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ceph: cope with out of order (unsafe after safe) mds reply
[net-next-2.6.git] / fs / ceph / mds_client.c
1 #include "ceph_debug.h"
2
3 #include <linux/wait.h>
4 #include <linux/slab.h>
5 #include <linux/sched.h>
6
7 #include "mds_client.h"
8 #include "mon_client.h"
9 #include "super.h"
10 #include "messenger.h"
11 #include "decode.h"
12 #include "auth.h"
13 #include "pagelist.h"
14
15 /*
16  * A cluster of MDS (metadata server) daemons is responsible for
17  * managing the file system namespace (the directory hierarchy and
18  * inodes) and for coordinating shared access to storage.  Metadata is
19  * partitioning hierarchically across a number of servers, and that
20  * partition varies over time as the cluster adjusts the distribution
21  * in order to balance load.
22  *
23  * The MDS client is primarily responsible to managing synchronous
24  * metadata requests for operations like open, unlink, and so forth.
25  * If there is a MDS failure, we find out about it when we (possibly
26  * request and) receive a new MDS map, and can resubmit affected
27  * requests.
28  *
29  * For the most part, though, we take advantage of a lossless
30  * communications channel to the MDS, and do not need to worry about
31  * timing out or resubmitting requests.
32  *
33  * We maintain a stateful "session" with each MDS we interact with.
34  * Within each session, we sent periodic heartbeat messages to ensure
35  * any capabilities or leases we have been issues remain valid.  If
36  * the session times out and goes stale, our leases and capabilities
37  * are no longer valid.
38  */
39
40 static void __wake_requests(struct ceph_mds_client *mdsc,
41                             struct list_head *head);
42
43 const static struct ceph_connection_operations mds_con_ops;
44
45
46 /*
47  * mds reply parsing
48  */
49
50 /*
51  * parse individual inode info
52  */
53 static int parse_reply_info_in(void **p, void *end,
54                                struct ceph_mds_reply_info_in *info)
55 {
56         int err = -EIO;
57
58         info->in = *p;
59         *p += sizeof(struct ceph_mds_reply_inode) +
60                 sizeof(*info->in->fragtree.splits) *
61                 le32_to_cpu(info->in->fragtree.nsplits);
62
63         ceph_decode_32_safe(p, end, info->symlink_len, bad);
64         ceph_decode_need(p, end, info->symlink_len, bad);
65         info->symlink = *p;
66         *p += info->symlink_len;
67
68         ceph_decode_32_safe(p, end, info->xattr_len, bad);
69         ceph_decode_need(p, end, info->xattr_len, bad);
70         info->xattr_data = *p;
71         *p += info->xattr_len;
72         return 0;
73 bad:
74         return err;
75 }
76
77 /*
78  * parse a normal reply, which may contain a (dir+)dentry and/or a
79  * target inode.
80  */
81 static int parse_reply_info_trace(void **p, void *end,
82                                   struct ceph_mds_reply_info_parsed *info)
83 {
84         int err;
85
86         if (info->head->is_dentry) {
87                 err = parse_reply_info_in(p, end, &info->diri);
88                 if (err < 0)
89                         goto out_bad;
90
91                 if (unlikely(*p + sizeof(*info->dirfrag) > end))
92                         goto bad;
93                 info->dirfrag = *p;
94                 *p += sizeof(*info->dirfrag) +
95                         sizeof(u32)*le32_to_cpu(info->dirfrag->ndist);
96                 if (unlikely(*p > end))
97                         goto bad;
98
99                 ceph_decode_32_safe(p, end, info->dname_len, bad);
100                 ceph_decode_need(p, end, info->dname_len, bad);
101                 info->dname = *p;
102                 *p += info->dname_len;
103                 info->dlease = *p;
104                 *p += sizeof(*info->dlease);
105         }
106
107         if (info->head->is_target) {
108                 err = parse_reply_info_in(p, end, &info->targeti);
109                 if (err < 0)
110                         goto out_bad;
111         }
112
113         if (unlikely(*p != end))
114                 goto bad;
115         return 0;
116
117 bad:
118         err = -EIO;
119 out_bad:
120         pr_err("problem parsing mds trace %d\n", err);
121         return err;
122 }
123
124 /*
125  * parse readdir results
126  */
127 static int parse_reply_info_dir(void **p, void *end,
128                                 struct ceph_mds_reply_info_parsed *info)
129 {
130         u32 num, i = 0;
131         int err;
132
133         info->dir_dir = *p;
134         if (*p + sizeof(*info->dir_dir) > end)
135                 goto bad;
136         *p += sizeof(*info->dir_dir) +
137                 sizeof(u32)*le32_to_cpu(info->dir_dir->ndist);
138         if (*p > end)
139                 goto bad;
140
141         ceph_decode_need(p, end, sizeof(num) + 2, bad);
142         num = ceph_decode_32(p);
143         info->dir_end = ceph_decode_8(p);
144         info->dir_complete = ceph_decode_8(p);
145         if (num == 0)
146                 goto done;
147
148         /* alloc large array */
149         info->dir_nr = num;
150         info->dir_in = kcalloc(num, sizeof(*info->dir_in) +
151                                sizeof(*info->dir_dname) +
152                                sizeof(*info->dir_dname_len) +
153                                sizeof(*info->dir_dlease),
154                                GFP_NOFS);
155         if (info->dir_in == NULL) {
156                 err = -ENOMEM;
157                 goto out_bad;
158         }
159         info->dir_dname = (void *)(info->dir_in + num);
160         info->dir_dname_len = (void *)(info->dir_dname + num);
161         info->dir_dlease = (void *)(info->dir_dname_len + num);
162
163         while (num) {
164                 /* dentry */
165                 ceph_decode_need(p, end, sizeof(u32)*2, bad);
166                 info->dir_dname_len[i] = ceph_decode_32(p);
167                 ceph_decode_need(p, end, info->dir_dname_len[i], bad);
168                 info->dir_dname[i] = *p;
169                 *p += info->dir_dname_len[i];
170                 dout("parsed dir dname '%.*s'\n", info->dir_dname_len[i],
171                      info->dir_dname[i]);
172                 info->dir_dlease[i] = *p;
173                 *p += sizeof(struct ceph_mds_reply_lease);
174
175                 /* inode */
176                 err = parse_reply_info_in(p, end, &info->dir_in[i]);
177                 if (err < 0)
178                         goto out_bad;
179                 i++;
180                 num--;
181         }
182
183 done:
184         if (*p != end)
185                 goto bad;
186         return 0;
187
188 bad:
189         err = -EIO;
190 out_bad:
191         pr_err("problem parsing dir contents %d\n", err);
192         return err;
193 }
194
195 /*
196  * parse entire mds reply
197  */
198 static int parse_reply_info(struct ceph_msg *msg,
199                             struct ceph_mds_reply_info_parsed *info)
200 {
201         void *p, *end;
202         u32 len;
203         int err;
204
205         info->head = msg->front.iov_base;
206         p = msg->front.iov_base + sizeof(struct ceph_mds_reply_head);
207         end = p + msg->front.iov_len - sizeof(struct ceph_mds_reply_head);
208
209         /* trace */
210         ceph_decode_32_safe(&p, end, len, bad);
211         if (len > 0) {
212                 err = parse_reply_info_trace(&p, p+len, info);
213                 if (err < 0)
214                         goto out_bad;
215         }
216
217         /* dir content */
218         ceph_decode_32_safe(&p, end, len, bad);
219         if (len > 0) {
220                 err = parse_reply_info_dir(&p, p+len, info);
221                 if (err < 0)
222                         goto out_bad;
223         }
224
225         /* snap blob */
226         ceph_decode_32_safe(&p, end, len, bad);
227         info->snapblob_len = len;
228         info->snapblob = p;
229         p += len;
230
231         if (p != end)
232                 goto bad;
233         return 0;
234
235 bad:
236         err = -EIO;
237 out_bad:
238         pr_err("mds parse_reply err %d\n", err);
239         return err;
240 }
241
242 static void destroy_reply_info(struct ceph_mds_reply_info_parsed *info)
243 {
244         kfree(info->dir_in);
245 }
246
247
248 /*
249  * sessions
250  */
251 static const char *session_state_name(int s)
252 {
253         switch (s) {
254         case CEPH_MDS_SESSION_NEW: return "new";
255         case CEPH_MDS_SESSION_OPENING: return "opening";
256         case CEPH_MDS_SESSION_OPEN: return "open";
257         case CEPH_MDS_SESSION_HUNG: return "hung";
258         case CEPH_MDS_SESSION_CLOSING: return "closing";
259         case CEPH_MDS_SESSION_RESTARTING: return "restarting";
260         case CEPH_MDS_SESSION_RECONNECTING: return "reconnecting";
261         default: return "???";
262         }
263 }
264
265 static struct ceph_mds_session *get_session(struct ceph_mds_session *s)
266 {
267         if (atomic_inc_not_zero(&s->s_ref)) {
268                 dout("mdsc get_session %p %d -> %d\n", s,
269                      atomic_read(&s->s_ref)-1, atomic_read(&s->s_ref));
270                 return s;
271         } else {
272                 dout("mdsc get_session %p 0 -- FAIL", s);
273                 return NULL;
274         }
275 }
276
277 void ceph_put_mds_session(struct ceph_mds_session *s)
278 {
279         dout("mdsc put_session %p %d -> %d\n", s,
280              atomic_read(&s->s_ref), atomic_read(&s->s_ref)-1);
281         if (atomic_dec_and_test(&s->s_ref)) {
282                 if (s->s_authorizer)
283                         s->s_mdsc->client->monc.auth->ops->destroy_authorizer(
284                                 s->s_mdsc->client->monc.auth, s->s_authorizer);
285                 kfree(s);
286         }
287 }
288
289 /*
290  * called under mdsc->mutex
291  */
292 struct ceph_mds_session *__ceph_lookup_mds_session(struct ceph_mds_client *mdsc,
293                                                    int mds)
294 {
295         struct ceph_mds_session *session;
296
297         if (mds >= mdsc->max_sessions || mdsc->sessions[mds] == NULL)
298                 return NULL;
299         session = mdsc->sessions[mds];
300         dout("lookup_mds_session %p %d\n", session,
301              atomic_read(&session->s_ref));
302         get_session(session);
303         return session;
304 }
305
306 static bool __have_session(struct ceph_mds_client *mdsc, int mds)
307 {
308         if (mds >= mdsc->max_sessions)
309                 return false;
310         return mdsc->sessions[mds];
311 }
312
313 static int __verify_registered_session(struct ceph_mds_client *mdsc,
314                                        struct ceph_mds_session *s)
315 {
316         if (s->s_mds >= mdsc->max_sessions ||
317             mdsc->sessions[s->s_mds] != s)
318                 return -ENOENT;
319         return 0;
320 }
321
322 /*
323  * create+register a new session for given mds.
324  * called under mdsc->mutex.
325  */
326 static struct ceph_mds_session *register_session(struct ceph_mds_client *mdsc,
327                                                  int mds)
328 {
329         struct ceph_mds_session *s;
330
331         s = kzalloc(sizeof(*s), GFP_NOFS);
332         if (!s)
333                 return ERR_PTR(-ENOMEM);
334         s->s_mdsc = mdsc;
335         s->s_mds = mds;
336         s->s_state = CEPH_MDS_SESSION_NEW;
337         s->s_ttl = 0;
338         s->s_seq = 0;
339         mutex_init(&s->s_mutex);
340
341         ceph_con_init(mdsc->client->msgr, &s->s_con);
342         s->s_con.private = s;
343         s->s_con.ops = &mds_con_ops;
344         s->s_con.peer_name.type = CEPH_ENTITY_TYPE_MDS;
345         s->s_con.peer_name.num = cpu_to_le64(mds);
346
347         spin_lock_init(&s->s_cap_lock);
348         s->s_cap_gen = 0;
349         s->s_cap_ttl = 0;
350         s->s_renew_requested = 0;
351         s->s_renew_seq = 0;
352         INIT_LIST_HEAD(&s->s_caps);
353         s->s_nr_caps = 0;
354         s->s_trim_caps = 0;
355         atomic_set(&s->s_ref, 1);
356         INIT_LIST_HEAD(&s->s_waiting);
357         INIT_LIST_HEAD(&s->s_unsafe);
358         s->s_num_cap_releases = 0;
359         s->s_cap_iterator = NULL;
360         INIT_LIST_HEAD(&s->s_cap_releases);
361         INIT_LIST_HEAD(&s->s_cap_releases_done);
362         INIT_LIST_HEAD(&s->s_cap_flushing);
363         INIT_LIST_HEAD(&s->s_cap_snaps_flushing);
364
365         dout("register_session mds%d\n", mds);
366         if (mds >= mdsc->max_sessions) {
367                 int newmax = 1 << get_count_order(mds+1);
368                 struct ceph_mds_session **sa;
369
370                 dout("register_session realloc to %d\n", newmax);
371                 sa = kcalloc(newmax, sizeof(void *), GFP_NOFS);
372                 if (sa == NULL)
373                         goto fail_realloc;
374                 if (mdsc->sessions) {
375                         memcpy(sa, mdsc->sessions,
376                                mdsc->max_sessions * sizeof(void *));
377                         kfree(mdsc->sessions);
378                 }
379                 mdsc->sessions = sa;
380                 mdsc->max_sessions = newmax;
381         }
382         mdsc->sessions[mds] = s;
383         atomic_inc(&s->s_ref);  /* one ref to sessions[], one to caller */
384
385         ceph_con_open(&s->s_con, ceph_mdsmap_get_addr(mdsc->mdsmap, mds));
386
387         return s;
388
389 fail_realloc:
390         kfree(s);
391         return ERR_PTR(-ENOMEM);
392 }
393
394 /*
395  * called under mdsc->mutex
396  */
397 static void __unregister_session(struct ceph_mds_client *mdsc,
398                                struct ceph_mds_session *s)
399 {
400         dout("__unregister_session mds%d %p\n", s->s_mds, s);
401         BUG_ON(mdsc->sessions[s->s_mds] != s);
402         mdsc->sessions[s->s_mds] = NULL;
403         ceph_con_close(&s->s_con);
404         ceph_put_mds_session(s);
405 }
406
407 /*
408  * drop session refs in request.
