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[fs/lustre-release.git] / lustre / obdecho / echo_client.c
1 /*
2  * GPL HEADER START
3  *
4  * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
5  *
6  * This program is free software; you can redistribute it and/or modify
7  * it under the terms of the GNU General Public License version 2 only,
8  * as published by the Free Software Foundation.
9  *
10  * This program is distributed in the hope that it will be useful, but
11  * WITHOUT ANY WARRANTY; without even the implied warranty of
12  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
13  * General Public License version 2 for more details (a copy is included
14  * in the LICENSE file that accompanied this code).
15  *
16  * You should have received a copy of the GNU General Public License
17  * version 2 along with this program; If not, see
18  * http://www.sun.com/software/products/lustre/docs/GPLv2.pdf
19  *
20  * Please contact Sun Microsystems, Inc., 4150 Network Circle, Santa Clara,
21  * CA 95054 USA or visit www.sun.com if you need additional information or
22  * have any questions.
23  *
24  * GPL HEADER END
25  */
26 /*
27  * Copyright (c) 2002, 2010, Oracle and/or its affiliates. All rights reserved.
28  * Use is subject to license terms.
29  *
30  * Copyright (c) 2011, 2012, Whamcloud, Inc.
31  */
32 /*
33  * This file is part of Lustre, http://www.lustre.org/
34  * Lustre is a trademark of Sun Microsystems, Inc.
35  */
36
37 #define DEBUG_SUBSYSTEM S_ECHO
38 #ifdef __KERNEL__
39 #include <libcfs/libcfs.h>
40 #else
41 #include <liblustre.h>
42 #endif
43
44 #include <obd.h>
45 #include <obd_support.h>
46 #include <obd_class.h>
47 #include <lustre_debug.h>
48 #include <lprocfs_status.h>
49 #include <cl_object.h>
50 #include <lustre_fid.h>
51 #include <lustre_acl.h>
52 #include <lustre_net.h>
53
54 #include "echo_internal.h"
55
56 /** \defgroup echo_client Echo Client
57  * @{
58  */
59
60 struct echo_device {
61         struct cl_device        ed_cl;
62         struct echo_client_obd *ed_ec;
63
64         struct cl_site          ed_site_myself;
65         struct cl_site         *ed_site;
66         struct lu_device       *ed_next;
67         int                     ed_next_islov;
68         int                     ed_next_ismd;
69         struct lu_client_seq   *ed_cl_seq;
70 };
71
72 struct echo_object {
73         struct cl_object        eo_cl;
74         struct cl_object_header eo_hdr;
75
76         struct echo_device     *eo_dev;
77         cfs_list_t              eo_obj_chain;
78         struct lov_stripe_md   *eo_lsm;
79         cfs_atomic_t            eo_npages;
80         int                     eo_deleted;
81 };
82
83 struct echo_object_conf {
84         struct cl_object_conf  eoc_cl;
85         struct lov_stripe_md **eoc_md;
86 };
87
88 struct echo_page {
89         struct cl_page_slice   ep_cl;
90         cfs_mutex_t            ep_lock;
91         cfs_page_t            *ep_vmpage;
92 };
93
94 struct echo_lock {
95         struct cl_lock_slice   el_cl;
96         cfs_list_t             el_chain;
97         struct echo_object    *el_object;
98         __u64                  el_cookie;
99         cfs_atomic_t           el_refcount;
100 };
101
102 struct echo_io {
103         struct cl_io_slice     ei_cl;
104 };
105
106 #if 0
107 struct echo_req {
108         struct cl_req_slice er_cl;
109 };
110 #endif
111
112 static int echo_client_setup(const struct lu_env *env,
113                              struct obd_device *obddev,
114                              struct lustre_cfg *lcfg);
115 static int echo_client_cleanup(struct obd_device *obddev);
116
117
118 /** \defgroup echo_helpers Helper functions
119  * @{
120  */
121 static inline struct echo_device *cl2echo_dev(const struct cl_device *dev)
122 {
123         return container_of0(dev, struct echo_device, ed_cl);
124 }
125
126 static inline struct cl_device *echo_dev2cl(struct echo_device *d)
127 {
128         return &d->ed_cl;
129 }
130
131 static inline struct echo_device *obd2echo_dev(const struct obd_device *obd)
132 {
133         return cl2echo_dev(lu2cl_dev(obd->obd_lu_dev));
134 }
135
136 static inline struct cl_object *echo_obj2cl(struct echo_object *eco)
137 {
138         return &eco->eo_cl;
139 }
140
141 static inline struct echo_object *cl2echo_obj(const struct cl_object *o)
142 {
143         return container_of(o, struct echo_object, eo_cl);
144 }
145
146 static inline struct echo_page *cl2echo_page(const struct cl_page_slice *s)
147 {
148         return container_of(s, struct echo_page, ep_cl);
149 }
150
151 static inline struct echo_lock *cl2echo_lock(const struct cl_lock_slice *s)
152 {
153         return container_of(s, struct echo_lock, el_cl);
154 }
155
156 static inline struct cl_lock *echo_lock2cl(const struct echo_lock *ecl)
157 {
158         return ecl->el_cl.cls_lock;
159 }
160
161 static struct lu_context_key echo_thread_key;
162 static inline struct echo_thread_info *echo_env_info(const struct lu_env *env)
163 {
164         struct echo_thread_info *info;
165         info = lu_context_key_get(&env->le_ctx, &echo_thread_key);
166         LASSERT(info != NULL);
167         return info;
168 }
169
170 static inline
171 struct echo_object_conf *cl2echo_conf(const struct cl_object_conf *c)
172 {
173         return container_of(c, struct echo_object_conf, eoc_cl);
174 }
175
176 static inline void lsm2fid(struct lov_stripe_md *lsm, struct lu_fid *fid)
