 void ceph_send_cap_releases(struct ceph_mds_client
*mdsc
,
1327 struct ceph_mds_session
*session
)
1329 struct ceph_msg
*msg
;
1331 dout("send_cap_releases mds%d\n", session
->s_mds
);
1332 spin_lock(&session
->s_cap_lock
);
1333 while (!list_empty(&session
->s_cap_releases_done
)) {
1334 msg
= list_first_entry(&session
->s_cap_releases_done
,
1335 struct ceph_msg
, list_head
);
1336 list_del_init(&msg
->list_head
);
1337 spin_unlock(&session
->s_cap_lock
);
1338 msg
->hdr
.front_len
= cpu_to_le32(msg
->front
.iov_len
);
1339 dout("send_cap_releases mds%d %p\n", session
->s_mds
, msg
);
1340 ceph_con_send(&session
->s_con
, msg
);
1341 spin_lock(&session
->s_cap_lock
);
1343 spin_unlock(&session
->s_cap_lock
);
1346 static void discard_cap_releases(struct ceph_mds_client
*mdsc
,
1347 struct ceph_mds_session
*session
)
1349 struct ceph_msg
*msg
;
1350 struct ceph_mds_cap_release
*head
;
1353 dout("discard_cap_releases mds%d\n", session
->s_mds
);
1354 spin_lock(&session
->s_cap_lock
);
1356 /* zero out the in-progress message */
1357 msg
= list_first_entry(&session
->s_cap_releases
,
1358 struct ceph_msg
, list_head
);
1359 head
= msg
->front
.iov_base
;
1360 num
= le32_to_cpu(head
->num
);
1361 dout("discard_cap_releases mds%d %p %u\n", session
->s_mds
, msg
, num
);
1362 head
->num
= cpu_to_le32(0);
1363 session
->s_num_cap_releases
+= num
;
1365 /* requeue completed messages */
1366 while (!list_empty(&session
->s_cap_releases_done
)) {
1367 msg
= list_first_entry(&session
->s_cap_releases_done
,
1368 struct ceph_msg
, list_head
);
1369 list_del_init(&msg
->list_head
);
1371 head
= msg
->front
.iov_base
;
1372 num
= le32_to_cpu(head
->num
);
1373 dout("discard_cap_releases mds%d %p %u\n", session
->s_mds
, msg
,
1375 session
->s_num_cap_releases
+= num
;
1376 head
->num
= cpu_to_le32(0);
1377 msg
->front
.iov_len
= sizeof(*head
);
1378 list_add(&msg
->list_head
, &session
->s_cap_releases
);
1381 spin_unlock(&session
->s_cap_lock
);
1389 * Create an mds request.
1391 struct ceph_mds_request
*
1392 ceph_mdsc_create_request(struct ceph_mds_client
*mdsc
, int op
, int mode
)
1394 struct ceph_mds_request
*req
= kzalloc(sizeof(*req
), GFP_NOFS
);
1397 return ERR_PTR(-ENOMEM
);
1399 mutex_init(&req
->r_fill_mutex
);
1401 req
->r_started
= jiffies
;
1402 req
->r_resend_mds
= -1;
1403 INIT_LIST_HEAD(&req
->r_unsafe_dir_item
);
1405 kref_init(&req
->r_kref
);
1406 INIT_LIST_HEAD(&req
->r_wait
);
1407 init_completion(&req
->r_completion
);
1408 init_completion(&req
->r_safe_completion
);
1409 INIT_LIST_HEAD(&req
->r_unsafe_item
);
1412 req
->r_direct_mode
= mode
;
1417 * return oldest (lowest) request, tid in request tree, 0 if none.
1419 * called under mdsc->mutex.
1421 static struct ceph_mds_request
*__get_oldest_req(struct ceph_mds_client
*mdsc
)
1423 if (RB_EMPTY_ROOT(&mdsc
->request_tree
))
1425 return rb_entry(rb_first(&mdsc
->request_tree
),
1426 struct ceph_mds_request
, r_node
);
1429 static u64
__get_oldest_tid(struct ceph_mds_client
*mdsc
)
1431 struct ceph_mds_request
*req
= __get_oldest_req(mdsc
);
1439 * Build a dentry's path. Allocate on heap; caller must kfree. Based
1440 * on build_path_from_dentry in fs/cifs/dir.c.
1442 * If @stop_on_nosnap, generate path relative to the first non-snapped
1445 * Encode hidden .snap dirs as a double /, i.e.
1446 * foo/.snap/bar -> foo//bar
1448 char *ceph_mdsc_build_path(struct dentry
*dentry
, int *plen
, u64
*base
,
1451 struct dentry
*temp
;
1457 return ERR_PTR(-EINVAL
);
1461 seq
= read_seqbegin(&rename_lock
);
1463 for (temp
= dentry
; !IS_ROOT(temp
);) {
1464 struct inode
*inode
= temp
->d_inode
;
1465 if (inode
&& ceph_snap(inode
) == CEPH_SNAPDIR
)
1466 len
++; /* slash only */
1467 else if (stop_on_nosnap
&& inode
&&
1468 ceph_snap(inode
) == CEPH_NOSNAP
)
1471 len
+= 1 + temp
->d_name
.len
;
1472 temp
= temp
->d_parent
;
1476 len
--; /* no leading '/' */
1478 path
= kmalloc(len
+1, GFP_NOFS
);
1480 return ERR_PTR(-ENOMEM
);
1482 path
[pos
] = 0; /* trailing null */
1484 for (temp
= dentry
; !IS_ROOT(temp
) && pos
!= 0; ) {
1485 struct inode
*inode
;
1487 spin_lock(&temp
->d_lock
);
1488 inode
= temp
->d_inode
;
1489 if (inode
&& ceph_snap(inode
) == CEPH_SNAPDIR
) {
1490 dout("build_path path+%d: %p SNAPDIR\n",
1492 } else if (stop_on_nosnap
&& inode
&&
1493 ceph_snap(inode
) == CEPH_NOSNAP
) {
1494 spin_unlock(&temp
->d_lock
);
1497 pos
-= temp
->d_name
.len
;
1499 spin_unlock(&temp
->d_lock
);
1502 strncpy(path
+ pos
, temp
->d_name
.name
,
1505 spin_unlock(&temp
->d_lock
);
1508 temp
= temp
->d_parent
;
1511 if (pos
!= 0 || read_seqretry(&rename_lock
, seq
)) {
1512 pr_err("build_path did not end path lookup where "
1513 "expected, namelen is %d, pos is %d\n", len
, pos
);
1514 /* presumably this is only possible if racing with a
1515 rename of one of the parent directories (we can not
1516 lock the dentries above us to prevent this, but
1517 retrying should be harmless) */
1522 *base
= ceph_ino(temp
->d_inode
);
1524 dout("build_path on %p %d built %llx '%.*s'\n",
1525 dentry
, dentry
->d_count
, *base
, len
, path
);
1529 static int build_dentry_path(struct dentry
*dentry
,
1530 const char **ppath
, int *ppathlen
, u64
*pino
,
1535 if (ceph_snap(dentry
->d_parent
->d_inode
) == CEPH_NOSNAP
) {
1536 *pino
= ceph_ino(dentry
->d_parent
->d_inode
);
1537 *ppath
= dentry
->d_name
.name
;
1538 *ppathlen
= dentry
->d_name
.len
;
1541 path
= ceph_mdsc_build_path(dentry
, ppathlen
, pino
, 1);
1543 return PTR_ERR(path
);
1549 static int build_inode_path(struct inode
*inode
,
1550 const char **ppath
, int *ppathlen
, u64
*pino
,
1553 struct dentry
*dentry
;
1556 if (ceph_snap(inode
) == CEPH_NOSNAP
) {
1557 *pino
= ceph_ino(inode
);
1561 dentry
= d_find_alias(inode
);
1562 path
= ceph_mdsc_build_path(dentry
, ppathlen
, pino
, 1);
1565 return PTR_ERR(path
);
1572 * request arguments may be specified via an inode *, a dentry *, or
1573 * an explicit ino+path.