409  *
410  * should be last request ref, or hold mdsc->mutex
411  */
412 static void put_request_session(struct ceph_mds_request *req)
413 {
414         if (req->r_session) {
415                 ceph_put_mds_session(req->r_session);
416                 req->r_session = NULL;
417         }
418 }
419
420 void ceph_mdsc_release_request(struct kref *kref)
421 {
422         struct ceph_mds_request *req = container_of(kref,
423                                                     struct ceph_mds_request,
424                                                     r_kref);
425         if (req->r_request)
426                 ceph_msg_put(req->r_request);
427         if (req->r_reply) {
428                 ceph_msg_put(req->r_reply);
429                 destroy_reply_info(&req->r_reply_info);
430         }
431         if (req->r_inode) {
432                 ceph_put_cap_refs(ceph_inode(req->r_inode),
433                                   CEPH_CAP_PIN);
434                 iput(req->r_inode);
435         }
436         if (req->r_locked_dir)
437                 ceph_put_cap_refs(ceph_inode(req->r_locked_dir),
438                                   CEPH_CAP_PIN);
439         if (req->r_target_inode)
440                 iput(req->r_target_inode);
441         if (req->r_dentry)
442                 dput(req->r_dentry);
443         if (req->r_old_dentry) {
444                 ceph_put_cap_refs(
445                         ceph_inode(req->r_old_dentry->d_parent->d_inode),
446                         CEPH_CAP_PIN);
447                 dput(req->r_old_dentry);
448         }
449         kfree(req->r_path1);
450         kfree(req->r_path2);
451         put_request_session(req);
452         ceph_unreserve_caps(&req->r_caps_reservation);
453         kfree(req);
454 }
455
456 /*
457  * lookup session, bump ref if found.
458  *
459  * called under mdsc->mutex.
460  */
461 static struct ceph_mds_request *__lookup_request(struct ceph_mds_client *mdsc,
462                                              u64 tid)
463 {
464         struct ceph_mds_request *req;
465         struct rb_node *n = mdsc->request_tree.rb_node;
466
467         while (n) {
468                 req = rb_entry(n, struct ceph_mds_request, r_node);
469                 if (tid < req->r_tid)
470                         n = n->rb_left;
471                 else if (tid > req->r_tid)
472                         n = n->rb_right;
473                 else {
474                         ceph_mdsc_get_request(req);
475                         return req;
476                 }
477         }
478         return NULL;
479 }
480
481 static void __insert_request(struct ceph_mds_client *mdsc,
482                              struct ceph_mds_request *new)
483 {
484         struct rb_node **p = &mdsc->request_tree.rb_node;
485         struct rb_node *parent = NULL;
486         struct ceph_mds_request *req = NULL;
487
488         while (*p) {
489                 parent = *p;
490                 req = rb_entry(parent, struct ceph_mds_request, r_node);
491                 if (new->r_tid < req->r_tid)
492                         p = &(*p)->rb_left;
493                 else if (new->r_tid > req->r_tid)
494                         p = &(*p)->rb_right;
495                 else
496                         BUG();
497         }
498
499         rb_link_node(&new->r_node, parent, p);
500         rb_insert_color(&new->r_node, &mdsc->request_tree);
501 }
502
503 /*
504  * Register an in-flight request, and assign a tid.  Link to directory
505  * are modifying (if any).
506  *
507  * Called under mdsc->mutex.
508  */
509 static void __register_request(struct ceph_mds_client *mdsc,
510                                struct ceph_mds_request *req,
511                                struct inode *dir)
512 {
513         req->r_tid = ++mdsc->last_tid;
514         if (req->r_num_caps)
515                 ceph_reserve_caps(&req->r_caps_reservation, req->r_num_caps);
516         dout("__register_request %p tid %lld\n", req, req->r_tid);
517         ceph_mdsc_get_request(req);
518         __insert_request(mdsc, req);
519
520         if (dir) {
521                 struct ceph_inode_info *ci = ceph_inode(dir);
522
523                 spin_lock(&ci->i_unsafe_lock);
524                 req->r_unsafe_dir = dir;
525                 list_add_tail(&req->r_unsafe_dir_item, &ci->i_unsafe_dirops);
526                 spin_unlock(&ci->i_unsafe_lock);
527         }
528 }
529
530 static void __unregister_request(struct ceph_mds_client *mdsc,
531                                  struct ceph_mds_request *req)
532 {
533         dout("__unregister_request %p tid %lld\n", req, req->r_tid);
534         rb_erase(&req->r_node, &mdsc->request_tree);
535         RB_CLEAR_NODE(&req->r_node);
536
537         if (req->r_unsafe_dir) {
538                 struct ceph_inode_info *ci = ceph_inode(req->r_unsafe_dir);
539
540                 spin_lock(&ci->i_unsafe_lock);
541                 list_del_init(&req->r_unsafe_dir_item);
542                 spin_unlock(&ci->i_unsafe_lock);
543         }
544
545         ceph_mdsc_put_request(req);
546 }
547
548 /*
549  * Choose mds to send request to next.  If there is a hint set in the
550  * request (e.g., due to a prior forward hint from the mds), use that.
551  * Otherwise, consult frag tree and/or caps to identify the
552  * appropriate mds.  If all else fails, choose randomly.
553  *
554  * Called under mdsc->mutex.
555  */
556 static int __choose_mds(struct ceph_mds_client *mdsc,
557                         struct ceph_mds_request *req)
558 {
559         struct inode *inode;
560         struct ceph_inode_info *ci;
561         struct ceph_cap *cap;
562         int mode = req->r_direct_mode;
563         int mds = -1;
564         u32 hash = req->r_direct_hash;
565         bool is_hash = req->r_direct_is_hash;
566
567         /*
568          * is there a specific mds we should try?  ignore hint if we have
569          * no session and the mds is not up (active or recovering).
570          */
571         if (req->r_resend_mds >= 0 &&
572             (__have_session(mdsc, req->r_resend_mds) ||
573              ceph_mdsmap_get_state(mdsc->mdsmap, req->r_resend_mds) > 0)) {
574                 dout("choose_mds using resend_mds mds%d\n",
575                      req->r_resend_mds);
576                 return req->r_resend_mds;
577         }
578
579         if (mode == USE_RANDOM_MDS)
580                 goto random;
581
582         inode = NULL;
583         if (req->r_inode) {
584                 inode = req->r_inode;
585         } else if (req->r_dentry) {
586                 if (req->r_dentry->d_inode) {
587                         inode = req->r_dentry->d_inode;
588                 } else {
589                         inode = req->r_dentry->d_parent->d_inode;
590                         hash = req->r_dentry->d_name.hash;
591                         is_hash = true;
592                 }
593         }
594         dout("__choose_mds %p is_hash=%d (%d) mode %d\n", inode, (int)is_hash,
595              (int)hash, mode);
596         if (!inode)
597                 goto random;
598         ci = ceph_inode(inode);
599
600         if (is_hash && S_ISDIR(inode->i_mode)) {
601                 struct ceph_inode_frag frag;
602                 int found;
603
604                 ceph_choose_frag(ci, hash, &frag, &found);
605                 if (found) {
606                         if (mode == USE_ANY_MDS && frag.ndist > 0) {
607                                 u8 r;
608
609                                 /* choose a random replica */
610                                 get_random_bytes(&r, 1);
611                                 r %= frag.ndist;
612                                 mds = frag.dist[r];
613                                 dout("choose_mds %p %llx.%llx "
614                                      "frag %u mds%d (%d/%d)\n",
615                                      inode, ceph_vinop(inode),
616                                      frag.frag, frag.mds,
617                                      (int)r, frag.ndist);
618                                 return mds;
619                         }
620
621                         /* since this file/dir wasn't known to be
622                          * replicated, then we want to look for the
623                          * authoritative mds. */
624                         mode = USE_AUTH_MDS;
625                         if (frag.mds >= 0) {
626                                 /* choose auth mds */
627                                 mds = frag.mds;
628                                 dout("choose_mds %p %llx.%llx "
629                                      "frag %u mds%d (auth)\n",
630                                      inode, ceph_vinop(inode), frag.frag, mds);
631                                 return mds;
632                         }
633                 }
634         }
635
636         spin_lock(&inode->i_lock);
637         cap = NULL;
638         if (mode == USE_AUTH_MDS)
639                 cap = ci->i_auth_cap;
640         if (!cap && !RB_EMPTY_ROOT(&ci->i_caps))
641                 cap = rb_entry(rb_first(&ci->i_caps), struct ceph_cap, ci_node);
642         if (!cap) {
643                 spin_unlock(&inode->i_lock);
644                 goto random;
645         }
646         mds = cap->session->s_mds;
647         dout("choose_mds %p %llx.%llx mds%d (%scap %p)\n",
648              inode, ceph_vinop(inode), mds,
649              cap == ci->i_auth_cap ? "auth " : "", cap);
650         spin_unlock(&inode->i_lock);
651         return mds;
652
653 random:
654         mds = ceph_mdsmap_get_random_mds(mdsc->mdsmap);
655         dout("choose_mds chose random mds%d\n", mds);
656         return mds;
657 }
658
659
660 /*
661  * session messages
662  */
663 static struct ceph_msg *create_session_msg(u32 op, u64 seq)
664 {
665         struct ceph_msg *msg;
666         struct ceph_mds_session_head *h;
667
668         msg = ceph_msg_new(CEPH_MSG_CLIENT_SESSION, sizeof(*h));
669         if (!msg) {
670                 pr_err("create_session_msg ENOMEM creating msg\n");
671                 return NULL;
672         }
673         h = msg->front.iov_base;
674         h->op = cpu_to_le32(op);
675         h->seq = cpu_to_le64(seq);
676         return msg;
677 }
678
679 /*
680  * send session open request.
681  *
682  * called under mdsc->mutex
683  */
684 static int __open_session(struct ceph_mds_client *mdsc,
685                           struct ceph_mds_session *session)
686 {
687         struct ceph_msg *msg;
688         int mstate;
689         int mds = session->s_mds;
690
691         /* wait for mds to go active? */
692         mstate = ceph_mdsmap_get_state(mdsc->mdsmap, mds);
693         dout("open_session to mds%d (%s)\n", mds,
694              ceph_mds_state_name(mstate));
695         session->s_state = CEPH_MDS_SESSION_OPENING;
696         session->s_renew_requested = jiffies;
697
698         /* send connect message */
699         msg = create_session_msg(CEPH_SESSION_REQUEST_OPEN, session->s_seq);
700         if (!msg)
701                 return -ENOMEM;
702         ceph_con_send(&session->s_con, msg);
703         return 0;
704 }
705
706 /*
707  * session caps
708  */
709
710 /*
711  * Free preallocated cap messages assigned to this session
712  */
713 static void cleanup_cap_releases(struct ceph_mds_session *session)
714 {
715         struct ceph_msg *msg;
716
717         spin_lock(&session->s_cap_lock);
718         while (!list_empty(&session->s_cap_releases)) {
719                 msg = list_first_entry(&session->s_cap_releases,
720                                        struct ceph_msg, list_head);
721                 list_del_init(&msg->list_head);
722                 ceph_msg_put(msg);
723         }
724         while (!list_empty(&session->s_cap_releases_done)) {
725                 msg = list_first_entry(&session->s_cap_releases_done,
726                                        struct ceph_msg, list_head);
727                 list_del_init(&msg->list_head);
728                 ceph_msg_put(msg);
729         }
730         spin_unlock(&session->s_cap_lock);
731 }
732
733 /*
734  * Helper to safely iterate over all caps associated with a session, with
735  * special care taken to handle a racing __ceph_remove_cap().
736  *
737  * Caller must hold session s_mutex.
738  */
739 static int iterate_session_caps(struct ceph_mds_session *session,
740                                  int (*cb)(struct inode *, struct ceph_cap *,
741                                             void *), void *arg)
742 {
743         struct list_head *p;
744         struct ceph_cap *cap;
745         struct inode *inode, *last_inode = NULL;
746         struct ceph_cap *old_cap = NULL;
747         int ret;
748
749         dout("iterate_session_caps %p mds%d\n", session, session->s_mds);
750         spin_lock(&session->s_cap_lock);
751         p = session->s_caps.next;
752         while (p != &session->s_caps) {
753                 cap = list_entry(p, struct ceph_cap, session_caps);
754                 inode = igrab(&cap->ci->vfs_inode);
755                 if (!inode) {
756                         p = p->next;
757                         continue;
758                 }
759                 session->s_cap_iterator = cap;
760                 spin_unlock(&session->s_cap_lock);
761
762                 if (last_inode) {
763                         iput(last_inode);
764                         last_inode = NULL;
765                 }
766                 if (old_cap) {
767                         ceph_put_cap(old_cap);
768                         old_cap = NULL;
769                 }
770
771                 ret = cb(inode, cap, arg);
772                 last_inode = inode;
773
774                 spin_lock(&session->s_cap_lock);
775                 p = p->next;
776                 if (cap->ci == NULL) {
777                         dout("iterate_session_caps  finishing cap %p removal\n",
778                              cap);
779                         BUG_ON(cap->session != session);
780                         list_del_init(&cap->session_caps);
781                         session->s_nr_caps--;
782                         cap->session = NULL;
783                         old_cap = cap;  /* put_cap it w/o locks held */
784                 }
785                 if (ret < 0)
786                         goto out;
787         }
788         ret = 0;
789 out:
790         session->s_cap_iterator = NULL;
791         spin_unlock(&session->s_cap_lock);
792
793         if (last_inode)
794                 iput(last_inode);
795         if (old_cap)
796                 ceph_put_cap(old_cap);
797
798         return ret;
799 }
800
801 static int remove_session_caps_cb(struct inode *inode, struct ceph_cap *cap,
802                                   void *arg)
803 {
804         struct ceph_inode_info *ci = ceph_inode(inode);
805         int drop = 0;
806
807         dout("removing cap %p, ci is %p, inode is %p\n",
808              cap, ci, &ci->vfs_inode);
809         spin_lock(&inode->i_lock);
810         __ceph_remove_cap(cap);
811         if (!__ceph_is_any_real_caps(ci)) {
812                 struct ceph_mds_client *mdsc =
813                         &ceph_sb_to_client(inode->i_sb)->mdsc;
814
815                 spin_lock(&mdsc->cap_dirty_lock);
816                 if (!list_empty(&ci->i_dirty_item)) {
817                         pr_info(" dropping dirty %s state for %p %lld\n",
818                                 ceph_cap_string(ci->i_dirty_caps),
819                                 inode, ceph_ino(inode));
820                         ci->i_dirty_caps = 0;
821                         list_del_init(&ci->i_dirty_item);
822                         drop = 1;
823                 }
824                 if (!list_empty(&ci->i_flushing_item)) {
825                         pr_info(" dropping dirty+flushing %s state for %p %lld\n",
826                                 ceph_cap_string(ci->i_flushing_caps),
827                                 inode, ceph_ino(inode));
828                         ci->i_flushing_caps = 0;
829                         list_del_init(&ci->i_flushing_item);
830                         mdsc->num_cap_flushing--;
831                         drop = 1;
832                 }
833                 if (drop && ci->i_wrbuffer_ref) {
834                         pr_info(" dropping dirty data for %p %lld\n",
835                                 inode, ceph_ino(inode));
836                         ci->i_wrbuffer_ref = 0;
837                         ci->i_wrbuffer_ref_head = 0;
838                         drop++;
839                 }
840                 spin_unlock(&mdsc->cap_dirty_lock);
841         }
842         spin_unlock(&inode->i_lock);
843         while (drop--)
844                 iput(inode);
845         return 0;
846 }
847
848 /*
849  * caller must hold session s_mutex
850  */
851 static void remove_session_caps(struct ceph_mds_session *session)
852 {
853         dout("remove_session_caps on %p\n", session);
854         iterate_session_caps(session, remove_session_caps_cb, NULL);
855         BUG_ON(session->s_nr_caps > 0);
856         BUG_ON(!list_empty(&session->s_cap_flushing));
857         cleanup_cap_releases(session);
858 }
859
860 /*
861  * wake up any threads waiting on this session's caps.  if the cap is
862  * old (didn't get renewed on the client reconnect), remove it now.
