1 /*
2  * CDDL HEADER START
3  *
4  * The contents of this file are subject to the terms of the
5  * Common Development and Distribution License, Version 1.0 only
6  * (the "License").  You may not use this file except in compliance
7  * with the License.
8  *
9  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
10  * or http://www.opensolaris.org/os/licensing.
11  * See the License for the specific language governing permissions
12  * and limitations under the License.
13  *
14  * When distributing Covered Code, include this CDDL HEADER in each
15  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
16  * If applicable, add the following below this CDDL HEADER, with the
17  * fields enclosed by brackets "[]" replaced with your own identifying
18  * information: Portions Copyright [yyyy] [name of copyright owner]
19  *
20  * CDDL HEADER END
21  */
22 /*
23  * Copyright 2005 Sun Microsystems, Inc.  All rights reserved.
24  * Use is subject to license terms.
25  */
26 
27 #pragma ident	"%Z%%M%	%I%	%E% SMI"
28 
29 /*
30  * NFS Version 4 state recovery code.
31  */
32 
33 #include <nfs/nfs4_clnt.h>
34 #include <nfs/nfs4.h>
35 #include <nfs/rnode4.h>
36 #include <sys/cmn_err.h>
37 #include <sys/cred.h>
38 #include <sys/systm.h>
39 #include <sys/flock.h>
40 #include <sys/dnlc.h>
41 #include <sys/ddi.h>
42 #include <sys/disp.h>
43 #include <sys/list.h>
44 #include <sys/sdt.h>
45 
46 extern r4hashq_t *rtable4;
47 
48 /*
49  * Information that describes what needs to be done for recovery.  It is
50  * passed to a client recovery thread as well as passed to various recovery
51  * routines.  rc_mi, rc_vp1, and rc_vp2 refer to the filesystem and
52  * vnode(s) affected by recovery.  rc_vp1 and rc_vp2 are references (use
53  * VN_HOLD) or NULL.  rc_lost_rqst contains information about the lost
54  * lock or open/close request, and it holds reference counts for the
55  * various objects (vnode, etc.).  The recovery thread also uses flags set
56  * in the mntinfo4_t or vnode_t to tell it what to do.  rc_error is used
57  * to save the error that originally triggered the recovery event -- will
58  * later be used to set mi_error if recovery doesn't work.  rc_bseqid_rqst
59  * contains information about the request that got NFS4ERR_BAD_SEQID, and
60  * it holds reference count for the various objects (vnode, open owner,
61  * open stream, lock owner).
62  */
63 
64 typedef struct {
65 	mntinfo4_t *rc_mi;
66 	vnode_t *rc_vp1;
67 	vnode_t *rc_vp2;
68 	nfs4_recov_t rc_action;
69 	stateid4 rc_stateid;
70 	bool_t rc_srv_reboot;		/* server has rebooted */
71 	nfs4_lost_rqst_t *rc_lost_rqst;
72 	nfs4_error_t rc_orig_errors;	/* original errors causing recovery */
73 	int rc_error;
74 	nfs4_bseqid_entry_t *rc_bseqid_rqst;
75 } recov_info_t;
76 
77 /*
78  * How long to wait before trying again if there is an error doing
79  * recovery, in seconds.
80  */
81 
82 static int recov_err_delay = 1;
83 
84 /*
85  * How long to wait when processing NFS4ERR_GRACE or NFS4ERR_DELAY
86  * errors.  Expressed in seconds.  Default is defined as
87  * NFS4ERR_DELAY_TIME and this variable is initialized in nfs4_subr_init()
88  */
89 time_t nfs4err_delay_time = 0;
90 
91 /*
92  * Tuneable to limit how many time "exempt" ops go OTW
93  * after a recovery error.  Exempt op hints are OH_CLOSE,
94  * OH_LOCKU, OH_DELEGRETURN.  These previously always went
95  * OTW even after rnode was "dead" due to recovery errors.
96  *
97  * The tuneable below limits the number of times a start_fop
98  * invocation will retry the exempt hints.  After the limit
99  * is reached, nfs4_start_fop will return an error just like
100  * it would for non-exempt op hints.
101  */
102 int nfs4_max_recov_error_retry = 3;
103 
104 /*
105  * Number of seconds the recovery thread should pause before retry when the
106  * filesystem has been forcibly unmounted.
107  */
108 
109 int nfs4_unmount_delay = 1;
110 
111 #ifdef DEBUG
112 
113 /*
114  * How long to wait (in seconds) between recovery operations on a given
115  * file.  Normally zero, but could be set longer for testing purposes.
116  */
117 static int nfs4_recovdelay = 0;
118 
119 /*
120  * Switch that controls whether to go into the debugger when recovery
121  * fails.
122  */
123 static int nfs4_fail_recov_stop = 0;
124 
125 /*
126  * Tuneables to debug client namespace interaction with server
127  * mount points:
128  *
129  *	nfs4_srvmnt_fail_cnt:
130  *		number of times EACCES returned because client
131  *		attempted to cross server mountpoint
132  *
133  *	nfs4_srvmnt_debug:
134  *		trigger console printf whenever client attempts
135  *		to cross server mountpoint
136  */
137 int nfs4_srvmnt_fail_cnt = 0;
138 int nfs4_srvmnt_debug = 0;
139 #endif
140 
141 /* forward references, in alphabetic order */
142 static void close_after_open_resend(vnode_t *, cred_t *, uint32_t,
143 	nfs4_error_t *);
144 static void errs_to_action(recov_info_t *,
145 	nfs4_server_t *, mntinfo4_t *, stateid4 *, nfs4_lost_rqst_t *, int,
146 	nfs_opnum4, nfs4_bseqid_entry_t *);
147 static void flush_reinstate(nfs4_lost_rqst_t *);
148 static void free_milist(mntinfo4_t **, int);
149 static mntinfo4_t **make_milist(nfs4_server_t *, int *);
150 static int nfs4_check_recov_err(vnode_t *, nfs4_op_hint_t,
151 	nfs4_recov_state_t *, int, char *);
152 static int nfs4_check_srvstub(vnode_t *vp, rnode4_t *rp, nfs4_op_hint_t op);
153 static char *nfs4_getsrvnames(mntinfo4_t *, size_t *);
154 static void nfs4_recov_fh_fail(vnode_t *, int, nfsstat4);
155 static void nfs4_recov_thread(recov_info_t *);
156 static void nfs4_remove_lost_rqsts(mntinfo4_t *, nfs4_server_t *);
157 static void nfs4_resend_lost_rqsts(recov_info_t *, nfs4_server_t *);
158 static cred_t *pid_to_cr(pid_t);
159 static void reclaim_one_lock(vnode_t *, flock64_t *, nfs4_error_t *, int *);
160 static void recov_bad_seqid(recov_info_t *);
161 static void recov_badstate(recov_info_t *, vnode_t *, nfsstat4);
162 static void recov_clientid(recov_info_t *, nfs4_server_t *);
163 static void recov_done(mntinfo4_t *, recov_info_t *);
164 static void recov_filehandle(nfs4_recov_t, mntinfo4_t *, vnode_t *);
165 static void recov_newserver(recov_info_t *, nfs4_server_t **, bool_t *);
166 static void recov_openfiles(recov_info_t *, nfs4_server_t *);
167 static void recov_stale(mntinfo4_t *, vnode_t *);
168 static void nfs4_free_lost_rqst(nfs4_lost_rqst_t *, nfs4_server_t *);
169 static void recov_throttle(recov_info_t *, vnode_t *);
170 static void relock_skip_pid(locklist_t *, pid_t);
171 static void resend_lock(nfs4_lost_rqst_t *, nfs4_error_t *);
172 static void resend_one_op(nfs4_lost_rqst_t *, nfs4_error_t *, mntinfo4_t *,
173 	nfs4_server_t *);
174 static void save_bseqid_rqst(nfs4_bseqid_entry_t *, recov_info_t *);
175 static void start_recovery(recov_info_t *, mntinfo4_t *, vnode_t *, vnode_t *,
176 	nfs4_server_t *);
177 static void start_recovery_action(nfs4_recov_t, bool_t, mntinfo4_t *, vnode_t *,
178 	vnode_t *);
179 static int wait_for_recovery(mntinfo4_t *, nfs4_op_hint_t);
180 
181 /*
182  * Return non-zero if the given errno, status, and rpc status codes
183  * in the nfs4_error_t indicate that client recovery is needed.
184  * "stateful" indicates whether the call that got the error establishes or
185  * removes state on the server (open, close, lock, unlock, delegreturn).
186  */
187 
188 int
189 nfs4_needs_recovery(nfs4_error_t *ep, bool_t stateful, vfs_t *vfsp)
190 {
191 	int recov = 0;
192 	mntinfo4_t *mi;
193 
194 	/*
195 	 * Try failover if the error values justify it and if
196 	 * it's a failover mount.  Don't try if the mount is in
197 	 * progress, failures are handled explicitly by nfs4rootvp.
198 	 */
199 	if (nfs4_try_failover(ep)) {
200 		mi = VFTOMI4(vfsp);
201 		mutex_enter(&mi->mi_lock);
202 		recov = FAILOVER_MOUNT4(mi) && !(mi->mi_flags & MI4_MOUNTING);
203 		mutex_exit(&mi->mi_lock);
204 		if (recov)
205 			return (recov);
206 	}
207 
208 	if (ep->error == EINTR || NFS4_FRC_UNMT_ERR(ep->error, vfsp)) {
209 		/*
210 		 * The server may have gotten the request, so for stateful
211 		 * ops we need to resynchronize and possibly back out the
212 		 * op.
213 		 */
214 		return (stateful);
215 	}
216 	if (ep->error != 0)
217 		return (0);
218 
219 	/* stat values are listed alphabetically */
220 	/*
221 	 * There are two lists here: the errors for which we have code, and
222 	 * the errors for which we plan to have code before FCS.  For the
223 	 * second list, print a warning message but don't attempt recovery.
224 	 */
225 	switch (ep->stat) {
226 	case NFS4ERR_BADHANDLE:
227 	case NFS4ERR_BAD_SEQID:
228 	case NFS4ERR_BAD_STATEID:
229 	case NFS4ERR_DELAY:
230 	case NFS4ERR_EXPIRED:
231 	case NFS4ERR_FHEXPIRED:
232 	case NFS4ERR_GRACE:
233 	case NFS4ERR_OLD_STATEID:
234 	case NFS4ERR_RESOURCE:
235 	case NFS4ERR_STALE_CLIENTID:
236 	case NFS4ERR_STALE_STATEID:
237 	case NFS4ERR_WRONGSEC:
238 	case NFS4ERR_STALE:
239 		recov = 1;
240 		break;
241 #ifdef DEBUG
242 	case NFS4ERR_LEASE_MOVED:
243 	case NFS4ERR_MOVED:
244 		zcmn_err(VFTOMI4(vfsp)->mi_zone->zone_id,
245 		    CE_WARN, "!Can't yet recover from NFS status %d",
246 				ep->stat);
247 		break;
248 #endif
249 	}
250 
251 	return (recov);
252 }
253 
254 /*
255  * Some operations such as DELEGRETURN want to avoid invoking
256  * recovery actions that will only mark the file dead.  If
257  * better handlers are invoked for any of these errors, this
258  * routine should be modified.
259  */
260 int
261 nfs4_recov_marks_dead(nfsstat4 status)
262 {
263 	if (status == NFS4ERR_BAD_SEQID ||
264 	    status == NFS4ERR_EXPIRED ||
265 	    status == NFS4ERR_BAD_STATEID ||
266 	    status == NFS4ERR_OLD_STATEID)
267 		return (1);
268 	return (0);
269 }
270 
271 /*
272  * Transfer the state recovery information in recovp to mi's resend queue,
273  * and mark mi as having a lost state request.
274  */
275 static void
276 nfs4_enqueue_lost_rqst(recov_info_t *recovp, mntinfo4_t *mi)
277 {
278 	nfs4_lost_rqst_t *lrp = recovp->rc_lost_rqst;
279 
280 	ASSERT(nfs_rw_lock_held(&mi->mi_recovlock, RW_READER) ||
281 	    nfs_rw_lock_held(&mi->mi_recovlock, RW_WRITER));
282 
283 	ASSERT(lrp != NULL && lrp->lr_op != 0);
284 
285 	NFS4_DEBUG(nfs4_lost_rqst_debug, (CE_NOTE,
286 		"nfs4_enqueue_lost_rqst %p, op %d",
287 		(void *)lrp, lrp->lr_op));
288 
289 	mutex_enter(&mi->mi_lock);
290 	mi->mi_recovflags |= MI4R_LOST_STATE;
291 	if (lrp->lr_putfirst)
292 		list_insert_head(&mi->mi_lost_state, lrp);
293 	else
294 		list_insert_tail(&mi->mi_lost_state, lrp);
295 	recovp->rc_lost_rqst = NULL;
296 	mutex_exit(&mi->mi_lock);
297 
298 	nfs4_queue_event(RE_LOST_STATE, mi, NULL, lrp->lr_op, lrp->lr_vp,
299 		lrp->lr_dvp, 0, NULL, 0, TAG_NONE, TAG_NONE, 0, 0);
300 }
301 
302 /*
303  * Transfer the bad seqid recovery information in recovp to mi's
304  * bad seqid queue, and mark mi as having a bad seqid request.
305  */
306 void
307 enqueue_bseqid_rqst(recov_info_t *recovp, mntinfo4_t *mi)
308 {
309 	ASSERT(nfs_rw_lock_held(&mi->mi_recovlock, RW_READER) ||
310 	    nfs_rw_lock_held(&mi->mi_recovlock, RW_WRITER));
311 	ASSERT(recovp->rc_bseqid_rqst != NULL);
312 
313 	mutex_enter(&mi->mi_lock);
314 	mi->mi_recovflags |= MI4R_BAD_SEQID;
315 	list_insert_tail(&mi->mi_bseqid_list, recovp->rc_bseqid_rqst);
316 	recovp->rc_bseqid_rqst = NULL;
317 	mutex_exit(&mi->mi_lock);
318 }
319 
320 /*
321  * Initiate recovery.
322  *
323  * The nfs4_error_t contains the return codes that triggered a recovery
324  * attempt.  mi, vp1, and vp2 refer to the filesystem and files that were
325  * being operated on.  vp1 and vp2 may be NULL.
326  *
327  * Multiple calls are okay.  If recovery is already underway, the call
328  * updates the information about what state needs recovery but does not
329  * start a new thread.  The caller should hold mi->mi_recovlock as a reader
330  * for proper synchronization with any recovery thread.
331  *
332  * This will return TRUE if recovery was aborted, and FALSE otherwise.
333  */
334 bool_t
335 nfs4_start_recovery(nfs4_error_t *ep, mntinfo4_t *mi, vnode_t *vp1,
336     vnode_t *vp2, stateid4 *sid, nfs4_lost_rqst_t *lost_rqstp, nfs_opnum4 op,
337     nfs4_bseqid_entry_t *bsep)
338 {
339 	recov_info_t *recovp;
340 	nfs4_server_t *sp;
341 	bool_t abort = FALSE;
342 	bool_t gone = FALSE;
343 
344 	ASSERT(curproc->p_zone == mi->mi_zone);
345 	mutex_enter(&mi->mi_lock);
346 	/*
347 	 * If there is lost state, we need to kick off recovery even if the
348 	 * filesystem has been unmounted or the zone is shutting down.
349 	 */
350 	gone = FS_OR_ZONE_GONE4(mi->mi_vfsp);
351 	if (gone) {
352 		ASSERT(ep->error != EINTR || lost_rqstp != NULL);
353 		if (ep->error == EIO && lost_rqstp == NULL) {
354 			/* failed due to forced unmount, no new lost state */
355 			abort = TRUE;
356 		}
357 		if ((ep->error == 0 || ep->error == ETIMEDOUT) &&
358 		    !(mi->mi_recovflags & MI4R_LOST_STATE)) {
359 			/* some other failure, no existing lost state */
360 			abort = TRUE;
361 		}
362 		if (abort) {
363 			mutex_exit(&mi->mi_lock);
364 			NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
365 				    "nfs4_start_recovery: fs unmounted"));
366 			return (TRUE);
367 		}
368 	}
369 	mi->mi_in_recovery++;
370 	mutex_exit(&mi->mi_lock);
371 
372 	recovp = kmem_alloc(sizeof (recov_info_t), KM_SLEEP);
373 	recovp->rc_orig_errors = *ep;
374 	sp = find_nfs4_server(mi);
375 	errs_to_action(recovp, sp, mi, sid, lost_rqstp,
376 		gone, op, bsep);
377 	if (sp != NULL)
378 		mutex_exit(&sp->s_lock);
379 	start_recovery(recovp, mi, vp1, vp2, sp);
380 	if (sp != NULL)
381 		nfs4_server_rele(sp);
382 	return (FALSE);
383 }
384 
385 /*
386  * Internal version of nfs4_start_recovery.  The difference is that the
387  * caller specifies the recovery action, rather than the errors leading to
388  * recovery.
389  */
390 static void
391 start_recovery_action(nfs4_recov_t what, bool_t reboot, mntinfo4_t *mi,
392 	vnode_t *vp1, vnode_t *vp2)
393 {
394 	recov_info_t *recovp;
395 
396 	ASSERT(curproc->p_zone == mi->mi_zone);
397 	mutex_enter(&mi->mi_lock);
398 	mi->mi_in_recovery++;
399 	mutex_exit(&mi->mi_lock);
400 
401 	recovp = kmem_zalloc(sizeof (recov_info_t), KM_SLEEP);
402 	recovp->rc_action = what;
403 	recovp->rc_srv_reboot = reboot;
404 	recovp->rc_error = EIO;
405 	start_recovery(recovp, mi, vp1, vp2, NULL);
406 }
407 
408 static void
409 start_recovery(recov_info_t *recovp, mntinfo4_t *mi,
410 	vnode_t *vp1, vnode_t *vp2, nfs4_server_t *sp)
411 {
412 	NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
413 		"start_recovery: mi %p, what %s", (void*)mi,
414 		nfs4_recov_action_to_str(recovp->rc_action)));
415 
416 	/*
417 	 * Bump the reference on the vfs so that we can pass it to the
418 	 * recovery thread.
419 	 */
420 	VFS_HOLD(mi->mi_vfsp);
421 
422 again:
423 	switch (recovp->rc_action) {
424 	case NR_FAILOVER:
425 		ASSERT(nfs_rw_lock_held(&mi->mi_recovlock, RW_READER) ||
426 		    nfs_rw_lock_held(&mi->mi_recovlock, RW_WRITER));
427 		if (mi->mi_servers->sv_next == NULL)
428 			goto out_no_thread;
429 		mutex_enter(&mi->mi_lock);
430 		mi->mi_recovflags |= MI4R_NEED_NEW_SERVER;
431 		mutex_exit(&mi->mi_lock);
432 
433 		if (recovp->rc_lost_rqst != NULL)
434 			nfs4_enqueue_lost_rqst(recovp, mi);
435 		break;
436 
437 	case NR_CLIENTID:
438 		/*
439 		 * If the filesystem has been unmounted, punt.
440 		 */
441 		if (sp == NULL)
442 			goto out_no_thread;
443 
444 		/*
445 		 * If nobody else is working on the clientid, mark the
446 		 * clientid as being no longer set.  Then mark the specific
447 		 * filesystem being worked on.