177 {
178         fid_zero(fid);
179         fid->f_seq = FID_SEQ_ECHO;
180         /* truncated to 32 bits by assignment */
181         fid->f_oid = lsm->lsm_object_id;
182         fid->f_ver = lsm->lsm_object_id >> 32;
183 }
184 /** @} echo_helpers */
185
186 static struct echo_object *cl_echo_object_find(struct echo_device *d,
187                                                struct lov_stripe_md **lsm);
188 static int cl_echo_object_put(struct echo_object *eco);
189 static int cl_echo_enqueue   (struct echo_object *eco, obd_off start,
190                               obd_off end, int mode, __u64 *cookie);
191 static int cl_echo_cancel    (struct echo_device *d, __u64 cookie);
192 static int cl_echo_object_brw(struct echo_object *eco, int rw, obd_off offset,
193                               cfs_page_t **pages, int npages, int async);
194
195 static struct echo_thread_info *echo_env_info(const struct lu_env *env);
196
197 struct echo_thread_info {
198         struct echo_object_conf eti_conf;
199         struct lustre_md        eti_md;
200
201         struct cl_2queue        eti_queue;
202         struct cl_io            eti_io;
203         struct cl_lock_descr    eti_descr;
204         struct lu_fid           eti_fid;
205         struct lu_fid           eti_fid2;
206         struct md_op_spec       eti_spec;
207         struct lov_mds_md_v3    eti_lmm;
208         struct lov_user_md_v3   eti_lum;
209         struct md_attr          eti_ma;
210         struct lu_name          eti_lname;
211         char                    eti_name[20];
212         struct lu_buf           eti_buf;
213         char                    eti_xattr_buf[LUSTRE_POSIX_ACL_MAX_SIZE];
214 };
215
216 /* No session used right now */
217 struct echo_session_info {
218         unsigned long dummy;
219 };
220
221 static cfs_mem_cache_t *echo_page_kmem;
222 static cfs_mem_cache_t *echo_lock_kmem;
223 static cfs_mem_cache_t *echo_object_kmem;
224 static cfs_mem_cache_t *echo_thread_kmem;
225 static cfs_mem_cache_t *echo_session_kmem;
226 //static cfs_mem_cache_t *echo_req_kmem;
227
228 static struct lu_kmem_descr echo_caches[] = {
229         {
230                 .ckd_cache = &echo_page_kmem,
231                 .ckd_name  = "echo_page_kmem",
232                 .ckd_size  = sizeof (struct echo_page)
233         },
234         {
235                 .ckd_cache = &echo_lock_kmem,
236                 .ckd_name  = "echo_lock_kmem",
237                 .ckd_size  = sizeof (struct echo_lock)
238         },
239         {
240                 .ckd_cache = &echo_object_kmem,
241                 .ckd_name  = "echo_object_kmem",
242                 .ckd_size  = sizeof (struct echo_object)
243         },
244         {
245                 .ckd_cache = &echo_thread_kmem,
246                 .ckd_name  = "echo_thread_kmem",
247                 .ckd_size  = sizeof (struct echo_thread_info)
248         },
249         {
250                 .ckd_cache = &echo_session_kmem,
251                 .ckd_name  = "echo_session_kmem",
252                 .ckd_size  = sizeof (struct echo_session_info)
253         },
254 #if 0
255         {
256                 .ckd_cache = &echo_req_kmem,
257                 .ckd_name  = "echo_req_kmem",
258                 .ckd_size  = sizeof (struct echo_req)
259         },
260 #endif
261         {
262                 .ckd_cache = NULL
263         }
264 };
265
266 /** \defgroup echo_page Page operations
267  *
268  * Echo page operations.
269  *
270  * @{
271  */
272 static cfs_page_t *echo_page_vmpage(const struct lu_env *env,
273                                     const struct cl_page_slice *slice)
274 {
275         return cl2echo_page(slice)->ep_vmpage;
276 }
277
278 static int echo_page_own(const struct lu_env *env,
279                          const struct cl_page_slice *slice,
280                          struct cl_io *io, int nonblock)
281 {
282         struct echo_page *ep = cl2echo_page(slice);
283
284         if (!nonblock)
285                 cfs_mutex_lock(&ep->ep_lock);
286         else if (!cfs_mutex_trylock(&ep->ep_lock))
287                 return -EAGAIN;
288         return 0;
289 }
290
291 static void echo_page_disown(const struct lu_env *env,
292                              const struct cl_page_slice *slice,
293                              struct cl_io *io)
294 {
295         struct echo_page *ep = cl2echo_page(slice);
296
297         LASSERT(cfs_mutex_is_locked(&ep->ep_lock));
298         cfs_mutex_unlock(&ep->ep_lock);
299 }
300
301 static void echo_page_discard(const struct lu_env *env,
302                               const struct cl_page_slice *slice,
303                               struct cl_io *unused)
304 {
305         cl_page_delete(env, slice->cpl_page);
306 }
307
308 static int echo_page_is_vmlocked(const struct lu_env *env,
309                                  const struct cl_page_slice *slice)
310 {
311         if (cfs_mutex_is_locked(&cl2echo_page(slice)->ep_lock))
312                 return -EBUSY;
313         return -ENODATA;
314 }
315
316 static void echo_page_completion(const struct lu_env *env,
317                                  const struct cl_page_slice *slice,
318                                  int ioret)
319 {
320         LASSERT(slice->cpl_page->cp_sync_io != NULL);
321 }
322
323 static void echo_page_fini(const struct lu_env *env,