863  *
864  * caller must hold s_mutex.
865  */
866 static int wake_up_session_cb(struct inode *inode, struct ceph_cap *cap,
867                               void *arg)
868 {
869         struct ceph_inode_info *ci = ceph_inode(inode);
870
871         wake_up(&ci->i_cap_wq);
872         if (arg) {
873                 spin_lock(&inode->i_lock);
874                 ci->i_wanted_max_size = 0;
875                 ci->i_requested_max_size = 0;
876                 spin_unlock(&inode->i_lock);
877         }
878         return 0;
879 }
880
881 static void wake_up_session_caps(struct ceph_mds_session *session,
882                                  int reconnect)
883 {
884         dout("wake_up_session_caps %p mds%d\n", session, session->s_mds);
885         iterate_session_caps(session, wake_up_session_cb,
886                              (void *)(unsigned long)reconnect);
887 }
888
889 /*
890  * Send periodic message to MDS renewing all currently held caps.  The
891  * ack will reset the expiration for all caps from this session.
892  *
893  * caller holds s_mutex
894  */
895 static int send_renew_caps(struct ceph_mds_client *mdsc,
896                            struct ceph_mds_session *session)
897 {
898         struct ceph_msg *msg;
899         int state;
900
901         if (time_after_eq(jiffies, session->s_cap_ttl) &&
902             time_after_eq(session->s_cap_ttl, session->s_renew_requested))
903                 pr_info("mds%d caps stale\n", session->s_mds);
904         session->s_renew_requested = jiffies;
905
906         /* do not try to renew caps until a recovering mds has reconnected
907          * with its clients. */
908         state = ceph_mdsmap_get_state(mdsc->mdsmap, session->s_mds);
909         if (state < CEPH_MDS_STATE_RECONNECT) {
910                 dout("send_renew_caps ignoring mds%d (%s)\n",
911                      session->s_mds, ceph_mds_state_name(state));
912                 return 0;
913         }
914
915         dout("send_renew_caps to mds%d (%s)\n", session->s_mds,
916                 ceph_mds_state_name(state));
917         msg = create_session_msg(CEPH_SESSION_REQUEST_RENEWCAPS,
918                                  ++session->s_renew_seq);
919         if (!msg)
920                 return -ENOMEM;
921         ceph_con_send(&session->s_con, msg);
922         return 0;
923 }
924
925 /*
926  * Note new cap ttl, and any transition from stale -> not stale (fresh?).
927  *
928  * Called under session->s_mutex
929  */
930 static void renewed_caps(struct ceph_mds_client *mdsc,
931                          struct ceph_mds_session *session, int is_renew)
932 {
933         int was_stale;
934         int wake = 0;
935
936         spin_lock(&session->s_cap_lock);
937         was_stale = is_renew && (session->s_cap_ttl == 0 ||
938                                  time_after_eq(jiffies, session->s_cap_ttl));
939
940         session->s_cap_ttl = session->s_renew_requested +
941                 mdsc->mdsmap->m_session_timeout*HZ;
942
943         if (was_stale) {
944                 if (time_before(jiffies, session->s_cap_ttl)) {
945                         pr_info("mds%d caps renewed\n", session->s_mds);
946                         wake = 1;
947                 } else {
948                         pr_info("mds%d caps still stale\n", session->s_mds);
949                 }
950         }
951         dout("renewed_caps mds%d ttl now %lu, was %s, now %s\n",
952              session->s_mds, session->s_cap_ttl, was_stale ? "stale" : "fresh",
953              time_before(jiffies, session->s_cap_ttl) ? "stale" : "fresh");
954         spin_unlock(&session->s_cap_lock);
955
956         if (wake)
957                 wake_up_session_caps(session, 0);
958 }
959
960 /*
961  * send a session close request
962  */
963 static int request_close_session(struct ceph_mds_client *mdsc,
964                                  struct ceph_mds_session *session)
965 {
966         struct ceph_msg *msg;
967
968         dout("request_close_session mds%d state %s seq %lld\n",
969              session->s_mds, session_state_name(session->s_state),
970              session->s_seq);
971         msg = create_session_msg(CEPH_SESSION_REQUEST_CLOSE, session->s_seq);
972         if (!msg)
973                 return -ENOMEM;
974         ceph_con_send(&session->s_con, msg);
975         return 0;
976 }
977
978 /*
979  * Called with s_mutex held.
980  */
981 static int __close_session(struct ceph_mds_client *mdsc,
982                          struct ceph_mds_session *session)
983 {
984         if (session->s_state >= CEPH_MDS_SESSION_CLOSING)
985                 return 0;
986         session->s_state = CEPH_MDS_SESSION_CLOSING;
987         return request_close_session(mdsc, session);
988 }
989
990 /*
991  * Trim old(er) caps.
992  *
993  * Because we can't cache an inode without one or more caps, we do
994  * this indirectly: if a cap is unused, we prune its aliases, at which
995  * point the inode will hopefully get dropped to.
996  *
997  * Yes, this is a bit sloppy.  Our only real goal here is to respond to
998  * memory pressure from the MDS, though, so it needn't be perfect.
999  */
1000 static int trim_caps_cb(struct inode *inode, struct ceph_cap *cap, void *arg)
1001 {
1002         struct ceph_mds_session *session = arg;
1003         struct ceph_inode_info *ci = ceph_inode(inode);
1004         int used, oissued, mine;
1005
1006         if (session->s_trim_caps <= 0)
1007                 return -1;
1008
1009         spin_lock(&inode->i_lock);
1010         mine = cap->issued | cap->implemented;
1011         used = __ceph_caps_used(ci);
1012         oissued = __ceph_caps_issued_other(ci, cap);
1013
1014         dout("trim_caps_cb %p cap %p mine %s oissued %s used %s\n",
1015              inode, cap, ceph_cap_string(mine), ceph_cap_string(oissued),
1016              ceph_cap_string(used));
1017         if (ci->i_dirty_caps)
1018                 goto out;   /* dirty caps */
1019         if ((used & ~oissued) & mine)
1020                 goto out;   /* we need these caps */
1021
1022         session->s_trim_caps--;
1023         if (oissued) {
1024                 /* we aren't the only cap.. just remove us */
1025                 __ceph_remove_cap(cap);
1026         } else {
1027                 /* try to drop referring dentries */
1028                 spin_unlock(&inode->i_lock);
1029                 d_prune_aliases(inode);
1030                 dout("trim_caps_cb %p cap %p  pruned, count now %d\n",
1031                      inode, cap, atomic_read(&inode->i_count));
1032                 return 0;
1033         }
1034
1035 out:
1036         spin_unlock(&inode->i_lock);
1037         return 0;
1038 }
1039
1040 /*
1041  * Trim session cap count down to some max number.
1042  */
1043 static int trim_caps(struct ceph_mds_client *mdsc,
1044                      struct ceph_mds_session *session,
1045                      int max_caps)
1046 {
1047         int trim_caps = session->s_nr_caps - max_caps;
1048
1049         dout("trim_caps mds%d start: %d / %d, trim %d\n",
1050              session->s_mds, session->s_nr_caps, max_caps, trim_caps);
1051         if (trim_caps > 0) {
1052                 session->s_trim_caps = trim_caps;
1053                 iterate_session_caps(session, trim_caps_cb, session);
1054                 dout("trim_caps mds%d done: %d / %d, trimmed %d\n",
1055                      session->s_mds, session->s_nr_caps, max_caps,
1056                         trim_caps - session->s_trim_caps);
1057                 session->s_trim_caps = 0;
1058         }
1059         return 0;
1060 }
1061
1062 /*
1063  * Allocate cap_release messages.  If there is a partially full message
1064  * in the queue, try to allocate enough to cover it's remainder, so that
1065  * we can send it immediately.
1066  *
1067  * Called under s_mutex.
1068  */
1069 static int add_cap_releases(struct ceph_mds_client *mdsc,
1070                             struct ceph_mds_session *session,
1071                             int extra)
1072 {
1073         struct ceph_msg *msg;
1074         struct ceph_mds_cap_release *head;
1075         int err = -ENOMEM;
1076
1077         if (extra < 0)
1078                 extra = mdsc->client->mount_args->cap_release_safety;
1079
1080         spin_lock(&session->s_cap_lock);
1081
1082         if (!list_empty(&session->s_cap_releases)) {
1083                 msg = list_first_entry(&session->s_cap_releases,
1084                                        struct ceph_msg,
1085                                  list_head);
1086                 head = msg->front.iov_base;
1087                 extra += CEPH_CAPS_PER_RELEASE - le32_to_cpu(head->num);
1088         }
1089
1090         while (session->s_num_cap_releases < session->s_nr_caps + extra) {
1091                 spin_unlock(&session->s_cap_lock);
1092                 msg = ceph_msg_new(CEPH_MSG_CLIENT_CAPRELEASE, PAGE_CACHE_SIZE);
1093                 if (!msg)
1094                         goto out_unlocked;
1095                 dout("add_cap_releases %p msg %p now %d\n", session, msg,
1096                      (int)msg->front.iov_len);
1097                 head = msg->front.iov_base;
1098                 head->num = cpu_to_le32(0);
1099                 msg->front.iov_len = sizeof(*head);
1100                 spin_lock(&session->s_cap_lock);
1101                 list_add(&msg->list_head, &session->s_cap_releases);
1102                 session->s_num_cap_releases += CEPH_CAPS_PER_RELEASE;
1103         }
1104
1105         if (!list_empty(&session->s_cap_releases)) {
1106                 msg = list_first_entry(&session->s_cap_releases,
1107                                        struct ceph_msg,
1108                                        list_head);
1109                 head = msg->front.iov_base;
1110                 if (head->num) {
1111                         dout(" queueing non-full %p (%d)\n", msg,
1112                              le32_to_cpu(head->num));
1113                         list_move_tail(&msg->list_head,
1114                                       &session->s_cap_releases_done);
1115                         session->s_num_cap_releases -=
1116                                 CEPH_CAPS_PER_RELEASE - le32_to_cpu(head->num);
1117                 }
1118         }
1119         err = 0;
1120         spin_unlock(&session->s_cap_lock);
1121 out_unlocked:
1122         return err;
1123 }
1124
1125 /*
1126  * flush all dirty inode data to disk.
1127  *
1128  * returns true if we've flushed through want_flush_seq
1129  */
1130 static int check_cap_flush(struct ceph_mds_client *mdsc, u64 want_flush_seq)
1131 {
1132         int mds, ret = 1;
1133
1134         dout("check_cap_flush want %lld\n", want_flush_seq);
1135         mutex_lock(&mdsc->mutex);
1136         for (mds = 0; ret && mds < mdsc->max_sessions; mds++) {
1137                 struct ceph_mds_session *session = mdsc->sessions[mds];
1138
1139                 if (!session)
1140                         continue;
1141                 get_session(session);
1142                 mutex_unlock(&mdsc->mutex);
1143
1144                 mutex_lock(&session->s_mutex);
1145                 if (!list_empty(&session->s_cap_flushing)) {
1146                         struct ceph_inode_info *ci =
1147                                 list_entry(session->s_cap_flushing.next,
1148                                            struct ceph_inode_info,
1149                                            i_flushing_item);
1150                         struct inode *inode = &ci->vfs_inode;
1151
1152                         spin_lock(&inode->i_lock);
1153                         if (ci->i_cap_flush_seq <= want_flush_seq) {
1154                                 dout("check_cap_flush still flushing %p "
1155                                      "seq %lld <= %lld to mds%d\n", inode,
1156                                      ci->i_cap_flush_seq, want_flush_seq,
1157                                      session->s_mds);
1158                                 ret = 0;
1159                         }
1160                         spin_unlock(&inode->i_lock);
1161                 }
1162                 mutex_unlock(&session->s_mutex);
1163                 ceph_put_mds_session(session);
1164
1165                 if (!ret)
1166                         return ret;
1167                 mutex_lock(&mdsc->mutex);
1168         }
1169
1170         mutex_unlock(&mdsc->mutex);
1171         dout("check_cap_flush ok, flushed thru %lld\n", want_flush_seq);
1172         return ret;
1173 }
1174
1175 /*
1176  * called under s_mutex
1177  */
1178 static void send_cap_releases(struct ceph_mds_client *mdsc,
1179                        struct ceph_mds_session *session)
1180 {
1181         struct ceph_msg *msg;
1182
1183         dout("send_cap_releases mds%d\n", session->s_mds);
1184         spin_lock(&session->s_cap_lock);
1185         while (!list_empty(&session->s_cap_releases_done)) {
1186                 msg = list_first_entry(&session->s_cap_releases_done,
1187                                  struct ceph_msg, list_head);
1188                 list_del_init(&msg->list_head);
1189                 spin_unlock(&session->s_cap_lock);
1190                 msg->hdr.front_len = cpu_to_le32(msg->front.iov_len);
1191                 dout("send_cap_releases mds%d %p\n", session->s_mds, msg);
1192                 ceph_con_send(&session->s_con, msg);
1193                 spin_lock(&session->s_cap_lock);
1194         }
1195         spin_unlock(&session->s_cap_lock);
1196 }
1197
1198 static void discard_cap_releases(struct ceph_mds_client *mdsc,
1199                                  struct ceph_mds_session *session)
1200 {
1201         struct ceph_msg *msg;
1202         struct ceph_mds_cap_release *head;
1203         unsigned num;
1204
1205         dout("discard_cap_releases mds%d\n", session->s_mds);
1206         spin_lock(&session->s_cap_lock);
1207
1208         /* zero out the in-progress message */
1209         msg = list_first_entry(&session->s_cap_releases,
1210                                struct ceph_msg, list_head);
1211         head = msg->front.iov_base;
1212         num = le32_to_cpu(head->num);
1213         dout("discard_cap_releases mds%d %p %u\n", session->s_mds, msg, num);
1214         head->num = cpu_to_le32(0);
1215         session->s_num_cap_releases += num;
1216
1217         /* requeue completed messages */
1218         while (!list_empty(&session->s_cap_releases_done)) {
1219                 msg = list_first_entry(&session->s_cap_releases_done,
1220                                  struct ceph_msg, list_head);
1221                 list_del_init(&msg->list_head);
1222
1223                 head = msg->front.iov_base;
1224                 num = le32_to_cpu(head->num);
1225                 dout("discard_cap_releases mds%d %p %u\n", session->s_mds, msg,
1226                      num);
1227                 session->s_num_cap_releases += num;
1228                 head->num = cpu_to_le32(0);
1229                 msg->front.iov_len = sizeof(*head);
1230                 list_add(&msg->list_head, &session->s_cap_releases);
1231         }
1232
1233         spin_unlock(&session->s_cap_lock);
1234 }
1235
1236 /*
1237  * requests
1238  */
1239
1240 /*
1241  * Create an mds request.