448 		 */
449 		if (!nfs4_server_in_recovery(sp)) {
450 			mutex_enter(&sp->s_lock);
451 			sp->s_flags &= ~N4S_CLIENTID_SET;
452 			mutex_exit(&sp->s_lock);
453 		}
454 		ASSERT(nfs_rw_lock_held(&mi->mi_recovlock, RW_READER) ||
455 		    nfs_rw_lock_held(&mi->mi_recovlock, RW_WRITER));
456 		mutex_enter(&mi->mi_lock);
457 		mi->mi_recovflags |= MI4R_NEED_CLIENTID;
458 		if (recovp->rc_srv_reboot)
459 			mi->mi_recovflags |= MI4R_SRV_REBOOT;
460 		mutex_exit(&mi->mi_lock);
461 		break;
462 
463 	case NR_OPENFILES:
464 		ASSERT(nfs_rw_lock_held(&mi->mi_recovlock, RW_READER) ||
465 		    nfs_rw_lock_held(&mi->mi_recovlock, RW_WRITER));
466 		mutex_enter(&mi->mi_lock);
467 		mi->mi_recovflags |= MI4R_REOPEN_FILES;
468 		if (recovp->rc_srv_reboot)
469 			mi->mi_recovflags |= MI4R_SRV_REBOOT;
470 		mutex_exit(&mi->mi_lock);
471 		break;
472 
473 	case NR_WRONGSEC:
474 		ASSERT(nfs_rw_lock_held(&mi->mi_recovlock, RW_READER) ||
475 		    nfs_rw_lock_held(&mi->mi_recovlock, RW_WRITER));
476 		mutex_enter(&mi->mi_lock);
477 		mi->mi_recovflags |= MI4R_NEED_SECINFO;
478 		mutex_exit(&mi->mi_lock);
479 		break;
480 
481 	case NR_EXPIRED:
482 		if (vp1 != NULL)
483 			recov_badstate(recovp, vp1, NFS4ERR_EXPIRED);
484 		if (vp2 != NULL)
485 			recov_badstate(recovp, vp2, NFS4ERR_EXPIRED);
486 		goto out_no_thread;	/* no further recovery possible */
487 
488 	case NR_BAD_STATEID:
489 		if (vp1 != NULL)
490 			recov_badstate(recovp, vp1, NFS4ERR_BAD_STATEID);
491 		if (vp2 != NULL)
492 			recov_badstate(recovp, vp2, NFS4ERR_BAD_STATEID);
493 		goto out_no_thread;	/* no further recovery possible */
494 
495 	case NR_FHEXPIRED:
496 	case NR_BADHANDLE:
497 		if (vp1 != NULL)
498 			recov_throttle(recovp, vp1);
499 		if (vp2 != NULL)
500 			recov_throttle(recovp, vp2);
501 		/*
502 		 * Recover the filehandle now, rather than using a
503 		 * separate thread.  We can do this because filehandle
504 		 * recovery is independent of any other state, and because
505 		 * we know that we are not competing with the recovery
506 		 * thread at this time.  recov_filehandle will deal with
507 		 * threads that are competing to recover this filehandle.
508 		 */
509 		ASSERT(nfs_rw_lock_held(&mi->mi_recovlock, RW_READER) ||
510 		    nfs_rw_lock_held(&mi->mi_recovlock, RW_WRITER));
511 		if (vp1 != NULL)
512 			recov_filehandle(recovp->rc_action, mi, vp1);
513 		if (vp2 != NULL)
514 			recov_filehandle(recovp->rc_action, mi, vp2);
515 		goto out_no_thread;	/* no further recovery needed */
516 
517 	case NR_STALE:
518 		/*
519 		 * NFS4ERR_STALE handling
520 		 * recov_stale() could set MI4R_NEED_NEW_SERVER to
521 		 * indicate that we can and should failover.
522 		 */
523 		ASSERT(nfs_rw_lock_held(&mi->mi_recovlock, RW_READER) ||
524 		    nfs_rw_lock_held(&mi->mi_recovlock, RW_WRITER));
525 
526 		if (vp1 != NULL)
527 			recov_stale(mi, vp1);
528 		if (vp2 != NULL)
529 			recov_stale(mi, vp2);
530 		mutex_enter(&mi->mi_lock);
531 		if ((mi->mi_recovflags & MI4R_NEED_NEW_SERVER) == 0) {
532 			mutex_exit(&mi->mi_lock);
533 			goto out_no_thread;
534 		}
535 		mutex_exit(&mi->mi_lock);
536 		recovp->rc_action = NR_FAILOVER;
537 		goto again;
538 
539 	case NR_BAD_SEQID:
540 		if (recovp->rc_bseqid_rqst) {
541 			enqueue_bseqid_rqst(recovp, mi);
542 			break;
543 		}
544 
545 		if (vp1 != NULL)
546 			recov_badstate(recovp, vp1, NFS4ERR_BAD_SEQID);
547 		if (vp2 != NULL)
548 			recov_badstate(recovp, vp2, NFS4ERR_BAD_SEQID);
549 		goto out_no_thread; /* no further recovery possible */
550 
551 	case NR_OLDSTATEID:
552 		if (vp1 != NULL)
553 			recov_badstate(recovp, vp1, NFS4ERR_OLD_STATEID);
554 		if (vp2 != NULL)
555 			recov_badstate(recovp, vp2, NFS4ERR_OLD_STATEID);
556 		goto out_no_thread;	/* no further recovery possible */
557 
558 	case NR_GRACE:
559 		nfs4_set_grace_wait(mi);
560 		goto out_no_thread; /* no further action required for GRACE */
561 
562 	case NR_DELAY:
563 		if (vp1)
564 			nfs4_set_delay_wait(vp1);
565 		goto out_no_thread; /* no further action required for DELAY */
566 
567 	case NR_LOST_STATE_RQST:
568 	case NR_LOST_LOCK:
569 		nfs4_enqueue_lost_rqst(recovp, mi);
570 		break;
571 
572 	default:
573 		nfs4_queue_event(RE_UNEXPECTED_ACTION, mi, NULL,
574 		    recovp->rc_action, NULL, NULL, 0, NULL, 0, TAG_NONE,
575 		    TAG_NONE, 0, 0);
576 		goto out_no_thread;
577 	}
578 
579 	/*
580 	 * If either file recently went through the same recovery, wait
581 	 * awhile.  This is in case there is some sort of bug; we might not
582 	 * be able to recover properly, but at least we won't bombard the
583 	 * server with calls, and we won't tie up the client.
584 	 */
585 	if (vp1 != NULL)
586 		recov_throttle(recovp, vp1);
587 	if (vp2 != NULL)
588 		recov_throttle(recovp, vp2);
589 
590 	/*
591 	 * If there's already a recovery thread, don't start another one.
592 	 */
593 
594 	mutex_enter(&mi->mi_lock);
595 	if (mi->mi_flags & MI4_RECOV_ACTIV) {
596 		mutex_exit(&mi->mi_lock);
597 		goto out_no_thread;
598 	}
599 	mi->mi_flags |= MI4_RECOV_ACTIV;
600 	mutex_exit(&mi->mi_lock);
601 	NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
602 		"start_recovery: starting new thread for mi %p", (void*)mi));
603 
604 	recovp->rc_mi = mi;
605 	recovp->rc_vp1 = vp1;
606 	if (vp1 != NULL) {
607 		ASSERT(VTOMI4(vp1) == mi);
608 		VN_HOLD(recovp->rc_vp1);
609 	}
610 	recovp->rc_vp2 = vp2;
611 	if (vp2 != NULL) {
612 		ASSERT(VTOMI4(vp2) == mi);
613 		VN_HOLD(recovp->rc_vp2);
614 	}
615 
616 	(void) zthread_create(NULL, 0, nfs4_recov_thread, recovp, 0,
617 			    minclsyspri);
618 	return;
619 
620 	/* not reached by thread creating call */
621 out_no_thread:
622 	mutex_enter(&mi->mi_lock);
623 	mi->mi_in_recovery--;
624 	cv_broadcast(&mi->mi_cv_in_recov);
625 	mutex_exit(&mi->mi_lock);
626 
627 	VFS_RELE(mi->mi_vfsp);
628 	/*
629 	 * Free up resources that were allocated for us.
630 	 */
631 	kmem_free(recovp, sizeof (recov_info_t));
632 }
633 
634 static int
635 nfs4_check_srvstub(vnode_t *vp, rnode4_t *rp, nfs4_op_hint_t op)
636 {
637 	int err = 0;
638 
639 	/*
640 	 * If tuneable does not allow client to cross srv mountpoints and
641 	 * object is a stub, then check check op hint and return EACCES for
642 	 * any hint other than access, rddir, getattr, lookup.
643 	 */
644 	if (rp->r_flags & R4SRVSTUB && op != OH_ACCESS && op != OH_GETACL &&
645 	    op != OH_GETATTR && op != OH_READDIR && op != OH_LOOKUP) {
646 		err = EACCES;
647 #ifdef DEBUG
648 		NFS4_DEBUG(nfs4_srvmnt_debug, (CE_NOTE,
649 			"nfs4_check_srvstub: op=%d err=%d rp=%p vp=%p\n"
650 			"va_nod=%llx r_mntd_fid=%llx\n"
651 			"sv_fsid=(%llx:%llx) r_srv_fsid=(%llx:%llx)",
652 			op, err, (void *)rp, (void *)vp,
653 			(u_longlong_t)rp->r_attr.va_nodeid,
654 			(u_longlong_t)rp->r_mntd_fid,
655 			(u_longlong_t)rp->r_server->sv_fsid.major,
656 			(u_longlong_t)rp->r_server->sv_fsid.minor,
657 			(u_longlong_t)rp->r_srv_fsid.major,
658 			(u_longlong_t)rp->r_srv_fsid.minor));
659 #endif
660 	}
661 
662 	return (err);
663 }
664 
665 static int
666 nfs4_check_recov_err(vnode_t *vp, nfs4_op_hint_t op,
667 			nfs4_recov_state_t *rsp, int retry_err_cnt, char *str)
668 {
669 	rnode4_t *rp;
670 	int error = 0;
671 	int exempt;
672 
673 	if (vp == NULL)
674 		return (0);
675 
676 	exempt = (op == OH_CLOSE || op == OH_LOCKU || op == OH_DELEGRETURN);
677 	rp = VTOR4(vp);
678 	mutex_enter(&rp->r_statelock);
679 
680 	/*
681 	 * If there was a recovery error, then allow op hints "exempt" from
682 	 * recov errors to retry (currently 3 times).  Either r_error or
683 	 * EIO is returned for non-exempt op hints.
684 	 *
685 	 *	Error heirarchy:
686 	 *	a) check for R4ERECOVERR
687 	 *	b) check for R4SRVSTUB (only if R4RECOVERR is not set).
688 	 */
689 	if (rp->r_flags & R4RECOVERR) {
690 		if (exempt && rsp->rs_num_retry_despite_err <=
691 				nfs4_max_recov_error_retry) {
692 
693 			/*
694 			 * Check to make sure that we haven't already inc'd
695 			 * rs_num_retry_despite_err for current nfs4_start_fop
696 			 * instance.  We don't want to double inc (if we were
697 			 * called with vp2, then the vp1 call could have
698 			 * already incremented.
699 			 */
700 			if (retry_err_cnt == rsp->rs_num_retry_despite_err)
701 				rsp->rs_num_retry_despite_err++;
702 
703 			NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
704 				"nfs4_start_fop: %s %p DEAD, cnt=%d", str,
705 				(void *)vp, rsp->rs_num_retry_despite_err));
706 		} else {
707 			error = (rp->r_error ? rp->r_error : EIO);
708 			/*
709 			 * An ESTALE error on a non-regular file is not
710 			 * "sticky".  Return the ESTALE error once, but
711 			 * clear the condition to allow future operations
712 			 * to go OTW.  This will allow the client to
713 			 * recover if the server has merely unshared then
714 			 * re-shared the file system.  For regular files,
715 			 * the unshare has destroyed the open state at the
716 			 * server and we aren't willing to do a reopen (yet).
717 			 */
718 			if (error == ESTALE && vp->v_type != VREG) {
719 				rp->r_flags &=
720 					~(R4RECOVERR|R4RECOVERRP|R4STALE);
721 				rp->r_error = 0;
722 				error = ESTALE;
723 			}
724 			NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
725 				"nfs4_start_fop: %s %p DEAD, cnt=%d error=%d",
726 				str, (void *)vp,
727 				rsp->rs_num_retry_despite_err, error));
728 		}
729 	} else {
730 		error = nfs4_check_srvstub(vp, rp, op);
731 		NFS4_DEBUG(nfs4_client_recov_stub_debug, (CE_NOTE,
732 			"nfs4_start_fop: %s %p SRVSTUB, error=%d", str,
733 			(void *)vp, error));
734 	}
735 	mutex_exit(&rp->r_statelock);
736 	return (error);
737 }
738 
739 /*
740  * Initial setup code that every operation should call if it might invoke
741  * client recovery.  Can block waiting for recovery to finish on a
742  * filesystem.  Either vnode ptr can be NULL.
743  *
744  * Returns 0 if there are no outstanding errors.  Can return an
745  * errno value under various circumstances (e.g., failed recovery, or
746  * interrupted while waiting for recovery to finish).
747  *
748  * There must be a corresponding call to nfs4_end_op() to free up any locks
749  * or resources allocated by this call (assuming this call succeeded),
750  * using the same rsp that's passed in here.
751  *
752  * The open and lock seqid synchronization must be stopped before calling this
753  * function, as it could lead to deadlock when trying to reopen a file or
754  * reclaim a lock.  The synchronization is obtained with calls to:
755  *   nfs4_start_open_seqid_sync()
756  *   nfs4_start_lock_seqid_sync()
757  *
758  * *startrecovp is set TRUE if the caller should not bother with the
759  * over-the-wire call, and just initiate recovery for the given request.
760  * This is typically used for state-releasing ops if the filesystem has
761  * been forcibly unmounted.  startrecovp may be NULL for
762  * non-state-releasing ops.
763  */
764 
765 int
766 nfs4_start_fop(mntinfo4_t *mi, vnode_t *vp1, vnode_t *vp2, nfs4_op_hint_t op,
767 		nfs4_recov_state_t *rsp, bool_t *startrecovp)
768 {
769 	int error = 0, rerr_cnt;
770 	nfs4_server_t *sp = NULL;
771 	nfs4_server_t *tsp;
772 	nfs4_error_t e = { 0, NFS4_OK, RPC_SUCCESS };
773 	time_t droplock_time;
774 #ifdef DEBUG
775 	void *fop_caller;
776 #endif
777 
778 	ASSERT(vp1 == NULL || vp1->v_vfsp == mi->mi_vfsp);
779 	ASSERT(vp2 == NULL || vp2->v_vfsp == mi->mi_vfsp);
780 
781 #ifdef	DEBUG
782 	if ((fop_caller = tsd_get(nfs4_tsd_key)) != NULL) {
783 		cmn_err(CE_PANIC, "Missing nfs4_end_fop: last caller %p",
784 			fop_caller);
785 	}
786 	(void) tsd_set(nfs4_tsd_key, caller());
787 #endif
788 
789 	rsp->rs_sp = NULL;
790 	rsp->rs_flags &= ~NFS4_RS_RENAME_HELD;
791 	rerr_cnt = rsp->rs_num_retry_despite_err;
792 
793 	/*
794 	 * Process the items that may delay() based on server response
795 	 */
796 	error = nfs4_wait_for_grace(mi, rsp);
797 	if (error)
798 		goto out;
799 
800 	if (vp1 != NULL) {
801 		error = nfs4_wait_for_delay(vp1, rsp);
802 		if (error)
803 			goto out;
804 	}
805 
806 	/* Wait for a delegation recall to complete. */
807 
808 	error = wait_for_recall(vp1, vp2, op, rsp);
809 	if (error)
810 		goto out;
811 
812 	/*
813 	 * Wait for any current recovery actions to finish.  Note that a
814 	 * recovery thread can still start up after wait_for_recovery()
815 	 * finishes.  We don't block out recovery operations until we
816 	 * acquire s_recovlock and mi_recovlock.
817 	 */
818 	error = wait_for_recovery(mi, op);
819 	if (error)
820 		goto out;
821 
822 	/*
823 	 * Check to see if the rnode is already marked with a
824 	 * recovery error.  If so, return it immediately.  But
825 	 * always pass CLOSE, LOCKU, and DELEGRETURN so we can
826 	 * clean up state on the server.
827 	 */
828 
829 	if (vp1 != NULL) {
830 		if (error = nfs4_check_recov_err(vp1, op, rsp, rerr_cnt, "vp1"))
831 			goto out;
832 		nfs4_check_remap(mi, vp1, NFS4_REMAP_CKATTRS, &e);
833 	}
834 
835 	if (vp2 != NULL) {
836 		if (error = nfs4_check_recov_err(vp2, op, rsp, rerr_cnt, "vp2"))
837 			goto out;
838 		nfs4_check_remap(mi, vp2, NFS4_REMAP_CKATTRS, &e);
839 	}
840 
841 	/*
842 	 * The lock order calls for us to acquire s_recovlock before
843 	 * mi_recovlock, but we have to hold mi_recovlock to look up sp (to
844 	 * prevent races with the failover/migration code).  So acquire
845 	 * mi_recovlock, look up sp, drop mi_recovlock, acquire
846 	 * s_recovlock and mi_recovlock, then verify that sp is still the
847 	 * right object.  XXX Can we find a simpler way to deal with this?
848 	 */
849 	if (nfs_rw_enter_sig(&mi->mi_recovlock, RW_READER,
850 	    mi->mi_flags & MI4_INT)) {
851 		error = EINTR;
852 		goto out;
853 	}
854 get_sp:
855 	sp = find_nfs4_server(mi);
856 	if (sp != NULL) {
857 		sp->s_otw_call_count++;
858 		droplock_time = gethrestime_sec();
859 		mutex_exit(&sp->s_lock);
860 	}
861 	nfs_rw_exit(&mi->mi_recovlock);
862 
863 	if (sp != NULL) {
864 		if (nfs_rw_enter_sig(&sp->s_recovlock, RW_READER,
865 			    mi->mi_flags & MI4_INT)) {
866 			error = EINTR;
867 			goto out;
868 		}
869 	}
870 	if (nfs_rw_enter_sig(&mi->mi_recovlock, RW_READER,
871 			    mi->mi_flags & MI4_INT)) {
872 		if (sp != NULL)
873 			nfs_rw_exit(&sp->s_recovlock);
874 		error = EINTR;
875 		goto out;
876 	}
877 	/*
878 	 * If the mntinfo4_t hasn't changed nfs4_sever_ts then
879 	 * there's no point in double checking to make sure it
880 	 * has switched.
881 	 * XXX is there a better lock to use for mi_srvsettime
882 	 * instead of s_lock?  mi_recovlock as READER would
883 	 * be perfect.
