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1 /*
2  * GPL HEADER START
3  *
4  * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
5  *
6  * This program is free software; you can redistribute it and/or modify
7  * it under the terms of the GNU General Public License version 2 only,
8  * as published by the Free Software Foundation.
9  *
10  * This program is distributed in the hope that it will be useful, but
11  * WITHOUT ANY WARRANTY; without even the implied warranty of
12  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
13  * General Public License version 2 for more details (a copy is included
14  * in the LICENSE file that accompanied this code).
15  *
16  * You should have received a copy of the GNU General Public License
17  * version 2 along with this program; If not, see
18  * http://www.gnu.org/licenses/gpl-2.0.html
19  *
20  * GPL HEADER END
21  */
22 /*
23  * Copyright (c) 2007, 2010, Oracle and/or its affiliates. All rights reserved.
24  * Use is subject to license terms.
25  *
26  * Copyright (c) 2012, 2017, Intel Corporation.
27  */
28 /*
29  * This file is part of Lustre, http://www.lustre.org/
30  * Lustre is a trademark of Sun Microsystems, Inc.
31  *
32  * lustre/osp/osp_dev.c
33  *
34  * Author: Alex Zhuravlev <alexey.zhuravlev@intel.com>
35  * Author: Mikhail Pershin <mike.pershin@intel.com>
36  * Author: Di Wang <di.wang@intel.com>
37  */
38 /*
39  * The Object Storage Proxy (OSP) module provides an implementation of
40  * the DT API for remote MDTs and OSTs. Every local OSP device (or
41  * object) is a proxy for a remote OSD device (or object). Thus OSP
42  * converts DT operations into RPCs, which are sent to the OUT service
43  * on a remote target, converted back to DT operations, and
44  * executed. Of course there are many ways in which this description
45  * is inaccurate but it's a good enough mental model. OSP is used by
46  * the MDT stack in several ways:
47  *
48  * - OSP devices allocate FIDs for the stripe sub-objects of a striped
49  *   file or directory.
50  *
51  * - OSP objects represent the remote MDT and OST objects that are
52  *   the stripes of a striped object.
53  *
54  * - OSP devices log, send, and track synchronous operations (setattr
55  *   and unlink) to remote targets.
56  *
57  * - OSP objects are the bottom slice of the compound LU object
58  *   representing a remote MDT object: MDT/MDD/LOD/OSP.
59  *
60  * - OSP objects are used by LFSCK to represent remote OST objects
61  *   during the verification of MDT-OST consistency.
62  *
63  * - OSP devices batch idempotent requests (declare_attr_get() and
64  *   declare_xattr_get()) to the remote target and cache their results.
65  *
66  * In addition the OSP layer implements a subset of the OBD device API
67  * to support being a client of a remote target, connecting to other
68  * layers, and FID allocation.
69  */
70
71 #define DEBUG_SUBSYSTEM S_MDS
72
73 #include <linux/kthread.h>
74
75 #include <uapi/linux/lustre/lustre_ioctl.h>
76 #include <lustre_log.h>
77 #include <lustre_obdo.h>
78 #include <uapi/linux/lustre/lustre_param.h>
79 #include <obd_class.h>
80
81 #include "osp_internal.h"
82
83 /* Slab for OSP object allocation */
84 struct kmem_cache *osp_object_kmem;
85
86 static struct lu_kmem_descr osp_caches[] = {
87         {
88                 .ckd_cache = &osp_object_kmem,
89                 .ckd_name  = "osp_obj",
90                 .ckd_size  = sizeof(struct osp_object)
91         },
92         {
93                 .ckd_cache = NULL
94         }
95 };
96
97 /**
98  * Implementation of lu_device_operations::ldo_object_alloc
99  *
100  * Allocates an OSP object in memory, whose FID is on the remote target.
101  *
102  * \param[in] env       execution environment
103  * \param[in] hdr       The header of the object stack. If it is NULL, it
104  *                      means the object is not built from top device, i.e.
105  *                      it is a sub-stripe object of striped directory or
106  *                      an OST object.
107  * \param[in] d         OSP device
108  *
109  * \retval object       object being created if the creation succeed.
110  * \retval NULL         NULL if the creation failed.
111  */
112 static struct lu_object *osp_object_alloc(const struct lu_env *env,
113                                           const struct lu_object_header *hdr,
114                                           struct lu_device *d)
115 {
116         struct lu_object_header *h = NULL;
117         struct osp_object       *o;
118         struct lu_object        *l;
119
120         OBD_SLAB_ALLOC_PTR_GFP(o, osp_object_kmem, GFP_NOFS);
121         if (o != NULL) {
122                 l = &o->opo_obj.do_lu;
123
124                 /* If hdr is NULL, it means the object is not built
125                  * from the top dev(MDT/OST), usually it happens when
126                  * building striped object, like data object on MDT or
127                  * striped object for directory */
128                 if (hdr == NULL) {
129                         h = &o->opo_header;
130                         lu_object_header_init(h);
131                         dt_object_init(&o->opo_obj, h, d);
132                         lu_object_add_top(h, l);
133                 } else {
134                         dt_object_init(&o->opo_obj, h, d);
135                 }
136
137                 l->lo_ops = &osp_lu_obj_ops;
138
139                 return l;
140         } else {
141                 return NULL;
142         }
143 }
144
145 /**
146  * Find or create the local object
147  *
148  * Finds or creates the local file referenced by \a reg_id and return the
149  * attributes of the local file.
150  *
151  * \param[in] env       execution environment
152  * \param[in] osp       OSP device
153  * \param[out] attr     attributes of the object
154  * \param[in] reg_id    the local object ID of the file. It will be used
155  *                      to compose a local FID{FID_SEQ_LOCAL_FILE, reg_id, 0}
156  *                      to identify the object.
157  *
158  * \retval object               object(dt_object) found or created
159  * \retval ERR_PTR(errno)       ERR_PTR(errno) if not get the object.
160  */
161 static struct dt_object
162 *osp_find_or_create_local_file(const struct lu_env *env, struct osp_device *osp,
163                                struct lu_attr *attr, __u32 reg_id)
164 {
165         struct osp_thread_info *osi = osp_env_info(env);
166         struct dt_object_format dof = { 0 };
167         struct dt_object       *dto;
168         int                  rc;
169         ENTRY;
170
171         lu_local_obj_fid(&osi->osi_fid, reg_id);
172         attr->la_valid = LA_MODE;
173         attr->la_mode = S_IFREG | 0644;
174         dof.dof_type = DFT_REGULAR;
175         /* Find or create the local object by osi_fid. */
176         dto = dt_find_or_create(env, osp->opd_storage, &osi->osi_fid,
177                                 &dof, attr);
178         if (IS_ERR(dto))
179                 RETURN(dto);
180
181         /* Get attributes of the local object. */
182         rc = dt_attr_get(env, dto, attr);
183         if (rc) {
184                 CERROR("%s: can't be initialized: rc = %d\n",
185                        osp->opd_obd->obd_name, rc);
186                 dt_object_put(env, dto);
187                 RETURN(ERR_PTR(rc));
188         }
189         RETURN(dto);
190 }
191
192 /**
193  * Write data buffer to a local file object.
194  *
195  * \param[in] env       execution environment
196  * \param[in] osp       OSP device
197  * \param[in] dt_obj    object written to
198  * \param[in] buf       buffer containing byte array and length
199  * \param[in] offset    write offset in the object in bytes
200  *
201  * \retval 0            0 if write succeed
202  * \retval -EFAULT      -EFAULT if only part of buffer is written.
203  * \retval negative             other negative errno if write failed.
204  */
205 static int osp_write_local_file(const struct lu_env *env,
206                                 struct osp_device *osp,
207                                 struct dt_object *dt_obj,
208                                 struct lu_buf *buf,
209                                 loff_t offset)
210 {
211         struct thandle *th;
212         int rc;
213
214         if (osp->opd_storage->dd_rdonly)
215                 RETURN(0);
216
217         th = dt_trans_create(env, osp->opd_storage);
218         if (IS_ERR(th))
219                 RETURN(PTR_ERR(th));
220
221         rc = dt_declare_record_write(env, dt_obj, buf, offset, th);
222         if (rc)
223                 GOTO(out, rc);
224         rc = dt_trans_start_local(env, osp->opd_storage, th);
225         if (rc)
226                 GOTO(out, rc);
227
228         rc = dt_record_write(env, dt_obj, buf, &offset, th);
229 out:
230         dt_trans_stop(env, osp->opd_storage, th);
231         RETURN(rc);
232 }
233
234 /**
235  * Initialize last ID object.
236  *
237  * This function initializes the LAST_ID file, which stores the current last
238  * used id of data objects. The MDT will use the last used id and the last_seq
239  * (\see osp_init_last_seq()) to synchronize the precreate object cache with
240  * OSTs.