1242  */
1243 struct ceph_mds_request *
1244 ceph_mdsc_create_request(struct ceph_mds_client *mdsc, int op, int mode)
1245 {
1246         struct ceph_mds_request *req = kzalloc(sizeof(*req), GFP_NOFS);
1247
1248         if (!req)
1249                 return ERR_PTR(-ENOMEM);
1250
1251         mutex_init(&req->r_fill_mutex);
1252         req->r_started = jiffies;
1253         req->r_resend_mds = -1;
1254         INIT_LIST_HEAD(&req->r_unsafe_dir_item);
1255         req->r_fmode = -1;
1256         kref_init(&req->r_kref);
1257         INIT_LIST_HEAD(&req->r_wait);
1258         init_completion(&req->r_completion);
1259         init_completion(&req->r_safe_completion);
1260         INIT_LIST_HEAD(&req->r_unsafe_item);
1261
1262         req->r_op = op;
1263         req->r_direct_mode = mode;
1264         return req;
1265 }
1266
1267 /*
1268  * return oldest (lowest) request, tid in request tree, 0 if none.
1269  *
1270  * called under mdsc->mutex.
1271  */
1272 static struct ceph_mds_request *__get_oldest_req(struct ceph_mds_client *mdsc)
1273 {
1274         if (RB_EMPTY_ROOT(&mdsc->request_tree))
1275                 return NULL;
1276         return rb_entry(rb_first(&mdsc->request_tree),
1277                         struct ceph_mds_request, r_node);
1278 }
1279
1280 static u64 __get_oldest_tid(struct ceph_mds_client *mdsc)
1281 {
1282         struct ceph_mds_request *req = __get_oldest_req(mdsc);
1283
1284         if (req)
1285                 return req->r_tid;
1286         return 0;
1287 }
1288
1289 /*
1290  * Build a dentry's path.  Allocate on heap; caller must kfree.  Based
1291  * on build_path_from_dentry in fs/cifs/dir.c.
1292  *
1293  * If @stop_on_nosnap, generate path relative to the first non-snapped
1294  * inode.
1295  *
1296  * Encode hidden .snap dirs as a double /, i.e.
1297  *   foo/.snap/bar -> foo//bar
1298  */
1299 char *ceph_mdsc_build_path(struct dentry *dentry, int *plen, u64 *base,
1300                            int stop_on_nosnap)
1301 {
1302         struct dentry *temp;
1303         char *path;
1304         int len, pos;
1305
1306         if (dentry == NULL)
1307                 return ERR_PTR(-EINVAL);
1308
1309 retry:
1310         len = 0;
1311         for (temp = dentry; !IS_ROOT(temp);) {
1312                 struct inode *inode = temp->d_inode;
1313                 if (inode && ceph_snap(inode) == CEPH_SNAPDIR)
1314                         len++;  /* slash only */
1315                 else if (stop_on_nosnap && inode &&
1316                          ceph_snap(inode) == CEPH_NOSNAP)
1317                         break;
1318                 else
1319                         len += 1 + temp->d_name.len;
1320                 temp = temp->d_parent;
1321                 if (temp == NULL) {
1322                         pr_err("build_path corrupt dentry %p\n", dentry);
1323                         return ERR_PTR(-EINVAL);
1324                 }
1325         }
1326         if (len)
1327                 len--;  /* no leading '/' */
1328
1329         path = kmalloc(len+1, GFP_NOFS);
1330         if (path == NULL)
1331                 return ERR_PTR(-ENOMEM);
1332         pos = len;
1333         path[pos] = 0;  /* trailing null */
1334         for (temp = dentry; !IS_ROOT(temp) && pos != 0; ) {
1335                 struct inode *inode = temp->d_inode;
1336
1337                 if (inode && ceph_snap(inode) == CEPH_SNAPDIR) {
1338                         dout("build_path path+%d: %p SNAPDIR\n",
1339                              pos, temp);
1340                 } else if (stop_on_nosnap && inode &&
1341                            ceph_snap(inode) == CEPH_NOSNAP) {
1342                         break;
1343                 } else {
1344                         pos -= temp->d_name.len;
1345                         if (pos < 0)
1346                                 break;
1347                         strncpy(path + pos, temp->d_name.name,
1348                                 temp->d_name.len);
1349                 }
1350                 if (pos)
1351                         path[--pos] = '/';
1352                 temp = temp->d_parent;
1353                 if (temp == NULL) {
1354                         pr_err("build_path corrupt dentry\n");
1355                         kfree(path);
1356                         return ERR_PTR(-EINVAL);
1357                 }
1358         }
1359         if (pos != 0) {
1360                 pr_err("build_path did not end path lookup where "
1361                        "expected, namelen is %d, pos is %d\n", len, pos);
1362                 /* presumably this is only possible if racing with a
1363                    rename of one of the parent directories (we can not
1364                    lock the dentries above us to prevent this, but
1365                    retrying should be harmless) */
1366                 kfree(path);
1367                 goto retry;
1368         }
1369
1370         *base = ceph_ino(temp->d_inode);
1371         *plen = len;
1372         dout("build_path on %p %d built %llx '%.*s'\n",
1373              dentry, atomic_read(&dentry->d_count), *base, len, path);
1374         return path;
1375 }
1376
1377 static int build_dentry_path(struct dentry *dentry,
1378                              const char **ppath, int *ppathlen, u64 *pino,
1379                              int *pfreepath)
1380 {
1381         char *path;
1382
1383         if (ceph_snap(dentry->d_parent->d_inode) == CEPH_NOSNAP) {
1384                 *pino = ceph_ino(dentry->d_parent->d_inode);
1385                 *ppath = dentry->d_name.name;
1386                 *ppathlen = dentry->d_name.len;
1387                 return 0;
1388         }
1389         path = ceph_mdsc_build_path(dentry, ppathlen, pino, 1);
1390         if (IS_ERR(path))
1391                 return PTR_ERR(path);
1392         *ppath = path;
1393         *pfreepath = 1;
1394         return 0;
1395 }
1396
1397 static int build_inode_path(struct inode *inode,
1398                             const char **ppath, int *ppathlen, u64 *pino,
1399                             int *pfreepath)
1400 {
1401         struct dentry *dentry;
1402         char *path;
1403
1404         if (ceph_snap(inode) == CEPH_NOSNAP) {
1405                 *pino = ceph_ino(inode);
1406                 *ppathlen = 0;
1407                 return 0;
1408         }
1409         dentry = d_find_alias(inode);
1410         path = ceph_mdsc_build_path(dentry, ppathlen, pino, 1);
1411         dput(dentry);
1412         if (IS_ERR(path))
1413                 return PTR_ERR(path);
1414         *ppath = path;
1415         *pfreepath = 1;
1416         return 0;
1417 }
1418
1419 /*
1420  * request arguments may be specified via an inode *, a dentry *, or
1421  * an explicit ino+path.
1422  */
1423 static int set_request_path_attr(struct inode *rinode, struct dentry *rdentry,
1424                                   const char *rpath, u64 rino,
1425                                   const char **ppath, int *pathlen,
1426                                   u64 *ino, int *freepath)
1427 {
1428         int r = 0;
1429
1430         if (rinode) {
1431                 r = build_inode_path(rinode, ppath, pathlen, ino, freepath);
1432                 dout(" inode %p %llx.%llx\n", rinode, ceph_ino(rinode),
1433                      ceph_snap(rinode));
1434         } else if (rdentry) {
1435                 r = build_dentry_path(rdentry, ppath, pathlen, ino, freepath);
1436                 dout(" dentry %p %llx/%.*s\n", rdentry, *ino, *pathlen,
1437                      *ppath);
1438         } else if (rpath) {
1439                 *ino = rino;
1440                 *ppath = rpath;
1441                 *pathlen = strlen(rpath);
1442                 dout(" path %.*s\n", *pathlen, rpath);
1443         }
1444
1445         return r;
1446 }
1447
1448 /*
1449  * called under mdsc->mutex
1450  */
1451 static struct ceph_msg *create_request_message(struct ceph_mds_client *mdsc,
1452                                                struct ceph_mds_request *req,
1453                                                int mds)
1454 {
1455         struct ceph_msg *msg;
1456         struct ceph_mds_request_head *head;
1457         const char *path1 = NULL;
1458         const char *path2 = NULL;
1459         u64 ino1 = 0, ino2 = 0;
1460         int pathlen1 = 0, pathlen2 = 0;
1461         int freepath1 = 0, freepath2 = 0;
1462         int len;
1463         u16 releases;
1464         void *p, *end;
1465         int ret;
1466
1467         ret = set_request_path_attr(req->r_inode, req->r_dentry,
1468                               req->r_path1, req->r_ino1.ino,
1469                               &path1, &pathlen1, &ino1, &freepath1);
1470         if (ret < 0) {
1471                 msg = ERR_PTR(ret);
1472                 goto out;
1473         }
1474
1475         ret = set_request_path_attr(NULL, req->r_old_dentry,
1476                               req->r_path2, req->r_ino2.ino,
1477                               &path2, &pathlen2, &ino2, &freepath2);
1478         if (ret < 0) {
1479                 msg = ERR_PTR(ret);
1480                 goto out_free1;
1481         }
1482
1483         len = sizeof(*head) +
1484                 pathlen1 + pathlen2 + 2*(1 + sizeof(u32) + sizeof(u64));
1485
1486         /* calculate (max) length for cap releases */
1487         len += sizeof(struct ceph_mds_request_release) *
1488                 (!!req->r_inode_drop + !!req->r_dentry_drop +
1489                  !!req->r_old_inode_drop + !!req->r_old_dentry_drop);
1490         if (req->r_dentry_drop)
1491                 len += req->r_dentry->d_name.len;
1492         if (req->r_old_dentry_drop)
1493                 len += req->r_old_dentry->d_name.len;
1494
1495         msg = ceph_msg_new(CEPH_MSG_CLIENT_REQUEST, len);
1496         if (!msg) {
1497                 msg = ERR_PTR(-ENOMEM);
1498                 goto out_free2;
1499         }
1500
1501         msg->hdr.tid = cpu_to_le64(req->r_tid);
1502
1503         head = msg->front.iov_base;
1504         p = msg->front.iov_base + sizeof(*head);
1505         end = msg->front.iov_base + msg->front.iov_len;
1506
1507         head->mdsmap_epoch = cpu_to_le32(mdsc->mdsmap->m_epoch);
1508         head->op = cpu_to_le32(req->r_op);
1509         head->caller_uid = cpu_to_le32(current_fsuid());
1510         head->caller_gid = cpu_to_le32(current_fsgid());
1511         head->args = req->r_args;
1512
1513         ceph_encode_filepath(&p, end, ino1, path1);
1514         ceph_encode_filepath(&p, end, ino2, path2);
1515
1516         /* cap releases */
1517         releases = 0;
1518         if (req->r_inode_drop)
1519                 releases += ceph_encode_inode_release(&p,
1520                       req->r_inode ? req->r_inode : req->r_dentry->d_inode,
1521                       mds, req->r_inode_drop, req->r_inode_unless, 0);
1522         if (req->r_dentry_drop)
1523                 releases += ceph_encode_dentry_release(&p, req->r_dentry,
1524                        mds, req->r_dentry_drop, req->r_dentry_unless);
1525         if (req->r_old_dentry_drop)
1526                 releases += ceph_encode_dentry_release(&p, req->r_old_dentry,
1527                        mds, req->r_old_dentry_drop, req->r_old_dentry_unless);
1528         if (req->r_old_inode_drop)
1529                 releases += ceph_encode_inode_release(&p,
1530                       req->r_old_dentry->d_inode,
1531                       mds, req->r_old_inode_drop, req->r_old_inode_unless, 0);
1532         head->num_releases = cpu_to_le16(releases);
1533
1534         BUG_ON(p > end);
1535         msg->front.iov_len = p - msg->front.iov_base;
1536         msg->hdr.front_len = cpu_to_le32(msg->front.iov_len);
1537
1538         msg->pages = req->r_pages;
1539         msg->nr_pages = req->r_num_pages;
1540         msg->hdr.data_len = cpu_to_le32(req->r_data_len);
1541         msg->hdr.data_off = cpu_to_le16(0);
1542
1543 out_free2:
1544         if (freepath2)
1545                 kfree((char *)path2);
1546 out_free1:
1547         if (freepath1)
1548                 kfree((char *)path1);
1549 out:
1550         return msg;
1551 }
1552
1553 /*
1554  * called under mdsc->mutex if error, under no mutex if
1555  * success.
1556  */
1557 static void complete_request(struct ceph_mds_client *mdsc,
1558                              struct ceph_mds_request *req)
1559 {
1560         if (req->r_callback)
1561                 req->r_callback(mdsc, req);
1562         else
1563                 complete(&req->r_completion);
1564 }
1565
1566 /*
1567  * called under mdsc->mutex
1568  */
1569 static int __prepare_send_request(struct ceph_mds_client *mdsc,
1570                                   struct ceph_mds_request *req,
1571                                   int mds)
1572 {
1573         struct ceph_mds_request_head *rhead;
1574         struct ceph_msg *msg;
1575         int flags = 0;
1576
1577         req->r_mds = mds;
1578         req->r_attempts++;
1579         dout("prepare_send_request %p tid %lld %s (attempt %d)\n", req,
1580              req->r_tid, ceph_mds_op_name(req->r_op), req->r_attempts);
1581
1582         if (req->r_request) {
1583                 ceph_msg_put(req->r_request);
1584                 req->r_request = NULL;
1585         }
1586         msg = create_request_message(mdsc, req, mds);
1587         if (IS_ERR(msg)) {
1588                 req->r_err = PTR_ERR(msg);
1589                 complete_request(mdsc, req);
1590                 return PTR_ERR(msg);
1591         }
1592         req->r_request = msg;
1593
1594         rhead = msg->front.iov_base;
1595         rhead->oldest_client_tid = cpu_to_le64(__get_oldest_tid(mdsc));
1596         if (req->r_got_unsafe)
1597                 flags |= CEPH_MDS_FLAG_REPLAY;
1598         if (req->r_locked_dir)
1599                 flags |= CEPH_MDS_FLAG_WANT_DENTRY;
1600         rhead->flags = cpu_to_le32(flags);
1601         rhead->num_fwd = req->r_num_fwd;
1602         rhead->num_retry = req->r_attempts - 1;
1603
1604         dout(" r_locked_dir = %p\n", req->r_locked_dir);
1605
1606         if (req->r_target_inode && req->r_got_unsafe)
1607                 rhead->ino = cpu_to_le64(ceph_ino(req->r_target_inode));
1608         else
1609                 rhead->ino = 0;
1610         return 0;
1611 }
1612
1613 /*
1614  * send request, or put it on the appropriate wait list.