884 	 */
885 	if (sp != NULL)
886 		mutex_enter(&sp->s_lock);
887 	if (sp == NULL || droplock_time < mi->mi_srvsettime) {
888 		if (sp != NULL)
889 			mutex_exit(&sp->s_lock);
890 		tsp = find_nfs4_server(mi);
891 		if (tsp != sp) {
892 			/* try again */
893 			if (tsp != NULL) {
894 				mutex_exit(&tsp->s_lock);
895 				nfs4_server_rele(tsp);
896 				tsp = NULL;
897 			}
898 			if (sp != NULL) {
899 				nfs_rw_exit(&sp->s_recovlock);
900 				mutex_enter(&sp->s_lock);
901 				sp->s_otw_call_count--;
902 				mutex_exit(&sp->s_lock);
903 				nfs4_server_rele(sp);
904 				sp = NULL;
905 			}
906 			goto get_sp;
907 		} else {
908 			if (tsp != NULL) {
909 				mutex_exit(&tsp->s_lock);
910 				nfs4_server_rele(tsp);
911 				tsp = NULL;
912 			}
913 		}
914 	} else {
915 		if (sp != NULL)
916 			mutex_exit(&sp->s_lock);
917 	}
918 
919 	if (sp != NULL) {
920 		rsp->rs_sp = sp;
921 	}
922 
923 	/*
924 	 * If the fileystem uses volatile filehandles, obtain a lock so
925 	 * that we synchronize with renames.  Exception: mount operations
926 	 * can change mi_fh_expire_type, which could be a problem, since
927 	 * the end_op code needs to be consistent with the start_op code
928 	 * about mi_rename_lock.  Since mounts don't compete with renames,
929 	 * it's simpler to just not acquire the rename lock for mounts.
930 	 */
931 	if (NFS4_VOLATILE_FH(mi) && op != OH_MOUNT) {
932 		if (nfs_rw_enter_sig(&mi->mi_rename_lock,
933 				    op == OH_VFH_RENAME ? RW_WRITER : RW_READER,
934 				    mi->mi_flags & MI4_INT)) {
935 			nfs_rw_exit(&mi->mi_recovlock);
936 			if (sp != NULL)
937 				nfs_rw_exit(&sp->s_recovlock);
938 			error = EINTR;
939 			goto out;
940 		}
941 		rsp->rs_flags |= NFS4_RS_RENAME_HELD;
942 	}
943 
944 	if (OH_IS_STATE_RELE(op)) {
945 		/*
946 		 * For forced unmount, letting the request proceed will
947 		 * almost always delay response to the user, so hand it off
948 		 * to the recovery thread.  For exiting lwp's, we don't
949 		 * have a good way to tell if the request will hang.  We
950 		 * generally want processes to handle their own requests so
951 		 * that they can be done in parallel, but if there is
952 		 * already a recovery thread, hand the request off to it.
953 		 * This will improve user response at no cost to overall
954 		 * system throughput.  For zone shutdown, we'd prefer
955 		 * the recovery thread to handle this as well.
956 		 */
957 		ASSERT(startrecovp != NULL);
958 		mutex_enter(&mi->mi_lock);
959 		if (FS_OR_ZONE_GONE4(mi->mi_vfsp))
960 			*startrecovp = TRUE;
961 		else if ((curthread->t_proc_flag & TP_LWPEXIT) &&
962 		    (mi->mi_flags & MI4_RECOV_ACTIV))
963 			*startrecovp = TRUE;
964 		else
965 			*startrecovp = FALSE;
966 		mutex_exit(&mi->mi_lock);
967 	} else
968 		if (startrecovp != NULL)
969 			*startrecovp = FALSE;
970 
971 	ASSERT(error == 0);
972 	return (error);
973 
974 out:
975 	ASSERT(error != 0);
976 	if (sp != NULL) {
977 		mutex_enter(&sp->s_lock);
978 		sp->s_otw_call_count--;
979 		mutex_exit(&sp->s_lock);
980 		nfs4_server_rele(sp);
981 		rsp->rs_sp = NULL;
982 	}
983 	nfs4_end_op_recall(vp1, vp2, rsp);
984 
985 #ifdef	DEBUG
986 	(void) tsd_set(nfs4_tsd_key, NULL);
987 #endif
988 	return (error);
989 }
990 
991 /*
992  * It is up to the caller to determine if rsp->rs_sp being NULL
993  * is detrimental or not.
994  */
995 int
996 nfs4_start_op(mntinfo4_t *mi, vnode_t *vp1, vnode_t *vp2,
997 	nfs4_recov_state_t *rsp)
998 {
999 	ASSERT(rsp->rs_num_retry_despite_err == 0);
1000 	rsp->rs_num_retry_despite_err = 0;
1001 	return (nfs4_start_fop(mi, vp1, vp2, OH_OTHER, rsp, NULL));
1002 }
1003 
1004 /*
1005  * Release any resources acquired by nfs4_start_op().
1006  * 'sp' should be the nfs4_server pointer returned by nfs4_start_op().
1007  *
1008  * The operation hint is used to avoid a deadlock by bypassing delegation
1009  * return logic for writes, which are done while returning a delegation.
1010  */
1011 
1012 void
1013 nfs4_end_fop(mntinfo4_t *mi, vnode_t *vp1, vnode_t *vp2, nfs4_op_hint_t op,
1014 		nfs4_recov_state_t *rsp, bool_t needs_recov)
1015 {
1016 	nfs4_server_t *sp = rsp->rs_sp;
1017 	rnode4_t *rp = NULL;
1018 
1019 #ifdef	lint
1020 	/*
1021 	 * The op hint isn't used any more, but might be in
1022 	 * the future.
1023 	 */
1024 	op = op;
1025 #endif
1026 
1027 #ifdef	DEBUG
1028 	ASSERT(tsd_get(nfs4_tsd_key) != NULL);
1029 	(void) tsd_set(nfs4_tsd_key, NULL);
1030 #endif
1031 
1032 	nfs4_end_op_recall(vp1, vp2, rsp);
1033 
1034 	if (rsp->rs_flags & NFS4_RS_RENAME_HELD)
1035 		nfs_rw_exit(&mi->mi_rename_lock);
1036 
1037 	if (!needs_recov) {
1038 		if (rsp->rs_flags & NFS4_RS_DELAY_MSG) {
1039 			/* may need to clear the delay interval */
1040 			if (vp1 != NULL) {
1041 				rp = VTOR4(vp1);
1042 				mutex_enter(&rp->r_statelock);
1043 				rp->r_delay_interval = 0;
1044 				mutex_exit(&rp->r_statelock);
1045 			}
1046 		}
1047 		rsp->rs_flags &= ~(NFS4_RS_GRACE_MSG|NFS4_RS_DELAY_MSG);
1048 	}
1049 
1050 	/*
1051 	 * If the corresponding nfs4_start_op() found a sp,
1052 	 * then there must still be a sp.
1053 	 */
1054 	if (sp != NULL) {
1055 		nfs_rw_exit(&mi->mi_recovlock);
1056 		nfs_rw_exit(&sp->s_recovlock);
1057 		mutex_enter(&sp->s_lock);
1058 		sp->s_otw_call_count--;
1059 		cv_broadcast(&sp->s_cv_otw_count);
1060 		mutex_exit(&sp->s_lock);
1061 		nfs4_server_rele(sp);
1062 	} else {
1063 		nfs_rw_exit(&mi->mi_recovlock);
1064 	}
1065 }
1066 
1067 void
1068 nfs4_end_op(mntinfo4_t *mi, vnode_t *vp1, vnode_t *vp2,
1069 	    nfs4_recov_state_t *rsp, bool_t needrecov)
1070 {
1071 	nfs4_end_fop(mi, vp1, vp2, OH_OTHER, rsp, needrecov);
1072 }
1073 
1074 /*
1075  * If the filesystem is going through client recovery, block until
1076  * finished.
1077  * Exceptions:
1078  * - state-releasing ops (CLOSE, LOCKU, DELEGRETURN) are allowed to proceed
1079  *   if the filesystem has been forcibly unmounted or the lwp is exiting.
1080  *
1081  * Return value:
1082  * - 0 if no errors
1083  * - EINTR if the call was interrupted
1084  * - EIO if the filesystem has been forcibly unmounted (non-state-releasing
1085  *   op)
1086  * - the errno value from the recovery thread, if recovery failed
1087  */
1088 
1089 static int
1090 wait_for_recovery(mntinfo4_t *mi, nfs4_op_hint_t op_hint)
1091 {
1092 	int error = 0;
1093 
1094 	mutex_enter(&mi->mi_lock);
1095 
1096 	while (mi->mi_recovflags != 0) {
1097 		klwp_t *lwp = ttolwp(curthread);
1098 
1099 		if (mi->mi_flags & MI4_RECOV_FAIL)
1100 			break;
1101 		if (mi->mi_vfsp->vfs_flag & VFS_UNMOUNTED)
1102 			break;
1103 		if (OH_IS_STATE_RELE(op_hint) &&
1104 		    (curthread->t_proc_flag & TP_LWPEXIT))
1105 			break;
1106 
1107 		if (lwp != NULL)
1108 			lwp->lwp_nostop++;
1109 		/* XXX - use different cv? */
1110 		if (cv_wait_sig(&mi->mi_failover_cv, &mi->mi_lock) == 0) {
1111 			error = EINTR;
1112 			if (lwp != NULL)
1113 				lwp->lwp_nostop--;
1114 			break;
1115 		}
1116 		if (lwp != NULL)
1117 			lwp->lwp_nostop--;
1118 	}
1119 
1120 	if (mi->mi_flags & MI4_RECOV_FAIL) {
1121 		NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
1122 			"wait_for_recovery: fail since RECOV FAIL"));
1123 		error = mi->mi_error;
1124 	} else if ((mi->mi_vfsp->vfs_flag & VFS_UNMOUNTED) &&
1125 	    !OH_IS_STATE_RELE(op_hint)) {
1126 		NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
1127 			"wait_for_recovery: forced unmount"));
1128 		error = EIO;
1129 	}
1130 
1131 	mutex_exit(&mi->mi_lock);
1132 
1133 	return (error);
1134 }
1135 
1136 /*
1137  * If the client received NFS4ERR_GRACE for this particular mount,
1138  * the client blocks here until it is time to try again.
1139  *
1140  * Return value:
1141  * - 0 if wait was successful
1142  * - EINTR if the call was interrupted
1143  */
1144 
1145 int
1146 nfs4_wait_for_grace(mntinfo4_t *mi, nfs4_recov_state_t *rsp)
1147 {
1148 	int error = 0;
1149 	time_t curtime, time_to_wait;
1150 
1151 	/* do a unprotected check to reduce mi_lock contention */
1152 	if (mi->mi_grace_wait != 0) {
1153 		mutex_enter(&mi->mi_lock);
1154 
1155 		if (mi->mi_grace_wait != 0) {
1156 			if (!(rsp->rs_flags & NFS4_RS_GRACE_MSG))
1157 				rsp->rs_flags |= NFS4_RS_GRACE_MSG;
1158 
1159 			curtime = gethrestime_sec();
1160 
1161 			if (curtime < mi->mi_grace_wait) {
1162 
1163 				time_to_wait = mi->mi_grace_wait - curtime;
1164 
1165 				mutex_exit(&mi->mi_lock);
1166 
1167 				delay(SEC_TO_TICK(time_to_wait));
1168 
1169 				curtime = gethrestime_sec();
1170 
1171 				mutex_enter(&mi->mi_lock);
1172 
1173 				if (curtime >= mi->mi_grace_wait)
1174 					mi->mi_grace_wait = 0;
1175 			} else {
1176 				mi->mi_grace_wait = 0;
1177 			}
1178 		}
1179 		mutex_exit(&mi->mi_lock);
1180 	}
1181 
1182 	return (error);
1183 }
1184 
1185 /*
1186  * If the client received NFS4ERR_DELAY for an operation on a vnode,
1187  * the client blocks here until it is time to try again.
1188  *
1189  * Return value:
1190  * - 0 if wait was successful
1191  * - EINTR if the call was interrupted
1192  */
1193 
1194 int
1195 nfs4_wait_for_delay(vnode_t *vp, nfs4_recov_state_t *rsp)
1196 {
1197 	int error = 0;
1198 	time_t curtime, time_to_wait;
1199 	rnode4_t *rp;
1200 
1201 	ASSERT(vp != NULL);
1202 
1203 	rp = VTOR4(vp);
1204 
1205 	/* do a unprotected check to reduce r_statelock contention */
1206 	if (rp->r_delay_wait != 0) {
1207 		mutex_enter(&rp->r_statelock);
1208 
1209 		if (rp->r_delay_wait != 0) {
1210 
1211 			if (!(rsp->rs_flags & NFS4_RS_DELAY_MSG)) {
1212 				rsp->rs_flags |= NFS4_RS_DELAY_MSG;
1213 				nfs4_mi_kstat_inc_delay(VTOMI4(vp));
1214 			}
1215 
1216 			curtime = gethrestime_sec();
1217 
1218 			if (curtime < rp->r_delay_wait) {
1219 
1220 				time_to_wait = rp->r_delay_wait - curtime;
1221 
1222 				mutex_exit(&rp->r_statelock);
1223 
1224 				delay(SEC_TO_TICK(time_to_wait));
1225 
1226 				curtime = gethrestime_sec();
1227 
1228 				mutex_enter(&rp->r_statelock);
1229 
1230 				if (curtime >= rp->r_delay_wait)
1231 					rp->r_delay_wait = 0;
1232 			} else {
1233 				rp->r_delay_wait = 0;
1234 			}
1235 		}
1236 		mutex_exit(&rp->r_statelock);
1237 	}
1238 
1239 	return (error);
1240 }
1241 
1242 /*
1243  * The recovery thread.
1244  */
1245 
1246 static void
1247 nfs4_recov_thread(recov_info_t *recovp)
1248 {
1249 	mntinfo4_t *mi = recovp->rc_mi;
1250 	nfs4_server_t *sp;
1251 	int done = 0, error = 0;
1252 	bool_t recov_fail = FALSE;
1253 	callb_cpr_t cpr_info;
1254 	kmutex_t cpr_lock;
1255 
1256 	nfs4_queue_event(RE_START, mi, NULL, mi->mi_recovflags,
1257 	    recovp->rc_vp1, recovp->rc_vp2, 0, NULL, 0, TAG_NONE, TAG_NONE,
1258 	    0, 0);
1259 
1260 	mutex_init(&cpr_lock, NULL, MUTEX_DEFAULT, NULL);
1261 	CALLB_CPR_INIT(&cpr_info, &cpr_lock, callb_generic_cpr, "nfsv4Recov");
1262 
1263 	mutex_enter(&mi->mi_lock);
1264 	mi->mi_recovthread = curthread;
1265 	mutex_exit(&mi->mi_lock);
1266 
1267 	/*
1268 	 * We don't really need protection here against failover or
1269 	 * migration, since the current thread is the one that would make
1270 	 * any changes, but hold mi_recovlock anyway for completeness (and
1271 	 * to satisfy any ASSERTs).
1272 	 */
1273 	(void) nfs_rw_enter_sig(&mi->mi_recovlock, RW_READER, 0);
1274 	sp = find_nfs4_server(mi);
1275 	if (sp != NULL)
1276 		mutex_exit(&sp->s_lock);
1277 	nfs_rw_exit(&mi->mi_recovlock);
1278 
1279 	/*
1280 	 * Do any necessary recovery, based on the information in recovp
1281 	 * and any recovery flags.
1282 	 */
1283 
1284 	do {
1285 		mutex_enter(&mi->mi_lock);
1286 		if (FS_OR_ZONE_GONE4(mi->mi_vfsp)) {
1287 			bool_t activesrv;
1288 
1289 			NFS4_DEBUG(nfs4_client_recov_debug &&
1290 			    mi->mi_vfsp->vfs_flag & VFS_UNMOUNTED, (CE_NOTE,
1291 				"nfs4_recov_thread: file system has been "
1292 				"unmounted"));
1293 			NFS4_DEBUG(nfs4_client_recov_debug &&
1294 			    zone_status_get(curproc->p_zone) >=
1295 			    ZONE_IS_SHUTTING_DOWN, (CE_NOTE,
1296 				"nfs4_recov_thread: zone shutting down"));
1297 			/*
1298 			 * If the server has lost its state for us and
1299 			 * the filesystem is unmounted, then the filesystem
1300 			 * can be tossed, even if there are lost lock or
1301 			 * lost state calls in the recovery queue.
1302 			 */
1303 			if (mi->mi_recovflags &
1304 			    (MI4R_NEED_CLIENTID | MI4R_REOPEN_FILES)) {
1305 				NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
1306 				"nfs4_recov_thread: bailing out"));
1307 				mi->mi_flags |= MI4_RECOV_FAIL;
1308 				mi->mi_error = recovp->rc_error;
1309 				recov_fail = TRUE;
1310 			}
1311 			/*
1312 			 * We don't know if the server has any state for
1313 			 * us, and the filesystem has been unmounted.  If
1314 			 * there are "lost state" recovery items, keep
1315 			 * trying to process them until there are no more
1316 			 * mounted filesystems for the server.  Otherwise,
1317 			 * bail out.  The reason we don't mark the
1318 			 * filesystem as failing recovery is in case we
1319 			 * have to do "lost state" recovery later (e.g., a
1320 			 * user process exits).
1321 			 */
1322 			if (!(mi->mi_recovflags & MI4R_LOST_STATE)) {
1323 				recov_done(mi, recovp);
1324 				mutex_exit(&mi->mi_lock);
1325 				break;
1326 			}
1327 			mutex_exit(&mi->mi_lock);
1328 
1329 			if (sp == NULL)
1330 				activesrv = FALSE;
1331 			else {
1332 				mutex_enter(&sp->s_lock);
1333 				activesrv = nfs4_fs_active(sp);
1334 			}
1335 			if (!activesrv) {
1336 				NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
1337 					"no active fs for server %p",
1338 					(void *)sp));
1339 				mutex_enter(&mi->mi_lock);
1340 				mi->mi_flags |= MI4_RECOV_FAIL;
1341 				mi->mi_error = recovp->rc_error;
1342 				mutex_exit(&mi->mi_lock);
1343 				recov_fail = TRUE;
1344 				if (sp != NULL) {
1345 					/*
1346 					 * Mark the server instance as
1347 					 * dead, so that nobody will attach
1348 					 * a new filesystem.
1349 					 */
1350 					nfs4_mark_srv_dead(sp);
1351 				}
1352 			}
1353 			if (sp != NULL)
1354 				mutex_exit(&sp->s_lock);
1355 		} else {
1356 			mutex_exit(&mi->mi_lock);
1357 		}
1358 
1359 		/*
1360 		 * Check if we need to select a new server for a
1361 		 * failover.  Choosing a new server will force at
1362 		 * least a check of the clientid.
1363 		 */
1364 		mutex_enter(&mi->mi_lock);
1365 		if (!recov_fail &&
1366 		    (mi->mi_recovflags & MI4R_NEED_NEW_SERVER)) {
1367 			mutex_exit(&mi->mi_lock);
1368 			recov_newserver(recovp, &sp, &recov_fail);
1369 		} else
1370 			mutex_exit(&mi->mi_lock);
1371 
1372 		/*
1373 		 * Check if we need to recover the clientid.  This
1374 		 * must be done before file and lock recovery, and it
1375 		 * potentially affects the recovery threads for other
1376 		 * filesystems, so it gets special treatment.
1377 		 */
1378 		if (sp != NULL && recov_fail == FALSE) {
1379 			mutex_enter(&sp->s_lock);
1380 			if (!(sp->s_flags & N4S_CLIENTID_SET)) {
1381 				mutex_exit(&sp->s_lock);
1382 				recov_clientid(recovp, sp);
1383 			} else {
1384 				/*
1385 				 * Unset this flag in case another recovery
1386 				 * thread successfully recovered the clientid
1387 				 * for us already.