1575 static int set_request_path_attr(struct inode
*rinode
, struct dentry
*rdentry
,
1576 const char *rpath
, u64 rino
,
1577 const char **ppath
, int *pathlen
,
1578 u64
*ino
, int *freepath
)
1583 r
= build_inode_path(rinode
, ppath
, pathlen
, ino
, freepath
);
1584 dout(" inode %p %llx.%llx\n", rinode
, ceph_ino(rinode
),
1586 } else if (rdentry
) {
1587 r
= build_dentry_path(rdentry
, ppath
, pathlen
, ino
, freepath
);
1588 dout(" dentry %p %llx/%.*s\n", rdentry
, *ino
, *pathlen
,
1590 } else if (rpath
|| rino
) {
1593 *pathlen
= strlen(rpath
);
1594 dout(" path %.*s\n", *pathlen
, rpath
);
1601 * called under mdsc->mutex
1603 static struct ceph_msg
*create_request_message(struct ceph_mds_client
*mdsc
,
1604 struct ceph_mds_request
*req
,
1607 struct ceph_msg
*msg
;
1608 struct ceph_mds_request_head
*head
;
1609 const char *path1
= NULL
;
1610 const char *path2
= NULL
;
1611 u64 ino1
= 0, ino2
= 0;
1612 int pathlen1
= 0, pathlen2
= 0;
1613 int freepath1
= 0, freepath2
= 0;
1619 ret
= set_request_path_attr(req
->r_inode
, req
->r_dentry
,
1620 req
->r_path1
, req
->r_ino1
.ino
,
1621 &path1
, &pathlen1
, &ino1
, &freepath1
);
1627 ret
= set_request_path_attr(NULL
, req
->r_old_dentry
,
1628 req
->r_path2
, req
->r_ino2
.ino
,
1629 &path2
, &pathlen2
, &ino2
, &freepath2
);
1635 len
= sizeof(*head
) +
1636 pathlen1
+ pathlen2
+ 2*(1 + sizeof(u32
) + sizeof(u64
));
1638 /* calculate (max) length for cap releases */
1639 len
+= sizeof(struct ceph_mds_request_release
) *
1640 (!!req
->r_inode_drop
+ !!req
->r_dentry_drop
+
1641 !!req
->r_old_inode_drop
+ !!req
->r_old_dentry_drop
);
1642 if (req
->r_dentry_drop
)
1643 len
+= req
->r_dentry
->d_name
.len
;
1644 if (req
->r_old_dentry_drop
)
1645 len
+= req
->r_old_dentry
->d_name
.len
;
1647 msg
= ceph_msg_new(CEPH_MSG_CLIENT_REQUEST
, len
, GFP_NOFS
, false);
1649 msg
= ERR_PTR(-ENOMEM
);
1653 msg
->hdr
.tid
= cpu_to_le64(req
->r_tid
);
1655 head
= msg
->front
.iov_base
;
1656 p
= msg
->front
.iov_base
+ sizeof(*head
);
1657 end
= msg
->front
.iov_base
+ msg
->front
.iov_len
;
1659 head
->mdsmap_epoch
= cpu_to_le32(mdsc
->mdsmap
->m_epoch
);
1660 head
->op
= cpu_to_le32(req
->r_op
);
1661 head
->caller_uid
= cpu_to_le32(req
->r_uid
);
1662 head
->caller_gid
= cpu_to_le32(req
->r_gid
);
1663 head
->args
= req
->r_args
;
1665 ceph_encode_filepath(&p
, end
, ino1
, path1
);
1666 ceph_encode_filepath(&p
, end
, ino2
, path2
);
1668 /* make note of release offset, in case we need to replay */
1669 req
->r_request_release_offset
= p
- msg
->front
.iov_base
;
1673 if (req
->r_inode_drop
)
1674 releases
+= ceph_encode_inode_release(&p
,
1675 req
->r_inode
? req
->r_inode
: req
->r_dentry
->d_inode
,
1676 mds
, req
->r_inode_drop
, req
->r_inode_unless
, 0);
1677 if (req
->r_dentry_drop
)
1678 releases
+= ceph_encode_dentry_release(&p
, req
->r_dentry
,
1679 mds
, req
->r_dentry_drop
, req
->r_dentry_unless
);
1680 if (req
->r_old_dentry_drop
)
1681 releases
+= ceph_encode_dentry_release(&p
, req
->r_old_dentry
,
1682 mds
, req
->r_old_dentry_drop
, req
->r_old_dentry_unless
);
1683 if (req
->r_old_inode_drop
)
1684 releases
+= ceph_encode_inode_release(&p
,
1685 req
->r_old_dentry
->d_inode
,
1686 mds
, req
->r_old_inode_drop
, req
->r_old_inode_unless
, 0);
1687 head
->num_releases
= cpu_to_le16(releases
);
1690 msg
->front
.iov_len
= p
- msg
->front
.iov_base
;
1691 msg
->hdr
.front_len
= cpu_to_le32(msg
->front
.iov_len
);
1693 msg
->pages
= req
->r_pages
;
1694 msg
->nr_pages
= req
->r_num_pages
;
1695 msg
->hdr
.data_len
= cpu_to_le32(req
->r_data_len
);
1696 msg
->hdr
.data_off
= cpu_to_le16(0);
1700 kfree((char *)path2
);
1703 kfree((char *)path1
);
1709 * called under mdsc->mutex if error, under no mutex if
1712 static void complete_request(struct ceph_mds_client
*mdsc
,
1713 struct ceph_mds_request
*req
)
1715 if (req
->r_callback
)
1716 req
->r_callback(mdsc
, req
);
1718 complete_all(&req
->r_completion
);
1722 * called under mdsc->mutex
1724 static int __prepare_send_request(struct ceph_mds_client
*mdsc
,
1725 struct ceph_mds_request
*req
,
1728 struct ceph_mds_request_head
*rhead
;
1729 struct ceph_msg
*msg
;
1734 struct ceph_cap
*cap
=
1735 ceph_get_cap_for_mds(ceph_inode(req
->r_inode
), mds
);
1738 req
->r_sent_on_mseq
= cap
->mseq
;
1740 req
->r_sent_on_mseq
= -1;
1742 dout("prepare_send_request %p tid %lld %s (attempt %d)\n", req
,
1743 req
->r_tid
, ceph_mds_op_name(req
->r_op
), req
->r_attempts
);
1745 if (req
->r_got_unsafe
) {
1747 * Replay. Do not regenerate message (and rebuild
1748 * paths, etc.); just use the original message.
1749 * Rebuilding paths will break for renames because
1750 * d_move mangles the src name.
1752 msg
= req
->r_request
;
1753 rhead
= msg
->front
.iov_base
;
1755 flags
= le32_to_cpu(rhead
->flags
);
1756 flags
|= CEPH_MDS_FLAG_REPLAY
;
1757 rhead
->flags
= cpu_to_le32(flags
);
1759 if (req
->r_target_inode
)
1760 rhead
->ino
= cpu_to_le64(ceph_ino(req
->r_target_inode
));
1762 rhead
->num_retry
= req
->r_attempts
- 1;
1764 /* remove cap/dentry releases from message */
1765 rhead
->num_releases
= 0;
1766 msg
->hdr
.front_len
= cpu_to_le32(req
->r_request_release_offset
);
1767 msg
->front
.iov_len
= req
->r_request_release_offset
;
1771 if (req
->r_request
) {
1772 ceph_msg_put(req
->r_request
);
1773 req
->r_request
= NULL
;
1775 msg
= create_request_message(mdsc
, req
, mds
);
1777 req
->r_err
= PTR_ERR(msg
);
1778 complete_request(mdsc
, req
);
1779 return PTR_ERR(msg
);
1781 req
->r_request
= msg
;
1783 rhead
= msg
->front
.iov_base
;
1784 rhead
->oldest_client_tid
= cpu_to_le64(__get_oldest_tid(mdsc
));
1785 if (req
->r_got_unsafe
)
1786 flags
|= CEPH_MDS_FLAG_REPLAY
;
1787 if (req
->r_locked_dir
)
1788 flags
|= CEPH_MDS_FLAG_WANT_DENTRY
;
1789 rhead
->flags
= cpu_to_le32(flags
);
1790 rhead
->num_fwd
= req
->r_num_fwd
;
1791 rhead
->num_retry
= req
->r_attempts
- 1;
1794 dout(" r_locked_dir = %p\n", req
->r_locked_dir
);
1799 * send request, or put it on the appropriate wait list.
1801 static int __do_request(struct ceph_mds_client
*mdsc
,
1802 struct ceph_mds_request
*req
)
1804 struct ceph_mds_session
*session
= NULL
;
1808 if (req
->r_err
|| req
->r_got_result
)
1811 if (req
->r_timeout
&&
1812 time_after_eq(jiffies
, req
->r_started
+ req
->r_timeout
)) {
1813 dout("do_request timed out\n");
1818 put_request_session(req
);
1820 mds
= __choose_mds(mdsc
, req
);
1822 ceph_mdsmap_get_state(mdsc
->mdsmap
, mds
) < CEPH_MDS_STATE_ACTIVE
) {
1823 dout("do_request no mds or not active, waiting for map\n");
1824 list_add(&req
->r_wait
, &mdsc
->waiting_for_map
);
1828 /* get, open session */
1829 session
= __ceph_lookup_mds_session(mdsc
, mds
);
1831 session
= register_session(mdsc
, mds
);
1832 if (IS_ERR(session
)) {
1833 err
= PTR_ERR(session
);
1837 req
->r_session
= get_session(session
);
1839 dout("do_request mds%d session %p state %s\n", mds
, session
,
1840 session_state_name(session
->s_state
));
1841 if (session
->s_state
!= CEPH_MDS_SESSION_OPEN
&&
1842 session
->s_state
!= CEPH_MDS_SESSION_HUNG
) {
1843 if (session
->s_state
== CEPH_MDS_SESSION_NEW
||
1844 session
->s_state
== CEPH_MDS_SESSION_CLOSING
)
1845 __open_session(mdsc
, session
);
1846 list_add(&req
->r_wait
, &session
->s_waiting
);
1851 req
->r_resend_mds
= -1; /* forget any previous mds hint */
1853 if (req
->r_request_started
== 0) /* note request start time */
1854 req
->r_request_started
= jiffies
;
1856 err
= __prepare_send_request(mdsc
, req
, mds
);
1858 ceph_msg_get(req
->r_request
);
1859 ceph_con_send(&session
->s_con
, req
->r_request
);
1863 ceph_put_mds_session(session
);
1869 complete_request(mdsc
, req
);
1874 * called under mdsc->mutex
1876 static void __wake_requests(struct ceph_mds_client
*mdsc
,
1877 struct list_head
*head
)
1879 struct ceph_mds_request
*req
, *nreq
;
1881 list_for_each_entry_safe(req
, nreq
, head
, r_wait
) {
1882 list_del_init(&req
->r_wait
);
1883 __do_request(mdsc
, req
);
1888 * Wake up threads with requests pending for @mds, so that they can
1889 * resubmit their requests to a possibly different mds.