1615  */
1616 static int __do_request(struct ceph_mds_client *mdsc,
1617                         struct ceph_mds_request *req)
1618 {
1619         struct ceph_mds_session *session = NULL;
1620         int mds = -1;
1621         int err = -EAGAIN;
1622
1623         if (req->r_err || req->r_got_result)
1624                 goto out;
1625
1626         if (req->r_timeout &&
1627             time_after_eq(jiffies, req->r_started + req->r_timeout)) {
1628                 dout("do_request timed out\n");
1629                 err = -EIO;
1630                 goto finish;
1631         }
1632
1633         mds = __choose_mds(mdsc, req);
1634         if (mds < 0 ||
1635             ceph_mdsmap_get_state(mdsc->mdsmap, mds) < CEPH_MDS_STATE_ACTIVE) {
1636                 dout("do_request no mds or not active, waiting for map\n");
1637                 list_add(&req->r_wait, &mdsc->waiting_for_map);
1638                 goto out;
1639         }
1640
1641         /* get, open session */
1642         session = __ceph_lookup_mds_session(mdsc, mds);
1643         if (!session) {
1644                 session = register_session(mdsc, mds);
1645                 if (IS_ERR(session)) {
1646                         err = PTR_ERR(session);
1647                         goto finish;
1648                 }
1649         }
1650         dout("do_request mds%d session %p state %s\n", mds, session,
1651              session_state_name(session->s_state));
1652         if (session->s_state != CEPH_MDS_SESSION_OPEN &&
1653             session->s_state != CEPH_MDS_SESSION_HUNG) {
1654                 if (session->s_state == CEPH_MDS_SESSION_NEW ||
1655                     session->s_state == CEPH_MDS_SESSION_CLOSING)
1656                         __open_session(mdsc, session);
1657                 list_add(&req->r_wait, &session->s_waiting);
1658                 goto out_session;
1659         }
1660
1661         /* send request */
1662         req->r_session = get_session(session);
1663         req->r_resend_mds = -1;   /* forget any previous mds hint */
1664
1665         if (req->r_request_started == 0)   /* note request start time */
1666                 req->r_request_started = jiffies;
1667
1668         err = __prepare_send_request(mdsc, req, mds);
1669         if (!err) {
1670                 ceph_msg_get(req->r_request);
1671                 ceph_con_send(&session->s_con, req->r_request);
1672         }
1673
1674 out_session:
1675         ceph_put_mds_session(session);
1676 out:
1677         return err;
1678
1679 finish:
1680         req->r_err = err;
1681         complete_request(mdsc, req);
1682         goto out;
1683 }
1684
1685 /*
1686  * called under mdsc->mutex
1687  */
1688 static void __wake_requests(struct ceph_mds_client *mdsc,
1689                             struct list_head *head)
1690 {
1691         struct ceph_mds_request *req, *nreq;
1692
1693         list_for_each_entry_safe(req, nreq, head, r_wait) {
1694                 list_del_init(&req->r_wait);
1695                 __do_request(mdsc, req);
1696         }
1697 }
1698
1699 /*
1700  * Wake up threads with requests pending for @mds, so that they can
1701  * resubmit their requests to a possibly different mds.
1702  */
1703 static void kick_requests(struct ceph_mds_client *mdsc, int mds)
1704 {
1705         struct ceph_mds_request *req;
1706         struct rb_node *p;
1707
1708         dout("kick_requests mds%d\n", mds);
1709         for (p = rb_first(&mdsc->request_tree); p; p = rb_next(p)) {
1710                 req = rb_entry(p, struct ceph_mds_request, r_node);
1711                 if (req->r_got_unsafe)
1712                         continue;
1713                 if (req->r_session &&
1714                     req->r_session->s_mds == mds) {
1715                         dout(" kicking tid %llu\n", req->r_tid);
1716                         put_request_session(req);
1717                         __do_request(mdsc, req);
1718                 }
1719         }
1720 }
1721
1722 void ceph_mdsc_submit_request(struct ceph_mds_client *mdsc,
1723                               struct ceph_mds_request *req)
1724 {
1725         dout("submit_request on %p\n", req);
1726         mutex_lock(&mdsc->mutex);
1727         __register_request(mdsc, req, NULL);
1728         __do_request(mdsc, req);
1729         mutex_unlock(&mdsc->mutex);
1730 }
1731
1732 /*
1733  * Synchrously perform an mds request.  Take care of all of the
1734  * session setup, forwarding, retry details.
1735  */
1736 int ceph_mdsc_do_request(struct ceph_mds_client *mdsc,
1737                          struct inode *dir,
1738                          struct ceph_mds_request *req)
1739 {
1740         int err;
1741
1742         dout("do_request on %p\n", req);
1743
1744         /* take CAP_PIN refs for r_inode, r_locked_dir, r_old_dentry */
1745         if (req->r_inode)
1746                 ceph_get_cap_refs(ceph_inode(req->r_inode), CEPH_CAP_PIN);
1747         if (req->r_locked_dir)
1748                 ceph_get_cap_refs(ceph_inode(req->r_locked_dir), CEPH_CAP_PIN);
1749         if (req->r_old_dentry)
1750                 ceph_get_cap_refs(
1751                         ceph_inode(req->r_old_dentry->d_parent->d_inode),
1752                         CEPH_CAP_PIN);
1753
1754         /* issue */
1755         mutex_lock(&mdsc->mutex);
1756         __register_request(mdsc, req, dir);
1757         __do_request(mdsc, req);
1758
1759         if (req->r_err) {
1760                 err = req->r_err;
1761                 __unregister_request(mdsc, req);
1762                 dout("do_request early error %d\n", err);
1763                 goto out;
1764         }
1765
1766         /* wait */
1767         mutex_unlock(&mdsc->mutex);
1768         dout("do_request waiting\n");
1769         if (req->r_timeout) {
1770                 err = (long)wait_for_completion_interruptible_timeout(
1771                         &req->r_completion, req->r_timeout);
1772                 if (err == 0)
1773                         err = -EIO;
1774         } else {
1775                 err = wait_for_completion_interruptible(&req->r_completion);
1776         }
1777         dout("do_request waited, got %d\n", err);
1778         mutex_lock(&mdsc->mutex);
1779
1780         /* only abort if we didn't race with a real reply */
1781         if (req->r_got_result) {
1782                 err = le32_to_cpu(req->r_reply_info.head->result);
1783         } else if (err < 0) {
1784                 dout("aborted request %lld with %d\n", req->r_tid, err);
1785
1786                 /*
1787                  * ensure we aren't running concurrently with
1788                  * ceph_fill_trace or ceph_readdir_prepopulate, which
1789                  * rely on locks (dir mutex) held by our caller.
1790                  */
1791                 mutex_lock(&req->r_fill_mutex);
1792                 req->r_err = err;
1793                 req->r_aborted = true;
1794                 mutex_unlock(&req->r_fill_mutex);
1795
1796                 if (req->r_locked_dir &&
1797                     (req->r_op & CEPH_MDS_OP_WRITE)) {
1798                         struct ceph_inode_info *ci =
1799                                 ceph_inode(req->r_locked_dir);
1800
1801                         dout("aborted, clearing I_COMPLETE on %p, leases\n",
1802                              req->r_locked_dir);
1803                         spin_lock(&req->r_locked_dir->i_lock);
1804                         ci->i_ceph_flags &= ~CEPH_I_COMPLETE;
1805                         ci->i_release_count++;
1806                         spin_unlock(&req->r_locked_dir->i_lock);
1807
1808                         if (req->r_dentry)
1809                                 ceph_invalidate_dentry_lease(req->r_dentry);
1810                         if (req->r_old_dentry)
1811                                 ceph_invalidate_dentry_lease(req->r_old_dentry);
1812                 }
1813         } else {
1814                 err = req->r_err;
1815         }
1816
1817 out:
1818         mutex_unlock(&mdsc->mutex);
1819         dout("do_request %p done, result %d\n", req, err);
1820         return err;
1821 }
1822
1823 /*
1824  * Handle mds reply.
1825  *
1826  * We take the session mutex and parse and process the reply immediately.
1827  * This preserves the logical ordering of replies, capabilities, etc., sent
1828  * by the MDS as they are applied to our local cache.
1829  */
1830 static void handle_reply(struct ceph_mds_session *session, struct ceph_msg *msg)
1831 {
1832         struct ceph_mds_client *mdsc = session->s_mdsc;
1833         struct ceph_mds_request *req;
1834         struct ceph_mds_reply_head *head = msg->front.iov_base;
1835         struct ceph_mds_reply_info_parsed *rinfo;  /* parsed reply info */
1836         u64 tid;
1837         int err, result;
1838         int mds = session->s_mds;
1839
1840         if (msg->front.iov_len < sizeof(*head)) {
1841                 pr_err("mdsc_handle_reply got corrupt (short) reply\n");
1842                 ceph_msg_dump(msg);
1843                 return;
1844         }
1845
1846         /* get request, session */
1847         tid = le64_to_cpu(msg->hdr.tid);
1848         mutex_lock(&mdsc->mutex);
1849         req = __lookup_request(mdsc, tid);
1850         if (!req) {
1851                 dout("handle_reply on unknown tid %llu\n", tid);
1852                 mutex_unlock(&mdsc->mutex);
1853                 return;
1854         }
1855         dout("handle_reply %p\n", req);
1856
1857         /* correct session? */
1858         if (req->r_session != session) {
1859                 pr_err("mdsc_handle_reply got %llu on session mds%d"
1860                        " not mds%d\n", tid, session->s_mds,
1861                        req->r_session ? req->r_session->s_mds : -1);
1862                 mutex_unlock(&mdsc->mutex);
1863                 goto out;
1864         }
1865
1866         /* dup? */
1867         if ((req->r_got_unsafe && !head->safe) ||
1868             (req->r_got_safe && head->safe)) {
1869                 pr_warning("got a dup %s reply on %llu from mds%d\n",
1870                            head->safe ? "safe" : "unsafe", tid, mds);
1871                 mutex_unlock(&mdsc->mutex);
1872                 goto out;
1873         }
1874         if (req->r_got_safe && !head->safe) {
1875                 pr_warning("got unsafe after safe on %llu from mds%d\n",
1876                            tid, mds);
1877                 mutex_unlock(&mdsc->mutex);
1878                 goto out;
1879         }
1880
1881         result = le32_to_cpu(head->result);
1882
1883         /*
1884          * Tolerate 2 consecutive ESTALEs from the same mds.
1885          * FIXME: we should be looking at the cap migrate_seq.
1886          */
1887         if (result == -ESTALE) {
1888                 req->r_direct_mode = USE_AUTH_MDS;
1889                 req->r_num_stale++;
1890                 if (req->r_num_stale <= 2) {
1891                         __do_request(mdsc, req);
1892                         mutex_unlock(&mdsc->mutex);
1893                         goto out;
1894                 }
1895         } else {
1896                 req->r_num_stale = 0;
1897         }
1898
1899         if (head->safe) {
1900                 req->r_got_safe = true;
1901                 __unregister_request(mdsc, req);
1902                 complete(&req->r_safe_completion);
1903
1904                 if (req->r_got_unsafe) {
1905                         /*
1906                          * We already handled the unsafe response, now do the
1907                          * cleanup.  No need to examine the response; the MDS
1908                          * doesn't include any result info in the safe
1909                          * response.  And even if it did, there is nothing
1910                          * useful we could do with a revised return value.
1911                          */
1912                         dout("got safe reply %llu, mds%d\n", tid, mds);
1913                         list_del_init(&req->r_unsafe_item);
1914
1915                         /* last unsafe request during umount? */
1916                         if (mdsc->stopping && !__get_oldest_req(mdsc))
1917                                 complete(&mdsc->safe_umount_waiters);
1918                         mutex_unlock(&mdsc->mutex);
1919                         goto out;
1920                 }
1921         } else {
1922                 req->r_got_unsafe = true;
1923                 list_add_tail(&req->r_unsafe_item, &req->r_session->s_unsafe);
1924         }
1925
1926         dout("handle_reply tid %lld result %d\n", tid, result);
1927         rinfo = &req->r_reply_info;
1928         err = parse_reply_info(msg, rinfo);
1929         mutex_unlock(&mdsc->mutex);
1930
1931         mutex_lock(&session->s_mutex);
1932         if (err < 0) {
1933                 pr_err("mdsc_handle_reply got corrupt reply mds%d\n", mds);
1934                 ceph_msg_dump(msg);
1935                 goto out_err;
1936         }
1937
1938         /* snap trace */
1939         if (rinfo->snapblob_len) {
1940                 down_write(&mdsc->snap_rwsem);
1941                 ceph_update_snap_trace(mdsc, rinfo->snapblob,
1942                                rinfo->snapblob + rinfo->snapblob_len,
1943                                le32_to_cpu(head->op) == CEPH_MDS_OP_RMSNAP);
1944                 downgrade_write(&mdsc->snap_rwsem);
1945         } else {
1946                 down_read(&mdsc->snap_rwsem);
1947         }
1948
1949         /* insert trace into our cache */
1950         mutex_lock(&req->r_fill_mutex);
1951         err = ceph_fill_trace(mdsc->client->sb, req, req->r_session);
1952         if (err == 0) {
1953                 if (result == 0 && rinfo->dir_nr)
1954                         ceph_readdir_prepopulate(req, req->r_session);
1955                 ceph_unreserve_caps(&req->r_caps_reservation);
1956         }
1957         mutex_unlock(&req->r_fill_mutex);
1958
1959         up_read(&mdsc->snap_rwsem);
1960 out_err:
1961         mutex_lock(&mdsc->mutex);
1962         if (!req->r_aborted) {
1963                 if (err) {
1964                         req->r_err = err;
1965                 } else {
1966                         req->r_reply = msg;
1967                         ceph_msg_get(msg);
1968                         req->r_got_result = true;
1969                 }
1970         } else {
1971                 dout("reply arrived after request %lld was aborted\n", tid);
1972         }
1973         mutex_unlock(&mdsc->mutex);
1974
1975         add_cap_releases(mdsc, req->r_session, -1);
1976         mutex_unlock(&session->s_mutex);
1977
1978         /* kick calling process */
1979         complete_request(mdsc, req);
1980 out:
1981         ceph_mdsc_put_request(req);
1982         return;
1983 }
1984
1985
1986
1987 /*
1988  * handle mds notification that our request has been forwarded.