1388 				 */
1389 				mutex_enter(&mi->mi_lock);
1390 				mi->mi_recovflags &= ~MI4R_NEED_CLIENTID;
1391 				mutex_exit(&mi->mi_lock);
1392 				mutex_exit(&sp->s_lock);
1393 			}
1394 		}
1395 
1396 		/*
1397 		 * Check if we need to get the security information.
1398 		 */
1399 		mutex_enter(&mi->mi_lock);
1400 		if ((mi->mi_recovflags & MI4R_NEED_SECINFO) &&
1401 		    !(mi->mi_flags & MI4_RECOV_FAIL)) {
1402 			mutex_exit(&mi->mi_lock);
1403 			(void) nfs_rw_enter_sig(&mi->mi_recovlock,
1404 							RW_WRITER, 0);
1405 			error = nfs4_secinfo_recov(recovp->rc_mi,
1406 					recovp->rc_vp1, recovp->rc_vp2);
1407 			/*
1408 			 * If error, nothing more can be done, stop
1409 			 * the recovery.
1410 			 */
1411 			if (error) {
1412 				mutex_enter(&mi->mi_lock);
1413 				mi->mi_flags |= MI4_RECOV_FAIL;
1414 				mi->mi_error = recovp->rc_error;
1415 				mutex_exit(&mi->mi_lock);
1416 				nfs4_queue_event(RE_WRONGSEC, mi, NULL,
1417 				    error, recovp->rc_vp1, recovp->rc_vp2,
1418 				    0, NULL, 0, TAG_NONE, TAG_NONE, 0, 0);
1419 			}
1420 			nfs_rw_exit(&mi->mi_recovlock);
1421 		} else
1422 			mutex_exit(&mi->mi_lock);
1423 
1424 		/*
1425 		 * Check if there's a bad seqid to recover.
1426 		 */
1427 		mutex_enter(&mi->mi_lock);
1428 		if ((mi->mi_recovflags & MI4R_BAD_SEQID) &&
1429 		    !(mi->mi_flags & MI4_RECOV_FAIL)) {
1430 			mutex_exit(&mi->mi_lock);
1431 			(void) nfs_rw_enter_sig(&mi->mi_recovlock,
1432 					RW_WRITER, 0);
1433 			recov_bad_seqid(recovp);
1434 			nfs_rw_exit(&mi->mi_recovlock);
1435 		} else
1436 			mutex_exit(&mi->mi_lock);
1437 
1438 		/*
1439 		 * Next check for recovery that affects the entire
1440 		 * filesystem.
1441 		 */
1442 		if (sp != NULL) {
1443 			mutex_enter(&mi->mi_lock);
1444 			if ((mi->mi_recovflags & MI4R_REOPEN_FILES) &&
1445 			    !(mi->mi_flags & MI4_RECOV_FAIL)) {
1446 				mutex_exit(&mi->mi_lock);
1447 				recov_openfiles(recovp, sp);
1448 			} else
1449 				mutex_exit(&mi->mi_lock);
1450 		}
1451 
1452 		/*
1453 		 * Send any queued state recovery requests.
1454 		 */
1455 		mutex_enter(&mi->mi_lock);
1456 		if (sp != NULL &&
1457 		    (mi->mi_recovflags & MI4R_LOST_STATE) &&
1458 		    !(mi->mi_flags & MI4_RECOV_FAIL)) {
1459 			mutex_exit(&mi->mi_lock);
1460 			(void) nfs_rw_enter_sig(&mi->mi_recovlock,
1461 				    RW_WRITER, 0);
1462 			nfs4_resend_lost_rqsts(recovp, sp);
1463 			if (list_head(&mi->mi_lost_state) == NULL) {
1464 				/* done */
1465 				mutex_enter(&mi->mi_lock);
1466 				mi->mi_recovflags &= ~MI4R_LOST_STATE;
1467 				mutex_exit(&mi->mi_lock);
1468 			}
1469 			nfs_rw_exit(&mi->mi_recovlock);
1470 		} else {
1471 			mutex_exit(&mi->mi_lock);
1472 		}
1473 
1474 		/*
1475 		 * See if there is anything more to do.  If not, announce
1476 		 * that we are done and exit.
1477 		 *
1478 		 * Need mi_recovlock to keep 'sp' valid.  Must grab
1479 		 * mi_recovlock before mi_lock to preserve lock ordering.
1480 		 */
1481 		(void) nfs_rw_enter_sig(&mi->mi_recovlock, RW_READER, 0);
1482 		mutex_enter(&mi->mi_lock);
1483 		if ((mi->mi_recovflags & ~MI4R_SRV_REBOOT) == 0 ||
1484 		    (mi->mi_flags & MI4_RECOV_FAIL)) {
1485 			list_t local_lost_state;
1486 			nfs4_lost_rqst_t *lrp;
1487 
1488 			/*
1489 			 * We need to remove the lost requests before we
1490 			 * unmark the mi as no longer doing recovery to
1491 			 * avoid a race with a new thread putting new lost
1492 			 * requests on the same mi (and the going away
1493 			 * thread would remove the new lost requests).
1494 			 *
1495 			 * Move the lost requests to a local list since
1496 			 * nfs4_remove_lost_rqst() drops mi_lock, and
1497 			 * dropping the mi_lock would make our check to
1498 			 * see if recovery is done no longer valid.
1499 			 */
1500 			list_create(&local_lost_state,
1501 			    sizeof (nfs4_lost_rqst_t),
1502 			    offsetof(nfs4_lost_rqst_t, lr_node));
1503 			list_move_tail(&local_lost_state, &mi->mi_lost_state);
1504 
1505 			done = 1;
1506 			recov_done(mi, recovp);
1507 			mutex_exit(&mi->mi_lock);
1508 			/*
1509 			 * Now officially free the "moved"
1510 			 * lost requests.
1511 			 */
1512 			while ((lrp = list_head(&local_lost_state)) != NULL) {
1513 				list_remove(&local_lost_state, lrp);
1514 				nfs4_free_lost_rqst(lrp, sp);
1515 			}
1516 			list_destroy(&local_lost_state);
1517 		} else
1518 			mutex_exit(&mi->mi_lock);
1519 		nfs_rw_exit(&mi->mi_recovlock);
1520 
1521 		/*
1522 		 * If the filesystem has been forcibly unmounted, there is
1523 		 * probably no point in retrying immediately.  Furthermore,
1524 		 * there might be user processes waiting for a chance to
1525 		 * queue up "lost state" requests, so that they can exit.
1526 		 * So pause here for a moment.  Same logic for zone shutdown.
1527 		 */
1528 		if (!done && FS_OR_ZONE_GONE4(mi->mi_vfsp)) {
1529 			mutex_enter(&mi->mi_lock);
1530 			cv_broadcast(&mi->mi_failover_cv);
1531 			mutex_exit(&mi->mi_lock);
1532 			delay(SEC_TO_TICK(nfs4_unmount_delay));
1533 		}
1534 
1535 	} while (!done);
1536 
1537 	mutex_enter(&mi->mi_lock);
1538 	mi->mi_in_recovery--;
1539 	cv_broadcast(&mi->mi_cv_in_recov);
1540 	mutex_exit(&mi->mi_lock);
1541 
1542 	if (sp != NULL)
1543 		nfs4_server_rele(sp);
1544 
1545 	/*
1546 	 * Return all recalled delegations
1547 	 */
1548 	nfs4_dlistclean();
1549 
1550 	/*
1551 	 * Free up resources that were allocated for us.
1552 	 */
1553 	if (recovp->rc_vp1 != NULL)
1554 		VN_RELE(recovp->rc_vp1);
1555 	if (recovp->rc_vp2 != NULL)
1556 		VN_RELE(recovp->rc_vp2);
1557 	VFS_RELE(mi->mi_vfsp);
1558 	kmem_free(recovp, sizeof (recov_info_t));
1559 	mutex_enter(&cpr_lock);
1560 	CALLB_CPR_EXIT(&cpr_info);
1561 	mutex_destroy(&cpr_lock);
1562 	zthread_exit();
1563 }
1564 
1565 /*
1566  * Log the end of recovery and notify any waiting threads.
1567  */
1568 
1569 static void
1570 recov_done(mntinfo4_t *mi, recov_info_t *recovp)
1571 {
1572 
1573 	ASSERT(MUTEX_HELD(&mi->mi_lock));
1574 
1575 	nfs4_queue_event(RE_END, mi, NULL, 0, recovp->rc_vp1,
1576 		recovp->rc_vp2, 0, NULL, 0, TAG_NONE, TAG_NONE, 0, 0);
1577 	mi->mi_recovthread = NULL;
1578 	mi->mi_flags &= ~MI4_RECOV_ACTIV;
1579 	mi->mi_recovflags &= ~MI4R_SRV_REBOOT;
1580 	cv_broadcast(&mi->mi_failover_cv);
1581 }
1582 
1583 /*
1584  * State-specific recovery routines, by state.
1585  */
1586 
1587 /*
1588  * Failover.
1589  *
1590  * Replaces *spp with a reference to the new server, which must
1591  * eventually be freed.
1592  */
1593 
1594 static void
1595 recov_newserver(recov_info_t *recovp, nfs4_server_t **spp, bool_t *recov_fail)
1596 {
1597 	mntinfo4_t *mi = recovp->rc_mi;
1598 	servinfo4_t *svp = NULL;
1599 	nfs4_server_t *osp = *spp;
1600 	CLIENT *cl;
1601 	enum clnt_stat status;
1602 	struct timeval tv;
1603 	int error;
1604 	int oncethru = 0;
1605 	rnode4_t *rp;
1606 	int index;
1607 	nfs_fh4 fh;
1608 	char *snames;
1609 	size_t len;
1610 
1611 	(void) nfs_rw_enter_sig(&mi->mi_recovlock, RW_WRITER, 0);
1612 
1613 	tv.tv_sec = 2;
1614 	tv.tv_usec = 0;
1615 
1616 #ifdef lint
1617 	/*
1618 	 * Lint can't follow the logic, so thinks that snames and len
1619 	 * can be used before being set.  They can't, but lint can't
1620 	 * figure it out.  To address the lint warning, initialize
1621 	 * snames and len for lint.
1622 	 */
1623 	snames = NULL;
1624 	len = 0;
1625 #endif
1626 
1627 	/*
1628 	 * Ping the null NFS procedure of every server in
1629 	 * the list until one responds.  We always start
1630 	 * at the head of the list and always skip the one
1631 	 * that is current, since it's caused us a problem.
1632 	 */
1633 	while (svp == NULL) {
1634 		for (svp = mi->mi_servers; svp; svp = svp->sv_next) {
1635 
1636 			mutex_enter(&mi->mi_lock);
1637 			if (FS_OR_ZONE_GONE4(mi->mi_vfsp)) {
1638 				mi->mi_flags |= MI4_RECOV_FAIL;
1639 				mutex_exit(&mi->mi_lock);
1640 				(void) nfs_rw_exit(&mi->mi_recovlock);
1641 				*recov_fail = TRUE;
1642 				if (oncethru)
1643 					kmem_free(snames, len);
1644 				return;
1645 			}
1646 			mutex_exit(&mi->mi_lock);
1647 
1648 			(void) nfs_rw_enter_sig(&svp->sv_lock, RW_READER, 0);
1649 			if (svp->sv_flags & SV4_NOTINUSE) {
1650 				nfs_rw_exit(&svp->sv_lock);
1651 				continue;
1652 			}
1653 			nfs_rw_exit(&svp->sv_lock);
1654 
1655 			if (!oncethru && svp == mi->mi_curr_serv)
1656 				continue;
1657 
1658 			error = clnt_tli_kcreate(svp->sv_knconf, &svp->sv_addr,
1659 			    NFS_PROGRAM, NFS_V4, 0, 1, CRED(), &cl);
1660 			if (error)
1661 				continue;
1662 
1663 			if (!(mi->mi_flags & MI4_INT))
1664 				cl->cl_nosignal = TRUE;
1665 			status = CLNT_CALL(cl, RFS_NULL, xdr_void, NULL,
1666 			    xdr_void, NULL, tv);
1667 			if (!(mi->mi_flags & MI4_INT))
1668 				cl->cl_nosignal = FALSE;
1669 			AUTH_DESTROY(cl->cl_auth);
1670 			CLNT_DESTROY(cl);
1671 			if (status == RPC_SUCCESS) {
1672 				nfs4_queue_event(RE_FAILOVER, mi,
1673 				    svp == mi->mi_curr_serv ? NULL :
1674 				    svp->sv_hostname, 0, NULL, NULL, 0,
1675 				    NULL, 0, TAG_NONE, TAG_NONE, 0, 0);
1676 				break;
1677 			}
1678 		}
1679 
1680 		if (svp == NULL) {
1681 			if (!oncethru) {
1682 				snames = nfs4_getsrvnames(mi, &len);
1683 				nfs4_queue_fact(RF_SRVS_NOT_RESPOND, mi,
1684 				    0, 0, 0, FALSE, snames, 0, NULL);
1685 				oncethru = 1;
1686 			}
1687 			delay(hz);
1688 		}
1689 	}
1690 
1691 	if (oncethru) {
1692 		nfs4_queue_fact(RF_SRVS_OK, mi, 0, 0, 0, FALSE, snames,
1693 		    0, NULL);
1694 		kmem_free(snames, len);
1695 	}
1696 
1697 #if DEBUG
1698 	(void) nfs_rw_enter_sig(&svp->sv_lock, RW_READER, 0);
1699 	ASSERT((svp->sv_flags & SV4_NOTINUSE) == 0);
1700 	nfs_rw_exit(&svp->sv_lock);
1701 #endif
1702 
1703 	mutex_enter(&mi->mi_lock);
1704 	mi->mi_recovflags &= ~MI4R_NEED_NEW_SERVER;
1705 	if (svp != mi->mi_curr_serv) {
1706 		servinfo4_t *osvp = mi->mi_curr_serv;
1707 
1708 		mutex_exit(&mi->mi_lock);
1709 
1710 		/*
1711 		 * Update server-dependent fields in the root vnode.
1712 		 */
1713 		index = rtable4hash(mi->mi_rootfh);
1714 		rw_enter(&rtable4[index].r_lock, RW_WRITER);
1715 
1716 		rp = r4find(&rtable4[index], mi->mi_rootfh, mi->mi_vfsp);
1717 		if (rp != NULL) {
1718 			NFS4_DEBUG(nfs4_client_failover_debug, (CE_NOTE,
1719 			    "recov_newserver: remapping %s", rnode4info(rp)));
1720 			mutex_enter(&rp->r_statelock);
1721 			rp->r_server = svp;
1722 			PURGE_ATTRCACHE4_LOCKED(rp);
1723 			mutex_exit(&rp->r_statelock);
1724 			(void) nfs4_free_data_reclaim(rp);
1725 			nfs4_purge_rddir_cache(RTOV4(rp));
1726 			rw_exit(&rtable4[index].r_lock);
1727 			NFS4_DEBUG(nfs4_client_failover_debug, (CE_NOTE,
1728 			    "recov_newserver: done with %s",
1729 			    rnode4info(rp)));
1730 			VN_RELE(RTOV4(rp));
1731 		} else
1732 			rw_exit(&rtable4[index].r_lock);
1733 		(void) dnlc_purge_vfsp(mi->mi_vfsp, 0);
1734 
1735 		mutex_enter(&mi->mi_lock);
1736 		mi->mi_recovflags |= MI4R_REOPEN_FILES | MI4R_REMAP_FILES;
1737 		if (recovp->rc_srv_reboot)
1738 			mi->mi_recovflags |= MI4R_SRV_REBOOT;
1739 		mi->mi_curr_serv = svp;
1740 		mi->mi_failover++;
1741 		mi->mi_flags &= ~MI4_BADOWNER_DEBUG;
1742 		mutex_exit(&mi->mi_lock);
1743 
1744 		(void) nfs_rw_enter_sig(&svp->sv_lock, RW_READER, 0);
1745 		fh.nfs_fh4_len = svp->sv_fhandle.fh_len;
1746 		fh.nfs_fh4_val = svp->sv_fhandle.fh_buf;
1747 		sfh4_update(mi->mi_rootfh, &fh);
1748 		fh.nfs_fh4_len = svp->sv_pfhandle.fh_len;
1749 		fh.nfs_fh4_val = svp->sv_pfhandle.fh_buf;
1750 		sfh4_update(mi->mi_srvparentfh, &fh);
1751 		nfs_rw_exit(&svp->sv_lock);
1752 
1753 		*spp = nfs4_move_mi(mi, osvp, svp);
1754 		if (osp != NULL)
1755 			nfs4_server_rele(osp);
1756 	} else
1757 		mutex_exit(&mi->mi_lock);
1758 	(void) nfs_rw_exit(&mi->mi_recovlock);
1759 }
1760 
1761 /*
1762  * Clientid.
1763  */
1764 
1765 static void
1766 recov_clientid(recov_info_t *recovp, nfs4_server_t *sp)
1767 {
1768 	mntinfo4_t *mi = recovp->rc_mi;
1769 	int error = 0;
1770 	int still_stale;
1771 	int need_new_s;
1772 
1773 	ASSERT(sp != NULL);
1774 
1775 	/*
1776 	 * Acquire the recovery lock and then verify that the clientid
1777 	 * still needs to be recovered.  (Note that s_recovlock is supposed
1778 	 * to be acquired before s_lock.)  Since the thread holds the
1779 	 * recovery lock, no other thread will recover the clientid.
1780 	 */
1781 	(void) nfs_rw_enter_sig(&sp->s_recovlock, RW_WRITER, 0);
1782 	(void) nfs_rw_enter_sig(&mi->mi_recovlock, RW_WRITER, 0);
1783 	mutex_enter(&sp->s_lock);
1784 	still_stale = ((sp->s_flags & N4S_CLIENTID_SET) == 0);
1785 	mutex_exit(&sp->s_lock);
1786 
1787 	if (still_stale) {
1788 		nfs4_error_t n4e;
1789 
1790 		nfs4_error_zinit(&n4e);
1791 		nfs4setclientid(mi, kcred, TRUE, &n4e);
1792 		error = n4e.error;
1793 		if (error != 0) {
1794 
1795 			/*
1796 			 * nfs4setclientid may have set MI4R_NEED_NEW_SERVER,
1797 			 * if so, just return and let recov_thread drive
1798 			 * failover.
1799 			 */
1800 			mutex_enter(&mi->mi_lock);
1801 			need_new_s = mi->mi_recovflags & MI4R_NEED_NEW_SERVER;
1802 			mutex_exit(&mi->mi_lock);
1803 
1804 			if (need_new_s) {
1805 				nfs_rw_exit(&mi->mi_recovlock);
1806 				nfs_rw_exit(&sp->s_recovlock);
1807 				return;
1808 			}
1809 
1810 			nfs4_queue_event(RE_CLIENTID, mi, NULL, n4e.error, NULL,
1811 			    NULL, n4e.stat, NULL, 0, TAG_NONE, TAG_NONE, 0, 0);
1812 			mutex_enter(&mi->mi_lock);
1813 			mi->mi_flags |= MI4_RECOV_FAIL;
1814 			mi->mi_error = recovp->rc_error;
1815 			mutex_exit(&mi->mi_lock);
1816 			/* don't destroy the nfs4_server, let umount do it */
1817 		}
1818 	}
1819 
1820 	if (error == 0) {
1821 		mutex_enter(&mi->mi_lock);
1822 		mi->mi_recovflags &= ~MI4R_NEED_CLIENTID;
1823 		/*
1824 		 * If still_stale isn't true, then another thread already
1825 		 * recovered the clientid.  And that thread that set the
1826 		 * clientid will have initiated reopening files on all the
1827 		 * filesystems for the server, so we should not initiate
1828 		 * reopening for this filesystem here.