241  *
242  * \param[in] env       execution environment
243  * \param[in] osp       OSP device
244  *
245  * \retval 0            0 if initialization succeed
246  * \retval negative     negative errno if initialization failed
247  */
248 static int osp_init_last_objid(const struct lu_env *env, struct osp_device *osp)
249 {
250         struct osp_thread_info  *osi = osp_env_info(env);
251         struct lu_fid           *fid = &osp->opd_last_used_fid;
252         struct dt_object        *dto;
253         int                     rc = -EFAULT;
254         ENTRY;
255
256         dto = osp_find_or_create_local_file(env, osp, &osi->osi_attr,
257                                             MDD_LOV_OBJ_OID);
258         if (IS_ERR(dto))
259                 RETURN(PTR_ERR(dto));
260
261         osp_objid_buf_prep(&osi->osi_lb, &osi->osi_off, &osp->opd_last_id,
262                            osp->opd_index);
263
264         /* object will be released in device cleanup path */
265         if (osi->osi_attr.la_size >= (osi->osi_off + osi->osi_lb.lb_len)) {
266                 rc = dt_record_read(env, dto, &osi->osi_lb, &osi->osi_off);
267                 if (rc != 0 && rc != -EFAULT)
268                         GOTO(out, rc);
269                 /* In case of idif bits 32-48 go to f_seq
270                  * (see osp_init_last_seq). So don't care
271                  * about u64->u32 convertion. */
272                 fid->f_oid = osp->opd_last_id;
273         }
274
275         if (rc == -EFAULT) { /* fresh LAST_ID */
276                 osp->opd_last_id = 0;
277                 fid->f_oid = 0;
278                 rc = osp_write_local_file(env, osp, dto, &osi->osi_lb,
279                                           osi->osi_off);
280                 if (rc != 0)
281                         GOTO(out, rc);
282         }
283         osp->opd_last_used_oid_file = dto;
284         RETURN(0);
285 out:
286         /* object will be released in device cleanup path */
287         CERROR("%s: can't initialize lov_objid: rc = %d\n",
288                osp->opd_obd->obd_name, rc);
289         dt_object_put(env, dto);
290         osp->opd_last_used_oid_file = NULL;
291         RETURN(rc);
292 }
293
294 /**
295  * Initialize last sequence object.
296  *
297  * This function initializes the LAST_SEQ file in the local OSD, which stores
298  * the current last used sequence of data objects. The MDT will use the last
299  * sequence and last id (\see osp_init_last_objid()) to synchronize the
300  * precreate object cache with OSTs.
301  *
302  * \param[in] env       execution environment
303  * \param[in] osp       OSP device
304  *
305  * \retval 0            0 if initialization succeed
306  * \retval negative     negative errno if initialization failed
307  */
308 static int osp_init_last_seq(const struct lu_env *env, struct osp_device *osp)
309 {
310         struct osp_thread_info  *osi = osp_env_info(env);
311         struct lu_fid           *fid = &osp->opd_last_used_fid;
312         struct dt_object        *dto;
313         int                     rc = -EFAULT;
314         ENTRY;
315
316         dto = osp_find_or_create_local_file(env, osp, &osi->osi_attr,
317                                             MDD_LOV_OBJ_OSEQ);
318         if (IS_ERR(dto))
319                 RETURN(PTR_ERR(dto));
320
321         osp_objseq_buf_prep(&osi->osi_lb, &osi->osi_off, &fid->f_seq,
322                            osp->opd_index);
323
324         /* object will be released in device cleanup path */
325         if (osi->osi_attr.la_size >= (osi->osi_off + osi->osi_lb.lb_len)) {
326                 rc = dt_record_read(env, dto, &osi->osi_lb, &osi->osi_off);
327                 if (rc != 0 && rc != -EFAULT)
328                         GOTO(out, rc);
329                 if (fid_is_idif(fid))
330                         fid->f_seq = fid_idif_seq(osp->opd_last_id,
331                                                   osp->opd_index);
332         }
333
334         if (rc == -EFAULT) { /* fresh OSP */
335                 fid->f_seq = 0;
336                 rc = osp_write_local_file(env, osp, dto, &osi->osi_lb,
337                                           osi->osi_off);
338                 if (rc != 0)
339                         GOTO(out, rc);
340         }
341         osp->opd_last_used_seq_file = dto;
342         RETURN(0);
343 out:
344         /* object will be released in device cleanup path */
345         CERROR("%s: can't initialize lov_seq: rc = %d\n",
346                osp->opd_obd->obd_name, rc);
347         dt_object_put(env, dto);
348         osp->opd_last_used_seq_file = NULL;
349         RETURN(rc);
350 }
351
352 /**
353  * Initialize last OID and sequence object.
354  *
355  * If the MDT is just upgraded to 2.4 from the lower version, where the
356  * LAST_SEQ file does not exist, the file will be created and IDIF sequence
357  * will be written into the file.
358  *
359  * \param[in] env       execution environment
360  * \param[in] osp       OSP device
361  *
362  * \retval 0            0 if initialization succeed
363  * \retval negative     negative error if initialization failed
364  */
365 static int osp_last_used_init(const struct lu_env *env, struct osp_device *osp)
366 {
367         struct osp_thread_info *osi = osp_env_info(env);
368         int                  rc;
369         ENTRY;
370
371         fid_zero(&osp->opd_last_used_fid);
372         rc = osp_init_last_objid(env, osp);
373         if (rc < 0) {
374                 CERROR("%s: Can not get ids %d from old objid!\n",
375                        osp->opd_obd->obd_name, rc);
376                 RETURN(rc);
377         }
378
379         rc = osp_init_last_seq(env, osp);
380         if (rc < 0) {
381                 CERROR("%s: Can not get sequence %d from old objseq!\n",
382                        osp->opd_obd->obd_name, rc);
383                 GOTO(out, rc);
384         }
385
386         if (fid_oid(&osp->opd_last_used_fid) != 0 &&
387             fid_seq(&osp->opd_last_used_fid) == 0) {
388                 /* Just upgrade from the old version,
389                  * set the seq to be IDIF */
390                 osp->opd_last_used_fid.f_seq =
391                    fid_idif_seq(fid_oid(&osp->opd_last_used_fid),
392                                 osp->opd_index);
393                 osp_objseq_buf_prep(&osi->osi_lb, &osi->osi_off,
394                                     &osp->opd_last_used_fid.f_seq,
395                                     osp->opd_index);
396                 rc = osp_write_local_file(env, osp, osp->opd_last_used_seq_file,
397                                           &osi->osi_lb, osi->osi_off);
398                 if (rc) {
399                         CERROR("%s : Can not write seq file: rc = %d\n",
400                                osp->opd_obd->obd_name, rc);
401                         GOTO(out, rc);
402                 }
403         }
404
405         if (!fid_is_zero(&osp->opd_last_used_fid) &&
406                  !fid_is_sane(&osp->opd_last_used_fid)) {
407                 CERROR("%s: Got invalid FID "DFID"\n", osp->opd_obd->obd_name,
408                         PFID(&osp->opd_last_used_fid));
409                 GOTO(out, rc = -EINVAL);
410         }
411
412         osp_fid_to_obdid(&osp->opd_last_used_fid, &osp->opd_last_id);
413         CDEBUG(D_INFO, "%s: Init last used fid "DFID"\n",
414                osp->opd_obd->obd_name, PFID(&osp->opd_last_used_fid));
415 out:
416         if (rc != 0) {
417                 if (osp->opd_last_used_oid_file != NULL) {
418                         dt_object_put(env, osp->opd_last_used_oid_file);
419                         osp->opd_last_used_oid_file = NULL;
420                 }
421                 if (osp->opd_last_used_seq_file != NULL) {
422                         dt_object_put(env, osp->opd_last_used_seq_file);
423                         osp->opd_last_used_seq_file = NULL;
424                 }
425         }
426
427         RETURN(rc);
428 }
429
430 /**
431  * Release the last sequence and OID file objects in OSP device.
432  *
433  * \param[in] env       execution environment
434  * \param[in] osp       OSP device
435  */
436 static void osp_last_used_fini(const struct lu_env *env, struct osp_device *osp)
437 {
438         /* release last_used file */
439         if (osp->opd_last_used_oid_file != NULL) {
440                 dt_object_put(env, osp->opd_last_used_oid_file);
441                 osp->opd_last_used_oid_file = NULL;
442         }
443
444         if (osp->opd_last_used_seq_file != NULL) {
445                 dt_object_put(env, osp->opd_last_used_seq_file);
446                 osp->opd_last_used_seq_file = NULL;
447         }
448 }
449
450 /**
451  * Disconnects the connection between OSP and its correspondent MDT or OST, and
452  * the import will be marked as inactive. It will only be called during OSP
453  * cleanup process.
454  *
455  * \param[in] d         OSP device being disconnected
456  *
457  * \retval 0            0 if disconnection succeed
458  * \retval negative     negative errno if disconnection failed
459  */
460 static int osp_disconnect(struct osp_device *d)
461 {
462         struct obd_device *obd = d->opd_obd;
463         struct obd_import *imp;
464         int rc = 0;
465
466         imp = obd->u.cli.cl_import;
467
468         /* Mark import deactivated now, so we don't try to reconnect if any
469          * of the cleanup RPCs fails (e.g. ldlm cancel, etc).  We don't
470          * fully deactivate the import, or that would drop all requests. */
471         LASSERT(imp != NULL);
472         spin_lock(&imp->imp_lock);
473         imp->imp_deactive = 1;
474         spin_unlock(&imp->imp_lock);
475
476         ptlrpc_deactivate_import(imp);
477
478         /* Some non-replayable imports (MDS's OSCs) are pinged, so just
479          * delete it regardless.  (It's safe to delete an import that was
480          * never added.) */
481         (void)ptlrpc_pinger_del_import(imp);
482
483         rc = ptlrpc_disconnect_import(imp, 0);
484         if (rc != 0)
485                 CERROR("%s: can't disconnect: rc = %d\n", obd->obd_name, rc);
486
487         ptlrpc_invalidate_import(imp);
488
489         RETURN(rc);
490 }
491
492 /**
493  * Initialize the osp_update structure in OSP device
494  *
495  * Allocate osp update structure and start update thread.
496  *
497  * \param[in] osp       OSP device
498  *
499  * \retval              0 if initialization succeeds.
500  * \retval              negative errno if initialization fails.