324                            struct cl_page_slice *slice)
325 {
326         struct echo_page *ep    = cl2echo_page(slice);
327         struct echo_object *eco = cl2echo_obj(slice->cpl_obj);
328         cfs_page_t *vmpage      = ep->ep_vmpage;
329         ENTRY;
330
331         cfs_atomic_dec(&eco->eo_npages);
332         page_cache_release(vmpage);
333         OBD_SLAB_FREE_PTR(ep, echo_page_kmem);
334         EXIT;
335 }
336
337 static int echo_page_prep(const struct lu_env *env,
338                           const struct cl_page_slice *slice,
339                           struct cl_io *unused)
340 {
341         return 0;
342 }
343
344 static int echo_page_print(const struct lu_env *env,
345                            const struct cl_page_slice *slice,
346                            void *cookie, lu_printer_t printer)
347 {
348         struct echo_page *ep = cl2echo_page(slice);
349
350         (*printer)(env, cookie, LUSTRE_ECHO_CLIENT_NAME"-page@%p %d vm@%p\n",
351                    ep, cfs_mutex_is_locked(&ep->ep_lock), ep->ep_vmpage);
352         return 0;
353 }
354
355 static const struct cl_page_operations echo_page_ops = {
356         .cpo_own           = echo_page_own,
357         .cpo_disown        = echo_page_disown,
358         .cpo_discard       = echo_page_discard,
359         .cpo_vmpage        = echo_page_vmpage,
360         .cpo_fini          = echo_page_fini,
361         .cpo_print         = echo_page_print,
362         .cpo_is_vmlocked   = echo_page_is_vmlocked,
363         .io = {
364                 [CRT_READ] = {
365                         .cpo_prep        = echo_page_prep,
366                         .cpo_completion  = echo_page_completion,
367                 },
368                 [CRT_WRITE] = {
369                         .cpo_prep        = echo_page_prep,
370                         .cpo_completion  = echo_page_completion,
371                 }
372         }
373 };
374 /** @} echo_page */
375
376 /** \defgroup echo_lock Locking
377  *
378  * echo lock operations
379  *
380  * @{
381  */
382 static void echo_lock_fini(const struct lu_env *env,
383                            struct cl_lock_slice *slice)
384 {
385         struct echo_lock *ecl = cl2echo_lock(slice);
386
387         LASSERT(cfs_list_empty(&ecl->el_chain));
388         OBD_SLAB_FREE_PTR(ecl, echo_lock_kmem);
389 }
390
391 static void echo_lock_delete(const struct lu_env *env,
392                              const struct cl_lock_slice *slice)
393 {
394         struct echo_lock *ecl      = cl2echo_lock(slice);
395
396         LASSERT(cfs_list_empty(&ecl->el_chain));
397 }
398
399 static int echo_lock_fits_into(const struct lu_env *env,
400                                const struct cl_lock_slice *slice,
401                                const struct cl_lock_descr *need,
402                                const struct cl_io *unused)
403 {
404         return 1;
405 }
406
407 static struct cl_lock_operations echo_lock_ops = {
408         .clo_fini      = echo_lock_fini,
409         .clo_delete    = echo_lock_delete,
410         .clo_fits_into = echo_lock_fits_into
411 };
412
413 /** @} echo_lock */
414
415 /** \defgroup echo_cl_ops cl_object operations
416  *
417  * operations for cl_object
418  *
419  * @{
420  */
421 static struct cl_page *echo_page_init(const struct lu_env *env,
422                                       struct cl_object *obj,
423                                       struct cl_page *page, cfs_page_t *vmpage)
424 {
425         struct echo_page *ep;
426         ENTRY;
427
428         OBD_SLAB_ALLOC_PTR_GFP(ep, echo_page_kmem, CFS_ALLOC_IO);
429         if (ep != NULL) {
430                 struct echo_object *eco = cl2echo_obj(obj);
431                 ep->ep_vmpage = vmpage;
432                 page_cache_get(vmpage);
433                 cfs_mutex_init(&ep->ep_lock);
434                 cl_page_slice_add(page, &ep->ep_cl, obj, &echo_page_ops);
435                 cfs_atomic_inc(&eco->eo_npages);
436         }
437         RETURN(ERR_PTR(ep ? 0 : -ENOMEM));
438 }
439
440 static int echo_io_init(const struct lu_env *env, struct cl_object *obj,
441                         struct cl_io *io)
442 {
443         return 0;
444 }
445
446 static int echo_lock_init(const struct lu_env *env,
447                           struct cl_object *obj, struct cl_lock *lock,
448                           const struct cl_io *unused)
449 {
450         struct echo_lock *el;
451         ENTRY;
452
453         OBD_SLAB_ALLOC_PTR_GFP(el, echo_lock_kmem, CFS_ALLOC_IO);
454         if (el != NULL) {
455                 cl_lock_slice_add(lock, &el->el_cl, obj, &echo_lock_ops);
456                 el->el_object = cl2echo_obj(obj);
457                 CFS_INIT_LIST_HEAD(&el->el_chain);
458                 cfs_atomic_set(&el->el_refcount, 0);
459         }
460         RETURN(el == NULL ? -ENOMEM : 0);
461 }
462
463 static int echo_conf_set(const struct lu_env *env, struct cl_object *obj,
464                          const struct cl_object_conf *conf)
465 {
466         return 0;
467 }
468
469 static const struct cl_object_operations echo_cl_obj_ops = {
470         .coo_page_init = echo_page_init,
471         .coo_lock_init = echo_lock_init,
472         .coo_io_init   = echo_io_init,
473         .coo_conf_set  = echo_conf_set
474 };
475 /** @} echo_cl_ops */
476
477 /** \defgroup echo_lu_ops lu_object operations
478  *
479  * operations for echo lu object.