1989  */
1990 static void handle_forward(struct ceph_mds_client *mdsc,
1991                            struct ceph_mds_session *session,
1992                            struct ceph_msg *msg)
1993 {
1994         struct ceph_mds_request *req;
1995         u64 tid = le64_to_cpu(msg->hdr.tid);
1996         u32 next_mds;
1997         u32 fwd_seq;
1998         int err = -EINVAL;
1999         void *p = msg->front.iov_base;
2000         void *end = p + msg->front.iov_len;
2001
2002         ceph_decode_need(&p, end, 2*sizeof(u32), bad);
2003         next_mds = ceph_decode_32(&p);
2004         fwd_seq = ceph_decode_32(&p);
2005
2006         mutex_lock(&mdsc->mutex);
2007         req = __lookup_request(mdsc, tid);
2008         if (!req) {
2009                 dout("forward %llu to mds%d - req dne\n", tid, next_mds);
2010                 goto out;  /* dup reply? */
2011         }
2012
2013         if (fwd_seq <= req->r_num_fwd) {
2014                 dout("forward %llu to mds%d - old seq %d <= %d\n",
2015                      tid, next_mds, req->r_num_fwd, fwd_seq);
2016         } else {
2017                 /* resend. forward race not possible; mds would drop */
2018                 dout("forward %llu to mds%d (we resend)\n", tid, next_mds);
2019                 req->r_num_fwd = fwd_seq;
2020                 req->r_resend_mds = next_mds;
2021                 put_request_session(req);
2022                 __do_request(mdsc, req);
2023         }
2024         ceph_mdsc_put_request(req);
2025 out:
2026         mutex_unlock(&mdsc->mutex);
2027         return;
2028
2029 bad:
2030         pr_err("mdsc_handle_forward decode error err=%d\n", err);
2031 }
2032
2033 /*
2034  * handle a mds session control message
2035  */
2036 static void handle_session(struct ceph_mds_session *session,
2037                            struct ceph_msg *msg)
2038 {
2039         struct ceph_mds_client *mdsc = session->s_mdsc;
2040         u32 op;
2041         u64 seq;
2042         int mds = session->s_mds;
2043         struct ceph_mds_session_head *h = msg->front.iov_base;
2044         int wake = 0;
2045
2046         /* decode */
2047         if (msg->front.iov_len != sizeof(*h))
2048                 goto bad;
2049         op = le32_to_cpu(h->op);
2050         seq = le64_to_cpu(h->seq);
2051
2052         mutex_lock(&mdsc->mutex);
2053         if (op == CEPH_SESSION_CLOSE)
2054                 __unregister_session(mdsc, session);
2055         /* FIXME: this ttl calculation is generous */
2056         session->s_ttl = jiffies + HZ*mdsc->mdsmap->m_session_autoclose;
2057         mutex_unlock(&mdsc->mutex);
2058
2059         mutex_lock(&session->s_mutex);
2060
2061         dout("handle_session mds%d %s %p state %s seq %llu\n",
2062              mds, ceph_session_op_name(op), session,
2063              session_state_name(session->s_state), seq);
2064
2065         if (session->s_state == CEPH_MDS_SESSION_HUNG) {
2066                 session->s_state = CEPH_MDS_SESSION_OPEN;
2067                 pr_info("mds%d came back\n", session->s_mds);
2068         }
2069
2070         switch (op) {
2071         case CEPH_SESSION_OPEN:
2072                 if (session->s_state == CEPH_MDS_SESSION_RECONNECTING)
2073                         pr_info("mds%d reconnect success\n", session->s_mds);
2074                 session->s_state = CEPH_MDS_SESSION_OPEN;
2075                 renewed_caps(mdsc, session, 0);
2076                 wake = 1;
2077                 if (mdsc->stopping)
2078                         __close_session(mdsc, session);
2079                 break;
2080
2081         case CEPH_SESSION_RENEWCAPS:
2082                 if (session->s_renew_seq == seq)
2083                         renewed_caps(mdsc, session, 1);
2084                 break;
2085
2086         case CEPH_SESSION_CLOSE:
2087                 if (session->s_state == CEPH_MDS_SESSION_RECONNECTING)
2088                         pr_info("mds%d reconnect denied\n", session->s_mds);
2089                 remove_session_caps(session);
2090                 wake = 1; /* for good measure */
2091                 complete(&mdsc->session_close_waiters);
2092                 kick_requests(mdsc, mds);
2093                 break;
2094
2095         case CEPH_SESSION_STALE:
2096                 pr_info("mds%d caps went stale, renewing\n",
2097                         session->s_mds);
2098                 spin_lock(&session->s_cap_lock);
2099                 session->s_cap_gen++;
2100                 session->s_cap_ttl = 0;
2101                 spin_unlock(&session->s_cap_lock);
2102                 send_renew_caps(mdsc, session);
2103                 break;
2104
2105         case CEPH_SESSION_RECALL_STATE:
2106                 trim_caps(mdsc, session, le32_to_cpu(h->max_caps));
2107                 break;
2108
2109         default:
2110                 pr_err("mdsc_handle_session bad op %d mds%d\n", op, mds);
2111                 WARN_ON(1);
2112         }
2113
2114         mutex_unlock(&session->s_mutex);
2115         if (wake) {
2116                 mutex_lock(&mdsc->mutex);
2117                 __wake_requests(mdsc, &session->s_waiting);
2118                 mutex_unlock(&mdsc->mutex);
2119         }
2120         return;
2121
2122 bad:
2123         pr_err("mdsc_handle_session corrupt message mds%d len %d\n", mds,
2124                (int)msg->front.iov_len);
2125         ceph_msg_dump(msg);
2126         return;
2127 }
2128
2129
2130 /*
2131  * called under session->mutex.
2132  */
2133 static void replay_unsafe_requests(struct ceph_mds_client *mdsc,
2134                                    struct ceph_mds_session *session)
2135 {
2136         struct ceph_mds_request *req, *nreq;
2137         int err;
2138
2139         dout("replay_unsafe_requests mds%d\n", session->s_mds);
2140
2141         mutex_lock(&mdsc->mutex);
2142         list_for_each_entry_safe(req, nreq, &session->s_unsafe, r_unsafe_item) {
2143                 err = __prepare_send_request(mdsc, req, session->s_mds);
2144                 if (!err) {
2145                         ceph_msg_get(req->r_request);
2146                         ceph_con_send(&session->s_con, req->r_request);
2147                 }
2148         }
2149         mutex_unlock(&mdsc->mutex);
2150 }
2151
2152 /*
2153  * Encode information about a cap for a reconnect with the MDS.
2154  */
2155 static int encode_caps_cb(struct inode *inode, struct ceph_cap *cap,
2156                           void *arg)
2157 {
2158         struct ceph_mds_cap_reconnect rec;
2159         struct ceph_inode_info *ci;
2160         struct ceph_pagelist *pagelist = arg;
2161         char *path;
2162         int pathlen, err;
2163         u64 pathbase;
2164         struct dentry *dentry;
2165
2166         ci = cap->ci;
2167
2168         dout(" adding %p ino %llx.%llx cap %p %lld %s\n",
2169              inode, ceph_vinop(inode), cap, cap->cap_id,
2170              ceph_cap_string(cap->issued));
2171         err = ceph_pagelist_encode_64(pagelist, ceph_ino(inode));
2172         if (err)
2173                 return err;
2174
2175         dentry = d_find_alias(inode);
2176         if (dentry) {
2177                 path = ceph_mdsc_build_path(dentry, &pathlen, &pathbase, 0);
2178                 if (IS_ERR(path)) {
2179                         err = PTR_ERR(path);
2180                         BUG_ON(err);
2181                 }
2182         } else {
2183                 path = NULL;
2184                 pathlen = 0;
2185         }
2186         err = ceph_pagelist_encode_string(pagelist, path, pathlen);
2187         if (err)
2188                 goto out;
2189
2190         spin_lock(&inode->i_lock);
2191         cap->seq = 0;        /* reset cap seq */
2192         cap->issue_seq = 0;  /* and issue_seq */
2193         rec.cap_id = cpu_to_le64(cap->cap_id);
2194         rec.pathbase = cpu_to_le64(pathbase);
2195         rec.wanted = cpu_to_le32(__ceph_caps_wanted(ci));
2196         rec.issued = cpu_to_le32(cap->issued);
2197         rec.size = cpu_to_le64(inode->i_size);
2198         ceph_encode_timespec(&rec.mtime, &inode->i_mtime);
2199         ceph_encode_timespec(&rec.atime, &inode->i_atime);
2200         rec.snaprealm = cpu_to_le64(ci->i_snap_realm->ino);
2201         spin_unlock(&inode->i_lock);
2202
2203         err = ceph_pagelist_append(pagelist, &rec, sizeof(rec));
2204
2205 out:
2206         kfree(path);
2207         dput(dentry);
2208         return err;
2209 }
2210
2211
2212 /*
2213  * If an MDS fails and recovers, clients need to reconnect in order to
2214  * reestablish shared state.  This includes all caps issued through
2215  * this session _and_ the snap_realm hierarchy.  Because it's not
2216  * clear which snap realms the mds cares about, we send everything we
2217  * know about.. that ensures we'll then get any new info the
2218  * recovering MDS might have.
2219  *
2220  * This is a relatively heavyweight operation, but it's rare.
2221  *
2222  * called with mdsc->mutex held.
2223  */
2224 static void send_mds_reconnect(struct ceph_mds_client *mdsc,
2225                                struct ceph_mds_session *session)
2226 {
2227         struct ceph_msg *reply;
2228         struct rb_node *p;
2229         int mds = session->s_mds;
2230         int err = -ENOMEM;
2231         struct ceph_pagelist *pagelist;
2232
2233         pr_info("mds%d reconnect start\n", mds);
2234
2235         pagelist = kmalloc(sizeof(*pagelist), GFP_NOFS);
2236         if (!pagelist)
2237                 goto fail_nopagelist;
2238         ceph_pagelist_init(pagelist);
2239
2240         reply = ceph_msg_new(CEPH_MSG_CLIENT_RECONNECT, 0);
2241         if (!reply)
2242                 goto fail_nomsg;
2243
2244         mutex_lock(&session->s_mutex);
2245         session->s_state = CEPH_MDS_SESSION_RECONNECTING;
2246         session->s_seq = 0;
2247
2248         ceph_con_open(&session->s_con,
2249                       ceph_mdsmap_get_addr(mdsc->mdsmap, mds));
2250
2251         /* replay unsafe requests */
2252         replay_unsafe_requests(mdsc, session);
2253
2254         down_read(&mdsc->snap_rwsem);
2255
2256         dout("session %p state %s\n", session,
2257              session_state_name(session->s_state));
2258
2259         /* drop old cap expires; we're about to reestablish that state */
2260         discard_cap_releases(mdsc, session);
2261
2262         /* traverse this session's caps */
2263         err = ceph_pagelist_encode_32(pagelist, session->s_nr_caps);
2264         if (err)
2265                 goto fail;
2266         err = iterate_session_caps(session, encode_caps_cb, pagelist);
2267         if (err < 0)
2268                 goto fail;
2269
2270         /*
2271          * snaprealms.  we provide mds with the ino, seq (version), and
2272          * parent for all of our realms.  If the mds has any newer info,
2273          * it will tell us.
2274          */
2275         for (p = rb_first(&mdsc->snap_realms); p; p = rb_next(p)) {
2276                 struct ceph_snap_realm *realm =
2277                         rb_entry(p, struct ceph_snap_realm, node);
2278                 struct ceph_mds_snaprealm_reconnect sr_rec;
2279
2280                 dout(" adding snap realm %llx seq %lld parent %llx\n",
2281                      realm->ino, realm->seq, realm->parent_ino);
2282                 sr_rec.ino = cpu_to_le64(realm->ino);
2283                 sr_rec.seq = cpu_to_le64(realm->seq);
2284                 sr_rec.parent = cpu_to_le64(realm->parent_ino);
2285                 err = ceph_pagelist_append(pagelist, &sr_rec, sizeof(sr_rec));
2286                 if (err)
2287                         goto fail;
2288         }
2289
2290         reply->pagelist = pagelist;
2291         reply->hdr.data_len = cpu_to_le32(pagelist->length);
2292         reply->nr_pages = calc_pages_for(0, pagelist->length);
2293         ceph_con_send(&session->s_con, reply);
2294
2295         mutex_unlock(&session->s_mutex);
2296
2297         mutex_lock(&mdsc->mutex);
2298         __wake_requests(mdsc, &session->s_waiting);
2299         mutex_unlock(&mdsc->mutex);
2300
2301         up_read(&mdsc->snap_rwsem);
2302         return;
2303
2304 fail:
2305         ceph_msg_put(reply);
2306         up_read(&mdsc->snap_rwsem);
2307         mutex_unlock(&session->s_mutex);
2308 fail_nomsg:
2309         ceph_pagelist_release(pagelist);
2310         kfree(pagelist);
2311 fail_nopagelist:
2312         pr_err("error %d preparing reconnect for mds%d\n", err, mds);
2313         return;
2314 }
2315
2316
2317 /*
2318  * compare old and new mdsmaps, kicking requests
2319  * and closing out old connections as necessary
2320  *
2321  * called under mdsc->mutex.
2322  */
2323 static void check_new_map(struct ceph_mds_client *mdsc,
2324                           struct ceph_mdsmap *newmap,
2325                           struct ceph_mdsmap *oldmap)
2326 {
2327         int i;
2328         int oldstate, newstate;
2329         struct ceph_mds_session *s;
2330
2331         dout("check_new_map new %u old %u\n",
2332              newmap->m_epoch, oldmap->m_epoch);
2333
2334         for (i = 0; i < oldmap->m_max_mds && i < mdsc->max_sessions; i++) {
2335                 if (mdsc->sessions[i] == NULL)
2336                         continue;
2337                 s = mdsc->sessions[i];
2338                 oldstate = ceph_mdsmap_get_state(oldmap, i);
2339                 newstate = ceph_mdsmap_get_state(newmap, i);
2340
2341                 dout("check_new_map mds%d state %s -> %s (session %s)\n",
2342                      i, ceph_mds_state_name(oldstate),
2343                      ceph_mds_state_name(newstate),
2344                      session_state_name(s->s_state));
2345
2346                 if (memcmp(ceph_mdsmap_get_addr(oldmap, i),
2347                            ceph_mdsmap_get_addr(newmap, i),
2348                            sizeof(struct ceph_entity_addr))) {
2349                         if (s->s_state == CEPH_MDS_SESSION_OPENING) {
2350                                 /* the session never opened, just close it
2351                                  * out now */
2352                                 __wake_requests(mdsc, &s->s_waiting);
2353                                 __unregister_session(mdsc, s);
2354                         } else {
2355                                 /* just close it */
2356                                 mutex_unlock(&mdsc->mutex);
2357                                 mutex_lock(&s->s_mutex);
2358                                 mutex_lock(&mdsc->mutex);
2359                                 ceph_con_close(&s->s_con);
2360                                 mutex_unlock(&s->s_mutex);
2361                                 s->s_state = CEPH_MDS_SESSION_RESTARTING;
2362                         }
2363
2364                         /* kick any requests waiting on the recovering mds */
2365                         kick_requests(mdsc, i);
2366                 } else if (oldstate == newstate) {
2367                         continue;  /* nothing new with this mds */
2368                 }
2369
2370                 /*
2371                  * send reconnect?
2372                  */
2373                 if (s->s_state == CEPH_MDS_SESSION_RESTARTING &&
2374                     newstate >= CEPH_MDS_STATE_RECONNECT) {
2375                         mutex_unlock(&mdsc->mutex);
2376                         send_mds_reconnect(mdsc, s);
2377                         mutex_lock(&mdsc->mutex);
2378                 }
2379
2380                 /*
2381                  * kick request on any mds that has gone active.