1891 static void kick_requests(struct ceph_mds_client
*mdsc
, int mds
)
1893 struct ceph_mds_request
*req
;
1896 dout("kick_requests mds%d\n", mds
);
1897 for (p
= rb_first(&mdsc
->request_tree
); p
; p
= rb_next(p
)) {
1898 req
= rb_entry(p
, struct ceph_mds_request
, r_node
);
1899 if (req
->r_got_unsafe
)
1901 if (req
->r_session
&&
1902 req
->r_session
->s_mds
== mds
) {
1903 dout(" kicking tid %llu\n", req
->r_tid
);
1904 __do_request(mdsc
, req
);
1909 void ceph_mdsc_submit_request(struct ceph_mds_client
*mdsc
,
1910 struct ceph_mds_request
*req
)
1912 dout("submit_request on %p\n", req
);
1913 mutex_lock(&mdsc
->mutex
);
1914 __register_request(mdsc
, req
, NULL
);
1915 __do_request(mdsc
, req
);
1916 mutex_unlock(&mdsc
->mutex
);
1920 * Synchrously perform an mds request. Take care of all of the
1921 * session setup, forwarding, retry details.
1923 int ceph_mdsc_do_request(struct ceph_mds_client
*mdsc
,
1925 struct ceph_mds_request
*req
)
1929 dout("do_request on %p\n", req
);
1931 /* take CAP_PIN refs for r_inode, r_locked_dir, r_old_dentry */
1933 ceph_get_cap_refs(ceph_inode(req
->r_inode
), CEPH_CAP_PIN
);
1934 if (req
->r_locked_dir
)
1935 ceph_get_cap_refs(ceph_inode(req
->r_locked_dir
), CEPH_CAP_PIN
);
1936 if (req
->r_old_dentry
)
1937 ceph_get_cap_refs(ceph_inode(req
->r_old_dentry_dir
),
1941 mutex_lock(&mdsc
->mutex
);
1942 __register_request(mdsc
, req
, dir
);
1943 __do_request(mdsc
, req
);
1947 __unregister_request(mdsc
, req
);
1948 dout("do_request early error %d\n", err
);
1953 mutex_unlock(&mdsc
->mutex
);
1954 dout("do_request waiting\n");
1955 if (req
->r_timeout
) {
1956 err
= (long)wait_for_completion_killable_timeout(
1957 &req
->r_completion
, req
->r_timeout
);
1961 err
= wait_for_completion_killable(&req
->r_completion
);
1963 dout("do_request waited, got %d\n", err
);
1964 mutex_lock(&mdsc
->mutex
);
1966 /* only abort if we didn't race with a real reply */
1967 if (req
->r_got_result
) {
1968 err
= le32_to_cpu(req
->r_reply_info
.head
->result
);
1969 } else if (err
< 0) {
1970 dout("aborted request %lld with %d\n", req
->r_tid
, err
);
1973 * ensure we aren't running concurrently with
1974 * ceph_fill_trace or ceph_readdir_prepopulate, which
1975 * rely on locks (dir mutex) held by our caller.
1977 mutex_lock(&req
->r_fill_mutex
);
1979 req
->r_aborted
= true;
1980 mutex_unlock(&req
->r_fill_mutex
);
1982 if (req
->r_locked_dir
&&
1983 (req
->r_op
& CEPH_MDS_OP_WRITE
))
1984 ceph_invalidate_dir_request(req
);
1990 mutex_unlock(&mdsc
->mutex
);
1991 dout("do_request %p done, result %d\n", req
, err
);
1996 * Invalidate dir D_COMPLETE, dentry lease state on an aborted MDS
1997 * namespace request.
1999 void ceph_invalidate_dir_request(struct ceph_mds_request
*req
)
2001 struct inode
*inode
= req
->r_locked_dir
;
2002 struct ceph_inode_info
*ci
= ceph_inode(inode
);
2004 dout("invalidate_dir_request %p (D_COMPLETE, lease(s))\n", inode
);
2005 spin_lock(&ci
->i_ceph_lock
);
2006 ceph_dir_clear_complete(inode
);
2007 ci
->i_release_count
++;
2008 spin_unlock(&ci
->i_ceph_lock
);
2011 ceph_invalidate_dentry_lease(req
->r_dentry
);
2012 if (req
->r_old_dentry
)
2013 ceph_invalidate_dentry_lease(req
->r_old_dentry
);
2019 * We take the session mutex and parse and process the reply immediately.
2020 * This preserves the logical ordering of replies, capabilities, etc., sent
2021 * by the MDS as they are applied to our local cache.
2023 static void handle_reply(struct ceph_mds_session
*session
, struct ceph_msg
*msg
)
2025 struct ceph_mds_client
*mdsc
= session
->s_mdsc
;
2026 struct ceph_mds_request
*req
;
2027 struct ceph_mds_reply_head
*head
= msg
->front
.iov_base
;
2028 struct ceph_mds_reply_info_parsed
*rinfo
; /* parsed reply info */
2031 int mds
= session
->s_mds
;
2033 if (msg
->front
.iov_len
< sizeof(*head
)) {
2034 pr_err("mdsc_handle_reply got corrupt (short) reply\n");
2039 /* get request, session */
2040 tid
= le64_to_cpu(msg
->hdr
.tid
);
2041 mutex_lock(&mdsc
->mutex
);
2042 req
= __lookup_request(mdsc
, tid
);
2044 dout("handle_reply on unknown tid %llu\n", tid
);
2045 mutex_unlock(&mdsc
->mutex
);
2048 dout("handle_reply %p\n", req
);
2050 /* correct session? */
2051 if (req
->r_session
!= session
) {
2052 pr_err("mdsc_handle_reply got %llu on session mds%d"
2053 " not mds%d\n", tid
, session
->s_mds
,
2054 req
->r_session
? req
->r_session
->s_mds
: -1);
2055 mutex_unlock(&mdsc
->mutex
);
2060 if ((req
->r_got_unsafe
&& !head
->safe
) ||
2061 (req
->r_got_safe
&& head
->safe
)) {
2062 pr_warning("got a dup %s reply on %llu from mds%d\n",
2063 head
->safe
? "safe" : "unsafe", tid
, mds
);
2064 mutex_unlock(&mdsc
->mutex
);
2067 if (req
->r_got_safe
&& !head
->safe
) {
2068 pr_warning("got unsafe after safe on %llu from mds%d\n",
2070 mutex_unlock(&mdsc
->mutex
);
2074 result
= le32_to_cpu(head
->result
);
2078 * if we're not talking to the authority, send to them
2079 * if the authority has changed while we weren't looking,
2080 * send to new authority
2081 * Otherwise we just have to return an ESTALE
2083 if (result
== -ESTALE
) {
2084 dout("got ESTALE on request %llu", req
->r_tid
);
2085 if (!req
->r_inode
) {
2086 /* do nothing; not an authority problem */
2087 } else if (req
->r_direct_mode
!= USE_AUTH_MDS
) {
2088 dout("not using auth, setting for that now");
2089 req
->r_direct_mode
= USE_AUTH_MDS
;
2090 __do_request(mdsc
, req
);
2091 mutex_unlock(&mdsc
->mutex
);
2094 struct ceph_inode_info
*ci
= ceph_inode(req
->r_inode
);
2095 struct ceph_cap
*cap
= NULL
;
2098 cap
= ceph_get_cap_for_mds(ci
,
2099 req
->r_session
->s_mds
);
2101 dout("already using auth");
2102 if ((!cap
|| cap
!= ci
->i_auth_cap
) ||
2103 (cap
->mseq
!= req
->r_sent_on_mseq
)) {
2104 dout("but cap changed, so resending");
2105 __do_request(mdsc
, req
);
2106 mutex_unlock(&mdsc
->mutex
);
2110 dout("have to return ESTALE on request %llu", req
->r_tid
);
2115 req
->r_got_safe
= true;
2116 __unregister_request(mdsc
, req
);
2117 complete_all(&req
->r_safe_completion
);
2119 if (req
->r_got_unsafe
) {
2121 * We already handled the unsafe response, now do the
2122 * cleanup. No need to examine the response; the MDS
2123 * doesn't include any result info in the safe
2124 * response. And even if it did, there is nothing
2125 * useful we could do with a revised return value.