480  *
481  * @{
482  */
483 static int echo_object_init(const struct lu_env *env, struct lu_object *obj,
484                             const struct lu_object_conf *conf)
485 {
486         struct echo_device *ed         = cl2echo_dev(lu2cl_dev(obj->lo_dev));
487         struct echo_client_obd *ec     = ed->ed_ec;
488         struct echo_object *eco        = cl2echo_obj(lu2cl(obj));
489         ENTRY;
490
491         if (ed->ed_next) {
492                 struct lu_object  *below;
493                 struct lu_device  *under;
494
495                 under = ed->ed_next;
496                 below = under->ld_ops->ldo_object_alloc(env, obj->lo_header,
497                                                         under);
498                 if (below == NULL)
499                         RETURN(-ENOMEM);
500                 lu_object_add(obj, below);
501         }
502
503         if (!ed->ed_next_ismd) {
504                 const struct cl_object_conf *cconf = lu2cl_conf(conf);
505                 struct echo_object_conf *econf = cl2echo_conf(cconf);
506
507                 LASSERT(econf->eoc_md);
508                 eco->eo_lsm = *econf->eoc_md;
509                 /* clear the lsm pointer so that it won't get freed. */
510                 *econf->eoc_md = NULL;
511         } else {
512                 eco->eo_lsm = NULL;
513         }
514
515         eco->eo_dev = ed;
516         cfs_atomic_set(&eco->eo_npages, 0);
517
518         cfs_spin_lock(&ec->ec_lock);
519         cfs_list_add_tail(&eco->eo_obj_chain, &ec->ec_objects);
520         cfs_spin_unlock(&ec->ec_lock);
521
522         RETURN(0);
523 }
524
525 static void echo_object_free(const struct lu_env *env, struct lu_object *obj)
526 {
527         struct echo_object *eco    = cl2echo_obj(lu2cl(obj));
528         struct echo_client_obd *ec = eco->eo_dev->ed_ec;
529         ENTRY;
530
531         LASSERT(cfs_atomic_read(&eco->eo_npages) == 0);
532
533         cfs_spin_lock(&ec->ec_lock);
534         cfs_list_del_init(&eco->eo_obj_chain);
535         cfs_spin_unlock(&ec->ec_lock);
536
537         lu_object_fini(obj);
538         lu_object_header_fini(obj->lo_header);
539
540         if (eco->eo_lsm)
541                 obd_free_memmd(ec->ec_exp, &eco->eo_lsm);
542         OBD_SLAB_FREE_PTR(eco, echo_object_kmem);
543         EXIT;
544 }
545
546 static int echo_object_print(const struct lu_env *env, void *cookie,
547                             lu_printer_t p, const struct lu_object *o)
548 {
549         struct echo_object *obj = cl2echo_obj(lu2cl(o));
550
551         return (*p)(env, cookie, "echoclient-object@%p", obj);
552 }
553
554 static const struct lu_object_operations echo_lu_obj_ops = {
555         .loo_object_init      = echo_object_init,
556         .loo_object_delete    = NULL,
557         .loo_object_release   = NULL,
558         .loo_object_free      = echo_object_free,
559         .loo_object_print     = echo_object_print,
560         .loo_object_invariant = NULL
561 };
562 /** @} echo_lu_ops */
563
564 /** \defgroup echo_lu_dev_ops  lu_device operations
565  *
566  * Operations for echo lu device.
567  *
568  * @{
569  */
570 static struct lu_object *echo_object_alloc(const struct lu_env *env,
571                                            const struct lu_object_header *hdr,
572                                            struct lu_device *dev)
573 {
574         struct echo_object *eco;
575         struct lu_object *obj = NULL;
576         ENTRY;
577
578         /* we're the top dev. */
579         LASSERT(hdr == NULL);
580         OBD_SLAB_ALLOC_PTR_GFP(eco, echo_object_kmem, CFS_ALLOC_IO);
581         if (eco != NULL) {
582                 struct cl_object_header *hdr = &eco->eo_hdr;
583
584                 obj = &echo_obj2cl(eco)->co_lu;
585                 cl_object_header_init(hdr);
586                 lu_object_init(obj, &hdr->coh_lu, dev);
587                 lu_object_add_top(&hdr->coh_lu, obj);
588
589                 eco->eo_cl.co_ops = &echo_cl_obj_ops;
590                 obj->lo_ops       = &echo_lu_obj_ops;
591         }
592         RETURN(obj);
593 }
594
595 static struct lu_device_operations echo_device_lu_ops = {
596         .ldo_object_alloc   = echo_object_alloc,
597 };
598
599 /** @} echo_lu_dev_ops */
600
601 static struct cl_device_operations echo_device_cl_ops = {
602 };
603
604 /** \defgroup echo_init Setup and teardown
605  *
606  * Init and fini functions for echo client.
607  *
608  * @{
609  */
610 static int echo_site_init(const struct lu_env *env, struct echo_device *ed)
611 {
612         struct cl_site *site = &ed->ed_site_myself;
613         int rc;
614
615         /* initialize site */
616         rc = cl_site_init(site, &ed->ed_cl);
617         if (rc) {
618                 CERROR("Cannot initilize site for echo client(%d)\n", rc);
619                 return rc;
620         }
621
622         rc = lu_site_init_finish(&site->cs_lu);
623         if (rc)
624                 return rc;
625
626         ed->ed_site = site;
627         return 0;
628 }
629
630 static void echo_site_fini(const struct lu_env *env, struct echo_device *ed)
631 {
632         if (ed->ed_site) {
633                 if (!ed->ed_next_ismd)
634                         cl_site_fini(ed->ed_site);
635                 ed->ed_site = NULL;
636         }
637 }
638
639 static void *echo_thread_key_init(const struct lu_context *ctx,
640                           struct lu_context_key *key)
641 {
642         struct echo_thread_info *info;
643
644         OBD_SLAB_ALLOC_PTR_GFP(info, echo_thread_kmem, CFS_ALLOC_IO);
645         if (info == NULL)
646                 info = ERR_PTR(-ENOMEM);
647         return info;
648 }
649
650 static void echo_thread_key_fini(const struct lu_context *ctx,