2382                  */
2383                 if (oldstate < CEPH_MDS_STATE_ACTIVE &&
2384                     newstate >= CEPH_MDS_STATE_ACTIVE) {
2385                         if (oldstate != CEPH_MDS_STATE_CREATING &&
2386                             oldstate != CEPH_MDS_STATE_STARTING)
2387                                 pr_info("mds%d recovery completed\n", s->s_mds);
2388                         kick_requests(mdsc, i);
2389                         ceph_kick_flushing_caps(mdsc, s);
2390                         wake_up_session_caps(s, 1);
2391                 }
2392         }
2393 }
2394
2395
2396
2397 /*
2398  * leases
2399  */
2400
2401 /*
2402  * caller must hold session s_mutex, dentry->d_lock
2403  */
2404 void __ceph_mdsc_drop_dentry_lease(struct dentry *dentry)
2405 {
2406         struct ceph_dentry_info *di = ceph_dentry(dentry);
2407
2408         ceph_put_mds_session(di->lease_session);
2409         di->lease_session = NULL;
2410 }
2411
2412 static void handle_lease(struct ceph_mds_client *mdsc,
2413                          struct ceph_mds_session *session,
2414                          struct ceph_msg *msg)
2415 {
2416         struct super_block *sb = mdsc->client->sb;
2417         struct inode *inode;
2418         struct ceph_inode_info *ci;
2419         struct dentry *parent, *dentry;
2420         struct ceph_dentry_info *di;
2421         int mds = session->s_mds;
2422         struct ceph_mds_lease *h = msg->front.iov_base;
2423         struct ceph_vino vino;
2424         int mask;
2425         struct qstr dname;
2426         int release = 0;
2427
2428         dout("handle_lease from mds%d\n", mds);
2429
2430         /* decode */
2431         if (msg->front.iov_len < sizeof(*h) + sizeof(u32))
2432                 goto bad;
2433         vino.ino = le64_to_cpu(h->ino);
2434         vino.snap = CEPH_NOSNAP;
2435         mask = le16_to_cpu(h->mask);
2436         dname.name = (void *)h + sizeof(*h) + sizeof(u32);
2437         dname.len = msg->front.iov_len - sizeof(*h) - sizeof(u32);
2438         if (dname.len != get_unaligned_le32(h+1))
2439                 goto bad;
2440
2441         mutex_lock(&session->s_mutex);
2442         session->s_seq++;
2443
2444         /* lookup inode */
2445         inode = ceph_find_inode(sb, vino);
2446         dout("handle_lease '%s', mask %d, ino %llx %p\n",
2447              ceph_lease_op_name(h->action), mask, vino.ino, inode);
2448         if (inode == NULL) {
2449                 dout("handle_lease no inode %llx\n", vino.ino);
2450                 goto release;
2451         }
2452         ci = ceph_inode(inode);
2453
2454         /* dentry */
2455         parent = d_find_alias(inode);
2456         if (!parent) {
2457                 dout("no parent dentry on inode %p\n", inode);
2458                 WARN_ON(1);
2459                 goto release;  /* hrm... */
2460         }
2461         dname.hash = full_name_hash(dname.name, dname.len);
2462         dentry = d_lookup(parent, &dname);
2463         dput(parent);
2464         if (!dentry)
2465                 goto release;
2466
2467         spin_lock(&dentry->d_lock);
2468         di = ceph_dentry(dentry);
2469         switch (h->action) {
2470         case CEPH_MDS_LEASE_REVOKE:
2471                 if (di && di->lease_session == session) {
2472                         h->seq = cpu_to_le32(di->lease_seq);
2473                         __ceph_mdsc_drop_dentry_lease(dentry);
2474                 }
2475                 release = 1;
2476                 break;
2477
2478         case CEPH_MDS_LEASE_RENEW:
2479                 if (di && di->lease_session == session &&
2480                     di->lease_gen == session->s_cap_gen &&
2481                     di->lease_renew_from &&
2482                     di->lease_renew_after == 0) {
2483                         unsigned long duration =
2484                                 le32_to_cpu(h->duration_ms) * HZ / 1000;
2485
2486                         di->lease_seq = le32_to_cpu(h->seq);
2487                         dentry->d_time = di->lease_renew_from + duration;
2488                         di->lease_renew_after = di->lease_renew_from +
2489                                 (duration >> 1);
2490                         di->lease_renew_from = 0;
2491                 }
2492                 break;
2493         }
2494         spin_unlock(&dentry->d_lock);
2495         dput(dentry);
2496
2497         if (!release)
2498                 goto out;
2499
2500 release:
2501         /* let's just reuse the same message */
2502         h->action = CEPH_MDS_LEASE_REVOKE_ACK;
2503         ceph_msg_get(msg);
2504         ceph_con_send(&session->s_con, msg);
2505
2506 out:
2507         iput(inode);
2508         mutex_unlock(&session->s_mutex);
2509         return;
2510
2511 bad:
2512         pr_err("corrupt lease message\n");
2513         ceph_msg_dump(msg);
2514 }
2515
2516 void ceph_mdsc_lease_send_msg(struct ceph_mds_session *session,
2517                               struct inode *inode,
2518                               struct dentry *dentry, char action,
2519                               u32 seq)
2520 {
2521         struct ceph_msg *msg;
2522         struct ceph_mds_lease *lease;
2523         int len = sizeof(*lease) + sizeof(u32);
2524         int dnamelen = 0;
2525
2526         dout("lease_send_msg inode %p dentry %p %s to mds%d\n",
2527              inode, dentry, ceph_lease_op_name(action), session->s_mds);
2528         dnamelen = dentry->d_name.len;
2529         len += dnamelen;
2530
2531         msg = ceph_msg_new(CEPH_MSG_CLIENT_LEASE, len);
2532         if (!msg)
2533                 return;
2534         lease = msg->front.iov_base;
2535         lease->action = action;
2536         lease->mask = cpu_to_le16(CEPH_LOCK_DN);
2537         lease->ino = cpu_to_le64(ceph_vino(inode).ino);
2538         lease->first = lease->last = cpu_to_le64(ceph_vino(inode).snap);
2539         lease->seq = cpu_to_le32(seq);
2540         put_unaligned_le32(dnamelen, lease + 1);
2541         memcpy((void *)(lease + 1) + 4, dentry->d_name.name, dnamelen);
2542
2543         /*
2544          * if this is a preemptive lease RELEASE, no need to
2545          * flush request stream, since the actual request will
2546          * soon follow.
2547          */
2548         msg->more_to_follow = (action == CEPH_MDS_LEASE_RELEASE);
2549
2550         ceph_con_send(&session->s_con, msg);
2551 }
2552
2553 /*
2554  * Preemptively release a lease we expect to invalidate anyway.
2555  * Pass @inode always, @dentry is optional.
2556  */
2557 void ceph_mdsc_lease_release(struct ceph_mds_client *mdsc, struct inode *inode,
2558                              struct dentry *dentry, int mask)
2559 {
2560         struct ceph_dentry_info *di;
2561         struct ceph_mds_session *session;
2562         u32 seq;
2563
2564         BUG_ON(inode == NULL);
2565         BUG_ON(dentry == NULL);
2566         BUG_ON(mask != CEPH_LOCK_DN);
2567
2568         /* is dentry lease valid? */
2569         spin_lock(&dentry->d_lock);
2570         di = ceph_dentry(dentry);
2571         if (!di || !di->lease_session ||
2572             di->lease_session->s_mds < 0 ||
2573             di->lease_gen != di->lease_session->s_cap_gen ||
2574             !time_before(jiffies, dentry->d_time)) {
2575                 dout("lease_release inode %p dentry %p -- "
2576                      "no lease on %d\n",
2577                      inode, dentry, mask);
2578                 spin_unlock(&dentry->d_lock);
2579                 return;
2580         }
2581
2582         /* we do have a lease on this dentry; note mds and seq */
2583         session = ceph_get_mds_session(di->lease_session);
2584         seq = di->lease_seq;
2585         __ceph_mdsc_drop_dentry_lease(dentry);
2586         spin_unlock(&dentry->d_lock);
2587
2588         dout("lease_release inode %p dentry %p mask %d to mds%d\n",
2589              inode, dentry, mask, session->s_mds);
2590         ceph_mdsc_lease_send_msg(session, inode, dentry,
2591                                  CEPH_MDS_LEASE_RELEASE, seq);
2592         ceph_put_mds_session(session);
2593 }
2594
2595 /*
2596  * drop all leases (and dentry refs) in preparation for umount
2597  */
2598 static void drop_leases(struct ceph_mds_client *mdsc)
2599 {
2600         int i;
2601
2602         dout("drop_leases\n");
2603         mutex_lock(&mdsc->mutex);
2604         for (i = 0; i < mdsc->max_sessions; i++) {
2605                 struct ceph_mds_session *s = __ceph_lookup_mds_session(mdsc, i);
2606                 if (!s)
2607                         continue;
2608                 mutex_unlock(&mdsc->mutex);
2609                 mutex_lock(&s->s_mutex);
2610                 mutex_unlock(&s->s_mutex);
2611                 ceph_put_mds_session(s);
2612                 mutex_lock(&mdsc->mutex);
2613         }
2614         mutex_unlock(&mdsc->mutex);
2615 }
2616
2617
2618
2619 /*
2620  * delayed work -- periodically trim expired leases, renew caps with mds
2621  */
2622 static void schedule_delayed(struct ceph_mds_client *mdsc)
2623 {
2624         int delay = 5;
2625         unsigned hz = round_jiffies_relative(HZ * delay);
2626         schedule_delayed_work(&mdsc->delayed_work, hz);
2627 }
2628
2629 static void delayed_work(struct work_struct *work)
2630 {
2631         int i;
2632         struct ceph_mds_client *mdsc =
2633                 container_of(work, struct ceph_mds_client, delayed_work.work);
2634         int renew_interval;
2635         int renew_caps;
2636
2637         dout("mdsc delayed_work\n");
2638         ceph_check_delayed_caps(mdsc);
2639
2640         mutex_lock(&mdsc->mutex);
2641         renew_interval = mdsc->mdsmap->m_session_timeout >> 2;
2642         renew_caps = time_after_eq(jiffies, HZ*renew_interval +
2643                                    mdsc->last_renew_caps);
2644         if (renew_caps)
2645                 mdsc->last_renew_caps = jiffies;
2646
2647         for (i = 0; i < mdsc->max_sessions; i++) {
2648                 struct ceph_mds_session *s = __ceph_lookup_mds_session(mdsc, i);
2649                 if (s == NULL)
2650                         continue;
2651                 if (s->s_state == CEPH_MDS_SESSION_CLOSING) {
2652                         dout("resending session close request for mds%d\n",
2653                              s->s_mds);
2654                         request_close_session(mdsc, s);
2655                         ceph_put_mds_session(s);
2656                         continue;
2657                 }
2658                 if (s->s_ttl && time_after(jiffies, s->s_ttl)) {
2659                         if (s->s_state == CEPH_MDS_SESSION_OPEN) {
2660                                 s->s_state = CEPH_MDS_SESSION_HUNG;
2661                                 pr_info("mds%d hung\n", s->s_mds);
2662                         }
2663                 }
2664                 if (s->s_state < CEPH_MDS_SESSION_OPEN) {
2665                         /* this mds is failed or recovering, just wait */
2666                         ceph_put_mds_session(s);
2667                         continue;
2668                 }
2669                 mutex_unlock(&mdsc->mutex);
2670
2671                 mutex_lock(&s->s_mutex);
2672                 if (renew_caps)
2673                         send_renew_caps(mdsc, s);
2674                 else
2675                         ceph_con_keepalive(&s->s_con);
2676                 add_cap_releases(mdsc, s, -1);
2677                 if (s->s_state == CEPH_MDS_SESSION_OPEN ||
2678                     s->s_state == CEPH_MDS_SESSION_HUNG)
2679                         send_cap_releases(mdsc, s);
2680                 mutex_unlock(&s->s_mutex);
2681                 ceph_put_mds_session(s);
2682
2683                 mutex_lock(&mdsc->mutex);
2684         }
2685         mutex_unlock(&mdsc->mutex);
2686
2687         schedule_delayed(mdsc);
2688 }
2689
2690
2691 int ceph_mdsc_init(struct ceph_mds_client *mdsc, struct ceph_client *client)
2692 {
2693         mdsc->client = client;
2694         mutex_init(&mdsc->mutex);
2695         mdsc->mdsmap = kzalloc(sizeof(*mdsc->mdsmap), GFP_NOFS);
2696         if (mdsc->mdsmap == NULL)
2697                 return -ENOMEM;
2698
2699         init_completion(&mdsc->safe_umount_waiters);
2700         init_completion(&mdsc->session_close_waiters);
2701         INIT_LIST_HEAD(&mdsc->waiting_for_map);
2702         mdsc->sessions = NULL;
2703         mdsc->max_sessions = 0;
2704         mdsc->stopping = 0;
2705         init_rwsem(&mdsc->snap_rwsem);
2706         mdsc->snap_realms = RB_ROOT;
2707         INIT_LIST_HEAD(&mdsc->snap_empty);
2708         spin_lock_init(&mdsc->snap_empty_lock);
2709         mdsc->last_tid = 0;
2710         mdsc->request_tree = RB_ROOT;
2711         INIT_DELAYED_WORK(&mdsc->delayed_work, delayed_work);
2712         mdsc->last_renew_caps = jiffies;
2713         INIT_LIST_HEAD(&mdsc->cap_delay_list);
2714         spin_lock_init(&mdsc->cap_delay_lock);
2715         INIT_LIST_HEAD(&mdsc->snap_flush_list);
2716         spin_lock_init(&mdsc->snap_flush_lock);
2717         mdsc->cap_flush_seq = 0;
2718         INIT_LIST_HEAD(&mdsc->cap_dirty);
2719         mdsc->num_cap_flushing = 0;
2720         spin_lock_init(&mdsc->cap_dirty_lock);
2721         init_waitqueue_head(&mdsc->cap_flushing_wq);
2722         spin_lock_init(&mdsc->dentry_lru_lock);
2723         INIT_LIST_HEAD(&mdsc->dentry_lru);
2724
2725         return 0;
2726 }
2727
2728 /*
2729  * Wait for safe replies on open mds requests.  If we time out, drop
2730  * all requests from the tree to avoid dangling dentry refs.