501  */
502 static int osp_update_init(struct osp_device *osp)
503 {
504         struct l_wait_info      lwi = { 0 };
505         struct task_struct      *task;
506
507         ENTRY;
508
509         LASSERT(osp->opd_connect_mdt);
510
511         if (osp->opd_storage->dd_rdonly)
512                 RETURN(0);
513
514         OBD_ALLOC_PTR(osp->opd_update);
515         if (osp->opd_update == NULL)
516                 RETURN(-ENOMEM);
517
518         init_waitqueue_head(&osp->opd_update_thread.t_ctl_waitq);
519         init_waitqueue_head(&osp->opd_update->ou_waitq);
520         spin_lock_init(&osp->opd_update->ou_lock);
521         INIT_LIST_HEAD(&osp->opd_update->ou_list);
522         osp->opd_update->ou_rpc_version = 1;
523         osp->opd_update->ou_version = 1;
524         osp->opd_update->ou_generation = 0;
525
526         /* start thread handling sending updates to the remote MDT */
527         task = kthread_run(osp_send_update_thread, osp,
528                            "osp_up%u-%u", osp->opd_index, osp->opd_group);
529         if (IS_ERR(task)) {
530                 int rc = PTR_ERR(task);
531
532                 OBD_FREE_PTR(osp->opd_update);
533                 osp->opd_update = NULL;
534                 CERROR("%s: can't start precreate thread: rc = %d\n",
535                        osp->opd_obd->obd_name, rc);
536                 RETURN(rc);
537         }
538
539         l_wait_event(osp->opd_update_thread.t_ctl_waitq,
540                      osp_send_update_thread_running(osp) ||
541                      osp_send_update_thread_stopped(osp), &lwi);
542
543         RETURN(0);
544 }
545
546 /**
547  * Finialize osp_update structure in OSP device
548  *
549  * Stop the OSP update sending thread, then delete the left
550  * osp thandle in the sending list.
551  *
552  * \param [in] osp      OSP device.
553  */
554 static void osp_update_fini(const struct lu_env *env, struct osp_device *osp)
555 {
556         struct osp_update_request *our;
557         struct osp_update_request *tmp;
558         struct osp_updates *ou = osp->opd_update;
559
560         if (ou == NULL)
561                 return;
562
563         osp->opd_update_thread.t_flags = SVC_STOPPING;
564         wake_up(&ou->ou_waitq);
565
566         wait_event(osp->opd_update_thread.t_ctl_waitq,
567                    osp->opd_update_thread.t_flags & SVC_STOPPED);
568
569         /* Remove the left osp thandle from the list */
570         spin_lock(&ou->ou_lock);
571         list_for_each_entry_safe(our, tmp, &ou->ou_list,
572                                  our_list) {
573                 list_del_init(&our->our_list);
574                 LASSERT(our->our_th != NULL);
575                 osp_trans_callback(env, our->our_th, -EIO);
576                 /* our will be destroyed in osp_thandle_put() */
577                 osp_thandle_put(env, our->our_th);
578         }
579         spin_unlock(&ou->ou_lock);
580
581         OBD_FREE_PTR(ou);
582         osp->opd_update = NULL;
583 }
584
585 /**
586  * Cleanup OSP, which includes disconnect import, cleanup unlink log, stop
587  * precreate threads etc.
588  *
589  * \param[in] env       execution environment.
590  * \param[in] d         OSP device being disconnected.
591  *
592  * \retval 0            0 if cleanup succeed
593  * \retval negative     negative errno if cleanup failed
594  */
595 static int osp_shutdown(const struct lu_env *env, struct osp_device *d)
596 {
597         int                      rc = 0;
598         ENTRY;
599
600         LASSERT(env);
601
602         rc = osp_disconnect(d);
603
604         osp_statfs_fini(d);
605
606         if (!d->opd_connect_mdt) {
607                 /* stop sync thread */
608                 osp_sync_fini(d);
609
610                 /* stop precreate thread */
611                 osp_precreate_fini(d);
612
613                 /* release last_used file */
614                 osp_last_used_fini(env, d);
615         }
616
617         obd_fid_fini(d->opd_obd);
618
619         RETURN(rc);
620 }
621
622 /**
623  * Implementation of osp_lu_ops::ldo_process_config
624  *
625  * This function processes config log records in OSP layer. It is usually
626  * called from the top layer of MDT stack, and goes through the stack by calling
627  * ldo_process_config of next layer.
628  *
629  * \param[in] env       execution environment
630  * \param[in] dev       lu_device of OSP
631  * \param[in] lcfg      config log
632  *
633  * \retval 0            0 if the config log record is executed correctly.
634  * \retval negative     negative errno if the record execution fails.
635  */
636 static int osp_process_config(const struct lu_env *env,
637                               struct lu_device *dev, struct lustre_cfg *lcfg)
638 {
639         struct osp_device *d = lu2osp_dev(dev);
640         struct dt_device *dt = lu2dt_dev(dev);
641         struct obd_device *obd = d->opd_obd;
642         ssize_t count;
643         int rc;
644
645         ENTRY;
646
647         switch (lcfg->lcfg_command) {
648         case LCFG_PRE_CLEANUP:
649                 rc = osp_disconnect(d);
650                 osp_update_fini(env, d);
651                 if (obd->obd_namespace != NULL)
652                         ldlm_namespace_free_prior(obd->obd_namespace, NULL, 1);
653                 break;
654         case LCFG_CLEANUP:
655                 lu_dev_del_linkage(dev->ld_site, dev);
656                 rc = osp_shutdown(env, d);
657                 break;
658         case LCFG_PARAM:
659                 count = class_modify_config(lcfg, d->opd_connect_mdt ?
660                                                   PARAM_OSP : PARAM_OSC,
661                                             &dt->dd_kobj);
662                 if (count < 0) {
663                         /* class_modify_config() haven't found matching
664                          * parameter and returned an error so that layer(s)
665                          * below could use that. But OSP is the bottom, so
666                          * just ignore it
667                          */
668                         CERROR("%s: unknown param %s\n",
669                                (char *)lustre_cfg_string(lcfg, 0),
670                                (char *)lustre_cfg_string(lcfg, 1));
671                 }
672                 rc = 0;
673                 break;
674         default:
675                 CERROR("%s: unknown command %u\n",
676                        (char *)lustre_cfg_string(lcfg, 0), lcfg->lcfg_command);
677                 rc = 0;
678                 break;
679         }
680
681         RETURN(rc);
682 }
683
684 /**
685  * Implementation of osp_lu_ops::ldo_recovery_complete
686  *
687  * This function is called after recovery is finished, and OSP layer
688  * will wake up precreate thread here.
689  *
690  * \param[in] env       execution environment
691  * \param[in] dev       lu_device of OSP
692  *
693  * \retval 0            0 unconditionally
694  */
695 static int osp_recovery_complete(const struct lu_env *env,
696                                  struct lu_device *dev)
697 {
698         struct osp_device       *osp = lu2osp_dev(dev);
699
700         ENTRY;
701         osp->opd_recovery_completed = 1;
702
703         if (!osp->opd_connect_mdt && osp->opd_pre != NULL)
704                 wake_up(&osp->opd_pre_waitq);
705
706         RETURN(0);
707 }
708
709 const struct lu_device_operations osp_lu_ops = {
710         .ldo_object_alloc       = osp_object_alloc,
711         .ldo_process_config     = osp_process_config,
712         .ldo_recovery_complete  = osp_recovery_complete,
713 };
714
715 /**
716  * Implementation of dt_device_operations::dt_statfs
717  *
718  * This function provides statfs status (for precreation) from
719  * corresponding OST. Note: this function only retrieves the status
720  * from the OSP device, and the real statfs RPC happens inside
721  * precreate thread (\see osp_statfs_update). Note: OSP for MDT does
722  * not need to retrieve statfs data for now.
723  *
724  * \param[in] env       execution environment.
725  * \param[in] dev       dt_device of OSP.
726  * \param[out] sfs      holds the retrieved statfs data.
727  *
728  * \retval 0            0 statfs data was retrieved successfully or
729  *                      retrieval was not needed
730  * \retval negative     negative errno if get statfs failed.
731  */
732 static int osp_statfs(const struct lu_env *env, struct dt_device *dev,
733                       struct obd_statfs *sfs)
734 {
735         struct osp_device *d = dt2osp_dev(dev);
736         struct obd_import *imp = d->opd_obd->u.cli.cl_import;
737
738         ENTRY;
739
740         if (imp->imp_state == LUSTRE_IMP_CLOSED)
741                 RETURN(-ESHUTDOWN);
742
743         if (unlikely(d->opd_imp_active == 0))
744                 RETURN(-ENOTCONN);
745
746         /* return recently updated data */
747         *sfs = d->opd_statfs;
748
749         if (d->opd_pre == NULL)
750                 RETURN(0);
751
752         /*
753          * The layer above osp (usually lod) can use f_precreated to
754          * estimate how many objects are available for immediate usage.
755          */
756         spin_lock(&d->opd_pre_lock);
757         sfs->os_fprecreated = osp_fid_diff(&d->opd_pre_last_created_fid,
758                                            &d->opd_pre_used_fid);
759         sfs->os_fprecreated -= d->opd_pre_reserved;
760         LASSERTF(sfs->os_fprecreated <= OST_MAX_PRECREATE * 2,
761                  "last_created "DFID", next_fid "DFID", reserved %llu\n",
762                  PFID(&d->opd_pre_last_created_fid), PFID(&d->opd_pre_used_fid),
763                  d->opd_pre_reserved);
764         spin_unlock(&d->opd_pre_lock);
765
766         CDEBUG(D_OTHER, "%s: %llu blocks, %llu free, %llu avail, "
767                "%llu files, %llu free files\n", d->opd_obd->obd_name,
768                sfs->os_blocks, sfs->os_bfree, sfs->os_bavail,
769                sfs->os_files, sfs->os_ffree);
770         RETURN(0);
771 }
772
773 static int osp_sync_timeout(void *data)
774 {
775         return 1;
776 }
777
778 /**
779  * Implementation of dt_device_operations::dt_sync
780  *
781  * This function synchronizes the OSP cache to the remote target. It wakes
782  * up unlink log threads and sends out unlink records to the remote OST.