1829 		 */
1830 		if (still_stale) {
1831 			mi->mi_recovflags |= MI4R_REOPEN_FILES;
1832 			if (recovp->rc_srv_reboot)
1833 				mi->mi_recovflags |= MI4R_SRV_REBOOT;
1834 		}
1835 		mutex_exit(&mi->mi_lock);
1836 	}
1837 
1838 	nfs_rw_exit(&mi->mi_recovlock);
1839 
1840 	if (error != 0) {
1841 		nfs_rw_exit(&sp->s_recovlock);
1842 		mutex_enter(&mi->mi_lock);
1843 		if ((mi->mi_flags & MI4_RECOV_FAIL) == 0)
1844 			delay(SEC_TO_TICK(recov_err_delay));
1845 		mutex_exit(&mi->mi_lock);
1846 	} else {
1847 		mntinfo4_t **milist;
1848 		mntinfo4_t *tmi;
1849 		int nummi, i;
1850 
1851 		/*
1852 		 * Initiate recovery of open files for other filesystems.
1853 		 * We create an array of filesystems, rather than just
1854 		 * walking the filesystem list, to avoid deadlock issues
1855 		 * with s_lock and mi_recovlock.
1856 		 */
1857 		milist = make_milist(sp, &nummi);
1858 		for (i = 0; i < nummi; i++) {
1859 			tmi = milist[i];
1860 			if (tmi != mi) {
1861 				(void) nfs_rw_enter_sig(&tmi->mi_recovlock,
1862 							RW_READER, 0);
1863 				start_recovery_action(NR_OPENFILES, TRUE, tmi,
1864 					NULL, NULL);
1865 				nfs_rw_exit(&tmi->mi_recovlock);
1866 			}
1867 		}
1868 		free_milist(milist, nummi);
1869 
1870 		nfs_rw_exit(&sp->s_recovlock);
1871 	}
1872 }
1873 
1874 /*
1875  * Return an array of filesystems associated with the given server.  The
1876  * caller should call free_milist() to free the references and memory.
1877  */
1878 
1879 static mntinfo4_t **
1880 make_milist(nfs4_server_t *sp, int *nummip)
1881 {
1882 	int nummi, i;
1883 	mntinfo4_t **milist;
1884 	mntinfo4_t *tmi;
1885 
1886 	mutex_enter(&sp->s_lock);
1887 	nummi = 0;
1888 	for (tmi = sp->mntinfo4_list; tmi != NULL; tmi = tmi->mi_clientid_next)
1889 		nummi++;
1890 
1891 	milist = kmem_alloc(nummi * sizeof (mntinfo4_t *), KM_NOSLEEP);
1892 
1893 	for (i = 0, tmi = sp->mntinfo4_list; tmi != NULL; i++,
1894 	    tmi = tmi->mi_clientid_next) {
1895 		milist[i] = tmi;
1896 		VFS_HOLD(tmi->mi_vfsp);
1897 	}
1898 	mutex_exit(&sp->s_lock);
1899 
1900 	*nummip = nummi;
1901 	return (milist);
1902 }
1903 
1904 /*
1905  * Free the filesystem list created by make_milist().
1906  */
1907 
1908 static void
1909 free_milist(mntinfo4_t **milist, int nummi)
1910 {
1911 	mntinfo4_t *tmi;
1912 	int i;
1913 
1914 	for (i = 0; i < nummi; i++) {
1915 		tmi = milist[i];
1916 		VFS_RELE(tmi->mi_vfsp);
1917 	}
1918 	kmem_free(milist, nummi * sizeof (mntinfo4_t *));
1919 }
1920 
1921 /*
1922  * Filehandle
1923  */
1924 
1925 /*
1926  * Lookup the filehandle for the given vnode and update the rnode if it has
1927  * changed.
1928  *
1929  * Errors:
1930  * - if the filehandle could not be updated because of an error that
1931  *   requires further recovery, initiate that recovery and return.
1932  * - if the filehandle could not be updated because of a signal, pretend we
1933  *   succeeded and let someone else deal with it.
1934  * - if the filehandle could not be updated and the filesystem has been
1935  *   forcibly unmounted, pretend we succeeded, and let the caller deal with
1936  *   the forced unmount (to retry or not to retry, that is the question).
1937  * - if the filehandle could not be updated because of some other error,
1938  *   mark the rnode bad and return.
1939  */
1940 static void
1941 recov_filehandle(nfs4_recov_t action, mntinfo4_t *mi, vnode_t *vp)
1942 {
1943 	rnode4_t *rp = VTOR4(vp);
1944 	nfs4_error_t e = { 0, NFS4_OK, RPC_SUCCESS };
1945 	bool_t needrecov;
1946 
1947 	mutex_enter(&rp->r_statelock);
1948 
1949 	if (rp->r_flags & R4RECOVERR) {
1950 		mutex_exit(&rp->r_statelock);
1951 		return;
1952 	}
1953 
1954 	/*
1955 	 * If someone else is updating the filehandle, wait for them to
1956 	 * finish and then let our caller retry.
1957 	 */
1958 	if (rp->r_flags & R4RECEXPFH) {
1959 		while (rp->r_flags & R4RECEXPFH) {
1960 			cv_wait(&rp->r_cv, &rp->r_statelock);
1961 		}
1962 		mutex_exit(&rp->r_statelock);
1963 		return;
1964 	}
1965 	rp->r_flags |= R4RECEXPFH;
1966 	mutex_exit(&rp->r_statelock);
1967 
1968 	if (action == NR_BADHANDLE) {
1969 		/* shouldn't happen */
1970 		nfs4_queue_event(RE_BADHANDLE, mi, NULL, 0,
1971 		    vp, NULL, 0, NULL, 0, TAG_NONE, TAG_NONE, 0, 0);
1972 	}
1973 
1974 	nfs4_remap_file(mi, vp, 0, &e);
1975 	needrecov = nfs4_needs_recovery(&e, FALSE, mi->mi_vfsp);
1976 
1977 	/*
1978 	 * If we get BADHANDLE or FHEXPIRED in their handler, something is
1979 	 * broken.  Don't try to recover, just mark the file dead.
1980 	 */
1981 	if (needrecov && e.error == 0 &&
1982 	    (e.stat == NFS4ERR_BADHANDLE || e.stat == NFS4ERR_FHEXPIRED))
1983 		needrecov = FALSE;
1984 	if (needrecov) {
1985 		(void) nfs4_start_recovery(&e, mi, vp,
1986 				NULL, NULL, NULL, OP_LOOKUP, NULL);
1987 	} else if (e.error != EINTR &&
1988 	    !NFS4_FRC_UNMT_ERR(e.error, mi->mi_vfsp) &&
1989 	    (e.error != 0 || e.stat != NFS4_OK)) {
1990 		nfs4_recov_fh_fail(vp, e.error, e.stat);
1991 		/*
1992 		 * Don't set r_error to ESTALE.  Higher-level code (e.g.,
1993 		 * cstatat_getvp()) retries on ESTALE, which would cause
1994 		 * an infinite loop.
1995 		 */
1996 	}
1997 
1998 	mutex_enter(&rp->r_statelock);
1999 	rp->r_flags &= ~R4RECEXPFH;
2000 	cv_broadcast(&rp->r_cv);
2001 	mutex_exit(&rp->r_statelock);
2002 }
2003 
2004 /*
2005  * Stale Filehandle
2006  */
2007 
2008 /*
2009  * A stale filehandle can happen when an individual file has
2010  * been removed, or when an entire filesystem has been taken
2011  * offline.  To distinguish these cases, we do this:
2012  * - if a GETATTR with the current filehandle is okay, we do
2013  *   nothing (this can happen with two-filehandle ops)
2014  * - if the GETATTR fails, but a GETATTR of the root filehandle
2015  *   succeeds, mark the rnode with R4STALE, which will stop use
2016  * - if the GETATTR fails, and a GETATTR of the root filehandle
2017  *   also fails, we consider the problem filesystem-wide, so:
2018  *   - if we can failover, we should
2019  *   - if we can't failover, we should mark both the original
2020  *     vnode and the root bad
2021  */
2022 static void
2023 recov_stale(mntinfo4_t *mi, vnode_t *vp)
2024 {
2025 	rnode4_t *rp = VTOR4(vp);
2026 	vnode_t *rootvp = NULL;
2027 	nfs4_error_t e = { 0, NFS4_OK, RPC_SUCCESS };
2028 	nfs4_ga_res_t gar;
2029 	char *fail_msg = "failed to recover from NFS4ERR_STALE";
2030 	bool_t needrecov;
2031 
2032 	mutex_enter(&rp->r_statelock);
2033 
2034 	if (rp->r_flags & R4RECOVERR) {
2035 		mutex_exit(&rp->r_statelock);
2036 		NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
2037 		    "recov_stale: already marked dead, rp %s",
2038 		    rnode4info(rp)));
2039 		return;
2040 	}
2041 
2042 	if (rp->r_flags & R4STALE) {
2043 		mutex_exit(&rp->r_statelock);
2044 		NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
2045 		    "recov_stale: already marked stale, rp %s",
2046 		    rnode4info(rp)));
2047 		return;
2048 	}
2049 
2050 	mutex_exit(&rp->r_statelock);
2051 
2052 	/* Try a GETATTR on this vnode */
2053 	nfs4_getattr_otw_norecovery(vp, &gar, &e, CRED(), 0);
2054 
2055 	/*
2056 	 * Handle non-STALE recoverable errors
2057 	 */
2058 	needrecov = nfs4_needs_recovery(&e, FALSE, vp->v_vfsp);
2059 	if (needrecov && (e.error != 0 || e.stat != NFS4ERR_STALE)) {
2060 		(void) nfs4_start_recovery(&e, mi, vp,
2061 				NULL, NULL, NULL, OP_GETATTR, NULL);
2062 		NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
2063 		    "recov_stale: error=%d, stat=%d seen on rp %s",
2064 		    e.error, e.stat, rnode4info(rp)));
2065 		goto out;
2066 	}
2067 
2068 	/* Are things OK for this vnode? */
2069 	if (!e.error && e.stat == NFS4_OK) {
2070 		NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
2071 		    "recov_stale: file appears fine, rp %s",
2072 		    rnode4info(rp)));
2073 		goto out;
2074 	}
2075 
2076 	/* Did we get an unrelated non-recoverable error? */
2077 	if (e.error || e.stat != NFS4ERR_STALE) {
2078 		nfs4_fail_recov(vp, fail_msg, e.error, e.stat);
2079 		NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
2080 		    "recov_stale: unrelated fatal error, rp %s",
2081 		    rnode4info(rp)));
2082 		goto out;
2083 	}
2084 
2085 	/*
2086 	 * If we don't appear to be dealing with the root node, find it.
2087 	 */
2088 	if ((vp->v_flag & VROOT) == 0) {
2089 		nfs4_error_zinit(&e);
2090 		e.error = VFS_ROOT(vp->v_vfsp, &rootvp);
2091 		if (e.error) {
2092 			nfs4_fail_recov(vp, fail_msg, 0, NFS4ERR_STALE);
2093 			NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
2094 			    "recov_stale: can't find root node for rp %s",
2095 			    rnode4info(rp)));
2096 			goto out;
2097 		}
2098 	}
2099 
2100 	/* Try a GETATTR on the root vnode */
2101 	if (rootvp != NULL) {
2102 		nfs4_error_zinit(&e);
2103 		nfs4_getattr_otw_norecovery(rootvp, &gar, &e, CRED(), 0);
2104 
2105 		/* Try recovery? */
2106 		if (e.error != 0 || e.stat != NFS4ERR_STALE) {
2107 			needrecov = nfs4_needs_recovery(&e, FALSE, vp->v_vfsp);
2108 			if (needrecov) {
2109 				(void) nfs4_start_recovery(&e,
2110 					mi, rootvp, NULL, NULL, NULL,
2111 					OP_GETATTR, NULL);
2112 				NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
2113 				    "recov_stale: error=%d, stat=%d seen "
2114 				    "on rp %s", e.error, e.stat,
2115 				    rnode4info(rp)));
2116 			}
2117 		}
2118 
2119 		/*
2120 		 * Check to see if a failover attempt is warranted
2121 		 * NB: nfs4_try_failover doesn't check for STALE
2122 		 * because recov_stale gets a shot first.  Now that
2123 		 * recov_stale has failed, go ahead and try failover.
2124 		 *
2125 		 * If the getattr on the root filehandle was successful,
2126 		 * then mark recovery as failed for 'vp' and exit.
2127 		 */
2128 		if (nfs4_try_failover(&e) == 0 && e.stat != NFS4ERR_STALE) {
2129 			/*
2130 			 * pass the original error to fail_recov, not
2131 			 * the one from trying the root vnode.
2132 			 */
2133 			nfs4_fail_recov(vp, fail_msg, 0, NFS4ERR_STALE);
2134 			NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
2135 			    "recov_stale: root node OK, marking "
2136 			    "dead rp %s", rnode4info(rp)));
2137 			goto out;
2138 		}
2139 	}
2140 
2141 	/*
2142 	 * Here, we know that both the original file and the
2143 	 * root filehandle (which may be the same) are stale.
2144 	 * We want to fail over if we can, and if we can't, we
2145 	 * want to mark everything in sight bad.
2146 	 */
2147 	if (FAILOVER_MOUNT4(mi)) {
2148 		mutex_enter(&mi->mi_lock);
2149 		mi->mi_recovflags |= MI4R_NEED_NEW_SERVER;
2150 		NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
2151 		    "recov_stale: failing over due to rp %s",
2152 		    rnode4info(rp)));
2153 		mutex_exit(&mi->mi_lock);
2154 	} else {
2155 		rnode4_t *rootrp;
2156 		servinfo4_t *svp;
2157 
2158 		/*
2159 		 * Can't fail over, so mark things dead.
2160 		 *
2161 		 * If rootvp is set, we know we have a distinct
2162 		 * non-root vnode which can be marked dead in
2163 		 * the usual way.
2164 		 *
2165 		 * Then we want to mark the root vnode dead.
2166 		 * Note that if rootvp wasn't set, our vp is
2167 		 * actually the root vnode.
2168 		 */
2169 		if (rootvp != NULL) {
2170 			NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
2171 			    "recov_stale: can't fail over, marking dead rp %s",
2172 			    rnode4info(rp)));
2173 			nfs4_fail_recov(vp, fail_msg, 0, NFS4ERR_STALE);
2174 		} else {
2175 			rootvp = vp;
2176 			VN_HOLD(rootvp);
2177 		}
2178 
2179 		/*
2180 		 * Mark root dead, but quietly - since
2181 		 * the root rnode is frequently recreated,
2182 		 * we can encounter this at every access.
2183 		 * Also mark recovery as failed on this VFS.
2184 		 */
2185 		rootrp = VTOR4(rootvp);
2186 		NFS4_DEBUG(nfs4_client_recov_debug, (CE_CONT,
2187 		    "recov_stale: marking dead root rp %s",
2188 		    rnode4info(rootrp)));
2189 		mutex_enter(&rootrp->r_statelock);
2190 		rootrp->r_flags |= (R4RECOVERR | R4STALE);
2191 		rootrp->r_error = ESTALE;
2192 		mutex_exit(&rootrp->r_statelock);
2193 		mutex_enter(&mi->mi_lock);
2194 		mi->mi_error = ESTALE;
2195 		mutex_exit(&mi->mi_lock);
2196 
2197 		svp = mi->mi_curr_serv;
2198 		(void) nfs_rw_enter_sig(&svp->sv_lock, RW_WRITER, 0);
2199 		svp->sv_flags |= SV4_ROOT_STALE;
2200 		nfs_rw_exit(&svp->sv_lock);
2201 	}
2202 
2203 out:
2204 	if (rootvp)
2205 		VN_RELE(rootvp);
2206 }
2207 
2208 /*
2209  * Locks.
2210  */
2211 
2212 /*
2213  * Reclaim all the active (acquired) locks for the given file.
2214  * If a process lost a lock, the process is sent a SIGLOST.  This is not
2215  * considered an error.
2216  *
2217  * Return values:
2218  * Errors and status are returned via the nfs4_error_t parameter
2219  * If an error indicates that recovery is needed, the caller is responsible
2220  * for dealing with it.
2221  */
2222 
2223 static void
2224 relock_file(vnode_t *vp, mntinfo4_t *mi, nfs4_error_t *ep,
2225     fattr4_change pre_change)
2226 {
2227 	locklist_t *locks, *llp;
2228 	rnode4_t *rp;
2229 
2230 	ASSERT(ep != NULL);
2231 	nfs4_error_zinit(ep);
2232 
2233 	if (VTOMI4(vp)->mi_flags & MI4_LLOCK)
2234 		return;
2235 
2236 	nfs4_flush_lock_owners(VTOR4(vp));
2237 
2238 	/*
2239 	 * If we get an error that requires recovery actions, just bail out
2240 	 * and let the top-level recovery code handle it.
2241 	 *
2242 	 * If we get some other error, kill the process that owned the lock
2243 	 * and mark its remaining locks (if any) as belonging to NOPID, so
2244 	 * that we don't make any more reclaim requests for that process.
2245 	 */
2246 
2247 	rp = VTOR4(vp);
2248 	locks = flk_active_locks_for_vp(vp);
2249 	for (llp = locks; llp != NULL; llp = llp->ll_next) {
2250 		int did_reclaim = 1;
2251 
2252 		ASSERT(llp->ll_vp == vp);
2253 		if (llp->ll_flock.l_pid == NOPID)
2254 			continue;
2255 		reclaim_one_lock(vp, &llp->ll_flock, ep, &did_reclaim);
2256 		/*
2257 		 * If we need to restart recovery, stop processing the
2258 		 * list.  Some errors would be recoverable under other
2259 		 * circumstances, but if they happen here we just give up
2260 		 * on the lock.
2261 		 */
2262 		if (nfs4_needs_recovery(ep, TRUE, vp->v_vfsp)) {
2263 			if (ep->error != 0)
2264 				break;
2265 			if (!nfs4_recov_marks_dead(ep->stat))
2266 				break;
2267 		}
2268 		/*
2269 		 *   In case the server isn't offering us a grace period, or
2270 		 * if we missed it, we might have opened & locked from scratch,
2271 		 * rather than reopened/reclaimed.
2272 		 *   We need to ensure that the object hadn't been otherwise
2273 		 * changed during this time, by comparing the changeinfo.
2274 		 *   We get passed the changeinfo from before the reopen by our
2275 		 * caller, in pre_change.
2276 		 *   The changeinfo from after the reopen is in rp->r_change,
2277 		 * courtesy of the GETATTR in the reopen.
2278 		 *   If they're different, then the file has changed, and we
2279 		 * have to SIGLOST the app.