2731  */
2732 static void wait_requests(struct ceph_mds_client *mdsc)
2733 {
2734         struct ceph_mds_request *req;
2735         struct ceph_client *client = mdsc->client;
2736
2737         mutex_lock(&mdsc->mutex);
2738         if (__get_oldest_req(mdsc)) {
2739                 mutex_unlock(&mdsc->mutex);
2740
2741                 dout("wait_requests waiting for requests\n");
2742                 wait_for_completion_timeout(&mdsc->safe_umount_waiters,
2743                                     client->mount_args->mount_timeout * HZ);
2744
2745                 /* tear down remaining requests */
2746                 mutex_lock(&mdsc->mutex);
2747                 while ((req = __get_oldest_req(mdsc))) {
2748                         dout("wait_requests timed out on tid %llu\n",
2749                              req->r_tid);
2750                         __unregister_request(mdsc, req);
2751                 }
2752         }
2753         mutex_unlock(&mdsc->mutex);
2754         dout("wait_requests done\n");
2755 }
2756
2757 /*
2758  * called before mount is ro, and before dentries are torn down.
2759  * (hmm, does this still race with new lookups?)
2760  */
2761 void ceph_mdsc_pre_umount(struct ceph_mds_client *mdsc)
2762 {
2763         dout("pre_umount\n");
2764         mdsc->stopping = 1;
2765
2766         drop_leases(mdsc);
2767         ceph_flush_dirty_caps(mdsc);
2768         wait_requests(mdsc);
2769 }
2770
2771 /*
2772  * wait for all write mds requests to flush.
2773  */
2774 static void wait_unsafe_requests(struct ceph_mds_client *mdsc, u64 want_tid)
2775 {
2776         struct ceph_mds_request *req = NULL, *nextreq;
2777         struct rb_node *n;
2778
2779         mutex_lock(&mdsc->mutex);
2780         dout("wait_unsafe_requests want %lld\n", want_tid);
2781 restart:
2782         req = __get_oldest_req(mdsc);
2783         while (req && req->r_tid <= want_tid) {
2784                 /* find next request */
2785                 n = rb_next(&req->r_node);
2786                 if (n)
2787                         nextreq = rb_entry(n, struct ceph_mds_request, r_node);
2788                 else
2789                         nextreq = NULL;
2790                 if ((req->r_op & CEPH_MDS_OP_WRITE)) {
2791                         /* write op */
2792                         ceph_mdsc_get_request(req);
2793                         if (nextreq)
2794                                 ceph_mdsc_get_request(nextreq);
2795                         mutex_unlock(&mdsc->mutex);
2796                         dout("wait_unsafe_requests  wait on %llu (want %llu)\n",
2797                              req->r_tid, want_tid);
2798                         wait_for_completion(&req->r_safe_completion);
2799                         mutex_lock(&mdsc->mutex);
2800                         ceph_mdsc_put_request(req);
2801                         if (!nextreq)
2802                                 break;  /* next dne before, so we're done! */
2803                         if (RB_EMPTY_NODE(&nextreq->r_node)) {
2804                                 /* next request was removed from tree */
2805                                 ceph_mdsc_put_request(nextreq);
2806                                 goto restart;
2807                         }
2808                         ceph_mdsc_put_request(nextreq);  /* won't go away */
2809                 }
2810                 req = nextreq;
2811         }
2812         mutex_unlock(&mdsc->mutex);
2813         dout("wait_unsafe_requests done\n");
2814 }
2815
2816 void ceph_mdsc_sync(struct ceph_mds_client *mdsc)
2817 {
2818         u64 want_tid, want_flush;
2819
2820         if (mdsc->client->mount_state == CEPH_MOUNT_SHUTDOWN)
2821                 return;
2822
2823         dout("sync\n");
2824         mutex_lock(&mdsc->mutex);
2825         want_tid = mdsc->last_tid;
2826         want_flush = mdsc->cap_flush_seq;
2827         mutex_unlock(&mdsc->mutex);
2828         dout("sync want tid %lld flush_seq %lld\n", want_tid, want_flush);
2829
2830         ceph_flush_dirty_caps(mdsc);
2831
2832         wait_unsafe_requests(mdsc, want_tid);
2833         wait_event(mdsc->cap_flushing_wq, check_cap_flush(mdsc, want_flush));
2834 }
2835
2836
2837 /*
2838  * called after sb is ro.
2839  */
2840 void ceph_mdsc_close_sessions(struct ceph_mds_client *mdsc)
2841 {
2842         struct ceph_mds_session *session;
2843         int i;
2844         int n;
2845         struct ceph_client *client = mdsc->client;
2846         unsigned long started, timeout = client->mount_args->mount_timeout * HZ;
2847
2848         dout("close_sessions\n");
2849
2850         mutex_lock(&mdsc->mutex);
2851
2852         /* close sessions */
2853         started = jiffies;
2854         while (time_before(jiffies, started + timeout)) {
2855                 dout("closing sessions\n");
2856                 n = 0;
2857                 for (i = 0; i < mdsc->max_sessions; i++) {
2858                         session = __ceph_lookup_mds_session(mdsc, i);
2859                         if (!session)
2860                                 continue;
2861                         mutex_unlock(&mdsc->mutex);
2862                         mutex_lock(&session->s_mutex);
2863                         __close_session(mdsc, session);
2864                         mutex_unlock(&session->s_mutex);
2865                         ceph_put_mds_session(session);
2866                         mutex_lock(&mdsc->mutex);
2867                         n++;
2868                 }
2869                 if (n == 0)
2870                         break;
2871
2872                 if (client->mount_state == CEPH_MOUNT_SHUTDOWN)
2873                         break;
2874
2875                 dout("waiting for sessions to close\n");
2876                 mutex_unlock(&mdsc->mutex);
2877                 wait_for_completion_timeout(&mdsc->session_close_waiters,
2878                                             timeout);
2879                 mutex_lock(&mdsc->mutex);
2880         }
2881
2882         /* tear down remaining sessions */
2883         for (i = 0; i < mdsc->max_sessions; i++) {
2884                 if (mdsc->sessions[i]) {
2885                         session = get_session(mdsc->sessions[i]);
2886                         __unregister_session(mdsc, session);
2887                         mutex_unlock(&mdsc->mutex);
2888                         mutex_lock(&session->s_mutex);
2889                         remove_session_caps(session);
2890                         mutex_unlock(&session->s_mutex);
2891                         ceph_put_mds_session(session);
2892                         mutex_lock(&mdsc->mutex);
2893                 }
2894         }
2895
2896         WARN_ON(!list_empty(&mdsc->cap_delay_list));
2897
2898         mutex_unlock(&mdsc->mutex);
2899
2900         ceph_cleanup_empty_realms(mdsc);
2901
2902         cancel_delayed_work_sync(&mdsc->delayed_work); /* cancel timer */
2903
2904         dout("stopped\n");
2905 }
2906
2907 void ceph_mdsc_stop(struct ceph_mds_client *mdsc)
2908 {
2909         dout("stop\n");
2910         cancel_delayed_work_sync(&mdsc->delayed_work); /* cancel timer */
2911         if (mdsc->mdsmap)
2912                 ceph_mdsmap_destroy(mdsc->mdsmap);
2913         kfree(mdsc->sessions);
2914 }
2915
2916
2917 /*
2918  * handle mds map update.
2919  */
2920 void ceph_mdsc_handle_map(struct ceph_mds_client *mdsc, struct ceph_msg *msg)
2921 {
2922         u32 epoch;
2923         u32 maplen;
2924         void *p = msg->front.iov_base;
2925         void *end = p + msg->front.iov_len;
2926         struct ceph_mdsmap *newmap, *oldmap;
2927         struct ceph_fsid fsid;
2928         int err = -EINVAL;
2929
2930         ceph_decode_need(&p, end, sizeof(fsid)+2*sizeof(u32), bad);
2931         ceph_decode_copy(&p, &fsid, sizeof(fsid));
2932         if (ceph_check_fsid(mdsc->client, &fsid) < 0)
2933                 return;
2934         epoch = ceph_decode_32(&p);
2935         maplen = ceph_decode_32(&p);
2936         dout("handle_map epoch %u len %d\n", epoch, (int)maplen);
2937
2938         /* do we need it? */
2939         ceph_monc_got_mdsmap(&mdsc->client->monc, epoch);
2940         mutex_lock(&mdsc->mutex);
2941         if (mdsc->mdsmap && epoch <= mdsc->mdsmap->m_epoch) {
2942                 dout("handle_map epoch %u <= our %u\n",
2943                      epoch, mdsc->mdsmap->m_epoch);
2944                 mutex_unlock(&mdsc->mutex);
2945                 return;
2946         }
2947
2948         newmap = ceph_mdsmap_decode(&p, end);
2949         if (IS_ERR(newmap)) {
2950                 err = PTR_ERR(newmap);
2951                 goto bad_unlock;
2952         }
2953
2954         /* swap into place */
2955         if (mdsc->mdsmap) {
2956                 oldmap = mdsc->mdsmap;
2957                 mdsc->mdsmap = newmap;
2958                 check_new_map(mdsc, newmap, oldmap);
2959                 ceph_mdsmap_destroy(oldmap);
2960         } else {
2961                 mdsc->mdsmap = newmap;  /* first mds map */
2962         }
2963         mdsc->client->sb->s_maxbytes = mdsc->mdsmap->m_max_file_size;
2964
2965         __wake_requests(mdsc, &mdsc->waiting_for_map);
2966
2967         mutex_unlock(&mdsc->mutex);
2968         schedule_delayed(mdsc);
2969         return;
2970
2971 bad_unlock:
2972         mutex_unlock(&mdsc->mutex);
2973 bad:
2974         pr_err("error decoding mdsmap %d\n", err);
2975         return;
2976 }
2977
2978 static struct ceph_connection *con_get(struct ceph_connection *con)
2979 {
2980         struct ceph_mds_session *s = con->private;
2981
2982         if (get_session(s)) {
2983                 dout("mdsc con_get %p ok (%d)\n", s, atomic_read(&s->s_ref));
2984                 return con;
2985         }
2986         dout("mdsc con_get %p FAIL\n", s);
2987         return NULL;
2988 }
2989
2990 static void con_put(struct ceph_connection *con)
2991 {
2992         struct ceph_mds_session *s = con->private;
2993
2994         ceph_put_mds_session(s);
2995         dout("mdsc con_put %p (%d)\n", s, atomic_read(&s->s_ref));
2996 }
2997
2998 /*
2999  * if the client is unresponsive for long enough, the mds will kill
3000  * the session entirely.
3001  */
3002 static void peer_reset(struct ceph_connection *con)
3003 {
3004         struct ceph_mds_session *s = con->private;
3005         struct ceph_mds_client *mdsc = s->s_mdsc;
3006
3007         pr_warning("mds%d closed our session\n", s->s_mds);
3008         send_mds_reconnect(mdsc, s);
3009 }
3010
3011 static void dispatch(struct ceph_connection *con, struct ceph_msg *msg)
3012 {
3013         struct ceph_mds_session *s = con->private;
3014         struct ceph_mds_client *mdsc = s->s_mdsc;
3015         int type = le16_to_cpu(msg->hdr.type);
3016
3017         mutex_lock(&mdsc->mutex);
3018         if (__verify_registered_session(mdsc, s) < 0) {
3019                 mutex_unlock(&mdsc->mutex);
3020                 goto out;
3021         }
3022         mutex_unlock(&mdsc->mutex);
3023
3024         switch (type) {
3025         case CEPH_MSG_MDS_MAP:
3026                 ceph_mdsc_handle_map(mdsc, msg);
3027                 break;
3028         case CEPH_MSG_CLIENT_SESSION:
3029                 handle_session(s, msg);
3030                 break;
3031         case CEPH_MSG_CLIENT_REPLY:
3032                 handle_reply(s, msg);
3033                 break;
3034         case CEPH_MSG_CLIENT_REQUEST_FORWARD:
3035                 handle_forward(mdsc, s, msg);
3036                 break;
3037         case CEPH_MSG_CLIENT_CAPS:
3038                 ceph_handle_caps(s, msg);
3039                 break;
3040         case CEPH_MSG_CLIENT_SNAP:
3041                 ceph_handle_snap(mdsc, s, msg);
3042                 break;
3043         case CEPH_MSG_CLIENT_LEASE:
3044                 handle_lease(mdsc, s, msg);
3045                 break;
3046
3047         default:
3048                 pr_err("received unknown message type %d %s\n", type,
3049                        ceph_msg_type_name(type));
3050         }
3051 out:
3052         ceph_msg_put(msg);
3053 }
3054
3055 /*
3056  * authentication
3057  */
3058 static int get_authorizer(struct ceph_connection *con,
3059                           void **buf, int *len, int *proto,
3060                           void **reply_buf, int *reply_len, int force_new)
3061 {
3062         struct ceph_mds_session *s = con->private;
3063         struct ceph_mds_client *mdsc = s->s_mdsc;
3064         struct ceph_auth_client *ac = mdsc->client->monc.auth;
3065         int ret = 0;
3066
3067         if (force_new && s->s_authorizer) {
3068                 ac->ops->destroy_authorizer(ac, s->s_authorizer);
3069                 s->s_authorizer = NULL;
3070         }
3071         if (s->s_authorizer == NULL) {
3072                 if (ac->ops->create_authorizer) {
3073                         ret = ac->ops->create_authorizer(
3074                                 ac, CEPH_ENTITY_TYPE_MDS,
3075                                 &s->s_authorizer,
3076                                 &s->s_authorizer_buf,
3077                                 &s->s_authorizer_buf_len,
3078                                 &s->s_authorizer_reply_buf,
3079                                 &s->s_authorizer_reply_buf_len);
3080                         if (ret)
3081                                 return ret;
3082                 }
3083         }
3084
3085         *proto = ac->protocol;
3086         *buf = s->s_authorizer_buf;
3087         *len = s->s_authorizer_buf_len;
3088         *reply_buf = s->s_authorizer_reply_buf;
3089         *reply_len = s->s_authorizer_reply_buf_len;
3090         return 0;
3091 }
3092
3093
3094 static int verify_authorizer_reply(struct ceph_connection *con, int len)
3095 {
3096         struct ceph_mds_session *s = con->private;
3097         struct ceph_mds_client *mdsc = s->s_mdsc;
3098         struct ceph_auth_client *ac = mdsc->client->monc.auth;
3099
3100         return ac->ops->verify_authorizer_reply(ac, s->s_authorizer, len);
3101 }
3102
3103 static int invalidate_authorizer(struct ceph_connection *con)
3104 {
3105         struct ceph_mds_session *s = con->private;
3106         struct ceph_mds_client *mdsc = s->s_mdsc;
3107         struct ceph_auth_client *ac = mdsc->client->monc.auth;
3108
3109         if (ac->ops->invalidate_authorizer)
3110                 ac->ops->invalidate_authorizer(ac, CEPH_ENTITY_TYPE_MDS);
3111
3112         return ceph_monc_validate_auth(&mdsc->client->monc);
3113 }
3114
3115 const static struct ceph_connection_operations mds_con_ops = {
3116         .get = con_get,
3117         .put = con_put,
3118         .dispatch = dispatch,
3119         .get_authorizer = get_authorizer,
3120         .verify_authorizer_reply = verify_authorizer_reply,
3121         .invalidate_authorizer = invalidate_authorizer,
3122         .peer_reset = peer_reset,
3123 };
3124
3125
3126
3127
3128 /* eof */