783  *
784  * \param[in] env       execution environment
785  * \param[in] dev       dt_device of OSP
786  *
787  * \retval 0            0 if synchronization succeeds
788  * \retval negative     negative errno if synchronization fails
789  */
790 static int osp_sync(const struct lu_env *env, struct dt_device *dev)
791 {
792         struct osp_device *d = dt2osp_dev(dev);
793         struct l_wait_info lwi = { 0 };
794         time64_t start = ktime_get_seconds();
795         int recs, rc = 0;
796         u64 old;
797
798         ENTRY;
799
800         /* No Sync between MDTs yet. */
801         if (d->opd_connect_mdt)
802                 RETURN(0);
803
804         recs = atomic_read(&d->opd_sync_changes);
805         old = atomic64_read(&d->opd_sync_processed_recs);
806
807         osp_sync_force(env, dt2osp_dev(dev));
808
809         if (unlikely(d->opd_imp_active == 0))
810                 RETURN(-ENOTCONN);
811
812         down_write(&d->opd_async_updates_rwsem);
813
814         CDEBUG(D_OTHER, "%s: async updates %d\n", d->opd_obd->obd_name,
815                atomic_read(&d->opd_async_updates_count));
816
817         /* make sure the connection is fine */
818         lwi = LWI_TIMEOUT(cfs_time_seconds(obd_timeout), osp_sync_timeout, d);
819         rc = l_wait_event(d->opd_sync_barrier_waitq,
820                           atomic_read(&d->opd_async_updates_count) == 0,
821                           &lwi);
822         up_write(&d->opd_async_updates_rwsem);
823         if (rc != 0)
824                 GOTO(out, rc);
825
826         CDEBUG(D_CACHE, "%s: processed %llu\n", d->opd_obd->obd_name,
827                (unsigned long long)atomic64_read(&d->opd_sync_processed_recs));
828
829         while (atomic64_read(&d->opd_sync_processed_recs) < old + recs) {
830                 __u64 last = atomic64_read(&d->opd_sync_processed_recs);
831                 /* make sure the connection is fine */
832                 lwi = LWI_TIMEOUT(cfs_time_seconds(obd_timeout),
833                                   osp_sync_timeout, d);
834                 l_wait_event(d->opd_sync_barrier_waitq,
835                              atomic64_read(&d->opd_sync_processed_recs)
836                              >= old + recs, &lwi);
837
838                 if (atomic64_read(&d->opd_sync_processed_recs) >= old + recs)
839                         break;
840
841                 if (atomic64_read(&d->opd_sync_processed_recs) != last) {
842                         /* some progress have been made,
843                          * keep trying... */
844                         continue;
845                 }
846
847                 /* no changes and expired, something is wrong */
848                 GOTO(out, rc = -ETIMEDOUT);
849         }
850
851         /* block new processing (barrier>0 - few callers are possible */
852         atomic_inc(&d->opd_sync_barrier);
853
854         CDEBUG(D_CACHE, "%s: %u in flight\n", d->opd_obd->obd_name,
855                atomic_read(&d->opd_sync_rpcs_in_flight));
856
857         /* wait till all-in-flight are replied, so executed by the target */
858         /* XXX: this is used by LFSCK at the moment, which doesn't require
859          *      all the changes to be committed, but in general it'd be
860          *      better to wait till commit */
861         while (atomic_read(&d->opd_sync_rpcs_in_flight) > 0) {
862                 old = atomic_read(&d->opd_sync_rpcs_in_flight);
863
864                 lwi = LWI_TIMEOUT(cfs_time_seconds(obd_timeout),
865                                   osp_sync_timeout, d);
866                 l_wait_event(d->opd_sync_barrier_waitq,
867                              atomic_read(&d->opd_sync_rpcs_in_flight) == 0,
868                              &lwi);
869
870                 if (atomic_read(&d->opd_sync_rpcs_in_flight) == 0)
871                         break;
872
873                 if (atomic_read(&d->opd_sync_rpcs_in_flight) != old) {
874                         /* some progress have been made */
875                         continue;
876                 }
877
878                 /* no changes and expired, something is wrong */
879                 GOTO(out, rc = -ETIMEDOUT);
880         }
881
882 out:
883         /* resume normal processing (barrier=0) */
884         atomic_dec(&d->opd_sync_barrier);
885         osp_sync_check_for_work(d);
886
887         CDEBUG(D_CACHE, "%s: done in %lld: rc = %d\n", d->opd_obd->obd_name,
888                ktime_get_seconds() - start, rc);
889
890         RETURN(rc);
891 }
892
893 const struct dt_device_operations osp_dt_ops = {
894         .dt_statfs       = osp_statfs,
895         .dt_sync         = osp_sync,
896         .dt_trans_create = osp_trans_create,
897         .dt_trans_start  = osp_trans_start,
898         .dt_trans_stop   = osp_trans_stop,
899         .dt_trans_cb_add   = osp_trans_cb_add,
900 };
901
902 /**
903  * Connect OSP to local OSD.
904  *
905  * Locate the local OSD referenced by \a nextdev and connect to it. Sometimes,
906  * OSP needs to access the local OSD to store some information. For example,
907  * during precreate, it needs to update last used OID and sequence file
908  * (LAST_SEQ) in local OSD.
909  *
910  * \param[in] env       execution environment
911  * \param[in] osp       OSP device
912  * \param[in] nextdev   the name of local OSD
913  *
914  * \retval 0            0 connection succeeded
915  * \retval negative     negative errno connection failed
916  */
917 static int osp_connect_to_osd(const struct lu_env *env, struct osp_device *osp,
918                               const char *nextdev)
919 {
920         struct obd_connect_data *data = NULL;
921         struct obd_device       *obd;
922         int                      rc;
923
924         ENTRY;
925
926         LASSERT(osp->opd_storage_exp == NULL);
927
928         OBD_ALLOC_PTR(data);
929         if (data == NULL)
930                 RETURN(-ENOMEM);
931
932         obd = class_name2obd(nextdev);
933         if (obd == NULL) {
934                 CERROR("%s: can't locate next device: %s\n",
935                        osp->opd_obd->obd_name, nextdev);
936                 GOTO(out, rc = -ENOTCONN);
937         }
938
939         rc = obd_connect(env, &osp->opd_storage_exp, obd, &obd->obd_uuid, data,
940                          NULL);
941         if (rc) {
942                 CERROR("%s: cannot connect to next dev %s: rc = %d\n",
943                        osp->opd_obd->obd_name, nextdev, rc);
944                 GOTO(out, rc);
945         }
946
947         osp->opd_dt_dev.dd_lu_dev.ld_site =
948                 osp->opd_storage_exp->exp_obd->obd_lu_dev->ld_site;
949         LASSERT(osp->opd_dt_dev.dd_lu_dev.ld_site);
950         osp->opd_storage = lu2dt_dev(osp->opd_storage_exp->exp_obd->obd_lu_dev);
951
952 out:
953         OBD_FREE_PTR(data);
954         RETURN(rc);
955 }
956
957 /**
958  * Determine if the lock needs to be cancelled
959  *
960  * Determine if the unused lock should be cancelled before replay, see
961  * (ldlm_cancel_no_wait_policy()). Currently, only inode bits lock exists
962  * between MDTs.
963  *
964  * \param[in] lock      lock to be checked.
965  *
966  * \retval              1 if the lock needs to be cancelled before replay.
967  * \retval              0 if the lock does not need to be cancelled before
968  *                      replay.
969  */
970 static int osp_cancel_weight(struct ldlm_lock *lock)
971 {
972         if (lock->l_resource->lr_type != LDLM_IBITS)
973                 RETURN(0);
974
975         RETURN(1);
976 }
977
978 /**
979  * Initialize OSP device according to the parameters in the configuration
980  * log \a cfg.
981  *
982  * Reconstruct the local device name from the configuration profile, and
983  * initialize necessary threads and structures according to the OSP type
984  * (MDT or OST).
985  *
986  * Since there is no record in the MDT configuration for the local disk
987  * device, we have to extract this from elsewhere in the profile.
988  * The only information we get at setup is from the OSC records:
989  * setup 0:{fsname}-OSTxxxx-osc[-MDTxxxx] 1:lustre-OST0000_UUID 2:NID
990  *
991  * Note: configs generated by Lustre 1.8 are missing the -MDTxxxx part,
992  * so, we need to reconstruct the name of the underlying OSD from this:
993  * {fsname}-{svname}-osd, for example "lustre-MDT0000-osd".
994  *
995  * \param[in] env       execution environment
996  * \param[in] osp       OSP device
997  * \param[in] ldt       lu device type of OSP
998  * \param[in] cfg       configuration log
999  *
1000  * \retval 0            0 if OSP initialization succeeded.
1001  * \retval negative     negative errno if OSP initialization failed.