651                          struct lu_context_key *key, void *data)
652 {
653         struct echo_thread_info *info = data;
654         OBD_SLAB_FREE_PTR(info, echo_thread_kmem);
655 }
656
657 static void echo_thread_key_exit(const struct lu_context *ctx,
658                          struct lu_context_key *key, void *data)
659 {
660 }
661
662 static struct lu_context_key echo_thread_key = {
663         .lct_tags = LCT_CL_THREAD,
664         .lct_init = echo_thread_key_init,
665         .lct_fini = echo_thread_key_fini,
666         .lct_exit = echo_thread_key_exit
667 };
668
669 static void *echo_session_key_init(const struct lu_context *ctx,
670                                   struct lu_context_key *key)
671 {
672         struct echo_session_info *session;
673
674         OBD_SLAB_ALLOC_PTR_GFP(session, echo_session_kmem, CFS_ALLOC_IO);
675         if (session == NULL)
676                 session = ERR_PTR(-ENOMEM);
677         return session;
678 }
679
680 static void echo_session_key_fini(const struct lu_context *ctx,
681                                  struct lu_context_key *key, void *data)
682 {
683         struct echo_session_info *session = data;
684         OBD_SLAB_FREE_PTR(session, echo_session_kmem);
685 }
686
687 static void echo_session_key_exit(const struct lu_context *ctx,
688                                  struct lu_context_key *key, void *data)
689 {
690 }
691
692 static struct lu_context_key echo_session_key = {
693         .lct_tags = LCT_SESSION,
694         .lct_init = echo_session_key_init,
695         .lct_fini = echo_session_key_fini,
696         .lct_exit = echo_session_key_exit
697 };
698
699 LU_TYPE_INIT_FINI(echo, &echo_thread_key, &echo_session_key);
700
701 #define ECHO_SEQ_WIDTH 0xffffffff
702 static int echo_fid_init(struct echo_device *ed, char *obd_name,
703                          struct md_site *ms)
704 {
705         char *prefix;
706         int rc;
707         ENTRY;
708
709         OBD_ALLOC_PTR(ed->ed_cl_seq);
710         if (ed->ed_cl_seq == NULL)
711                 RETURN(-ENOMEM);
712
713         OBD_ALLOC(prefix, MAX_OBD_NAME + 5);
714         if (prefix == NULL)
715                 GOTO(out_free_seq, rc = -ENOMEM);
716
717         snprintf(prefix, MAX_OBD_NAME + 5, "srv-%s", obd_name);
718
719         /* Init client side sequence-manager */
720         rc = seq_client_init(ed->ed_cl_seq, NULL,
721                              LUSTRE_SEQ_METADATA,
722                              prefix, ms->ms_server_seq);
723         ed->ed_cl_seq->lcs_width = ECHO_SEQ_WIDTH;
724         OBD_FREE(prefix, MAX_OBD_NAME + 5);
725         if (rc)
726                 GOTO(out_free_seq, rc);
727
728         RETURN(0);
729
730 out_free_seq:
731         OBD_FREE_PTR(ed->ed_cl_seq);
732         ed->ed_cl_seq = NULL;
733         RETURN(rc);
734 }
735
736 static int echo_fid_fini(struct obd_device *obddev)
737 {
738         struct echo_device *ed = obd2echo_dev(obddev);
739         ENTRY;
740
741         if (ed->ed_cl_seq != NULL) {
742                 seq_client_fini(ed->ed_cl_seq);
743                 OBD_FREE_PTR(ed->ed_cl_seq);
744                 ed->ed_cl_seq = NULL;
745         }
746
747         RETURN(0);
748 }
749
750 static struct lu_device *echo_device_alloc(const struct lu_env *env,
751                                            struct lu_device_type *t,
752                                            struct lustre_cfg *cfg)
753 {
754         struct lu_device   *next;
755         struct echo_device *ed;
756         struct cl_device   *cd;
757         struct obd_device  *obd = NULL; /* to keep compiler happy */
758         struct obd_device  *tgt;
759         const char *tgt_type_name;
760         int rc;
761         int cleanup = 0;
762         ENTRY;
763
764         OBD_ALLOC_PTR(ed);
765         if (ed == NULL)
766                 GOTO(out, rc = -ENOMEM);
767
768         cleanup = 1;
769         cd = &ed->ed_cl;
770         rc = cl_device_init(cd, t);
771         if (rc)
772                 GOTO(out, rc);
773
774         cd->cd_lu_dev.ld_ops = &echo_device_lu_ops;
775         cd->cd_ops = &echo_device_cl_ops;
776
777         cleanup = 2;
778         obd = class_name2obd(lustre_cfg_string(cfg, 0));
779         LASSERT(obd != NULL);
780         LASSERT(env != NULL);
781
782         tgt = class_name2obd(lustre_cfg_string(cfg, 1));
783         if (tgt == NULL) {
784                 CERROR("Can not find tgt device %s\n",
785                         lustre_cfg_string(cfg, 1));
786                 GOTO(out, rc = -ENODEV);
787         }
788
789         next = tgt->obd_lu_dev;
790         if (!strcmp(tgt->obd_type->typ_name, LUSTRE_MDT_NAME)) {
791                 ed->ed_next_ismd = 1;
792         } else {
793                 ed->ed_next_ismd = 0;
794                 rc = echo_site_init(env, ed);
795                 if (rc)
796                         GOTO(out, rc);
797         }
798         cleanup = 3;
799
800         rc = echo_client_setup(env, obd, cfg);
801         if (rc)
802                 GOTO(out, rc);
803
804         ed->ed_ec = &obd->u.echo_client;
805         cleanup = 4;
806
807         if (ed->ed_next_ismd) {
808                 /* Suppose to connect to some Metadata layer */
809                 struct lu_site *ls;
810                 struct lu_device *ld;
811                 int    found = 0;
812
813                 if (next == NULL) {
814                         CERROR("%s is not lu device type!\n",
815                                lustre_cfg_string(cfg, 1));
816                         GOTO(out, rc = -EINVAL);
817                 }
818
819                 tgt_type_name = lustre_cfg_string(cfg, 2);
820                 if (!tgt_type_name) {
821                         CERROR("%s no type name for echo %s setup\n",
822                                 lustre_cfg_string(cfg, 1),