2127 dout("got safe reply %llu, mds%d\n", tid
, mds
);
2128 list_del_init(&req
->r_unsafe_item
);
2130 /* last unsafe request during umount? */
2131 if (mdsc
->stopping
&& !__get_oldest_req(mdsc
))
2132 complete_all(&mdsc
->safe_umount_waiters
);
2133 mutex_unlock(&mdsc
->mutex
);
2137 req
->r_got_unsafe
= true;
2138 list_add_tail(&req
->r_unsafe_item
, &req
->r_session
->s_unsafe
);
2141 dout("handle_reply tid %lld result %d\n", tid
, result
);
2142 rinfo
= &req
->r_reply_info
;
2143 err
= parse_reply_info(msg
, rinfo
, session
->s_con
.peer_features
);
2144 mutex_unlock(&mdsc
->mutex
);
2146 mutex_lock(&session
->s_mutex
);
2148 pr_err("mdsc_handle_reply got corrupt reply mds%d(tid:%lld)\n", mds
, tid
);
2154 if (rinfo
->snapblob_len
) {
2155 down_write(&mdsc
->snap_rwsem
);
2156 ceph_update_snap_trace(mdsc
, rinfo
->snapblob
,
2157 rinfo
->snapblob
+ rinfo
->snapblob_len
,
2158 le32_to_cpu(head
->op
) == CEPH_MDS_OP_RMSNAP
);
2159 downgrade_write(&mdsc
->snap_rwsem
);
2161 down_read(&mdsc
->snap_rwsem
);
2164 /* insert trace into our cache */
2165 mutex_lock(&req
->r_fill_mutex
);
2166 err
= ceph_fill_trace(mdsc
->fsc
->sb
, req
, req
->r_session
);
2168 if (result
== 0 && req
->r_op
!= CEPH_MDS_OP_GETFILELOCK
&&
2170 ceph_readdir_prepopulate(req
, req
->r_session
);
2171 ceph_unreserve_caps(mdsc
, &req
->r_caps_reservation
);
2173 mutex_unlock(&req
->r_fill_mutex
);
2175 up_read(&mdsc
->snap_rwsem
);
2177 mutex_lock(&mdsc
->mutex
);
2178 if (!req
->r_aborted
) {
2184 req
->r_got_result
= true;
2187 dout("reply arrived after request %lld was aborted\n", tid
);
2189 mutex_unlock(&mdsc
->mutex
);
2191 ceph_add_cap_releases(mdsc
, req
->r_session
);
2192 mutex_unlock(&session
->s_mutex
);
2194 /* kick calling process */
2195 complete_request(mdsc
, req
);
2197 ceph_mdsc_put_request(req
);
2204 * handle mds notification that our request has been forwarded.
2206 static void handle_forward(struct ceph_mds_client
*mdsc
,
2207 struct ceph_mds_session
*session
,
2208 struct ceph_msg
*msg
)
2210 struct ceph_mds_request
*req
;
2211 u64 tid
= le64_to_cpu(msg
->hdr
.tid
);
2215 void *p
= msg
->front
.iov_base
;
2216 void *end
= p
+ msg
->front
.iov_len
;
2218 ceph_decode_need(&p
, end
, 2*sizeof(u32
), bad
);
2219 next_mds
= ceph_decode_32(&p
);
2220 fwd_seq
= ceph_decode_32(&p
);
2222 mutex_lock(&mdsc
->mutex
);
2223 req
= __lookup_request(mdsc
, tid
);
2225 dout("forward tid %llu to mds%d - req dne\n", tid
, next_mds
);
2226 goto out
; /* dup reply? */
2229 if (req
->r_aborted
) {
2230 dout("forward tid %llu aborted, unregistering\n", tid
);
2231 __unregister_request(mdsc
, req
);
2232 } else if (fwd_seq
<= req
->r_num_fwd
) {
2233 dout("forward tid %llu to mds%d - old seq %d <= %d\n",
2234 tid
, next_mds
, req
->r_num_fwd
, fwd_seq
);
2236 /* resend. forward race not possible; mds would drop */
2237 dout("forward tid %llu to mds%d (we resend)\n", tid
, next_mds
);
2239 BUG_ON(req
->r_got_result
);
2240 req
->r_num_fwd
= fwd_seq
;
2241 req
->r_resend_mds
= next_mds
;
2242 put_request_session(req
);
2243 __do_request(mdsc
, req
);
2245 ceph_mdsc_put_request(req
);
2247 mutex_unlock(&mdsc
->mutex
);
2251 pr_err("mdsc_handle_forward decode error err=%d\n", err
);
2255 * handle a mds session control message
2257 static void handle_session(struct ceph_mds_session
*session
,
2258 struct ceph_msg
*msg
)
2260 struct ceph_mds_client
*mdsc
= session
->s_mdsc
;
2263 int mds
= session
->s_mds
;
2264 struct ceph_mds_session_head
*h
= msg
->front
.iov_base
;
2268 if (msg
->front
.iov_len
!= sizeof(*h
))
2270 op
= le32_to_cpu(h
->op
);
2271 seq
= le64_to_cpu(h
->seq
);
2273 mutex_lock(&mdsc
->mutex
);
2274 if (op
== CEPH_SESSION_CLOSE
)
2275 __unregister_session(mdsc
, session
);
2276 /* FIXME: this ttl calculation is generous */
2277 session
->s_ttl
= jiffies
+ HZ
*mdsc
->mdsmap
->m_session_autoclose
;
2278 mutex_unlock(&mdsc
->mutex
);
2280 mutex_lock(&session
->s_mutex
);
2282 dout("handle_session mds%d %s %p state %s seq %llu\n",
2283 mds
, ceph_session_op_name(op
), session
,
2284 session_state_name(session
->s_state
), seq
);
2286 if (session
->s_state
== CEPH_MDS_SESSION_HUNG
) {
2287 session
->s_state
= CEPH_MDS_SESSION_OPEN
;
2288 pr_info("mds%d came back\n", session
->s_mds
);
2292 case CEPH_SESSION_OPEN
:
2293 if (session
->s_state
== CEPH_MDS_SESSION_RECONNECTING
)
2294 pr_info("mds%d reconnect success\n", session
->s_mds
);
2295 session
->s_state
= CEPH_MDS_SESSION_OPEN
;
2296 renewed_caps(mdsc
, session
, 0);
2299 __close_session(mdsc
, session
);
2302 case CEPH_SESSION_RENEWCAPS
:
2303 if (session
->s_renew_seq
== seq
)
2304 renewed_caps(mdsc
, session
, 1);
2307 case CEPH_SESSION_CLOSE
:
2308 if (session
->s_state
== CEPH_MDS_SESSION_RECONNECTING
)
2309 pr_info("mds%d reconnect denied\n", session
->s_mds
);
2310 remove_session_caps(session
);
2311 wake
= 1; /* for good measure */
2312 wake_up_all(&mdsc
->session_close_wq
);
2313 kick_requests(mdsc
, mds
);
2316 case CEPH_SESSION_STALE
:
2317 pr_info("mds%d caps went stale, renewing\n",
2319 spin_lock(&session
->s_gen_ttl_lock
);
2320 session
->s_cap_gen
++;
2321 session
->s_cap_ttl
= jiffies
- 1;
2322 spin_unlock(&session
->s_gen_ttl_lock
);
2323 send_renew_caps(mdsc
, session
);
2326 case CEPH_SESSION_RECALL_STATE
:
2327 trim_caps(mdsc
, session
, le32_to_cpu(h
->max_caps
));
2331 pr_err("mdsc_handle_session bad op %d mds%d\n", op
, mds
);
2335 mutex_unlock(&session
->s_mutex
);
2337 mutex_lock(&mdsc
->mutex
);
2338 __wake_requests(mdsc
, &session
->s_waiting
);
2339 mutex_unlock(&mdsc
->mutex
);
2344 pr_err("mdsc_handle_session corrupt message mds%d len %d\n", mds
,
2345 (int)msg
->front
.iov_len
);
2352 * called under session->mutex.
2354 static void replay_unsafe_requests(struct ceph_mds_client
*mdsc
,
2355 struct ceph_mds_session
*session
)
2357 struct ceph_mds_request
*req
, *nreq
;
2360 dout("replay_unsafe_requests mds%d\n", session
->s_mds
);
2362 mutex_lock(&mdsc
->mutex
);
2363 list_for_each_entry_safe(req
, nreq
, &session
->s_unsafe
, r_unsafe_item
) {
2364 err
= __prepare_send_request(mdsc
, req
, session
->s_mds
);
2366 ceph_msg_get(req
->r_request
);
2367 ceph_con_send(&session
->s_con
, req
->r_request
);
2370 mutex_unlock(&mdsc
->mutex
);
2374 * Encode information about a cap for a reconnect with the MDS.