1002  */
1003 static int osp_init0(const struct lu_env *env, struct osp_device *osp,
1004                      struct lu_device_type *ldt, struct lustre_cfg *cfg)
1005 {
1006         struct obd_device       *obd;
1007         struct obd_import       *imp;
1008         class_uuid_t            uuid;
1009         char                    *src, *tgt, *mdt, *osdname = NULL;
1010         int                     rc;
1011         long                    idx;
1012
1013         ENTRY;
1014
1015         mutex_init(&osp->opd_async_requests_mutex);
1016         INIT_LIST_HEAD(&osp->opd_async_updates);
1017         init_rwsem(&osp->opd_async_updates_rwsem);
1018         atomic_set(&osp->opd_async_updates_count, 0);
1019
1020         obd = class_name2obd(lustre_cfg_string(cfg, 0));
1021         if (obd == NULL) {
1022                 CERROR("Cannot find obd with name %s\n",
1023                        lustre_cfg_string(cfg, 0));
1024                 RETURN(-ENODEV);
1025         }
1026         osp->opd_obd = obd;
1027
1028         src = lustre_cfg_string(cfg, 0);
1029         if (src == NULL)
1030                 RETURN(-EINVAL);
1031
1032         tgt = strrchr(src, '-');
1033         if (tgt == NULL) {
1034                 CERROR("%s: invalid target name %s: rc = %d\n",
1035                        osp->opd_obd->obd_name, lustre_cfg_string(cfg, 0),
1036                        -EINVAL);
1037                 RETURN(-EINVAL);
1038         }
1039
1040         if (strncmp(tgt, "-osc", 4) == 0) {
1041                 /* Old OSC name fsname-OSTXXXX-osc */
1042                 for (tgt--; tgt > src && *tgt != '-'; tgt--)
1043                         ;
1044                 if (tgt == src) {
1045                         CERROR("%s: invalid target name %s: rc = %d\n",
1046                                osp->opd_obd->obd_name,
1047                                lustre_cfg_string(cfg, 0), -EINVAL);
1048                         RETURN(-EINVAL);
1049                 }
1050
1051                 if (strncmp(tgt, "-OST", 4) != 0) {
1052                         CERROR("%s: invalid target name %s: rc = %d\n",
1053                                osp->opd_obd->obd_name,
1054                                lustre_cfg_string(cfg, 0), -EINVAL);
1055                         RETURN(-EINVAL);
1056                 }
1057
1058                 idx = simple_strtol(tgt + 4, &mdt, 16);
1059                 if (mdt[0] != '-' || idx > INT_MAX || idx < 0) {
1060                         CERROR("%s: invalid OST index in '%s': rc = %d\n",
1061                                osp->opd_obd->obd_name, src, -EINVAL);
1062                         RETURN(-EINVAL);
1063                 }
1064                 osp->opd_index = idx;
1065                 osp->opd_group = 0;
1066                 idx = tgt - src;
1067         } else {
1068                 /* New OSC name fsname-OSTXXXX-osc-MDTXXXX */
1069                 if (strncmp(tgt, "-MDT", 4) != 0 &&
1070                     strncmp(tgt, "-OST", 4) != 0) {
1071                         CERROR("%s: invalid target name %s: rc = %d\n",
1072                                osp->opd_obd->obd_name,
1073                                lustre_cfg_string(cfg, 0), -EINVAL);
1074                         RETURN(-EINVAL);
1075                 }
1076
1077                 idx = simple_strtol(tgt + 4, &mdt, 16);
1078                 if (*mdt != '\0' || idx > INT_MAX || idx < 0) {
1079                         CERROR("%s: invalid OST index in '%s': rc = %d\n",
1080                                osp->opd_obd->obd_name, src, -EINVAL);
1081                         RETURN(-EINVAL);
1082                 }
1083
1084                 /* Get MDT index from the name and set it to opd_group,
1085                  * which will be used by OSP to connect with OST */
1086                 osp->opd_group = idx;
1087                 if (tgt - src <= 12) {
1088                         CERROR("%s: invalid mdt index from %s: rc =%d\n",
1089                                osp->opd_obd->obd_name,
1090                                lustre_cfg_string(cfg, 0), -EINVAL);
1091                         RETURN(-EINVAL);
1092                 }
1093
1094                 if (strncmp(tgt - 12, "-MDT", 4) == 0)
1095                         osp->opd_connect_mdt = 1;
1096
1097                 idx = simple_strtol(tgt - 8, &mdt, 16);
1098                 if (mdt[0] != '-' || idx > INT_MAX || idx < 0) {
1099                         CERROR("%s: invalid OST index in '%s': rc =%d\n",
1100                                osp->opd_obd->obd_name, src, -EINVAL);
1101                         RETURN(-EINVAL);
1102                 }
1103
1104                 osp->opd_index = idx;
1105                 idx = tgt - src - 12;
1106         }
1107         /* check the fsname length, and after this everything else will fit */
1108         if (idx > MTI_NAME_MAXLEN) {
1109                 CERROR("%s: fsname too long in '%s': rc = %d\n",
1110                        osp->opd_obd->obd_name, src, -EINVAL);
1111                 RETURN(-EINVAL);
1112         }
1113
1114         OBD_ALLOC(osdname, MAX_OBD_NAME);
1115         if (osdname == NULL)
1116                 RETURN(-ENOMEM);
1117
1118         memcpy(osdname, src, idx); /* copy just the fsname part */
1119         osdname[idx] = '\0';
1120
1121         mdt = strstr(mdt, "-MDT");
1122         if (mdt == NULL) /* 1.8 configs don't have "-MDT0000" at the end */
1123                 strcat(osdname, "-MDT0000");
1124         else
1125                 strcat(osdname, mdt);
1126         strcat(osdname, "-osd");
1127         CDEBUG(D_HA, "%s: connect to %s (%s)\n", obd->obd_name, osdname, src);
1128
1129         osp_init_rpc_lock(osp);
1130
1131         osp->opd_dt_dev.dd_lu_dev.ld_ops = &osp_lu_ops;
1132         osp->opd_dt_dev.dd_ops = &osp_dt_ops;
1133
1134         obd->obd_lu_dev = &osp->opd_dt_dev.dd_lu_dev;
1135
1136         rc = osp_connect_to_osd(env, osp, osdname);
1137         if (rc)
1138                 GOTO(out_fini, rc);
1139
1140         rc = ptlrpcd_addref();
1141         if (rc)
1142                 GOTO(out_disconnect, rc);
1143
1144         rc = client_obd_setup(obd, cfg);
1145         if (rc) {
1146                 CERROR("%s: can't setup obd: rc = %d\n", osp->opd_obd->obd_name,
1147                        rc);
1148                 GOTO(out_ref, rc);
1149         }
1150
1151         osp_tunables_init(osp);
1152
1153         rc = obd_fid_init(osp->opd_obd, NULL, osp->opd_connect_mdt ?
1154                           LUSTRE_SEQ_METADATA : LUSTRE_SEQ_DATA);
1155         if (rc) {
1156                 CERROR("%s: fid init error: rc = %d\n",
1157                        osp->opd_obd->obd_name, rc);
1158                 GOTO(out_proc, rc);
1159         }
1160
1161         if (!osp->opd_connect_mdt) {
1162                 /* Initialize last id from the storage - will be
1163                  * used in orphan cleanup. */
1164                 if (!osp->opd_storage->dd_rdonly) {
1165                         rc = osp_last_used_init(env, osp);
1166                         if (rc)
1167                                 GOTO(out_fid, rc);
1168                 }
1169
1170                 /* Initialize precreation thread, it handles new
1171                  * connections as well. */
1172                 rc = osp_init_precreate(osp);
1173                 if (rc)
1174                         GOTO(out_last_used, rc);
1175
1176                 /*
1177                  * Initialize synhronization mechanism taking
1178                  * care of propogating changes to OST in near
1179                  * transactional manner.
1180                  */
1181                 rc = osp_sync_init(env, osp);
1182                 if (rc < 0)
1183                         GOTO(out_precreat, rc);
1184         } else {
1185                 osp->opd_got_disconnected = 1;
1186                 rc = osp_update_init(osp);
1187                 if (rc != 0)
1188                         GOTO(out_fid, rc);
1189         }
1190
1191         rc = osp_init_statfs(osp);
1192         if (rc)
1193                 GOTO(out_precreat, rc);
1194
1195         ns_register_cancel(obd->obd_namespace, osp_cancel_weight);
1196
1197         /*
1198          * Initiate connect to OST
1199          */
1200         ll_generate_random_uuid(uuid);
1201         class_uuid_unparse(uuid, &osp->opd_cluuid);
1202
1203         imp = obd->u.cli.cl_import;
1204
1205         rc = ptlrpc_init_import(imp);
1206         if (rc)
1207                 GOTO(out, rc);
1208         if (osdname)
1209                 OBD_FREE(osdname, MAX_OBD_NAME);
1210         RETURN(0);
1211
1212 out:
1213         if (!osp->opd_connect_mdt)
1214                 /* stop sync thread */
1215                 osp_sync_fini(osp);
1216 out_precreat:
1217         /* stop precreate thread */
1218         if (!osp->opd_connect_mdt)
1219                 osp_precreate_fini(osp);
1220         else
1221                 osp_update_fini(env, osp);
1222 out_last_used:
1223         if (!osp->opd_connect_mdt)
1224                 osp_last_used_fini(env, osp);
1225 out_fid:
1226         obd_fid_fini(osp->opd_obd);
1227 out_proc:
1228         osp_tunables_fini(osp);
1229         client_obd_cleanup(obd);
1230 out_ref:
1231         ptlrpcd_decref();
1232 out_disconnect:
1233         obd_disconnect(osp->opd_storage_exp);
1234 out_fini:
1235         if (osdname)
1236                 OBD_FREE(osdname, MAX_OBD_NAME);
1237         RETURN(rc);
1238 }
1239
1240 /**
1241  * Implementation of lu_device_type_operations::ldto_device_free
1242  *
1243  * Free the OSP device in memory.  No return value is needed for now,
1244  * so always return NULL to comply with the interface.
1245  *
1246  * \param[in] env       execution environment
1247  * \param[in] lu        lu_device of OSP
1248  *
1249  * \retval NULL         NULL unconditionally
1250  */
1251 static struct lu_device *osp_device_free(const struct lu_env *env,
1252                                          struct lu_device *lu)
1253 {
1254         struct osp_device *osp = lu2osp_dev(lu);
1255
1256         if (atomic_read(&lu->ld_ref) && lu->ld_site) {
1257                 LIBCFS_DEBUG_MSG_DATA_DECL(msgdata, D_ERROR, NULL);
1258                 lu_site_print(env, lu->ld_site, &msgdata, lu_cdebug_printer);
1259         }
1260         dt_device_fini(&osp->opd_dt_dev);
1261         OBD_FREE_PTR(osp);
1262
1263         return NULL;
1264 }
1265
1266 /**
1267  * Implementation of lu_device_type_operations::ldto_device_alloc
1268  *
1269  * This function allocates and initializes OSP device in memory according to
1270  * the config log.