823                                 tgt->obd_type->typ_name);
824                         GOTO(out, rc = -EINVAL);
825                 }
826
827                 ls = next->ld_site;
828
829                 cfs_spin_lock(&ls->ls_ld_lock);
830                 cfs_list_for_each_entry(ld, &ls->ls_ld_linkage, ld_linkage) {
831                         if (strcmp(ld->ld_type->ldt_name, tgt_type_name) == 0) {
832                                 found = 1;
833                                 break;
834                         }
835                 }
836                 cfs_spin_unlock(&ls->ls_ld_lock);
837
838                 if (found == 0) {
839                         CERROR("%s is not lu device type!\n",
840                                lustre_cfg_string(cfg, 1));
841                         GOTO(out, rc = -EINVAL);
842                 }
843
844                 next = ld;
845                 /* For MD echo client, it will use the site in MDS stack */
846                 ed->ed_site_myself.cs_lu = *ls;
847                 ed->ed_site = &ed->ed_site_myself;
848                 ed->ed_cl.cd_lu_dev.ld_site = &ed->ed_site_myself.cs_lu;
849                 rc = echo_fid_init(ed, obd->obd_name, lu_site2md(ls));
850                 if (rc) {
851                         CERROR("echo fid init error %d\n", rc);
852                         GOTO(out, rc);
853                 }
854         } else {
855                  /* if echo client is to be stacked upon ost device, the next is
856                   * NULL since ost is not a clio device so far */
857                 if (next != NULL && !lu_device_is_cl(next))
858                         next = NULL;
859
860                 tgt_type_name = tgt->obd_type->typ_name;
861                 if (next != NULL) {
862                         LASSERT(next != NULL);
863                         if (next->ld_site != NULL)
864                                 GOTO(out, rc = -EBUSY);
865
866                         next->ld_site = &ed->ed_site->cs_lu;
867                         rc = next->ld_type->ldt_ops->ldto_device_init(env, next,
868                                                      next->ld_type->ldt_name,
869                                                      NULL);
870                         if (rc)
871                                 GOTO(out, rc);
872
873                         /* Tricky case, I have to determine the obd type since
874                          * CLIO uses the different parameters to initialize
875                          * objects for lov & osc. */
876                         if (strcmp(tgt_type_name, LUSTRE_LOV_NAME) == 0)
877                                 ed->ed_next_islov = 1;
878                         else
879                                 LASSERT(strcmp(tgt_type_name,
880                                                LUSTRE_OSC_NAME) == 0);
881                 } else
882                         LASSERT(strcmp(tgt_type_name, LUSTRE_OST_NAME) == 0);
883         }
884
885         ed->ed_next = next;
886         RETURN(&cd->cd_lu_dev);
887 out:
888         switch(cleanup) {
889         case 4: {
890                 int rc2;
891                 rc2 = echo_client_cleanup(obd);
892                 if (rc2)
893                         CERROR("Cleanup obd device %s error(%d)\n",
894                                obd->obd_name, rc2);
895         }
896
897         case 3:
898                 echo_site_fini(env, ed);
899         case 2:
900                 cl_device_fini(&ed->ed_cl);
901         case 1:
902                 OBD_FREE_PTR(ed);
903         case 0:
904         default:
905                 break;
906         }
907         return(ERR_PTR(rc));
908 }
909
910 static int echo_device_init(const struct lu_env *env, struct lu_device *d,
911                           const char *name, struct lu_device *next)
912 {
913         LBUG();
914         return 0;
915 }
916
917 static struct lu_device *echo_device_fini(const struct lu_env *env,
918                                           struct lu_device *d)
919 {
920         struct echo_device *ed = cl2echo_dev(lu2cl_dev(d));
921         struct lu_device *next = ed->ed_next;
922
923         while (next && !ed->ed_next_ismd)
924                 next = next->ld_type->ldt_ops->ldto_device_fini(env, next);
925         return NULL;
926 }
927
928 static void echo_lock_release(const struct lu_env *env,
929                               struct echo_lock *ecl,
930                               int still_used)
931 {
932         struct cl_lock *clk = echo_lock2cl(ecl);
933
934         cl_lock_get(clk);
935         cl_unuse(env, clk);
936         cl_lock_release(env, clk, "ec enqueue", ecl->el_object);
937         if (!still_used) {
938                 cl_lock_mutex_get(env, clk);
939                 cl_lock_cancel(env, clk);
940                 cl_lock_delete(env, clk);
941                 cl_lock_mutex_put(env, clk);
942         }
943         cl_lock_put(env, clk);
944 }
945
946 static struct lu_device *echo_device_free(const struct lu_env *env,
947                                           struct lu_device *d)
948 {
949         struct echo_device     *ed   = cl2echo_dev(lu2cl_dev(d));
950         struct echo_client_obd *ec   = ed->ed_ec;
951         struct echo_object     *eco;
952         struct lu_device       *next = ed->ed_next;
953
954         CDEBUG(D_INFO, "echo device:%p is going to be freed, next = %p\n",
955                ed, next);
956
957         lu_site_purge(env, &ed->ed_site->cs_lu, -1);
958
959         /* check if there are objects still alive.
960          * It shouldn't have any object because lu_site_purge would cleanup
961          * all of cached objects. Anyway, probably the echo device is being
962          * parallelly accessed.