2376 static int encode_caps_cb(struct inode
*inode
, struct ceph_cap
*cap
,
2380 struct ceph_mds_cap_reconnect v2
;
2381 struct ceph_mds_cap_reconnect_v1 v1
;
2384 struct ceph_inode_info
*ci
;
2385 struct ceph_reconnect_state
*recon_state
= arg
;
2386 struct ceph_pagelist
*pagelist
= recon_state
->pagelist
;
2390 struct dentry
*dentry
;
2394 dout(" adding %p ino %llx.%llx cap %p %lld %s\n",
2395 inode
, ceph_vinop(inode
), cap
, cap
->cap_id
,
2396 ceph_cap_string(cap
->issued
));
2397 err
= ceph_pagelist_encode_64(pagelist
, ceph_ino(inode
));
2401 dentry
= d_find_alias(inode
);
2403 path
= ceph_mdsc_build_path(dentry
, &pathlen
, &pathbase
, 0);
2405 err
= PTR_ERR(path
);
2412 err
= ceph_pagelist_encode_string(pagelist
, path
, pathlen
);
2416 spin_lock(&ci
->i_ceph_lock
);
2417 cap
->seq
= 0; /* reset cap seq */
2418 cap
->issue_seq
= 0; /* and issue_seq */
2420 if (recon_state
->flock
) {
2421 rec
.v2
.cap_id
= cpu_to_le64(cap
->cap_id
);
2422 rec
.v2
.wanted
= cpu_to_le32(__ceph_caps_wanted(ci
));
2423 rec
.v2
.issued
= cpu_to_le32(cap
->issued
);
2424 rec
.v2
.snaprealm
= cpu_to_le64(ci
->i_snap_realm
->ino
);
2425 rec
.v2
.pathbase
= cpu_to_le64(pathbase
);
2426 rec
.v2
.flock_len
= 0;
2427 reclen
= sizeof(rec
.v2
);
2429 rec
.v1
.cap_id
= cpu_to_le64(cap
->cap_id
);
2430 rec
.v1
.wanted
= cpu_to_le32(__ceph_caps_wanted(ci
));
2431 rec
.v1
.issued
= cpu_to_le32(cap
->issued
);
2432 rec
.v1
.size
= cpu_to_le64(inode
->i_size
);
2433 ceph_encode_timespec(&rec
.v1
.mtime
, &inode
->i_mtime
);
2434 ceph_encode_timespec(&rec
.v1
.atime
, &inode
->i_atime
);
2435 rec
.v1
.snaprealm
= cpu_to_le64(ci
->i_snap_realm
->ino
);
2436 rec
.v1
.pathbase
= cpu_to_le64(pathbase
);
2437 reclen
= sizeof(rec
.v1
);
2439 spin_unlock(&ci
->i_ceph_lock
);
2441 if (recon_state
->flock
) {
2442 int num_fcntl_locks
, num_flock_locks
;
2443 struct ceph_pagelist_cursor trunc_point
;
2445 ceph_pagelist_set_cursor(pagelist
, &trunc_point
);
2448 ceph_count_locks(inode
, &num_fcntl_locks
,
2450 rec
.v2
.flock_len
= (2*sizeof(u32
) +
2451 (num_fcntl_locks
+num_flock_locks
) *
2452 sizeof(struct ceph_filelock
));
2455 /* pre-alloc pagelist */
2456 ceph_pagelist_truncate(pagelist
, &trunc_point
);
2457 err
= ceph_pagelist_append(pagelist
, &rec
, reclen
);
2459 err
= ceph_pagelist_reserve(pagelist
,
2465 err
= ceph_encode_locks(inode
,
2471 } while (err
== -ENOSPC
);
2473 err
= ceph_pagelist_append(pagelist
, &rec
, reclen
);
2485 * If an MDS fails and recovers, clients need to reconnect in order to
2486 * reestablish shared state. This includes all caps issued through
2487 * this session _and_ the snap_realm hierarchy. Because it's not
2488 * clear which snap realms the mds cares about, we send everything we
2489 * know about.. that ensures we'll then get any new info the
2490 * recovering MDS might have.
2492 * This is a relatively heavyweight operation, but it's rare.
2494 * called with mdsc->mutex held.
2496 static void send_mds_reconnect(struct ceph_mds_client
*mdsc
,
2497 struct ceph_mds_session
*session
)
2499 struct ceph_msg
*reply
;
2501 int mds
= session
->s_mds
;
2503 struct ceph_pagelist
*pagelist
;
2504 struct ceph_reconnect_state recon_state
;
2506 pr_info("mds%d reconnect start\n", mds
);
2508 pagelist
= kmalloc(sizeof(*pagelist
), GFP_NOFS
);
2510 goto fail_nopagelist
;
2511 ceph_pagelist_init(pagelist
);
2513 reply
= ceph_msg_new(CEPH_MSG_CLIENT_RECONNECT
, 0, GFP_NOFS
, false);
2517 mutex_lock(&session
->s_mutex
);
2518 session
->s_state
= CEPH_MDS_SESSION_RECONNECTING
;
2521 ceph_con_close(&session
->s_con
);
2522 ceph_con_open(&session
->s_con
,
2523 CEPH_ENTITY_TYPE_MDS
, mds
,
2524 ceph_mdsmap_get_addr(mdsc
->mdsmap
, mds
));
2526 /* replay unsafe requests */
2527 replay_unsafe_requests(mdsc
, session
);
2529 down_read(&mdsc
->snap_rwsem
);
2531 dout("session %p state %s\n", session
,
2532 session_state_name(session
->s_state
));
2534 /* drop old cap expires; we're about to reestablish that state */
2535 discard_cap_releases(mdsc
, session
);
2537 /* traverse this session's caps */
2538 err
= ceph_pagelist_encode_32(pagelist
, session
->s_nr_caps
);
2542 recon_state
.pagelist
= pagelist
;
2543 recon_state
.flock
= session
->s_con
.peer_features
& CEPH_FEATURE_FLOCK
;
2544 err
= iterate_session_caps(session
, encode_caps_cb
, &recon_state
);
2549 * snaprealms. we provide mds with the ino, seq (version), and
2550 * parent for all of our realms. If the mds has any newer info,
2553 for (p
= rb_first(&mdsc
->snap_realms
); p
; p
= rb_next(p
)) {
2554 struct ceph_snap_realm
*realm
=
2555 rb_entry(p
, struct ceph_snap_realm
, node
);
2556 struct ceph_mds_snaprealm_reconnect sr_rec
;
2558 dout(" adding snap realm %llx seq %lld parent %llx\n",
2559 realm
->ino
, realm
->seq
, realm
->parent_ino
);
2560 sr_rec
.ino
= cpu_to_le64(realm
->ino
);
2561 sr_rec
.seq
= cpu_to_le64(realm
->seq
);
2562 sr_rec
.parent
= cpu_to_le64(realm
->parent_ino
);
2563 err
= ceph_pagelist_append(pagelist
, &sr_rec
, sizeof(sr_rec
));
2568 reply
->pagelist
= pagelist
;
2569 if (recon_state
.flock
)
2570 reply
->hdr
.version
= cpu_to_le16(2);
2571 reply
->hdr
.data_len
= cpu_to_le32(pagelist
->length
);
2572 reply
->nr_pages
= calc_pages_for(0, pagelist
->length
);
2573 ceph_con_send(&session
->s_con
, reply
);
2575 mutex_unlock(&session
->s_mutex
);
2577 mutex_lock(&mdsc
->mutex
);
2578 __wake_requests(mdsc
, &session
->s_waiting
);
2579 mutex_unlock(&mdsc
->mutex
);
2581 up_read(&mdsc
->snap_rwsem
);
2585 ceph_msg_put(reply
);
2586 up_read(&mdsc
->snap_rwsem
);
2587 mutex_unlock(&session
->s_mutex
);
2589 ceph_pagelist_release(pagelist
);
2592 pr_err("error %d preparing reconnect for mds%d\n", err
, mds
);
2598 * compare old and new mdsmaps, kicking requests
2599 * and closing out old connections as necessary
2601 * called under mdsc->mutex.
2603 static void check_new_map(struct ceph_mds_client
*mdsc
,
2604 struct ceph_mdsmap
*newmap
,
2605 struct ceph_mdsmap
*oldmap
)
2608 int oldstate
, newstate
;
2609 struct ceph_mds_session
*s
;
2611 dout("check_new_map new %u old %u\n",
2612 newmap
->m_epoch
, oldmap
->m_epoch
);
2614 for (i
= 0; i
< oldmap
->m_max_mds
&& i
< mdsc
->max_sessions
; i
++) {
2615 if (mdsc
->sessions
[i
] == NULL
)
2617 s
= mdsc
->sessions
[i
];
2618 oldstate
= ceph_mdsmap_get_state(oldmap
, i
);
2619 newstate
= ceph_mdsmap_get_state(newmap
, i
);
2621 dout("check_new_map mds%d state %s%s -> %s%s (session %s)\n",
2622 i
, ceph_mds_state_name(oldstate
),
2623 ceph_mdsmap_is_laggy(oldmap
, i
) ? " (laggy)" : "",
2624 ceph_mds_state_name(newstate
),
2625 ceph_mdsmap_is_laggy(newmap
, i
) ? " (laggy)" : "",
2626 session_state_name(s
->s_state
));
2628 if (i
>= newmap
->m_max_mds
||
2629 memcmp(ceph_mdsmap_get_addr(oldmap
, i
),
2630 ceph_mdsmap_get_addr(newmap
, i
),
2631 sizeof(struct ceph_entity_addr
))) {
2632 if (s
->s_state
== CEPH_MDS_SESSION_OPENING
) {
2633 /* the session never opened, just close it
2635 __wake_requests(mdsc
, &s
->s_waiting
);
2636 __unregister_session(mdsc
, s
);
2639 mutex_unlock(&mdsc
->mutex
);
2640 mutex_lock(&s
->s_mutex
);
2641 mutex_lock(&mdsc
->mutex
);
2642 ceph_con_close(&s
->s_con
);
2643 mutex_unlock(&s
->s_mutex
);
2644 s
->s_state
= CEPH_MDS_SESSION_RESTARTING
;
2647 /* kick any requests waiting on the recovering mds */
2648 kick_requests(mdsc
, i
);
2649 } else if (oldstate
== newstate
) {
2650 continue; /* nothing new with this mds */
2656 if (s
->s_state
== CEPH_MDS_SESSION_RESTARTING
&&
2657 newstate
>= CEPH_MDS_STATE_RECONNECT
) {
2658 mutex_unlock(&mdsc
->mutex
);
2659 send_mds_reconnect(mdsc
, s
);
2660 mutex_lock(&mdsc
->mutex
);
2664 * kick request on any mds that has gone active.