1271  *
1272  * \param[in] env       execution environment
1273  * \param[in] type      device type of OSP
1274  * \param[in] lcfg      config log
1275  *
1276  * \retval pointer              the pointer of allocated OSP if succeed.
1277  * \retval ERR_PTR(errno)       ERR_PTR(errno) if failed.
1278  */
1279 static struct lu_device *osp_device_alloc(const struct lu_env *env,
1280                                           struct lu_device_type *type,
1281                                           struct lustre_cfg *lcfg)
1282 {
1283         struct osp_device *osp;
1284         struct lu_device  *ld;
1285
1286         OBD_ALLOC_PTR(osp);
1287         if (osp == NULL) {
1288                 ld = ERR_PTR(-ENOMEM);
1289         } else {
1290                 int rc;
1291
1292                 ld = osp2lu_dev(osp);
1293                 dt_device_init(&osp->opd_dt_dev, type);
1294                 rc = osp_init0(env, osp, type, lcfg);
1295                 if (rc != 0) {
1296                         osp_device_free(env, ld);
1297                         ld = ERR_PTR(rc);
1298                 }
1299         }
1300         return ld;
1301 }
1302
1303 /**
1304  * Implementation of lu_device_type_operations::ldto_device_fini
1305  *
1306  * This function cleans up the OSP device, i.e. release and free those
1307  * attached items in osp_device.
1308  *
1309  * \param[in] env       execution environment
1310  * \param[in] ld        lu_device of OSP
1311  *
1312  * \retval NULL                 NULL if cleanup succeeded.
1313  * \retval ERR_PTR(errno)       ERR_PTR(errno) if cleanup failed.
1314  */
1315 static struct lu_device *osp_device_fini(const struct lu_env *env,
1316                                          struct lu_device *ld)
1317 {
1318         struct osp_device *osp = lu2osp_dev(ld);
1319         int                rc;
1320
1321         ENTRY;
1322
1323         if (osp->opd_async_requests != NULL) {
1324                 osp_update_request_destroy(env, osp->opd_async_requests);
1325                 osp->opd_async_requests = NULL;
1326         }
1327
1328         if (osp->opd_storage_exp) {
1329                 /* wait for the commit callbacks to complete */
1330                 wait_event(osp->opd_sync_waitq,
1331                           atomic_read(&osp->opd_commits_registered) == 0);
1332                 obd_disconnect(osp->opd_storage_exp);
1333         }
1334
1335         LASSERT(osp->opd_obd);
1336         osp_tunables_fini(osp);
1337
1338         rc = client_obd_cleanup(osp->opd_obd);
1339         if (rc != 0) {
1340                 ptlrpcd_decref();
1341                 RETURN(ERR_PTR(rc));
1342         }
1343
1344         ptlrpcd_decref();
1345
1346         RETURN(NULL);
1347 }
1348
1349 /**
1350  * Implementation of obd_ops::o_reconnect
1351  *
1352  * This function is empty and does not need to do anything for now.
1353  */
1354 static int osp_reconnect(const struct lu_env *env,
1355                          struct obd_export *exp, struct obd_device *obd,
1356                          struct obd_uuid *cluuid,
1357                          struct obd_connect_data *data,
1358                          void *localdata)
1359 {
1360         return 0;
1361 }
1362
1363 /*
1364  * Implementation of obd_ops::o_connect
1365  *
1366  * Connect OSP to the remote target (MDT or OST). Allocate the
1367  * export and return it to the LOD, which calls this function
1368  * for each OSP to connect it to the remote target. This function
1369  * is currently only called once per OSP.
1370  *
1371  * \param[in] env       execution environment
1372  * \param[out] exp      export connected to OSP
1373  * \param[in] obd       OSP device
1374  * \param[in] cluuid    OSP device client uuid
1375  * \param[in] data      connect_data to be used to connect to the remote
1376  *                      target
1377  * \param[in] localdata necessary for the API interface, but not used in
1378  *                      this function
1379  *
1380  * \retval 0            0 if the connection succeeded.
1381  * \retval negative     negative errno if the connection failed.
1382  */
1383 static int osp_obd_connect(const struct lu_env *env, struct obd_export **exp,
1384                            struct obd_device *obd, struct obd_uuid *cluuid,
1385                            struct obd_connect_data *data, void *localdata)
1386 {
1387         struct osp_device       *osp = lu2osp_dev(obd->obd_lu_dev);
1388         struct obd_connect_data *ocd;
1389         struct obd_import       *imp;
1390         struct lustre_handle     conn;
1391         int                      rc;
1392
1393         ENTRY;
1394
1395         CDEBUG(D_CONFIG, "connect #%d\n", osp->opd_connects);
1396
1397         rc = class_connect(&conn, obd, cluuid);
1398         if (rc)
1399                 RETURN(rc);
1400
1401         *exp = class_conn2export(&conn);
1402         /* Why should there ever be more than 1 connect? */
1403         osp->opd_connects++;
1404         LASSERT(osp->opd_connects == 1);
1405
1406         osp->opd_exp = *exp;
1407
1408         imp = osp->opd_obd->u.cli.cl_import;
1409         imp->imp_dlm_handle = conn;
1410
1411         LASSERT(data != NULL);
1412         LASSERT(data->ocd_connect_flags & OBD_CONNECT_INDEX);
1413         ocd = &imp->imp_connect_data;
1414         *ocd = *data;
1415
1416         imp->imp_connect_flags_orig = ocd->ocd_connect_flags;
1417         imp->imp_connect_flags2_orig = ocd->ocd_connect_flags2;
1418
1419         ocd->ocd_version = LUSTRE_VERSION_CODE;
1420         ocd->ocd_index = data->ocd_index;
1421
1422         rc = ptlrpc_connect_import(imp);
1423         if (rc) {
1424                 CERROR("%s: can't connect obd: rc = %d\n", obd->obd_name, rc);
1425                 GOTO(out, rc);
1426         } else {
1427                 osp->opd_obd->u.cli.cl_seq->lcs_exp =
1428                                 class_export_get(osp->opd_exp);
1429         }
1430
1431         ptlrpc_pinger_add_import(imp);
1432 out:
1433         RETURN(rc);
1434 }
1435
1436 /**
1437  * Implementation of obd_ops::o_disconnect
1438  *
1439  * Disconnect the export for the OSP.  This is called by LOD to release the
1440  * OSP during cleanup (\see lod_del_device()). The OSP will be released after
1441  * the export is released.
1442  *
1443  * \param[in] exp       export to be disconnected.
1444  *
1445  * \retval 0            0 if disconnection succeed
1446  * \retval negative     negative errno if disconnection failed
1447  */
1448 static int osp_obd_disconnect(struct obd_export *exp)
1449 {
1450         struct obd_device *obd = exp->exp_obd;
1451         struct osp_device *osp = lu2osp_dev(obd->obd_lu_dev);
1452         int                rc;
1453         ENTRY;
1454
1455         /* Only disconnect the underlying layers on the final disconnect. */
1456         LASSERT(osp->opd_connects == 1);
1457         osp->opd_connects--;
1458
1459         rc = class_disconnect(exp);
1460         if (rc) {
1461                 CERROR("%s: class disconnect error: rc = %d\n",
1462                        obd->obd_name, rc);
1463                 RETURN(rc);
1464         }
1465
1466         /* destroy the device */
1467         class_manual_cleanup(obd);
1468
1469         RETURN(rc);
1470 }
1471
1472 /**
1473  * Implementation of obd_ops::o_statfs
1474  *
1475  * Send a RPC to the remote target to get statfs status. This is only used
1476  * in lprocfs helpers by obd_statfs.
1477  *
1478  * \param[in] env       execution environment
1479  * \param[in] exp       connection state from this OSP to the parent (LOD)
1480  *                      device
1481  * \param[out] osfs     hold the statfs result
1482  * \param[in] unused    Not used in this function for now
1483  * \param[in] flags     flags to indicate how OSP will issue the RPC
1484  *
1485  * \retval 0            0 if statfs succeeded.
1486  * \retval negative     negative errno if statfs failed.
1487  */
1488 static int osp_obd_statfs(const struct lu_env *env, struct obd_export *exp,
1489                           struct obd_statfs *osfs, time64_t unused, __u32 flags)
1490 {
1491         struct obd_statfs       *msfs;
1492         struct ptlrpc_request   *req;
1493         struct obd_import       *imp = NULL;
1494         int                      rc;
1495
1496         ENTRY;
1497
1498         /* Since the request might also come from lprocfs, so we need
1499          * sync this with client_disconnect_export Bug15684 */
1500         down_read(&exp->exp_obd->u.cli.cl_sem);
1501         if (exp->exp_obd->u.cli.cl_import)
1502                 imp = class_import_get(exp->exp_obd->u.cli.cl_import);
1503         up_read(&exp->exp_obd->u.cli.cl_sem);
1504         if (!imp)
1505                 RETURN(-ENODEV);
1506
1507         req = ptlrpc_request_alloc(imp, &RQF_OST_STATFS);
1508
1509         class_import_put(imp);
1510
1511         if (req == NULL)
1512                 RETURN(-ENOMEM);
1513
1514         rc = ptlrpc_request_pack(req, LUSTRE_OST_VERSION, OST_STATFS);
1515         if (rc) {
1516                 ptlrpc_request_free(req);
1517                 RETURN(rc);
1518         }
1519         ptlrpc_request_set_replen(req);
1520         req->rq_request_portal = OST_CREATE_PORTAL;
1521         ptlrpc_at_set_req_timeout(req);
1522
1523         if (flags & OBD_STATFS_NODELAY) {
1524                 /* procfs requests not want stat in wait for avoid deadlock */
1525                 req->rq_no_resend = 1;
1526                 req->rq_no_delay = 1;
1527         }
1528
1529         rc = ptlrpc_queue_wait(req);
1530         if (rc)
1531                 GOTO(out, rc);
1532
1533         msfs = req_capsule_server_get(&req->rq_pill, &RMF_OBD_STATFS);
1534         if (msfs == NULL)
1535                 GOTO(out, rc = -EPROTO);
1536
1537         *osfs = *msfs;
1538
1539         EXIT;
1540 out:
1541         ptlrpc_req_finished(req);
1542         return rc;
1543 }
1544
1545 /**
1546  * Implementation of obd_ops::o_import_event
1547  *
1548  * This function is called when some related import event happens. It will
1549  * mark the necessary flags according to the event and notify the necessary
1550  * threads (mainly precreate thread).