963          */
964         cfs_spin_lock(&ec->ec_lock);
965         cfs_list_for_each_entry(eco, &ec->ec_objects, eo_obj_chain)
966                 eco->eo_deleted = 1;
967         cfs_spin_unlock(&ec->ec_lock);
968
969         /* purge again */
970         lu_site_purge(env, &ed->ed_site->cs_lu, -1);
971
972         CDEBUG(D_INFO,
973                "Waiting for the reference of echo object to be dropped\n");
974
975         /* Wait for the last reference to be dropped. */
976         cfs_spin_lock(&ec->ec_lock);
977         while (!cfs_list_empty(&ec->ec_objects)) {
978                 cfs_spin_unlock(&ec->ec_lock);
979                 CERROR("echo_client still has objects at cleanup time, "
980                        "wait for 1 second\n");
981                 cfs_schedule_timeout_and_set_state(CFS_TASK_UNINT,
982                                                    cfs_time_seconds(1));
983                 lu_site_purge(env, &ed->ed_site->cs_lu, -1);
984                 cfs_spin_lock(&ec->ec_lock);
985         }
986         cfs_spin_unlock(&ec->ec_lock);
987
988         LASSERT(cfs_list_empty(&ec->ec_locks));
989
990         CDEBUG(D_INFO, "No object exists, exiting...\n");
991
992         echo_client_cleanup(d->ld_obd);
993         echo_fid_fini(d->ld_obd);
994         while (next && !ed->ed_next_ismd)
995                 next = next->ld_type->ldt_ops->ldto_device_free(env, next);
996
997         LASSERT(ed->ed_site == lu2cl_site(d->ld_site));
998         echo_site_fini(env, ed);
999         cl_device_fini(&ed->ed_cl);
1000         OBD_FREE_PTR(ed);
1001
1002         return NULL;
1003 }
1004
1005 static const struct lu_device_type_operations echo_device_type_ops = {
1006         .ldto_init = echo_type_init,
1007         .ldto_fini = echo_type_fini,
1008
1009         .ldto_start = echo_type_start,
1010         .ldto_stop  = echo_type_stop,
1011
1012         .ldto_device_alloc = echo_device_alloc,
1013         .ldto_device_free  = echo_device_free,
1014         .ldto_device_init  = echo_device_init,
1015         .ldto_device_fini  = echo_device_fini
1016 };
1017
1018 static struct lu_device_type echo_device_type = {
1019         .ldt_tags     = LU_DEVICE_CL,
1020         .ldt_name     = LUSTRE_ECHO_CLIENT_NAME,
1021         .ldt_ops      = &echo_device_type_ops,
1022         .ldt_ctx_tags = LCT_CL_THREAD | LCT_MD_THREAD | LCT_DT_THREAD,
1023 };
1024 /** @} echo_init */
1025
1026 /** \defgroup echo_exports Exported operations
1027  *
1028  * exporting functions to echo client
1029  *
1030  * @{
1031  */
1032
1033 /* Interfaces to echo client obd device */
1034 static struct echo_object *cl_echo_object_find(struct echo_device *d,
1035                                                struct lov_stripe_md **lsmp)
1036 {
1037         struct lu_env *env;
1038         struct echo_thread_info *info;
1039         struct echo_object_conf *conf;
1040         struct lov_stripe_md    *lsm;
1041         struct echo_object *eco;
1042         struct cl_object   *obj;
1043         struct lu_fid *fid;
1044         int refcheck;
1045         ENTRY;
1046
1047         LASSERT(lsmp);
1048         lsm = *lsmp;
1049         LASSERT(lsm);
1050         LASSERT(lsm->lsm_object_id);
1051
1052         /* Never return an object if the obd is to be freed. */
1053         if (echo_dev2cl(d)->cd_lu_dev.ld_obd->obd_stopping)
1054                 RETURN(ERR_PTR(-ENODEV));
1055
1056         env = cl_env_get(&refcheck);
1057         if (IS_ERR(env))
1058                 RETURN((void *)env);
1059
1060         info = echo_env_info(env);
1061         conf = &info->eti_conf;
1062         if (d->ed_next) {
1063                 if (!d->ed_next_islov) {
1064                         struct lov_oinfo *oinfo = lsm->lsm_oinfo[0];
1065                         LASSERT(oinfo != NULL);
1066                         oinfo->loi_id = lsm->lsm_object_id;
1067                         oinfo->loi_seq = lsm->lsm_object_seq;
1068                         conf->eoc_cl.u.coc_oinfo = oinfo;
1069                 } else {
1070                         struct lustre_md *md;
1071                         md = &info->eti_md;
1072                         memset(md, 0, sizeof *md);
1073                         md->lsm = lsm;
1074                         conf->eoc_cl.u.coc_md = md;
1075                 }
1076         }
1077         conf->eoc_md = lsmp;
1078
1079         fid  = &info->eti_fid;
1080         lsm2fid(lsm, fid);
1081
1082         obj = cl_object_find(env, echo_dev2cl(d), fid, &conf->eoc_cl);
1083         if (IS_ERR(obj))
1084                 GOTO(out, eco = (void*)obj);
1085
1086         eco = cl2echo_obj(obj);
1087         if (eco->eo_deleted) {
1088                 cl_object_put(env, obj);
1089                 eco = ERR_PTR(-EAGAIN);
1090         }
1091
1092 out:
1093         cl_env_put(env, &refcheck);
1094         RETURN(eco);
1095 }
1096
1097 static int cl_echo_object_put(struct echo_object *eco)
1098 {
1099         struct lu_env *env;
1100         struct cl_object *obj = echo_obj2cl(eco);
1101         int refcheck;
1102         ENTRY;
1103
1104         env = cl_env_get(&refcheck);
1105         if (IS_ERR(env))
1106                 RETURN(PTR_ERR(env));
1107
1108         /* an external function to kill an object? */
1109         if (eco->eo_deleted) {
1110                 struct lu_object_header *loh = obj->co_lu.lo_header;
1111                 LASSERT(&eco->eo_hdr == luh2coh(loh));
1112                 cfs_set_bit(LU_OBJECT_HEARD_BANSHEE, &loh->loh_flags);
1113         }
1114
1115         cl_object_put(env, obj);
1116         cl_env_put(env, &refcheck);
1117         RETURN(0);
1118 }
1119
1120 static int cl_echo_enqueue0(struct lu_env *env, struct echo_object *eco,
1121                             obd_off start, obd_off end, int mode,