2666 if (oldstate
< CEPH_MDS_STATE_ACTIVE
&&
2667 newstate
>= CEPH_MDS_STATE_ACTIVE
) {
2668 if (oldstate
!= CEPH_MDS_STATE_CREATING
&&
2669 oldstate
!= CEPH_MDS_STATE_STARTING
)
2670 pr_info("mds%d recovery completed\n", s
->s_mds
);
2671 kick_requests(mdsc
, i
);
2672 ceph_kick_flushing_caps(mdsc
, s
);
2673 wake_up_session_caps(s
, 1);
2677 for (i
= 0; i
< newmap
->m_max_mds
&& i
< mdsc
->max_sessions
; i
++) {
2678 s
= mdsc
->sessions
[i
];
2681 if (!ceph_mdsmap_is_laggy(newmap
, i
))
2683 if (s
->s_state
== CEPH_MDS_SESSION_OPEN
||
2684 s
->s_state
== CEPH_MDS_SESSION_HUNG
||
2685 s
->s_state
== CEPH_MDS_SESSION_CLOSING
) {
2686 dout(" connecting to export targets of laggy mds%d\n",
2688 __open_export_target_sessions(mdsc
, s
);
2700 * caller must hold session s_mutex, dentry->d_lock
2702 void __ceph_mdsc_drop_dentry_lease(struct dentry
*dentry
)
2704 struct ceph_dentry_info
*di
= ceph_dentry(dentry
);
2706 ceph_put_mds_session(di
->lease_session
);
2707 di
->lease_session
= NULL
;
2710 static void handle_lease(struct ceph_mds_client
*mdsc
,
2711 struct ceph_mds_session
*session
,
2712 struct ceph_msg
*msg
)
2714 struct super_block
*sb
= mdsc
->fsc
->sb
;
2715 struct inode
*inode
;
2716 struct dentry
*parent
, *dentry
;
2717 struct ceph_dentry_info
*di
;
2718 int mds
= session
->s_mds
;
2719 struct ceph_mds_lease
*h
= msg
->front
.iov_base
;
2721 struct ceph_vino vino
;
2725 dout("handle_lease from mds%d\n", mds
);
2728 if (msg
->front
.iov_len
< sizeof(*h
) + sizeof(u32
))
2730 vino
.ino
= le64_to_cpu(h
->ino
);
2731 vino
.snap
= CEPH_NOSNAP
;
2732 seq
= le32_to_cpu(h
->seq
);
2733 dname
.name
= (void *)h
+ sizeof(*h
) + sizeof(u32
);
2734 dname
.len
= msg
->front
.iov_len
- sizeof(*h
) - sizeof(u32
);
2735 if (dname
.len
!= get_unaligned_le32(h
+1))
2738 mutex_lock(&session
->s_mutex
);
2742 inode
= ceph_find_inode(sb
, vino
);
2743 dout("handle_lease %s, ino %llx %p %.*s\n",
2744 ceph_lease_op_name(h
->action
), vino
.ino
, inode
,
2745 dname
.len
, dname
.name
);
2746 if (inode
== NULL
) {
2747 dout("handle_lease no inode %llx\n", vino
.ino
);
2752 parent
= d_find_alias(inode
);
2754 dout("no parent dentry on inode %p\n", inode
);
2756 goto release
; /* hrm... */
2758 dname
.hash
= full_name_hash(dname
.name
, dname
.len
);
2759 dentry
= d_lookup(parent
, &dname
);
2764 spin_lock(&dentry
->d_lock
);
2765 di
= ceph_dentry(dentry
);
2766 switch (h
->action
) {
2767 case CEPH_MDS_LEASE_REVOKE
:
2768 if (di
->lease_session
== session
) {
2769 if (ceph_seq_cmp(di
->lease_seq
, seq
) > 0)
2770 h
->seq
= cpu_to_le32(di
->lease_seq
);
2771 __ceph_mdsc_drop_dentry_lease(dentry
);
2776 case CEPH_MDS_LEASE_RENEW
:
2777 if (di
->lease_session
== session
&&
2778 di
->lease_gen
== session
->s_cap_gen
&&
2779 di
->lease_renew_from
&&
2780 di
->lease_renew_after
== 0) {
2781 unsigned long duration
=
2782 le32_to_cpu(h
->duration_ms
) * HZ
/ 1000;
2784 di
->lease_seq
= seq
;
2785 dentry
->d_time
= di
->lease_renew_from
+ duration
;
2786 di
->lease_renew_after
= di
->lease_renew_from
+
2788 di
->lease_renew_from
= 0;
2792 spin_unlock(&dentry
->d_lock
);
2799 /* let's just reuse the same message */
2800 h
->action
= CEPH_MDS_LEASE_REVOKE_ACK
;
2802 ceph_con_send(&session
->s_con
, msg
);
2806 mutex_unlock(&session
->s_mutex
);
2810 pr_err("corrupt lease message\n");
2814 void ceph_mdsc_lease_send_msg(struct ceph_mds_session
*session
,
2815 struct inode
*inode
,
2816 struct dentry
*dentry
, char action
,
2819 struct ceph_msg
*msg
;
2820 struct ceph_mds_lease
*lease
;
2821 int len
= sizeof(*lease
) + sizeof(u32
);
2824 dout("lease_send_msg inode %p dentry %p %s to mds%d\n",
2825 inode
, dentry
, ceph_lease_op_name(action
), session
->s_mds
);
2826 dnamelen
= dentry
->d_name
.len
;
2829 msg
= ceph_msg_new(CEPH_MSG_CLIENT_LEASE
, len
, GFP_NOFS
, false);
2832 lease
= msg
->front
.iov_base
;
2833 lease
->action
= action
;
2834 lease
->ino
= cpu_to_le64(ceph_vino(inode
).ino
);
2835 lease
->first
= lease
->last
= cpu_to_le64(ceph_vino(inode
).snap
);
2836 lease
->seq
= cpu_to_le32(seq
);
2837 put_unaligned_le32(dnamelen
, lease
+ 1);
2838 memcpy((void *)(lease
+ 1) + 4, dentry
->d_name
.name
, dnamelen
);
2841 * if this is a preemptive lease RELEASE, no need to
2842 * flush request stream, since the actual request will
2845 msg
->more_to_follow
= (action
== CEPH_MDS_LEASE_RELEASE
);
2847 ceph_con_send(&session
->s_con
, msg
);
2851 * Preemptively release a lease we expect to invalidate anyway.
2852 * Pass @inode always, @dentry is optional.
2854 void ceph_mdsc_lease_release(struct ceph_mds_client
*mdsc
, struct inode
*inode
,
2855 struct dentry
*dentry
)
2857 struct ceph_dentry_info
*di
;
2858 struct ceph_mds_session
*session
;
2861 BUG_ON(inode
== NULL
);
2862 BUG_ON(dentry
== NULL
);
2864 /* is dentry lease valid? */
2865 spin_lock(&dentry
->d_lock
);
2866 di
= ceph_dentry(dentry
);
2867 if (!di
|| !di
->lease_session
||
2868 di
->lease_session
->s_mds
< 0 ||
2869 di
->lease_gen
!= di
->lease_session
->s_cap_gen
||
2870 !time_before(jiffies
, dentry
->d_time
)) {
2871 dout("lease_release inode %p dentry %p -- "
2874 spin_unlock(&dentry
->d_lock
);
2878 /* we do have a lease on this dentry; note mds and seq */
2879 session
= ceph_get_mds_session(di
->lease_session
);
2880 seq
= di
->lease_seq
;
2881 __ceph_mdsc_drop_dentry_lease(dentry
);
2882 spin_unlock(&dentry
->d_lock
);
2884 dout("lease_release inode %p dentry %p to mds%d\n",
2885 inode
, dentry
, session
->s_mds
);
2886 ceph_mdsc_lease_send_msg(session
, inode
, dentry
,
2887 CEPH_MDS_LEASE_RELEASE
, seq
);
2888 ceph_put_mds_session(session
);
2892 * drop all leases (and dentry refs) in preparation for umount
2894 static void drop_leases(struct ceph_mds_client
*mdsc
)
2898 dout("drop_leases\n");
2899 mutex_lock(&mdsc
->mutex
);
2900 for (i
= 0; i
< mdsc
->max_sessions
; i
++) {
2901 struct ceph_mds_session
*s
= __ceph_lookup_mds_session(mdsc
, i
);
2904 mutex_unlock(&mdsc
->mutex
);
2905 mutex_lock(&s
->s_mutex
);
2906 mutex_unlock(&s
->s_mutex
);
2907 ceph_put_mds_session(s
);
2908 mutex_lock(&mdsc
->mutex
);
2910 mutex_unlock(&mdsc
->mutex
);
2916 * delayed work -- periodically trim expired leases, renew caps with mds
2918 static void schedule_delayed(struct ceph_mds_client
*mdsc
)
2921 unsigned hz
= round_jiffies_relative(HZ
* delay