1551  *
1552  * \param[in] obd       OSP OBD device
1553  * \param[in] imp       import attached from OSP to remote (OST/MDT) service
1554  * \param[in] event     event related to remote service (IMP_EVENT_*)
1555  *
1556  * \retval 0            0 if the event handling succeeded.
1557  * \retval negative     negative errno if the event handling failed.
1558  */
1559 static int osp_import_event(struct obd_device *obd, struct obd_import *imp,
1560                             enum obd_import_event event)
1561 {
1562         struct osp_device *d = lu2osp_dev(obd->obd_lu_dev);
1563         int rc;
1564
1565         switch (event) {
1566         case IMP_EVENT_DISCON:
1567                 d->opd_got_disconnected = 1;
1568                 d->opd_imp_connected = 0;
1569                 if (d->opd_connect_mdt)
1570                         break;
1571
1572                 if (d->opd_pre != NULL) {
1573                         osp_pre_update_status(d, -ENODEV);
1574                         wake_up(&d->opd_pre_waitq);
1575                 }
1576
1577                 CDEBUG(D_HA, "got disconnected\n");
1578                 break;
1579         case IMP_EVENT_INACTIVE:
1580                 d->opd_imp_active = 0;
1581                 d->opd_imp_connected = 0;
1582                 d->opd_obd->obd_inactive = 1;
1583                 if (d->opd_connect_mdt)
1584                         break;
1585                 if (d->opd_pre != NULL) {
1586                         /* Import is invalid, we can`t get stripes so
1587                          * wakeup waiters */
1588                         rc = imp->imp_deactive ? -ESHUTDOWN : -ENODEV;
1589                         osp_pre_update_status(d, rc);
1590                         wake_up(&d->opd_pre_waitq);
1591                 }
1592
1593                 CDEBUG(D_HA, "got inactive\n");
1594                 break;
1595         case IMP_EVENT_ACTIVE:
1596                 d->opd_imp_active = 1;
1597
1598                 if (d->opd_got_disconnected)
1599                         d->opd_new_connection = 1;
1600                 d->opd_imp_connected = 1;
1601                 d->opd_imp_seen_connected = 1;
1602                 d->opd_obd->obd_inactive = 0;
1603                 wake_up(&d->opd_pre_waitq);
1604                 if (d->opd_connect_mdt)
1605                         break;
1606
1607                 osp_sync_check_for_work(d);
1608                 CDEBUG(D_HA, "got connected\n");
1609                 break;
1610         case IMP_EVENT_INVALIDATE:
1611                 if (d->opd_connect_mdt)
1612                         osp_invalidate_request(d);
1613
1614                 if (obd->obd_namespace == NULL)
1615                         break;
1616                 ldlm_namespace_cleanup(obd->obd_namespace, LDLM_FL_LOCAL_ONLY);
1617                 break;
1618         case IMP_EVENT_OCD:
1619         case IMP_EVENT_DEACTIVATE:
1620         case IMP_EVENT_ACTIVATE:
1621                 break;
1622         default:
1623                 CERROR("%s: unsupported import event: %#x\n",
1624                        obd->obd_name, event);
1625         }
1626         return 0;
1627 }
1628
1629 /**
1630  * Implementation of obd_ops: o_iocontrol
1631  *
1632  * This function is the ioctl handler for OSP. Note: lctl will access the OSP
1633  * directly by ioctl, instead of through the MDS stack.
1634  *
1635  * param[in] cmd        ioctl command.
1636  * param[in] exp        export of this OSP.
1637  * param[in] len        data length of \a karg.
1638  * param[in] karg       input argument which is packed as
1639  *                      obd_ioctl_data
1640  * param[out] uarg      pointer to userspace buffer (must access by
1641  *                      copy_to_user()).
1642  *
1643  * \retval 0            0 if the ioctl handling succeeded.
1644  * \retval negative     negative errno if the ioctl handling failed.
1645  */
1646 static int osp_iocontrol(unsigned int cmd, struct obd_export *exp, int len,
1647                          void *karg, void __user *uarg)
1648 {
1649         struct obd_device       *obd = exp->exp_obd;
1650         struct osp_device       *d;
1651         struct obd_ioctl_data   *data = karg;
1652         int                      rc = 0;
1653
1654         ENTRY;
1655
1656         LASSERT(obd->obd_lu_dev);
1657         d = lu2osp_dev(obd->obd_lu_dev);
1658         LASSERT(d->opd_dt_dev.dd_ops == &osp_dt_ops);
1659
1660         if (!try_module_get(THIS_MODULE)) {
1661                 CERROR("%s: cannot get module '%s'\n", obd->obd_name,
1662                        module_name(THIS_MODULE));
1663                 return -EINVAL;
1664         }
1665
1666         switch (cmd) {
1667         case OBD_IOC_CLIENT_RECOVER:
1668                 rc = ptlrpc_recover_import(obd->u.cli.cl_import,
1669                                            data->ioc_inlbuf1, 0);
1670                 if (rc > 0)
1671                         rc = 0;
1672                 break;
1673         case IOC_OSC_SET_ACTIVE:
1674                 rc = ptlrpc_set_import_active(obd->u.cli.cl_import,
1675                                               data->ioc_offset);
1676                 break;
1677         case OBD_IOC_PING_TARGET:
1678                 rc = ptlrpc_obd_ping(obd);
1679                 break;
1680         default:
1681                 CERROR("%s: unrecognized ioctl %#x by %s\n", obd->obd_name,
1682                        cmd, current_comm());
1683                 rc = -ENOTTY;
1684         }
1685         module_put(THIS_MODULE);
1686         return rc;
1687 }
1688
1689
1690 /**
1691  * Implementation of obd_ops::o_get_info
1692  *
1693  * Retrieve information by key. Retrieval starts from the top layer
1694  * (MDT) of the MDS stack and traverses the stack by calling the
1695  * obd_get_info() method of the next sub-layer.
1696  *
1697  * \param[in] env       execution environment
1698  * \param[in] exp       export of this OSP
1699  * \param[in] keylen    length of \a key
1700  * \param[in] key       the key
1701  * \param[out] vallen   length of \a val
1702  * \param[out] val      holds the value returned by the key
1703  *
1704  * \retval 0            0 if getting information succeeded.
1705  * \retval negative     negative errno if getting information failed.
1706  */
1707 static int osp_obd_get_info(const struct lu_env *env, struct obd_export *exp,
1708                             __u32 keylen, void *key, __u32 *vallen, void *val)
1709 {
1710         int rc = -EINVAL;
1711
1712         if (KEY_IS(KEY_OSP_CONNECTED)) {
1713                 struct obd_device       *obd = exp->exp_obd;
1714                 struct osp_device       *osp;
1715
1716                 if (!obd->obd_set_up || obd->obd_stopping)
1717                         RETURN(-EAGAIN);
1718
1719                 osp = lu2osp_dev(obd->obd_lu_dev);
1720                 LASSERT(osp);
1721                 /*
1722                  * 1.8/2.0 behaviour is that OST being connected once at least
1723                  * is considered "healthy". and one "healthy" OST is enough to
1724                  * allow lustre clients to connect to MDS
1725                  */
1726                 RETURN(!osp->opd_imp_seen_connected);
1727         }
1728
1729         RETURN(rc);
1730 }
1731
1732 static int osp_obd_set_info_async(const struct lu_env *env,
1733                                   struct obd_export *exp,
1734                                   u32 keylen, void *key,
1735                                   u32 vallen, void *val,
1736                                   struct ptlrpc_request_set *set)
1737 {
1738         struct obd_device       *obd = exp->exp_obd;
1739         struct obd_import       *imp = obd->u.cli.cl_import;
1740         struct osp_device       *osp;
1741         struct ptlrpc_request   *req;
1742         char                    *tmp;
1743         int                      rc;
1744
1745         if (KEY_IS(KEY_SPTLRPC_CONF)) {
1746                 sptlrpc_conf_client_adapt(exp->exp_obd);
1747                 RETURN(0);
1748         }
1749
1750         LASSERT(set != NULL);
1751         if (!obd->obd_set_up || obd->obd_stopping)
1752                 RETURN(-EAGAIN);
1753         osp = lu2osp_dev(obd->obd_lu_dev);
1754
1755         req = ptlrpc_request_alloc(imp, &RQF_OBD_SET_INFO);
1756         if (req == NULL)
1757                 RETURN(-ENOMEM);
1758
1759         req_capsule_set_size(&req->rq_pill, &RMF_SETINFO_KEY,
1760                              RCL_CLIENT, keylen);
1761         req_capsule_set_size(&req->rq_pill, &RMF_SETINFO_VAL,
1762                              RCL_CLIENT, vallen);
1763         if (osp->opd_connect_mdt)
1764                 rc = ptlrpc_request_pack(req, LUSTRE_MDS_VERSION, MDS_SET_INFO);
1765         else
1766                 rc = ptlrpc_request_pack(req, LUSTRE_OST_VERSION, OST_SET_INFO);
1767         if (rc) {
1768                 ptlrpc_request_free(req);
1769                 RETURN(rc);
1770         }
1771
1772         tmp = req_capsule_client_get(&req->rq_pill, &RMF_SETINFO_KEY);
1773         memcpy(tmp, key, keylen);
1774         tmp = req_capsule_client_get(&req->rq_pill, &RMF_SETINFO_VAL);
1775         memcpy(tmp, val, vallen);
1776
1777         ptlrpc_request_set_replen(req);
1778         ptlrpc_set_add_req(set, req);
1779         ptlrpc_check_set(NULL, set);
1780
1781         RETURN(0);
1782 }
1783
1784 /**
1785  * Implementation of obd_ops: o_fid_alloc
1786  *
1787  * Allocate a FID. There are two cases in which OSP performs
1788  * FID allocation.