2280 		 */
2281 		if (ep->error == 0 && ep->stat == NFS4_OK && !did_reclaim) {
2282 			mutex_enter(&rp->r_statelock);
2283 			if (pre_change != rp->r_change)
2284 				ep->stat = NFS4ERR_NO_GRACE;
2285 			mutex_exit(&rp->r_statelock);
2286 		}
2287 		if (ep->error != 0 || ep->stat != NFS4_OK) {
2288 			if (ep->error != 0)
2289 				nfs4_queue_event(RE_FAIL_RELOCK, mi,
2290 				    NULL, ep->error, vp, NULL, 0, NULL,
2291 				    llp->ll_flock.l_pid, TAG_NONE, TAG_NONE,
2292 				    0, 0);
2293 			else
2294 				nfs4_queue_event(RE_FAIL_RELOCK, mi,
2295 				    NULL, 0, vp, NULL, ep->stat, NULL,
2296 				    llp->ll_flock.l_pid, TAG_NONE, TAG_NONE,
2297 				    0, 0);
2298 			nfs4_send_siglost(llp->ll_flock.l_pid, mi, vp, TRUE,
2299 			    ep->error, ep->stat);
2300 			relock_skip_pid(llp, llp->ll_flock.l_pid);
2301 
2302 			/* Reinitialize the nfs4_error and continue */
2303 			nfs4_error_zinit(ep);
2304 		}
2305 	}
2306 
2307 	if (locks != NULL)
2308 		flk_free_locklist(locks);
2309 }
2310 
2311 /*
2312  * Reclaim the given lock.
2313  * If the lock can't be reclaimed, the process is sent SIGLOST, but this is
2314  * not considered an error.
2315  *
2316  * Errors are returned via the nfs4_error_t parameter.
2317  */
2318 static void
2319 reclaim_one_lock(vnode_t *vp, flock64_t *flk, nfs4_error_t *ep,
2320 	int *did_reclaimp)
2321 {
2322 	cred_t *cr;
2323 	rnode4_t *rp = VTOR4(vp);
2324 
2325 	cr = pid_to_cr(flk->l_pid);
2326 	if (cr == NULL) {
2327 		nfs4_error_zinit(ep);
2328 		ep->error = ESRCH;
2329 		return;
2330 	}
2331 
2332 	do {
2333 		mutex_enter(&rp->r_statelock);
2334 		if (rp->r_flags & R4RECOVERR) {
2335 			/*
2336 			 * This shouldn't affect other reclaims, so don't
2337 			 * return an error.
2338 			 */
2339 			mutex_exit(&rp->r_statelock);
2340 			break;
2341 		}
2342 		mutex_exit(&rp->r_statelock);
2343 
2344 		nfs4frlock(NFS4_LCK_CTYPE_RECLAIM, vp, F_SETLK, flk,
2345 				FREAD|FWRITE, 0, cr, ep, NULL, did_reclaimp);
2346 		if (ep->error == 0 && ep->stat == NFS4ERR_FHEXPIRED)
2347 			start_recovery_action(NR_FHEXPIRED, TRUE, VTOMI4(vp),
2348 					    vp, NULL);
2349 	} while (ep->error == 0 && ep->stat == NFS4ERR_FHEXPIRED);
2350 
2351 	crfree(cr);
2352 }
2353 
2354 /*
2355  * Open files.
2356  */
2357 
2358 /*
2359  * Verifies if the nfsstat4 is a valid error for marking this vnode dead.
2360  * Returns 1 if the error is valid; 0 otherwise.
2361  */
2362 static int
2363 nfs4_valid_recov_err_for_vp(vnode_t *vp, nfsstat4 stat)
2364 {
2365 	/*
2366 	 * We should not be marking non-regular files as dead,
2367 	 * except in very rare cases (eg: BADHANDLE or NFS4ERR_BADNAME).
2368 	 */
2369 	if (vp->v_type != VREG && stat != NFS4ERR_BADHANDLE &&
2370 	    stat != NFS4ERR_BADNAME)
2371 		return (0);
2372 
2373 	return (1);
2374 }
2375 
2376 /*
2377  * Failed attempting to recover a filehandle.  If 'stat' is valid for 'vp',
2378  * then mark the object dead.  Since we've had to do a lookup for
2379  * filehandle recovery, we will mark the object dead if we got NOENT.
2380  */
2381 static void
2382 nfs4_recov_fh_fail(vnode_t *vp, int error, nfsstat4 stat)
2383 {
2384 	ASSERT(vp != NULL);
2385 
2386 	if ((error == 0) && (stat != NFS4ERR_NOENT) &&
2387 	    (!nfs4_valid_recov_err_for_vp(vp, stat)))
2388 		return;
2389 
2390 	nfs4_fail_recov(vp, "can't recover filehandle", error, stat);
2391 }
2392 
2393 /*
2394  * Recovery from a "shouldn't happen" error.  In the long term, we'd like
2395  * to mark only the data structure(s) that provided the bad value as being
2396  * bad.  But for now we'll just mark the entire file.
2397  */
2398 
2399 static void
2400 recov_badstate(recov_info_t *recovp, vnode_t *vp, nfsstat4 stat)
2401 {
2402 	ASSERT(vp != NULL);
2403 	recov_throttle(recovp, vp);
2404 
2405 	if (!nfs4_valid_recov_err_for_vp(vp, stat))
2406 		return;
2407 
2408 	nfs4_fail_recov(vp, "", 0, stat);
2409 }
2410 
2411 /*
2412  * Free up the information saved for a lost state request.
2413  */
2414 static void
2415 nfs4_free_lost_rqst(nfs4_lost_rqst_t *lrp, nfs4_server_t *sp)
2416 {
2417 	component4 *filep;
2418 	nfs4_open_stream_t *osp;
2419 	int have_sync_lock;
2420 
2421 	NFS4_DEBUG(nfs4_lost_rqst_debug,
2422 		(CE_NOTE, "nfs4_free_lost_rqst:"));
2423 
2424 	switch (lrp->lr_op) {
2425 	case OP_OPEN:
2426 		filep = &lrp->lr_ofile;
2427 		if (filep->utf8string_val) {
2428 			kmem_free(filep->utf8string_val, filep->utf8string_len);
2429 			filep->utf8string_val = NULL;
2430 		}
2431 		break;
2432 	case OP_DELEGRETURN:
2433 		nfs4delegreturn_cleanup(VTOR4(lrp->lr_vp), sp);
2434 		break;
2435 	case OP_CLOSE:
2436 		osp = lrp->lr_osp;
2437 		ASSERT(osp != NULL);
2438 		mutex_enter(&osp->os_sync_lock);
2439 		have_sync_lock = 1;
2440 		if (osp->os_pending_close) {
2441 			/* clean up the open file state. */
2442 			osp->os_pending_close = 0;
2443 			nfs4close_notw(lrp->lr_vp, osp, &have_sync_lock);
2444 		}
2445 		if (have_sync_lock)
2446 			mutex_exit(&osp->os_sync_lock);
2447 		break;
2448 	}
2449 
2450 	lrp->lr_op = 0;
2451 	if (lrp->lr_oop != NULL) {
2452 		open_owner_rele(lrp->lr_oop);
2453 		lrp->lr_oop = NULL;
2454 	}
2455 	if (lrp->lr_osp != NULL) {
2456 		open_stream_rele(lrp->lr_osp, VTOR4(lrp->lr_vp));
2457 		lrp->lr_osp = NULL;
2458 	}
2459 	if (lrp->lr_lop != NULL) {
2460 		lock_owner_rele(lrp->lr_lop);
2461 		lrp->lr_lop = NULL;
2462 	}
2463 	if (lrp->lr_flk != NULL) {
2464 		kmem_free(lrp->lr_flk, sizeof (flock64_t));
2465 		lrp->lr_flk = NULL;
2466 	}
2467 	if (lrp->lr_vp != NULL) {
2468 		VN_RELE(lrp->lr_vp);
2469 		lrp->lr_vp = NULL;
2470 	}
2471 	if (lrp->lr_dvp != NULL) {
2472 		VN_RELE(lrp->lr_dvp);
2473 		lrp->lr_dvp = NULL;
2474 	}
2475 	if (lrp->lr_cr != NULL) {
2476 		crfree(lrp->lr_cr);
2477 		lrp->lr_cr = NULL;
2478 	}
2479 
2480 	kmem_free(lrp, sizeof (nfs4_lost_rqst_t));
2481 }
2482 
2483 /*
2484  * Remove any lost state requests and free them.
2485  */
2486 static void
2487 nfs4_remove_lost_rqsts(mntinfo4_t *mi, nfs4_server_t *sp)
2488 {
2489 	nfs4_lost_rqst_t *lrp;
2490 
2491 	mutex_enter(&mi->mi_lock);
2492 	while ((lrp = list_head(&mi->mi_lost_state)) != NULL) {
2493 		list_remove(&mi->mi_lost_state, lrp);
2494 		mutex_exit(&mi->mi_lock);
2495 		nfs4_free_lost_rqst(lrp, sp);
2496 		mutex_enter(&mi->mi_lock);
2497 	}
2498 	mutex_exit(&mi->mi_lock);
2499 }
2500 
2501 /*
2502  * Reopen all the files for the given filesystem and reclaim any locks.
2503  */
2504 
2505 static void
2506 recov_openfiles(recov_info_t *recovp, nfs4_server_t *sp)
2507 {
2508 	mntinfo4_t *mi = recovp->rc_mi;
2509 	nfs4_opinst_t *reopenlist = NULL, *rep;
2510 	nfs4_error_t e = { 0, NFS4_OK, RPC_SUCCESS };
2511 	open_claim_type4 claim;
2512 	int remap;
2513 	char *fail_msg = "No such file or directory on replica";
2514 	rnode4_t *rp;
2515 	fattr4_change pre_change;
2516 
2517 	ASSERT(sp != NULL);
2518 
2519 	/*
2520 	 * This check is to allow a 10ms pause before we reopen files
2521 	 * it should allow the server time to have received the CB_NULL
2522 	 * reply and update its internal structures such that (if
2523 	 * applicable) we are granted a delegation on reopened files.
2524 	 */
2525 	mutex_enter(&sp->s_lock);
2526 	if ((sp->s_flags & (N4S_CB_PINGED | N4S_CB_WAITER)) == 0) {
2527 		sp->s_flags |= N4S_CB_WAITER;
2528 		(void) cv_timedwait(&sp->wait_cb_null, &sp->s_lock,
2529 			(lbolt+drv_usectohz(N4S_CB_PAUSE_TIME)));
2530 	}
2531 	mutex_exit(&sp->s_lock);
2532 
2533 	(void) nfs_rw_enter_sig(&sp->s_recovlock, RW_READER, 0);
2534 	(void) nfs_rw_enter_sig(&mi->mi_recovlock, RW_WRITER, 0);
2535 
2536 	if (NFS4_VOLATILE_FH(mi)) {
2537 		nfs4_remap_root(mi, &e, 0);
2538 		if (nfs4_needs_recovery(&e, FALSE, mi->mi_vfsp)) {
2539 			(void) nfs4_start_recovery(&e, mi, NULL,
2540 					NULL, NULL, NULL, OP_LOOKUP, NULL);
2541 		}
2542 	}
2543 
2544 	mutex_enter(&mi->mi_lock);
2545 	if (recovp->rc_srv_reboot || (mi->mi_recovflags & MI4R_SRV_REBOOT))
2546 		claim = CLAIM_PREVIOUS;
2547 	else
2548 		claim = CLAIM_NULL;
2549 	mutex_exit(&mi->mi_lock);
2550 
2551 	if (e.error == 0 && e.stat == NFS4_OK) {
2552 		/*
2553 		 * Get a snapshot of open files in the filesystem.  Note
2554 		 * that new opens will stall until the server's grace
2555 		 * period is done.
2556 		 */
2557 		reopenlist = r4mkopenlist(mi);
2558 
2559 		mutex_enter(&mi->mi_lock);
2560 		remap = mi->mi_recovflags & MI4R_REMAP_FILES;
2561 		mutex_exit(&mi->mi_lock);
2562 		/*
2563 		 * Since we are re-establishing state on the
2564 		 * server, its ok to blow away the saved lost
2565 		 * requests since we don't need to reissue it.
2566 		 */
2567 		nfs4_remove_lost_rqsts(mi, sp);
2568 
2569 		for (rep = reopenlist; rep; rep = rep->re_next) {
2570 
2571 			if (remap) {
2572 				nfs4_remap_file(mi, rep->re_vp,
2573 					NFS4_REMAP_CKATTRS, &e);
2574 			}
2575 			if (e.error == ENOENT || e.stat == NFS4ERR_NOENT) {
2576 				/*
2577 				 * The current server does not have the file
2578 				 * that is to be remapped.  This is most
2579 				 * likely due to an improperly maintained
2580 				 * replica.   The files that are missing from
2581 				 * the server will be marked dead and logged
2582 				 * in order to make sys admins aware of the
2583 				 * problem.
2584 				 */
2585 				nfs4_fail_recov(rep->re_vp,
2586 					fail_msg, e.error, e.stat);
2587 				/*
2588 				 * We've already handled the error so clear it.
2589 				 */
2590 				nfs4_error_zinit(&e);
2591 				continue;
2592 			} else if (e.error == 0 && e.stat == NFS4_OK) {
2593 				int j;
2594 
2595 				rp = VTOR4(rep->re_vp);
2596 				mutex_enter(&rp->r_statelock);
2597 				pre_change = rp->r_change;
2598 				mutex_exit(&rp->r_statelock);
2599 
2600 				for (j = 0; j < rep->re_numosp; j++) {
2601 					nfs4_reopen(rep->re_vp, rep->re_osp[j],
2602 						&e, claim, FALSE, TRUE);
2603 					if (e.error != 0 || e.stat != NFS4_OK)
2604 						break;
2605 				}
2606 				if (nfs4_needs_recovery(&e, TRUE,
2607 				    mi->mi_vfsp)) {
2608 					(void) nfs4_start_recovery(&e, mi,
2609 						rep->re_vp, NULL, NULL, NULL,
2610 						OP_OPEN, NULL);
2611 					break;
2612 				}
2613 			}
2614 #ifdef DEBUG
2615 			if (nfs4_recovdelay > 0)
2616 				delay(MSEC_TO_TICK(nfs4_recovdelay * 1000));
2617 #endif
2618 			if (e.error == 0 && e.stat == NFS4_OK)
2619 				relock_file(rep->re_vp, mi, &e, pre_change);
2620 
2621 			if (nfs4_needs_recovery(&e, TRUE, mi->mi_vfsp))
2622 				(void) nfs4_start_recovery(&e, mi,
2623 					rep->re_vp, NULL, NULL, NULL, OP_LOCK,
2624 					NULL);
2625 			if (e.error != 0 || e.stat != NFS4_OK)
2626 				break;
2627 		}
2628 
2629 		/*
2630 		 * Check to see if we need to remap files passed in
2631 		 * via the recovery arguments; this will have been
2632 		 * done for open files.  A failure here is not fatal.
2633 		 */
2634 		if (remap) {
2635 			nfs4_error_t ignore;
2636 			nfs4_check_remap(mi, recovp->rc_vp1, NFS4_REMAP_CKATTRS,
2637 				&ignore);
2638 			nfs4_check_remap(mi, recovp->rc_vp2, NFS4_REMAP_CKATTRS,
2639 				&ignore);
2640 		}
2641 	}
2642 
2643 	if (e.error == 0 && e.stat == NFS4_OK) {
2644 		mutex_enter(&mi->mi_lock);
2645 		mi->mi_recovflags &= ~(MI4R_REOPEN_FILES | MI4R_REMAP_FILES);
2646 		mutex_exit(&mi->mi_lock);
2647 	}
2648 
2649 	nfs_rw_exit(&mi->mi_recovlock);
2650 	nfs_rw_exit(&sp->s_recovlock);
2651 
2652 	if (reopenlist != NULL)
2653 		r4releopenlist(reopenlist);
2654 }
2655 
2656 /*
2657  * Resend the queued state recovery requests in "rqsts".
2658  */
2659 
2660 static void
2661 nfs4_resend_lost_rqsts(recov_info_t *recovp, nfs4_server_t *sp)
2662 {
2663 	nfs4_lost_rqst_t	*lrp, *tlrp;
2664 	mntinfo4_t		*mi = recovp->rc_mi;
2665 	nfs4_error_t		e;
2666 #ifdef NOTYET
2667 	uint32_t		deny_bits = 0;
2668 #endif
2669 
2670 	NFS4_DEBUG(nfs4_lost_rqst_debug, (CE_NOTE, "nfs4_resend_lost_rqsts"));
2671 
2672 	ASSERT(mi != NULL);
2673 	ASSERT(nfs_rw_lock_held(&mi->mi_recovlock, RW_WRITER));
2674 
2675 	mutex_enter(&mi->mi_lock);
2676 	lrp = list_head(&mi->mi_lost_state);
2677 	mutex_exit(&mi->mi_lock);
2678 	while (lrp != NULL) {
2679 		resend_one_op(lrp, &e, mi, sp);
2680 		NFS4_DEBUG(nfs4_lost_rqst_debug, (CE_NOTE,
2681 		    "nfs4_resend_lost_rqsts: resend request: for vp %p got "
2682 		    "error %d stat %d", (void *)lrp->lr_vp, e.error, e.stat));
2683 
2684 		/*
2685 		 * If we get a recovery error that we can actually
2686 		 * recover from (such as ETIMEDOUT, FHEXPIRED), we
2687 		 * return and let the recovery thread redrive the call.
2688 		 * Don't requeue unless the zone is still healthy.
2689 		 */
2690 		if (zone_status_get(curproc->p_zone) < ZONE_IS_SHUTTING_DOWN &&
2691 		    nfs4_needs_recovery(&e, TRUE, mi->mi_vfsp) &&
2692 		    (nfs4_try_failover(&e) ||
2693 		    NFS4_FRC_UNMT_ERR(e.error, mi->mi_vfsp) ||
2694 		    (e.error == 0 && e.stat != NFS4ERR_BADHANDLE &&
2695 		    !nfs4_recov_marks_dead(e.stat)))) {
2696 			/*
2697 			 * For these three errors, we want to delay a bit
2698 			 * instead of pounding the server into submission.
2699 			 * We have to do this manually; the normal
2700 			 * processing for these errors only works for
2701 			 * non-recovery requests.
2702 			 */
2703 			if ((e.error == 0 && e.stat == NFS4ERR_DELAY) ||
2704 			    (e.error == 0 && e.stat == NFS4ERR_GRACE) ||
2705 			    (e.error == 0 && e.stat == NFS4ERR_RESOURCE) ||
2706 			    NFS4_FRC_UNMT_ERR(e.error, mi->mi_vfsp)) {
2707 				delay(SEC_TO_TICK(nfs4err_delay_time));
2708 			} else {
2709 				(void) nfs4_start_recovery(&e,
2710 					mi, lrp->lr_dvp, lrp->lr_vp, NULL, NULL,
2711 					lrp->lr_op, NULL);
2712 			}
2713 			return;
2714 		}
2715 
2716 		mutex_enter(&mi->mi_lock);
2717 		list_remove(&mi->mi_lost_state, lrp);
2718 		tlrp = lrp;
2719 		lrp = list_head(&mi->mi_lost_state);
2720 		mutex_exit(&mi->mi_lock);
2721 		nfs4_free_lost_rqst(tlrp, sp);
2722 	}
2723 }
2724 
2725 /*
2726  * Resend the given op, and issue any necessary undo call.
2727  * errors are returned via the nfs4_error_t parameter.