);
2922 schedule_delayed_work(&mdsc
->delayed_work
, hz
);
2925 static void delayed_work(struct work_struct
*work
)
2928 struct ceph_mds_client
*mdsc
=
2929 container_of(work
, struct ceph_mds_client
, delayed_work
.work
);
2933 dout("mdsc delayed_work\n");
2934 ceph_check_delayed_caps(mdsc
);
2936 mutex_lock(&mdsc
->mutex
);
2937 renew_interval
= mdsc
->mdsmap
->m_session_timeout
>> 2;
2938 renew_caps
= time_after_eq(jiffies
, HZ
*renew_interval
+
2939 mdsc
->last_renew_caps
);
2941 mdsc
->last_renew_caps
= jiffies
;
2943 for (i
= 0; i
< mdsc
->max_sessions
; i
++) {
2944 struct ceph_mds_session
*s
= __ceph_lookup_mds_session(mdsc
, i
);
2947 if (s
->s_state
== CEPH_MDS_SESSION_CLOSING
) {
2948 dout("resending session close request for mds%d\n",
2950 request_close_session(mdsc
, s
);
2951 ceph_put_mds_session(s
);
2954 if (s
->s_ttl
&& time_after(jiffies
, s
->s_ttl
)) {
2955 if (s
->s_state
== CEPH_MDS_SESSION_OPEN
) {
2956 s
->s_state
= CEPH_MDS_SESSION_HUNG
;
2957 pr_info("mds%d hung\n", s
->s_mds
);
2960 if (s
->s_state
< CEPH_MDS_SESSION_OPEN
) {
2961 /* this mds is failed or recovering, just wait */
2962 ceph_put_mds_session(s
);
2965 mutex_unlock(&mdsc
->mutex
);
2967 mutex_lock(&s
->s_mutex
);
2969 send_renew_caps(mdsc
, s
);
2971 ceph_con_keepalive(&s
->s_con
);
2972 ceph_add_cap_releases(mdsc
, s
);
2973 if (s
->s_state
== CEPH_MDS_SESSION_OPEN
||
2974 s
->s_state
== CEPH_MDS_SESSION_HUNG
)
2975 ceph_send_cap_releases(mdsc
, s
);
2976 mutex_unlock(&s
->s_mutex
);
2977 ceph_put_mds_session(s
);
2979 mutex_lock(&mdsc
->mutex
);
2981 mutex_unlock(&mdsc
->mutex
);
2983 schedule_delayed(mdsc
);
2986 int ceph_mdsc_init(struct ceph_fs_client
*fsc
)
2989 struct ceph_mds_client
*mdsc
;
2991 mdsc
= kzalloc(sizeof(struct ceph_mds_client
), GFP_NOFS
);
2996 mutex_init(&mdsc
->mutex
);
2997 mdsc
->mdsmap
= kzalloc(sizeof(*mdsc
->mdsmap
), GFP_NOFS
);
2998 if (mdsc
->mdsmap
== NULL
)
3001 init_completion(&mdsc
->safe_umount_waiters
);
3002 init_waitqueue_head(&mdsc
->session_close_wq
);
3003 INIT_LIST_HEAD(&mdsc
->waiting_for_map
);
3004 mdsc
->sessions
= NULL
;
3005 mdsc
->max_sessions
= 0;
3007 init_rwsem(&mdsc
->snap_rwsem
);
3008 mdsc
->snap_realms
= RB_ROOT
;
3009 INIT_LIST_HEAD(&mdsc
->snap_empty
);
3010 spin_lock_init(&mdsc
->snap_empty_lock
);
3012 mdsc
->request_tree
= RB_ROOT
;
3013 INIT_DELAYED_WORK(&mdsc
->delayed_work
, delayed_work
);
3014 mdsc
->last_renew_caps
= jiffies
;
3015 INIT_LIST_HEAD(&mdsc
->cap_delay_list
);
3016 spin_lock_init(&mdsc
->cap_delay_lock
);
3017 INIT_LIST_HEAD(&mdsc
->snap_flush_list
);
3018 spin_lock_init(&mdsc
->snap_flush_lock
);
3019 mdsc
->cap_flush_seq
= 0;
3020 INIT_LIST_HEAD(&mdsc
->cap_dirty
);
3021 INIT_LIST_HEAD(&mdsc
->cap_dirty_migrating
);
3022 mdsc
->num_cap_flushing
= 0;
3023 spin_lock_init(&mdsc
->cap_dirty_lock
);
3024 init_waitqueue_head(&mdsc
->cap_flushing_wq
);
3025 spin_lock_init(&mdsc
->dentry_lru_lock
);
3026 INIT_LIST_HEAD(&mdsc
->dentry_lru
);
3028 ceph_caps_init(mdsc
);
3029 ceph_adjust_min_caps(mdsc
, fsc
->min_caps
);
3035 * Wait for safe replies on open mds requests. If we time out, drop
3036 * all requests from the tree to avoid dangling dentry refs.
3038 static void wait_requests(struct ceph_mds_client
*mdsc
)
3040 struct ceph_mds_request
*req
;
3041 struct ceph_fs_client
*fsc
= mdsc
->fsc
;
3043 mutex_lock(&mdsc
->mutex
);
3044 if (__get_oldest_req(mdsc
)) {
3045 mutex_unlock(&mdsc
->mutex
);
3047 dout("wait_requests waiting for requests\n");
3048 wait_for_completion_timeout(&mdsc
->safe_umount_waiters
,
3049 fsc
->client
->options
->mount_timeout
* HZ
);
3051 /* tear down remaining requests */
3052 mutex_lock(&mdsc
->mutex
);
3053 while ((req
= __get_oldest_req(mdsc
))) {
3054 dout("wait_requests timed out on tid %llu\n",
3056 __unregister_request(mdsc
, req
);
3059 mutex_unlock(&mdsc
->mutex
);
3060 dout("wait_requests done\n");
3064 * called before mount is ro, and before dentries are torn down.
3065 * (hmm, does this still race with new lookups?)
3067 void ceph_mdsc_pre_umount(struct ceph_mds_client
*mdsc
)
3069 dout("pre_umount\n");
3073 ceph_flush_dirty_caps(mdsc
);
3074 wait_requests(mdsc
);
3077 * wait for reply handlers to drop their request refs and
3078 * their inode/dcache refs
3084 * wait for all write mds requests to flush.
3086 static void wait_unsafe_requests(struct ceph_mds_client
*mdsc
, u64 want_tid
)
3088 struct ceph_mds_request
*req
= NULL
, *nextreq
;
3091 mutex_lock(&mdsc
->mutex
);
3092 dout("wait_unsafe_requests want %lld\n", want_tid
);
3094 req
= __get_oldest_req(mdsc
);
3095 while (req
&& req
->r_tid
<= want_tid
) {
3096 /* find next request */
3097 n
= rb_next(&req
->r_node
);
3099 nextreq
= rb_entry(n
, struct ceph_mds_request
, r_node
);
3102 if ((req
->r_op
& CEPH_MDS_OP_WRITE
)) {
3104 ceph_mdsc_get_request(req
);
3106 ceph_mdsc_get_request(nextreq
);
3107 mutex_unlock(&mdsc
->mutex
);
3108 dout("wait_unsafe_requests wait on %llu (want %llu)\n",
3109 req
->r_tid
, want_tid
);
3110 wait_for_completion(&req
->r_safe_completion
);
3111 mutex_lock(&mdsc
->mutex
);
3112 ceph_mdsc_put_request(req
);
3114 break; /* next dne before, so we're done! */
3115 if (RB_EMPTY_NODE(&nextreq
->r_node
)) {
3116 /* next request was removed from tree */
3117 ceph_mdsc_put_request(nextreq
);
3120 ceph_mdsc_put_request(nextreq
); /* won't go away */
3124 mutex_unlock(&mdsc
->mutex
);
3125 dout("wait_unsafe_requests done\n");
3128 void ceph_mdsc_sync(struct ceph_mds_client
*mdsc
)
3130 u64 want_tid
, want_flush
;
3132 if (mdsc
->fsc
->mount_state
== CEPH_MOUNT_SHUTDOWN
)
3136 mutex_lock(&mdsc
->mutex
);
3137 want_tid
= mdsc
->last_tid
;
3138 want_flush
= mdsc
->cap_flush_seq
;
3139 mutex_unlock(&mdsc
->mutex
);
3140 dout("sync want tid %lld flush_seq %lld\n", want_tid
, want_flush
);
3142 ceph_flush_dirty_caps(mdsc
);
3144 wait_unsafe_requests(mdsc
, want_tid
);
3145 wait_event(mdsc
->cap_flushing_wq
, check_cap_flush(mdsc
, want_flush
));
3149 * true if all sessions are closed, or we force unmount
3151 static bool done_closing_sessions(struct ceph_mds_client
*mdsc
)
3155 if (mdsc
->fsc
->mount_state
== CEPH_MOUNT_SHUTDOWN
)
3158 mutex_lock(&mdsc
->mutex
);
3159 for (i
= 0; i
< mdsc
->max_sessions
; i
++)
3160 if (mdsc
->sessions
[i
])
3162 mutex_unlock(&mdsc
->mutex
);
3167 * called after sb is ro.