1789  *
1790  * 1. FID precreation for data objects, which is done in
1791  *    osp_precreate_fids() instead of this function.
1792  * 2. FID allocation for each sub-stripe of a striped directory.
1793  *    Similar to other FID clients, OSP requests the sequence
1794  *    from its corresponding remote MDT, which in turn requests
1795  *    sequences from the sequence controller (MDT0).
1796  *
1797  * \param[in] env       execution environment
1798  * \param[in] exp       export of the OSP
1799  * \param[out] fid      FID being allocated
1800  * \param[in] unused    necessary for the interface but unused.
1801  *
1802  * \retval 0            0 FID allocated successfully.
1803  * \retval 1            1 FID allocated successfully and new sequence
1804  *                      requested from seq meta server
1805  * \retval negative     negative errno if FID allocation failed.
1806  */
1807 static int osp_fid_alloc(const struct lu_env *env, struct obd_export *exp,
1808                          struct lu_fid *fid, struct md_op_data *unused)
1809 {
1810         struct client_obd       *cli = &exp->exp_obd->u.cli;
1811         struct osp_device       *osp = lu2osp_dev(exp->exp_obd->obd_lu_dev);
1812         struct lu_client_seq    *seq = cli->cl_seq;
1813         ENTRY;
1814
1815         LASSERT(osp->opd_obd->u.cli.cl_seq != NULL);
1816         /* Sigh, fid client is not ready yet */
1817         LASSERT(osp->opd_obd->u.cli.cl_seq->lcs_exp != NULL);
1818
1819         RETURN(seq_client_alloc_fid(env, seq, fid));
1820 }
1821
1822 /* context key constructor/destructor: mdt_key_init, mdt_key_fini */
1823 LU_KEY_INIT_FINI(osp, struct osp_thread_info);
1824 static void osp_key_exit(const struct lu_context *ctx,
1825                          struct lu_context_key *key, void *data)
1826 {
1827         struct osp_thread_info *info = data;
1828
1829         info->osi_attr.la_valid = 0;
1830 }
1831
1832 struct lu_context_key osp_thread_key = {
1833         .lct_tags = LCT_MD_THREAD,
1834         .lct_init = osp_key_init,
1835         .lct_fini = osp_key_fini,
1836         .lct_exit = osp_key_exit
1837 };
1838
1839 /* context key constructor/destructor: mdt_txn_key_init, mdt_txn_key_fini */
1840 LU_KEY_INIT_FINI(osp_txn, struct osp_txn_info);
1841
1842 struct lu_context_key osp_txn_key = {
1843         .lct_tags = LCT_OSP_THREAD,
1844         .lct_init = osp_txn_key_init,
1845         .lct_fini = osp_txn_key_fini
1846 };
1847 LU_TYPE_INIT_FINI(osp, &osp_thread_key, &osp_txn_key);
1848
1849 static struct lu_device_type_operations osp_device_type_ops = {
1850         .ldto_init           = osp_type_init,
1851         .ldto_fini           = osp_type_fini,
1852
1853         .ldto_start          = osp_type_start,
1854         .ldto_stop           = osp_type_stop,
1855
1856         .ldto_device_alloc   = osp_device_alloc,
1857         .ldto_device_free    = osp_device_free,
1858
1859         .ldto_device_fini    = osp_device_fini
1860 };
1861
1862 static struct lu_device_type osp_device_type = {
1863         .ldt_tags     = LU_DEVICE_DT,
1864         .ldt_name     = LUSTRE_OSP_NAME,
1865         .ldt_ops      = &osp_device_type_ops,
1866         .ldt_ctx_tags = LCT_MD_THREAD | LCT_DT_THREAD,
1867 };
1868
1869 static struct obd_ops osp_obd_device_ops = {
1870         .o_owner        = THIS_MODULE,
1871         .o_add_conn     = client_import_add_conn,
1872         .o_del_conn     = client_import_del_conn,
1873         .o_reconnect    = osp_reconnect,
1874         .o_connect      = osp_obd_connect,
1875         .o_disconnect   = osp_obd_disconnect,
1876         .o_get_info     = osp_obd_get_info,
1877         .o_set_info_async = osp_obd_set_info_async,
1878         .o_import_event = osp_import_event,
1879         .o_iocontrol    = osp_iocontrol,
1880         .o_statfs       = osp_obd_statfs,
1881         .o_fid_init     = client_fid_init,
1882         .o_fid_fini     = client_fid_fini,
1883         .o_fid_alloc    = osp_fid_alloc,
1884 };
1885
1886 static struct obd_type sym;
1887
1888 /**
1889  * Initialize OSP module.
1890  *
1891  * Register device types OSP and Light Weight Proxy (LWP) (\see lwp_dev.c)
1892  * in obd_types (\see class_obd.c).  Initialize procfs for the
1893  * the OSP device.  Note: OSP was called OSC before Lustre 2.4,
1894  * so for compatibility it still uses the name "osc" in procfs.
1895  * This is called at module load time.
1896  *
1897  * \retval 0            0 if initialization succeeds.
1898  * \retval negative     negative errno if initialization failed.
1899  */
1900 static int __init osp_init(void)
1901 {
1902         struct dentry *symlink;
1903         struct obd_type *type;
1904         struct kobject *kobj;
1905         struct qstr dname;
1906         int rc;
1907
1908         rc = lu_kmem_init(osp_caches);
1909         if (rc)
1910                 return rc;
1911
1912         rc = class_register_type(&osp_obd_device_ops, NULL, true, NULL,
1913                                  LUSTRE_OSP_NAME, &osp_device_type);
1914         if (rc != 0) {
1915                 lu_kmem_fini(osp_caches);
1916                 return rc;
1917         }
1918
1919         rc = class_register_type(&lwp_obd_device_ops, NULL, false, NULL,
1920                                  LUSTRE_LWP_NAME, &lwp_device_type);
1921         if (rc != 0) {
1922                 class_unregister_type(LUSTRE_OSP_NAME);
1923                 lu_kmem_fini(osp_caches);
1924                 return rc;
1925         }
1926
1927         /* create "osc" entry for compatibility purposes */
1928         dname.name = "osc";
1929         dname.len = strlen(dname.name);
1930         dname.hash = ll_full_name_hash(debugfs_lustre_root, dname.name,
1931                                        dname.len);
1932         symlink = d_lookup(debugfs_lustre_root, &dname);
1933         if (!symlink) {
1934                 symlink = debugfs_create_dir(dname.name, debugfs_lustre_root);
1935                 if (IS_ERR_OR_NULL(symlink)) {
1936                         rc = symlink ? PTR_ERR(symlink) : -ENOMEM;
1937                         GOTO(no_osc, rc);
1938                 }
1939                 sym.typ_debugfs_entry = symlink;
1940         } else {
1941                 dput(symlink);
1942         }
1943
1944         kobj = kset_find_obj(lustre_kset, dname.name);
1945         if (kobj) {
1946                 kobject_put(kobj);
1947                 goto try_proc;
1948         }
1949
1950         kobj = class_setup_tunables(dname.name);
1951         if (IS_ERR(kobj)) {
1952                 rc = PTR_ERR(kobj);
1953                 if (sym.typ_debugfs_entry)
1954                         ldebugfs_remove(&sym.typ_debugfs_entry);
1955                 GOTO(no_osc, rc);
1956         }
1957         sym.typ_kobj = kobj;
1958
1959 try_proc:
1960         type = class_search_type(LUSTRE_OSC_NAME);
1961         if (type != NULL && type->typ_procroot != NULL)
1962                 GOTO(no_osc, rc);
1963
1964         type = class_search_type(LUSTRE_OSP_NAME);
1965         type->typ_procsym = lprocfs_register("osc", proc_lustre_root,
1966                                              NULL, NULL);
1967         if (IS_ERR(type->typ_procsym)) {
1968                 CERROR("osp: can't create compat entry \"osc\": %d\n",
1969                        (int) PTR_ERR(type->typ_procsym));
1970                 type->typ_procsym = NULL;
1971         }
1972 no_osc:
1973         return rc;
1974 }
1975
1976 /**
1977  * Finalize OSP module.
1978  *
1979  * This callback is called when kernel unloads OSP module from memory, and
1980  * it will deregister OSP and LWP device type from obd_types (\see class_obd.c).
1981  */
1982 static void __exit osp_exit(void)
1983 {
1984         ldebugfs_remove(&sym.typ_debugfs_entry);
1985         kobject_put(sym.typ_kobj);
1986         class_unregister_type(LUSTRE_LWP_NAME);
1987         class_unregister_type(LUSTRE_OSP_NAME);
1988         lu_kmem_fini(osp_caches);
1989 }
1990
1991 MODULE_AUTHOR("OpenSFS, Inc. <http://www.lustre.org/>");
1992 MODULE_DESCRIPTION("Lustre OSD Storage Proxy ("LUSTRE_OSP_NAME")");
1993 MODULE_VERSION(LUSTRE_VERSION_STRING);
1994 MODULE_LICENSE("GPL");
1995
1996 module_init(osp_init);
1997 module_exit(osp_exit);