2728  */
2729 
2730 static void
2731 resend_one_op(nfs4_lost_rqst_t *lrp, nfs4_error_t *ep,
2732 	mntinfo4_t *mi, nfs4_server_t *sp)
2733 {
2734 	vnode_t *vp;
2735 	nfs4_open_stream_t *osp;
2736 	cred_t *cr;
2737 	uint32_t acc_bits;
2738 
2739 	vp = lrp->lr_vp;
2740 	NFS4_DEBUG(nfs4_lost_rqst_debug, (CE_NOTE, "resend_one_op: "
2741 	    "have a lost open/close request for vp %p", (void *)vp));
2742 
2743 	switch (lrp->lr_op) {
2744 	case OP_OPEN:
2745 		nfs4_resend_open_otw(&vp, lrp, ep);
2746 		break;
2747 	case OP_OPEN_DOWNGRADE:
2748 		ASSERT(lrp->lr_oop != NULL);
2749 		ep->error = nfs4_start_open_seqid_sync(lrp->lr_oop, mi);
2750 		ASSERT(!ep->error);	/* recov thread always succeeds */
2751 		ASSERT(lrp->lr_osp != NULL);
2752 		mutex_enter(&lrp->lr_osp->os_sync_lock);
2753 		nfs4_open_downgrade(lrp->lr_dg_acc, lrp->lr_dg_deny,
2754 			    lrp->lr_oop, lrp->lr_osp, vp, lrp->lr_cr, lrp,
2755 			    ep, NULL, NULL);
2756 		mutex_exit(&lrp->lr_osp->os_sync_lock);
2757 		nfs4_end_open_seqid_sync(lrp->lr_oop);
2758 		break;
2759 	case OP_CLOSE:
2760 		osp = lrp->lr_osp;
2761 		cr = lrp->lr_cr;
2762 		acc_bits = 0;
2763 		mutex_enter(&osp->os_sync_lock);
2764 		if (osp->os_share_acc_read)
2765 			acc_bits |= OPEN4_SHARE_ACCESS_READ;
2766 		if (osp->os_share_acc_write)
2767 			acc_bits |= OPEN4_SHARE_ACCESS_WRITE;
2768 		mutex_exit(&osp->os_sync_lock);
2769 		nfs4close_one(vp, osp, cr, acc_bits, lrp, ep,
2770 				CLOSE_RESEND, 0, 0, 0);
2771 		break;
2772 	case OP_LOCK:
2773 	case OP_LOCKU:
2774 		resend_lock(lrp, ep);
2775 		goto done;
2776 	case OP_DELEGRETURN:
2777 		nfs4_resend_delegreturn(lrp, ep, sp);
2778 		goto done;
2779 	default:
2780 #ifdef DEBUG
2781 		cmn_err(CE_PANIC, "resend_one_op: unexpected op: %d",
2782 			lrp->lr_op);
2783 #endif
2784 		nfs4_queue_event(RE_LOST_STATE_BAD_OP, mi, NULL,
2785 		    lrp->lr_op, lrp->lr_vp, lrp->lr_dvp, NFS4_OK, NULL, 0,
2786 		    TAG_NONE, TAG_NONE, 0, 0);
2787 		nfs4_error_init(ep, EINVAL);
2788 		return;
2789 	}
2790 
2791 	/*
2792 	 * No need to retry nor send an "undo" CLOSE in the
2793 	 * event the server rebooted.
2794 	 */
2795 	if (ep->error == 0 && (ep->stat == NFS4ERR_STALE_CLIENTID ||
2796 	    ep->stat == NFS4ERR_STALE_STATEID || ep->stat == NFS4ERR_EXPIRED))
2797 		goto done;
2798 
2799 	/*
2800 	 * If we resent a CLOSE or OPEN_DOWNGRADE, there's nothing
2801 	 * to undo.  Undoing locking operations was handled by
2802 	 * resend_lock().
2803 	 */
2804 	if (lrp->lr_op == OP_OPEN_DOWNGRADE || lrp->lr_op == OP_CLOSE)
2805 		goto done;
2806 
2807 	/*
2808 	 * If we get any other error for OPEN, then don't attempt
2809 	 * to undo the resend of the open (since it was never
2810 	 * successful!).
2811 	 */
2812 	ASSERT(lrp->lr_op == OP_OPEN);
2813 	if (ep->error || ep->stat != NFS4_OK)
2814 		goto done;
2815 
2816 	/*
2817 	 * Now let's undo our OPEN.
2818 	 */
2819 	nfs4_error_zinit(ep);
2820 	close_after_open_resend(vp, lrp->lr_cr, lrp->lr_oacc, ep);
2821 	NFS4_DEBUG(nfs4_lost_rqst_debug, (CE_NOTE, "resend_one_op: "
2822 	    "nfs4close_one: for vp %p got error %d stat %d",
2823 	    (void *)vp, ep->error, ep->stat));
2824 
2825 done:
2826 	if (vp != lrp->lr_vp)
2827 		VN_RELE(vp);
2828 }
2829 
2830 /*
2831  * Close a file that was opened via a resent OPEN.
2832  * Most errors are passed back to the caller (via the return value and
2833  * *statp), except for FHEXPIRED, which is retried.
2834  *
2835  * It might be conceptually cleaner to push the CLOSE request onto the
2836  * front of the resend queue, rather than sending it here.  That would
2837  * match the way we undo lost lock requests.  On the other
2838  * hand, we've already got something that works, and there's no reason to
2839  * change it at this time.
2840  */
2841 
2842 static void
2843 close_after_open_resend(vnode_t *vp, cred_t *cr, uint32_t acc_bits,
2844 			nfs4_error_t *ep)
2845 {
2846 
2847 	for (;;) {
2848 		nfs4close_one(vp, NULL, cr, acc_bits, NULL, ep,
2849 				CLOSE_AFTER_RESEND, 0, 0, 0);
2850 		if (ep->error == 0 && ep->stat == NFS4_OK)
2851 			break;		/* success; done */
2852 		if (ep->error != 0 || ep->stat != NFS4ERR_FHEXPIRED)
2853 			break;
2854 		/* else retry FHEXPIRED */
2855 	}
2856 
2857 }
2858 
2859 /*
2860  * Resend the given lost lock request.  Return an errno value.  If zero,
2861  * *statp is set to the NFS status code for the call.
2862  *
2863  * Issue a SIGLOST and mark the rnode dead if we get a non-recovery error or
2864  * a recovery error that we don't actually recover from yet (eg: BAD_SEQID).
2865  * Let the recovery thread redrive the call if we get a recovery error that
2866  * we can actually recover from.
2867  */
2868 static void
2869 resend_lock(nfs4_lost_rqst_t *lrp, nfs4_error_t *ep)
2870 {
2871 	bool_t		send_siglost = FALSE;
2872 	vnode_t		*vp = lrp->lr_vp;
2873 
2874 	NFS4_DEBUG(nfs4_lost_rqst_debug, (CE_NOTE, "resend_lock:"));
2875 	ASSERT(lrp->lr_ctype == NFS4_LCK_CTYPE_REINSTATE ||
2876 	    lrp->lr_ctype == NFS4_LCK_CTYPE_RESEND);
2877 
2878 	nfs4frlock(lrp->lr_ctype, vp, F_SETLK,
2879 		    lrp->lr_flk, FREAD|FWRITE, 0, lrp->lr_cr, ep, lrp, NULL);
2880 
2881 	NFS4_DEBUG(nfs4_lost_rqst_debug, (CE_NOTE, "resend_lock: "
2882 	    "nfs4frlock for vp %p returned error %d, stat %d",
2883 	    (void *)vp, ep->error, ep->stat));
2884 
2885 	if (ep->error == 0 && ep->stat == 0)
2886 		goto done;
2887 	if (ep->error == 0 && ep->stat == NFS4ERR_DENIED &&
2888 	    lrp->lr_ctype == NFS4_LCK_CTYPE_RESEND)
2889 		goto done;
2890 
2891 	/*
2892 	 * If we failed with a non-recovery error, send SIGLOST and
2893 	 * mark the file dead.
2894 	 */
2895 	if (!nfs4_needs_recovery(ep, TRUE, vp->v_vfsp))
2896 		send_siglost = TRUE;
2897 	else {
2898 		/*
2899 		 * Done with recovering LOST LOCK in the event the
2900 		 * server rebooted or we've lost the lease.
2901 		 */
2902 		if (ep->error == 0 && (ep->stat == NFS4ERR_STALE_CLIENTID ||
2903 		    ep->stat == NFS4ERR_STALE_STATEID ||
2904 		    ep->stat == NFS4ERR_EXPIRED)) {
2905 			goto done;
2906 		}
2907 
2908 		/*
2909 		 * BAD_STATEID on an unlock indicates that the server has
2910 		 * forgotten about the lock anyway, so act like the call
2911 		 * was successful.
2912 		 */
2913 		if (ep->error == 0 && ep->stat == NFS4ERR_BAD_STATEID &&
2914 		    lrp->lr_op == OP_LOCKU)
2915 			goto done;
2916 
2917 		/*
2918 		 * If we got a recovery error that we don't actually
2919 		 * recover from, send SIGLOST.  If the filesystem was
2920 		 * forcibly unmounted, we skip the SIGLOST because (a) it's
2921 		 * unnecessary noise, and (b) there could be a new process
2922 		 * with the same pid as the one that had generated the lost
2923 		 * state request.
2924 		 */
2925 		if (ep->error == 0 && (ep->stat == NFS4ERR_BADHANDLE ||
2926 		    nfs4_recov_marks_dead(ep->stat))) {
2927 			if (!(vp->v_vfsp->vfs_flag & VFS_UNMOUNTED))
2928 				send_siglost = TRUE;
2929 			goto done;
2930 		}
2931 
2932 		/*
2933 		 * If the filesystem was forcibly unmounted, we
2934 		 * still need to synchronize with the server and
2935 		 * release state.  Try again later.
2936 		 */
2937 		if (NFS4_FRC_UNMT_ERR(ep->error, vp->v_vfsp))
2938 			goto done;
2939 
2940 		/*
2941 		 * If we get a recovery error that we can actually
2942 		 * recover from (such as ETIMEDOUT, FHEXPIRED),
2943 		 * return and let the recovery thread redrive the call.
2944 		 *
2945 		 * For the three errors below, we want to delay a bit
2946 		 * instead of pounding the server into submission.
2947 		 */
2948 		if ((ep->error == 0 && ep->stat == NFS4ERR_DELAY) ||
2949 		    (ep->error == 0 && ep->stat == NFS4ERR_GRACE) ||
2950 		    (ep->error == 0 && ep->stat == NFS4ERR_RESOURCE))
2951 			delay(SEC_TO_TICK(recov_err_delay));
2952 		goto done;
2953 	}
2954 
2955 done:
2956 	if (send_siglost) {
2957 		cred_t *sv_cred;
2958 
2959 		/*
2960 		 * Must be root or the actual thread being issued the
2961 		 * SIGLOST for this to work, so just become root.
2962 		 */
2963 		sv_cred = curthread->t_cred;
2964 		curthread->t_cred = kcred;
2965 		nfs4_send_siglost(lrp->lr_flk->l_pid, VTOMI4(vp), vp, FALSE,
2966 		    ep->error, ep->stat);
2967 		curthread->t_cred = sv_cred;
2968 
2969 		/*
2970 		 * Flush any additional reinstantiation requests for
2971 		 * this operation.  Sending multiple SIGLOSTs to the user
2972 		 * process is unlikely to help and may cause trouble.
2973 		 */
2974 		if (lrp->lr_ctype == NFS4_LCK_CTYPE_REINSTATE)
2975 			flush_reinstate(lrp);
2976 	}
2977 }
2978 
2979 /*
2980  * Remove any lock reinstantiation requests that correspond to the given
2981  * lost request.  We only remove items that follow lrp in the queue,
2982  * assuming that lrp will be removed by the generic lost state code.
2983  */
2984 
2985 static void
2986 flush_reinstate(nfs4_lost_rqst_t *lrp)
2987 {
2988 	vnode_t *vp;
2989 	pid_t pid;
2990 	mntinfo4_t *mi;
2991 	nfs4_lost_rqst_t *nlrp;
2992 
2993 	vp = lrp->lr_vp;
2994 	mi = VTOMI4(vp);
2995 	pid = lrp->lr_flk->l_pid;
2996 
2997 	/*
2998 	 * If there are any more reinstantation requests to get rid of,
2999 	 * they should all be clustered at the front of the lost state
3000 	 * queue.
3001 	 */
3002 	mutex_enter(&mi->mi_lock);
3003 	for (lrp = list_next(&mi->mi_lost_state, lrp); lrp != NULL;
3004 	    lrp = nlrp) {
3005 		nlrp = list_next(&mi->mi_lost_state, lrp);
3006 		if (lrp->lr_op != OP_LOCK && lrp->lr_op != OP_LOCKU)
3007 			break;
3008 		if (lrp->lr_ctype != NFS4_LCK_CTYPE_REINSTATE)
3009 			break;
3010 		ASSERT(lrp->lr_vp == vp);
3011 		ASSERT(lrp->lr_flk->l_pid == pid);
3012 		NFS4_DEBUG(nfs4_lost_rqst_debug, (CE_NOTE,
3013 				"remove reinstantiation %p", (void *)lrp));
3014 		list_remove(&mi->mi_lost_state, lrp);
3015 		nfs4_free_lost_rqst(lrp, NULL);
3016 	}
3017 	mutex_exit(&mi->mi_lock);
3018 }
3019 
3020 /*
3021  * End of state-specific recovery routines.
3022  */
3023 
3024 /*
3025  * Allocate a lost request struct, initialize it from lost_rqstp (including
3026  * bumping the reference counts for the referenced vnode, etc.), and hang
3027  * it off of recovp.
3028  */
3029 
3030 static void
3031 nfs4_save_lost_rqst(nfs4_lost_rqst_t *lost_rqstp, recov_info_t *recovp,
3032 	nfs4_recov_t *action, mntinfo4_t *mi)
3033 {
3034 	nfs4_lost_rqst_t *destp;
3035 
3036 	ASSERT(recovp->rc_lost_rqst == NULL);
3037 
3038 	destp = kmem_alloc(sizeof (nfs4_lost_rqst_t), KM_SLEEP);
3039 	recovp->rc_lost_rqst = destp;
3040 
3041 	if (lost_rqstp->lr_op == OP_LOCK ||
3042 	    lost_rqstp->lr_op == OP_LOCKU) {
3043 		ASSERT(lost_rqstp->lr_lop);
3044 		*action = NR_LOST_LOCK;
3045 		destp->lr_ctype = lost_rqstp->lr_ctype;
3046 		destp->lr_locktype = lost_rqstp->lr_locktype;
3047 	} else if (lost_rqstp->lr_op == OP_OPEN) {
3048 		component4 *srcfp, *destfp;
3049 
3050 		destp->lr_oacc = lost_rqstp->lr_oacc;
3051 		destp->lr_odeny = lost_rqstp->lr_odeny;
3052 		destp->lr_oclaim = lost_rqstp->lr_oclaim;
3053 		if (lost_rqstp->lr_oclaim == CLAIM_DELEGATE_CUR)
3054 			destp->lr_ostateid = lost_rqstp->lr_ostateid;
3055 
3056 		srcfp = &lost_rqstp->lr_ofile;
3057 		destfp = &destp->lr_ofile;
3058 		/*
3059 		 * Consume caller's utf8string
3060 		 */
3061 		destfp->utf8string_len = srcfp->utf8string_len;
3062 		destfp->utf8string_val = srcfp->utf8string_val;
3063 		srcfp->utf8string_len = 0;
3064 		srcfp->utf8string_val = NULL;	/* make sure not reused */
3065 
3066 		*action = NR_LOST_STATE_RQST;
3067 	} else if (lost_rqstp->lr_op == OP_OPEN_DOWNGRADE) {
3068 		destp->lr_dg_acc = lost_rqstp->lr_dg_acc;
3069 		destp->lr_dg_deny = lost_rqstp->lr_dg_deny;
3070 
3071 		*action = NR_LOST_STATE_RQST;
3072 	} else if (lost_rqstp->lr_op == OP_CLOSE) {
3073 		ASSERT(lost_rqstp->lr_oop);
3074 		*action = NR_LOST_STATE_RQST;
3075 	} else if (lost_rqstp->lr_op == OP_DELEGRETURN) {
3076 		*action = NR_LOST_STATE_RQST;
3077 	} else {
3078 #ifdef DEBUG
3079 		cmn_err(CE_PANIC, "nfs4_save_lost_rqst: bad op %d",
3080 			lost_rqstp->lr_op);
3081 #endif
3082 		nfs4_queue_event(RE_LOST_STATE_BAD_OP, mi, NULL,
3083 		    lost_rqstp->lr_op, lost_rqstp->lr_vp, lost_rqstp->lr_dvp,
3084 		    NFS4_OK, NULL, curproc->p_pid, TAG_NONE, TAG_NONE, 0, 0);
3085 		*action = NR_UNUSED;
3086 		recovp->rc_lost_rqst = NULL;
3087 		kmem_free(destp, sizeof (nfs4_lost_rqst_t));
3088 		return;
3089 	}
3090 
3091 	destp->lr_op = lost_rqstp->lr_op;
3092 	destp->lr_vp = lost_rqstp->lr_vp;
3093 	if (destp->lr_vp)
3094 		VN_HOLD(destp->lr_vp);
3095 	destp->lr_dvp = lost_rqstp->lr_dvp;
3096 	if (destp->lr_dvp)
3097 		VN_HOLD(destp->lr_dvp);
3098 	destp->lr_oop = lost_rqstp->lr_oop;
3099 	if (destp->lr_oop)
3100 		open_owner_hold(destp->lr_oop);
3101 	destp->lr_osp = lost_rqstp->lr_osp;
3102 	if (destp->lr_osp)
3103 		open_stream_hold(destp->lr_osp);
3104 	destp->lr_lop = lost_rqstp->lr_lop;
3105 	if (destp->lr_lop)
3106 		lock_owner_hold(destp->lr_lop);
3107 	destp->lr_cr = lost_rqstp->lr_cr;
3108 	if (destp->lr_cr)
3109 		crhold(destp->lr_cr);
3110 	if (lost_rqstp->lr_flk == NULL)
3111 		destp->lr_flk = NULL;
3112 	else {
3113 		destp->lr_flk = kmem_alloc(sizeof (flock64_t), KM_SLEEP);
3114 		*destp->lr_flk = *lost_rqstp->lr_flk;
3115 	}
3116 	destp->lr_putfirst = lost_rqstp->lr_putfirst;
3117 }
3118 
3119 /*
3120  * Map the given return values (errno and nfs4 status code) to a recovery
3121  * action and fill in the following fields of recovp: rc_action,
3122  * rc_srv_reboot, rc_stateid, rc_lost_rqst.
3123  */
3124 
3125 void
3126 errs_to_action(recov_info_t *recovp,
3127 	nfs4_server_t *sp, mntinfo4_t *mi, stateid4 *sidp,
3128 	nfs4_lost_rqst_t *lost_rqstp, int unmounted, nfs_opnum4 op,
3129 	nfs4_bseqid_entry_t *bsep)
3130 {
3131 	nfs4_recov_t action = NR_UNUSED;
3132 	bool_t reboot = FALSE;
3133 	int try_f;
3134 	int error = recovp->rc_orig_errors.error;
3135 	nfsstat4 stat = recovp->rc_orig_errors.stat;
3136 
3137 	bzero(&recovp->rc_stateid, sizeof (stateid4));
3138 	recovp->rc_lost_rqst = NULL;
3139 	recovp->rc_bseqid_rqst = NULL;
3140 
3141 	try_f = nfs4_try_failover(&recovp->rc_orig_errors) &&
3142 			FAILOVER_MOUNT4(mi);
3143 
3144 	/*
3145 	 * We start recovery for EINTR only in the lost lock
3146 	 * or lost open/close case.