3169 void ceph_mdsc_close_sessions(struct ceph_mds_client
*mdsc
)
3171 struct ceph_mds_session
*session
;
3173 struct ceph_fs_client
*fsc
= mdsc
->fsc
;
3174 unsigned long timeout
= fsc
->client
->options
->mount_timeout
* HZ
;
3176 dout("close_sessions\n");
3178 /* close sessions */
3179 mutex_lock(&mdsc
->mutex
);
3180 for (i
= 0; i
< mdsc
->max_sessions
; i
++) {
3181 session
= __ceph_lookup_mds_session(mdsc
, i
);
3184 mutex_unlock(&mdsc
->mutex
);
3185 mutex_lock(&session
->s_mutex
);
3186 __close_session(mdsc
, session
);
3187 mutex_unlock(&session
->s_mutex
);
3188 ceph_put_mds_session(session
);
3189 mutex_lock(&mdsc
->mutex
);
3191 mutex_unlock(&mdsc
->mutex
);
3193 dout("waiting for sessions to close\n");
3194 wait_event_timeout(mdsc
->session_close_wq
, done_closing_sessions(mdsc
),
3197 /* tear down remaining sessions */
3198 mutex_lock(&mdsc
->mutex
);
3199 for (i
= 0; i
< mdsc
->max_sessions
; i
++) {
3200 if (mdsc
->sessions
[i
]) {
3201 session
= get_session(mdsc
->sessions
[i
]);
3202 __unregister_session(mdsc
, session
);
3203 mutex_unlock(&mdsc
->mutex
);
3204 mutex_lock(&session
->s_mutex
);
3205 remove_session_caps(session
);
3206 mutex_unlock(&session
->s_mutex
);
3207 ceph_put_mds_session(session
);
3208 mutex_lock(&mdsc
->mutex
);
3211 WARN_ON(!list_empty(&mdsc
->cap_delay_list
));
3212 mutex_unlock(&mdsc
->mutex
);
3214 ceph_cleanup_empty_realms(mdsc
);
3216 cancel_delayed_work_sync(&mdsc
->delayed_work
); /* cancel timer */
3221 static void ceph_mdsc_stop(struct ceph_mds_client
*mdsc
)
3224 cancel_delayed_work_sync(&mdsc
->delayed_work
); /* cancel timer */
3226 ceph_mdsmap_destroy(mdsc
->mdsmap
);
3227 kfree(mdsc
->sessions
);
3228 ceph_caps_finalize(mdsc
);
3231 void ceph_mdsc_destroy(struct ceph_fs_client
*fsc
)
3233 struct ceph_mds_client
*mdsc
= fsc
->mdsc
;
3235 dout("mdsc_destroy %p\n", mdsc
);
3236 ceph_mdsc_stop(mdsc
);
3238 /* flush out any connection work with references to us */
3243 dout("mdsc_destroy %p done\n", mdsc
);
3248 * handle mds map update.
3250 void ceph_mdsc_handle_map(struct ceph_mds_client
*mdsc
, struct ceph_msg
*msg
)
3254 void *p
= msg
->front
.iov_base
;
3255 void *end
= p
+ msg
->front
.iov_len
;
3256 struct ceph_mdsmap
*newmap
, *oldmap
;
3257 struct ceph_fsid fsid
;
3260 ceph_decode_need(&p
, end
, sizeof(fsid
)+2*sizeof(u32
), bad
);
3261 ceph_decode_copy(&p
, &fsid
, sizeof(fsid
));
3262 if (ceph_check_fsid(mdsc
->fsc
->client
, &fsid
) < 0)
3264 epoch
= ceph_decode_32(&p
);
3265 maplen
= ceph_decode_32(&p
);
3266 dout("handle_map epoch %u len %d\n", epoch
, (int)maplen
);
3268 /* do we need it? */
3269 ceph_monc_got_mdsmap(&mdsc
->fsc
->client
->monc
, epoch
);
3270 mutex_lock(&mdsc
->mutex
);
3271 if (mdsc
->mdsmap
&& epoch
<= mdsc
->mdsmap
->m_epoch
) {
3272 dout("handle_map epoch %u <= our %u\n",
3273 epoch
, mdsc
->mdsmap
->m_epoch
);
3274 mutex_unlock(&mdsc
->mutex
);
3278 newmap
= ceph_mdsmap_decode(&p
, end
);
3279 if (IS_ERR(newmap
)) {
3280 err
= PTR_ERR(newmap
);
3284 /* swap into place */
3286 oldmap
= mdsc
->mdsmap
;
3287 mdsc
->mdsmap
= newmap
;
3288 check_new_map(mdsc
, newmap
, oldmap
);
3289 ceph_mdsmap_destroy(oldmap
);
3291 mdsc
->mdsmap
= newmap
; /* first mds map */
3293 mdsc
->fsc
->sb
->s_maxbytes
= mdsc
->mdsmap
->m_max_file_size
;
3295 __wake_requests(mdsc
, &mdsc
->waiting_for_map
);
3297 mutex_unlock(&mdsc
->mutex
);
3298 schedule_delayed(mdsc
);
3302 mutex_unlock(&mdsc
->mutex
);
3304 pr_err("error decoding mdsmap %d\n", err
);
3308 static struct ceph_connection
*con_get(struct ceph_connection
*con
)
3310 struct ceph_mds_session
*s
= con
->private;
3312 if (get_session(s
)) {
3313 dout("mdsc con_get %p ok (%d)\n", s
, atomic_read(&s
->s_ref
));
3316 dout("mdsc con_get %p FAIL\n", s
);
3320 static void con_put(struct ceph_connection
*con
)
3322 struct ceph_mds_session
*s
= con
->private;
3324 dout("mdsc con_put %p (%d)\n", s
, atomic_read(&s
->s_ref
) - 1);
3325 ceph_put_mds_session(s
);
3329 * if the client is unresponsive for long enough, the mds will kill
3330 * the session entirely.
3332 static void peer_reset(struct ceph_connection
*con
)
3334 struct ceph_mds_session
*s
= con
->private;
3335 struct ceph_mds_client
*mdsc
= s
->s_mdsc
;
3337 pr_warning("mds%d closed our session\n", s
->s_mds
);
3338 send_mds_reconnect(mdsc
, s
);
3341 static void dispatch(struct ceph_connection
*con
, struct ceph_msg
*msg
)
3343 struct ceph_mds_session
*s
= con
->private;
3344 struct ceph_mds_client
*mdsc
= s
->s_mdsc
;
3345 int type
= le16_to_cpu(msg
->hdr
.type
);
3347 mutex_lock(&mdsc
->mutex
);
3348 if (__verify_registered_session(mdsc
, s
) < 0) {
3349 mutex_unlock(&mdsc
->mutex
);
3352 mutex_unlock(&mdsc
->mutex
);
3355 case CEPH_MSG_MDS_MAP
:
3356 ceph_mdsc_handle_map(mdsc
, msg
);
3358 case CEPH_MSG_CLIENT_SESSION
:
3359 handle_session(s
, msg
);
3361 case CEPH_MSG_CLIENT_REPLY
:
3362 handle_reply(s
, msg
);
3364 case CEPH_MSG_CLIENT_REQUEST_FORWARD
:
3365 handle_forward(mdsc
, s
, msg
);
3367 case CEPH_MSG_CLIENT_CAPS
:
3368 ceph_handle_caps(s
, msg
);
3370 case CEPH_MSG_CLIENT_SNAP
:
3371 ceph_handle_snap(mdsc
, s
, msg
);
3373 case CEPH_MSG_CLIENT_LEASE
:
3374 handle_lease(mdsc
, s
, msg
);
3378 pr_err("received unknown message type %d %s\n", type
,
3379 ceph_msg_type_name(type
));
3390 * Note: returned pointer is the address of a structure that's
3391 * managed separately. Caller must *not* attempt to free it.
3393 static struct ceph_auth_handshake
*get_authorizer(struct ceph_connection
*con
,
3394 int *proto
, int force_new
)
3396 struct ceph_mds_session
*s
= con
->private;
3397 struct ceph_mds_client
*mdsc
= s
->s_mdsc
;
3398 struct ceph_auth_client
*ac
= mdsc
->fsc
->client
->monc
.auth
;
3399 struct ceph_auth_handshake
*auth
= &s
->s_auth
;
3401 if (force_new
&& auth
->authorizer
) {
3402 if (ac
->ops
&& ac
->ops
->destroy_authorizer
)
3403 ac
->ops
->destroy_authorizer(ac
, auth
->authorizer
);
3404 auth
->authorizer
= NULL
;
3406 if (!auth
->authorizer
&& ac
->ops
&& ac
->ops
->create_authorizer
) {
3407 int ret
= ac
->ops
->create_authorizer(ac
, CEPH_ENTITY_TYPE_MDS
,
3410 return ERR_PTR(ret
);
3412 *proto
= ac
->protocol
;
3418 static int verify_authorizer_reply(struct ceph_connection
*con
, int len
)
3420 struct ceph_mds_session
*s
= con
->private;
3421 struct ceph_mds_client
*mdsc
= s
->s_mdsc
;
3422 struct ceph_auth_client
*ac
= mdsc
->fsc
->client
->monc
.auth
;
3424 return ac
->ops
->verify_authorizer_reply(ac
, s
->s_auth
.authorizer
, len
);
3427 static int invalidate_authorizer(struct ceph_connection
*con
)
3429 struct ceph_mds_session
*s
= con
->private;
3430 struct ceph_mds_client
*mdsc
= s
->s_mdsc
;
3431 struct ceph_auth_client
*ac
= mdsc
->fsc
->client
->monc
.auth
;
3433 if (ac
->ops
->invalidate_authorizer
)
3434 ac
->ops
->invalidate_authorizer(ac
, CEPH_ENTITY_TYPE_MDS
);
3436 return ceph_monc_validate_auth(&mdsc
->fsc
->client
->monc
);
3439 static const struct ceph_connection_operations mds_con_ops
= {
3442 .dispatch
= dispatch
,
3443 .get_authorizer
= get_authorizer
,
3444 .verify_authorizer_reply
= verify_authorizer_reply
,
3445 .invalidate_authorizer
= invalidate_authorizer
,
3446 .peer_reset
= peer_reset
,