3147 	 */
3148 
3149 	if (try_f || error == EINTR || (error == EIO && unmounted)) {
3150 		recovp->rc_error = (error != 0 ? error : geterrno4(stat));
3151 		if (lost_rqstp) {
3152 			ASSERT(lost_rqstp->lr_op != 0);
3153 			nfs4_save_lost_rqst(lost_rqstp, recovp, &action, mi);
3154 		}
3155 		if (try_f)
3156 			action = NR_FAILOVER;
3157 	} else if (error != 0) {
3158 		recovp->rc_error = error;
3159 		nfs4_queue_event(RE_UNEXPECTED_ERRNO, mi, NULL, error, NULL,
3160 		    NULL, 0, NULL, 0, TAG_NONE, TAG_NONE, 0, 0);
3161 		action = NR_CLIENTID;
3162 	} else {
3163 		recovp->rc_error = geterrno4(stat);
3164 		switch (stat) {
3165 #ifdef notyet
3166 		case NFS4ERR_LEASE_MOVED:
3167 			action = xxx;
3168 			break;
3169 		case NFS4ERR_MOVED:
3170 			action = xxx;
3171 			break;
3172 #endif
3173 		case NFS4ERR_BADHANDLE:
3174 			action = NR_BADHANDLE;
3175 			break;
3176 		case NFS4ERR_BAD_SEQID:
3177 			if (bsep)
3178 				save_bseqid_rqst(bsep, recovp);
3179 			action = NR_BAD_SEQID;
3180 			break;
3181 		case NFS4ERR_OLD_STATEID:
3182 			action = NR_OLDSTATEID;
3183 			break;
3184 		case NFS4ERR_WRONGSEC:
3185 			action = NR_WRONGSEC;
3186 			break;
3187 		case NFS4ERR_FHEXPIRED:
3188 			action = NR_FHEXPIRED;
3189 			break;
3190 		case NFS4ERR_BAD_STATEID:
3191 			if (sp == NULL || (sp != NULL && inlease(sp))) {
3192 
3193 				action = NR_BAD_STATEID;
3194 				if (sidp)
3195 					recovp->rc_stateid = *sidp;
3196 			} else
3197 				action = NR_CLIENTID;
3198 			break;
3199 		case NFS4ERR_EXPIRED:
3200 			/*
3201 			 * The client's lease has expired, either due
3202 			 * to a network partition or perhaps a client
3203 			 * error.  In either case, try an NR_CLIENTID
3204 			 * style recovery.  reboot remains false, since
3205 			 * there is no evidence the server has rebooted.
3206 			 * This will cause CLAIM_NULL opens and lock
3207 			 * requests without the reclaim bit.
3208 			 */
3209 			action = NR_CLIENTID;
3210 
3211 			DTRACE_PROBE4(nfs4__expired,
3212 					nfs4_server_t *, sp,
3213 					mntinfo4_t *, mi,
3214 					stateid4 *, sidp, int, op);
3215 
3216 			break;
3217 		case NFS4ERR_STALE_CLIENTID:
3218 		case NFS4ERR_STALE_STATEID:
3219 			action = NR_CLIENTID;
3220 			reboot = TRUE;
3221 			break;
3222 		case NFS4ERR_RESOURCE:
3223 			/*
3224 			 * If this had been a FAILOVER mount, then
3225 			 * we'd have tried failover.  Since it's not,
3226 			 * just delay a while and retry.
3227 			 */
3228 			action = NR_DELAY;
3229 			break;
3230 		case NFS4ERR_GRACE:
3231 			action = NR_GRACE;
3232 			break;
3233 		case NFS4ERR_DELAY:
3234 			action = NR_DELAY;
3235 			break;
3236 		case NFS4ERR_STALE:
3237 			action = NR_STALE;
3238 			break;
3239 		default:
3240 			nfs4_queue_event(RE_UNEXPECTED_STATUS, mi, NULL, 0,
3241 			    NULL, NULL, stat, NULL, 0, TAG_NONE, TAG_NONE,
3242 			    0, 0);
3243 			action = NR_CLIENTID;
3244 			break;
3245 		}
3246 	}
3247 
3248 	/* make sure action got set */
3249 	ASSERT(action != NR_UNUSED);
3250 	recovp->rc_srv_reboot = reboot;
3251 	recovp->rc_action = action;
3252 	nfs4_queue_fact(RF_ERR, mi, stat, action, op, reboot, NULL, error,
3253 		NULL);
3254 }
3255 
3256 /*
3257  * Return the (held) credential for the process with the given pid.
3258  * May return NULL (e.g., process not found).
3259  */
3260 
3261 static cred_t *
3262 pid_to_cr(pid_t pid)
3263 {
3264 	proc_t *p;
3265 	cred_t *cr;
3266 
3267 	mutex_enter(&pidlock);
3268 	if ((p = prfind(pid)) == NULL) {
3269 		mutex_exit(&pidlock);
3270 		return (NULL);
3271 	}
3272 
3273 	mutex_enter(&p->p_crlock);
3274 	crhold(cr = p->p_cred);
3275 	mutex_exit(&p->p_crlock);
3276 	mutex_exit(&pidlock);
3277 
3278 	return (cr);
3279 }
3280 
3281 /*
3282  * Send SIGLOST to the given process and queue the event.
3283  *
3284  * The 'dump' boolean tells us whether this action should dump the
3285  * in-kernel queue of recovery messages or not.
3286  */
3287 
3288 void
3289 nfs4_send_siglost(pid_t pid, mntinfo4_t *mi, vnode_t *vp, bool_t dump,
3290     int error, nfsstat4 stat)
3291 {
3292 	proc_t *p;
3293 
3294 	mutex_enter(&pidlock);
3295 	p = prfind(pid);
3296 	if (p)
3297 		psignal(p, SIGLOST);
3298 	mutex_exit(&pidlock);
3299 	nfs4_queue_event(dump ? RE_SIGLOST : RE_SIGLOST_NO_DUMP, mi,
3300 	    NULL, error, vp, NULL, stat, NULL, pid, TAG_NONE, TAG_NONE, 0, 0);
3301 }
3302 
3303 /*
3304  * Scan the lock list for entries that match the given pid.  Change the
3305  * pid in those that do to NOPID.
3306  */
3307 
3308 static void
3309 relock_skip_pid(locklist_t *llp, pid_t pid)
3310 {
3311 	for (; llp != NULL; llp = llp->ll_next) {
3312 		if (llp->ll_flock.l_pid == pid)
3313 			llp->ll_flock.l_pid = NOPID;
3314 	}
3315 }
3316 
3317 /*
3318  * Mark a file as having failed recovery, after making a last-ditch effort
3319  * to return any delegation.
3320  *
3321  * Sets r_error to EIO or ESTALE for the given vnode.
3322  */
3323 void
3324 nfs4_fail_recov(vnode_t *vp, char *why, int error, nfsstat4 stat)
3325 {
3326 	rnode4_t *rp = VTOR4(vp);
3327 
3328 #ifdef DEBUG
3329 	if (nfs4_fail_recov_stop)
3330 		debug_enter("nfs4_fail_recov");
3331 #endif
3332 
3333 	mutex_enter(&rp->r_statelock);
3334 	if (rp->r_flags & (R4RECOVERR|R4RECOVERRP)) {
3335 		mutex_exit(&rp->r_statelock);
3336 		return;
3337 	}
3338 
3339 	/*
3340 	 * Set R4RECOVERRP to indicate that a recovery error is in
3341 	 * progress.  This will shut down reads and writes at the top
3342 	 * half.  Don't set R4RECOVERR until after we've returned the
3343 	 * delegation, otherwise it will fail.
3344 	 */
3345 
3346 	rp->r_flags |= R4RECOVERRP;
3347 	mutex_exit(&rp->r_statelock);
3348 
3349 	nfs4delegabandon(rp);
3350 
3351 	mutex_enter(&rp->r_statelock);
3352 	rp->r_flags |= (R4RECOVERR | R4STALE);
3353 	rp->r_error = (error == 0 && stat == NFS4ERR_STALE) ? ESTALE : EIO;
3354 	PURGE_ATTRCACHE4_LOCKED(rp);
3355 	if (!(vp->v_vfsp->vfs_flag & VFS_UNMOUNTED))
3356 		nfs4_queue_event(RE_DEAD_FILE, VTOMI4(vp), NULL, error,
3357 		    vp, NULL, stat, why, 0, TAG_NONE, TAG_NONE, 0, 0);
3358 	mutex_exit(&rp->r_statelock);
3359 
3360 	dnlc_purge_vp(vp);
3361 }
3362 
3363 /*
3364  * recov_throttle: if the file had the same recovery action within the
3365  * throttle interval, wait for the throttle interval to finish before
3366  * proceeding.
3367  *
3368  * Side effects: updates the rnode with the current recovery information.
3369  */
3370 
3371 static void
3372 recov_throttle(recov_info_t *recovp, vnode_t *vp)
3373 {
3374 	time_t curtime, time_to_wait;
3375 	rnode4_t *rp = VTOR4(vp);
3376 
3377 	curtime = gethrestime_sec();
3378 
3379 	mutex_enter(&rp->r_statelock);
3380 	NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
3381 		"recov_throttle: now: (%d, %ld), last: (%d, %ld)",
3382 		recovp->rc_action, curtime,
3383 		rp->r_recov_act, rp->r_last_recov));
3384 	if (recovp->rc_action == rp->r_recov_act &&
3385 	    rp->r_last_recov + recov_err_delay > curtime) {
3386 		time_to_wait = rp->r_last_recov + recov_err_delay - curtime;
3387 		mutex_exit(&rp->r_statelock);
3388 		delay(SEC_TO_TICK(time_to_wait));
3389 		curtime = gethrestime_sec();
3390 		mutex_enter(&rp->r_statelock);
3391 	}
3392 
3393 	rp->r_last_recov = curtime;
3394 	rp->r_recov_act = recovp->rc_action;
3395 	mutex_exit(&rp->r_statelock);
3396 }
3397 
3398 /*
3399  * React to NFS4ERR_GRACE by setting the time we'll permit
3400  * the next call to this filesystem.
3401  */
3402 void
3403 nfs4_set_grace_wait(mntinfo4_t *mi)
3404 {
3405 	mutex_enter(&mi->mi_lock);
3406 	/* Mark the time for the future */
3407 	mi->mi_grace_wait = gethrestime_sec() + nfs4err_delay_time;
3408 	mutex_exit(&mi->mi_lock);
3409 }
3410 
3411 /*
3412  * React to MFS4ERR_DELAY by setting the time we'll permit
3413  * the next call to this vnode.
3414  */
3415 void
3416 nfs4_set_delay_wait(vnode_t *vp)
3417 {
3418 	rnode4_t *rp = VTOR4(vp);
3419 
3420 	mutex_enter(&rp->r_statelock);
3421 	/*
3422 	 * Calculate amount we should delay, initial
3423 	 * delay will be short and then we will back off.
3424 	 */
3425 	if (rp->r_delay_interval == 0)
3426 		rp->r_delay_interval = NFS4_INITIAL_DELAY_INTERVAL;
3427 	else
3428 		/* calculate next interval value */
3429 		rp->r_delay_interval =
3430 		    MIN(NFS4_MAX_DELAY_INTERVAL, (rp->r_delay_interval << 1));
3431 	rp->r_delay_wait = gethrestime_sec() + rp->r_delay_interval;
3432 	mutex_exit(&rp->r_statelock);
3433 }
3434 
3435 /*
3436  * The caller is responsible for freeing the returned string.
3437  */
3438 static char *
3439 nfs4_getsrvnames(mntinfo4_t *mi, size_t *len)
3440 {
3441 	servinfo4_t *svp;
3442 	char *srvnames;
3443 	char *namep;
3444 	size_t length;
3445 
3446 	/*
3447 	 * Calculate the length of the string required to hold all
3448 	 * of the server names plus either a comma or a null
3449 	 * character following each individual one.
3450 	 */
3451 	length = 0;
3452 	for (svp = mi->mi_servers; svp != NULL; svp = svp->sv_next) {
3453 		(void) nfs_rw_enter_sig(&svp->sv_lock, RW_READER, 0);
3454 		if (svp->sv_flags & SV4_NOTINUSE) {
3455 			nfs_rw_exit(&svp->sv_lock);
3456 			continue;
3457 		}
3458 		nfs_rw_exit(&svp->sv_lock);
3459 		length += svp->sv_hostnamelen;
3460 	}
3461 
3462 	srvnames = kmem_alloc(length, KM_SLEEP);
3463 
3464 	namep = srvnames;
3465 	for (svp = mi->mi_servers; svp != NULL; svp = svp->sv_next) {
3466 		(void) nfs_rw_enter_sig(&svp->sv_lock, RW_READER, 0);
3467 		if (svp->sv_flags & SV4_NOTINUSE) {
3468 			nfs_rw_exit(&svp->sv_lock);
3469 			continue;
3470 		}
3471 		nfs_rw_exit(&svp->sv_lock);
3472 		(void) strcpy(namep, svp->sv_hostname);
3473 		namep += svp->sv_hostnamelen - 1;
3474 		*namep++ = ',';
3475 	}
3476 	*--namep = '\0';
3477 
3478 	*len = length;
3479 
3480 	return (srvnames);
3481 }
3482 
3483 static void
3484 save_bseqid_rqst(nfs4_bseqid_entry_t *bsep, recov_info_t *recovp)
3485 {
3486 	nfs4_bseqid_entry_t *destp;
3487 
3488 	destp = kmem_alloc(sizeof (nfs4_bseqid_entry_t), KM_SLEEP);
3489 	recovp->rc_bseqid_rqst = destp;
3490 
3491 	if (bsep->bs_oop)
3492 		open_owner_hold(bsep->bs_oop);
3493 	destp->bs_oop = bsep->bs_oop;
3494 	if (bsep->bs_lop)
3495 		lock_owner_hold(bsep->bs_lop);
3496 	destp->bs_lop = bsep->bs_lop;
3497 	if (bsep->bs_vp)
3498 		VN_HOLD(bsep->bs_vp);
3499 	destp->bs_vp = bsep->bs_vp;
3500 	destp->bs_pid = bsep->bs_pid;
3501 	destp->bs_tag = bsep->bs_tag;
3502 	destp->bs_seqid = bsep->bs_seqid;
3503 }
3504 
3505 static void
3506 free_bseqid_rqst(nfs4_bseqid_entry_t *bsep)
3507 {
3508 	if (bsep->bs_oop)
3509 		open_owner_rele(bsep->bs_oop);
3510 	if (bsep->bs_lop)
3511 		lock_owner_rele(bsep->bs_lop);
3512 	if (bsep->bs_vp)
3513 		VN_RELE(bsep->bs_vp);
3514 	kmem_free(bsep, sizeof (nfs4_bseqid_entry_t));
3515 }
3516 
3517 /*
3518  * We don't actually fully recover from NFS4ERR_BAD_SEQID.  We
3519  * simply mark the open owner and open stream (if provided) as "bad".
3520  * Then future uses of these data structures will be limited to basically
3521  * just cleaning up the internal client state (no going OTW).
3522  *
3523  * The result of this is to return errors back to the app/usr when
3524  * we receive NFS4ERR_BAD_SEQID, but also allow future/new calls to
3525  * succeed so progress can be made.
3526  */
3527 void
3528 recov_bad_seqid(recov_info_t *recovp)
3529 {
3530 	mntinfo4_t		*mi = recovp->rc_mi;
3531 	nfs4_open_owner_t	*bad_oop;
3532 	nfs4_lock_owner_t	*bad_lop;
3533 	vnode_t			*vp;
3534 	rnode4_t		*rp = NULL;
3535 	pid_t			pid;
3536 	nfs4_bseqid_entry_t	*bsep, *tbsep;
3537 	int			error;
3538 
3539 	ASSERT(mi != NULL);
3540 	ASSERT(nfs_rw_lock_held(&mi->mi_recovlock, RW_WRITER));
3541 
3542 	mutex_enter(&mi->mi_lock);
3543 	bsep = list_head(&mi->mi_bseqid_list);
3544 	mutex_exit(&mi->mi_lock);
3545 
3546 	/*
3547 	 * Handle all the bad seqid entries on mi's list.
3548 	 */
3549 	while (bsep != NULL) {
3550 		bad_oop = bsep->bs_oop;
3551 		bad_lop = bsep->bs_lop;
3552 		vp = bsep->bs_vp;
3553 		pid = bsep->bs_pid;
3554 
3555 		NFS4_DEBUG(nfs4_client_recov_debug, (CE_NOTE,
3556 		    "recov_bad_seqid: mark oop %p lop %p as bad for "
3557 		    "vp %p tag %s pid %d: last good seqid %d for tag %s",
3558 		    (void *)bad_oop, (void *)bad_lop, (void *)vp,
3559 		    nfs4_ctags[bsep->bs_tag].ct_str, pid,
3560 		    bad_oop ?  bad_oop->oo_last_good_seqid : 0,
3561 		    bad_oop ? nfs4_ctags[bad_oop->oo_last_good_op].ct_str :
3562 		    nfs4_ctags[TAG_NONE].ct_str));
3563 
3564 		nfs4_queue_event(RE_BAD_SEQID, mi, NULL,
3565 		    0, vp, NULL, NFS4ERR_BAD_SEQID, NULL, pid, bsep->bs_tag,
3566 		    bad_oop ? bad_oop->oo_last_good_op : TAG_NONE,
3567 		    bsep->bs_seqid, bad_oop ? bad_oop->oo_last_good_seqid : 0);
3568 
3569 		if (bad_oop) {
3570 			/* essentially reset the open owner */
3571 			error = nfs4_start_open_seqid_sync(bad_oop, mi);
3572 			ASSERT(!error);	/* recov thread always succeeds */
3573 			bad_oop->oo_name = nfs4_get_new_oo_name();
3574 			bad_oop->oo_seqid = 0;
3575 			nfs4_end_open_seqid_sync(bad_oop);
3576 		}
3577 
3578 		if (bad_lop) {
3579 			mutex_enter(&bad_lop->lo_lock);
3580 			bad_lop->lo_flags |= NFS4_BAD_SEQID_LOCK;
3581 			mutex_exit(&bad_lop->lo_lock);
3582 
3583 			ASSERT(vp != NULL);
3584 			rp = VTOR4(vp);
3585 			mutex_enter(&rp->r_statelock);
3586 			rp->r_flags |= R4LODANGLERS;
3587 			mutex_exit(&rp->r_statelock);
3588 
3589 			nfs4_send_siglost(pid, mi, vp, TRUE,
3590 			    0, NFS4ERR_BAD_SEQID);
3591 		}
3592 
3593 		mutex_enter(&mi->mi_lock);
3594 		list_remove(&mi->mi_bseqid_list, bsep);
3595 		tbsep = bsep;
3596 		bsep = list_head(&mi->mi_bseqid_list);
3597 		mutex_exit(&mi->mi_lock);
3598 		free_bseqid_rqst(tbsep);
3599 	}
3600 
3601 	mutex_enter(&mi->mi_lock);
3602 	mi->mi_recovflags &= ~MI4R_BAD_SEQID;
3603 	mutex_exit(&mi->mi_lock);
3604 }
3605