1122                             __u64 *cookie , __u32 enqflags)
1123 {
1124         struct cl_io *io;
1125         struct cl_lock *lck;
1126         struct cl_object *obj;
1127         struct cl_lock_descr *descr;
1128         struct echo_thread_info *info;
1129         int rc = -ENOMEM;
1130         ENTRY;
1131
1132         info = echo_env_info(env);
1133         io = &info->eti_io;
1134         descr = &info->eti_descr;
1135         obj = echo_obj2cl(eco);
1136
1137         descr->cld_obj   = obj;
1138         descr->cld_start = cl_index(obj, start);
1139         descr->cld_end   = cl_index(obj, end);
1140         descr->cld_mode  = mode == LCK_PW ? CLM_WRITE : CLM_READ;
1141         descr->cld_enq_flags = enqflags;
1142         io->ci_obj = obj;
1143
1144         lck = cl_lock_request(env, io, descr, "ec enqueue", eco);
1145         if (lck) {
1146                 struct echo_client_obd *ec = eco->eo_dev->ed_ec;
1147                 struct echo_lock *el;
1148
1149                 rc = cl_wait(env, lck);
1150                 if (rc == 0) {
1151                         el = cl2echo_lock(cl_lock_at(lck, &echo_device_type));
1152                         cfs_spin_lock(&ec->ec_lock);
1153                         if (cfs_list_empty(&el->el_chain)) {
1154                                 cfs_list_add(&el->el_chain, &ec->ec_locks);
1155                                 el->el_cookie = ++ec->ec_unique;
1156                         }
1157                         cfs_atomic_inc(&el->el_refcount);
1158                         *cookie = el->el_cookie;
1159                         cfs_spin_unlock(&ec->ec_lock);
1160                 } else
1161                         cl_lock_release(env, lck, "ec enqueue", cfs_current());
1162         }
1163         RETURN(rc);
1164 }
1165
1166 static int cl_echo_enqueue(struct echo_object *eco, obd_off start, obd_off end,
1167                            int mode, __u64 *cookie)
1168 {
1169         struct echo_thread_info *info;
1170         struct lu_env *env;
1171         struct cl_io *io;
1172         int refcheck;
1173         int result;
1174         ENTRY;
1175
1176         env = cl_env_get(&refcheck);
1177         if (IS_ERR(env))
1178                 RETURN(PTR_ERR(env));
1179
1180         info = echo_env_info(env);
1181         io = &info->eti_io;
1182
1183         io->ci_ignore_layout = 1;
1184         result = cl_io_init(env, io, CIT_MISC, echo_obj2cl(eco));
1185         if (result < 0)
1186                 GOTO(out, result);
1187         LASSERT(result == 0);
1188
1189         result = cl_echo_enqueue0(env, eco, start, end, mode, cookie, 0);
1190         cl_io_fini(env, io);
1191
1192         EXIT;
1193 out:
1194         cl_env_put(env, &refcheck);
1195         return result;
1196 }
1197
1198 static int cl_echo_cancel0(struct lu_env *env, struct echo_device *ed,
1199                            __u64 cookie)
1200 {
1201         struct echo_client_obd *ec = ed->ed_ec;
1202         struct echo_lock       *ecl = NULL;
1203         cfs_list_t             *el;
1204         int found = 0, still_used = 0;
1205         ENTRY;
1206
1207         LASSERT(ec != NULL);
1208         cfs_spin_lock (&ec->ec_lock);
1209         cfs_list_for_each (el, &ec->ec_locks) {
1210                 ecl = cfs_list_entry (el, struct echo_lock, el_chain);
1211                 CDEBUG(D_INFO, "ecl: %p, cookie: "LPX64"\n", ecl, ecl->el_cookie);
1212                 found = (ecl->el_cookie == cookie);
1213                 if (found) {
1214                         if (cfs_atomic_dec_and_test(&ecl->el_refcount))
1215                                 cfs_list_del_init(&ecl->el_chain);
1216                         else
1217                                 still_used = 1;
1218                         break;
1219                 }
1220         }
1221         cfs_spin_unlock (&ec->ec_lock);
1222
1223         if (!found)
1224                 RETURN(-ENOENT);
1225
1226         echo_lock_release(env, ecl, still_used);
1227         RETURN(0);
1228 }
1229
1230 static int cl_echo_cancel(struct echo_device *ed, __u64 cookie)
1231 {
1232         struct lu_env *env;
1233         int refcheck;
1234         int rc;
1235         ENTRY;
1236
1237         env = cl_env_get(&refcheck);
1238         if (IS_ERR(env))
1239                 RETURN(PTR_ERR(env));
1240
1241         rc = cl_echo_cancel0(env, ed, cookie);
1242
1243         cl_env_put(env, &refcheck);
1244         RETURN(rc);
1245 }
1246
1247 static int cl_echo_async_brw(const struct lu_env *env, struct cl_io *io,
1248                              enum cl_req_type unused, struct cl_2queue *queue)
1249 {
1250         struct cl_page *clp;
1251         struct cl_page *temp;
1252         int result = 0;
1253         ENTRY;
1254
1255         cl_page_list_for_each_safe(clp, temp, &queue->c2_qin) {
1256                 int rc;
1257                 rc = cl_page_cache_add(env, io, clp, CRT_WRITE);
1258                 if (rc == 0)
1259                         continue;
1260                 result = result ?: rc;
1261         }
1262         RETURN(result);
1263 }
1264
1265 static int cl_echo_object_brw(struct echo_object *eco, int rw, obd_off offset,
1266                               cfs_page_t **pages, int npages, int async)
1267 {
1268         struct lu_env           *env;
1269         struct echo_thread_info *info;
1270         struct cl_object        *obj = echo_obj2cl(eco);
1271         struct echo_device      *ed  = eco->eo_dev;
1272         struct cl_2queue        *queue;
1273         struct cl_io            *io;
1274         struct cl_page          *clp;
1275         struct lustre_handle    lh = { 0 };
1276         int page_size = cl_page_size(obj);
1277         int refcheck;
1278         int rc;
1279         int i;
1280         ENTRY;
1281
1282         LASSERT((offset & ~CFS_PAGE_MASK) == 0);
1283         LASSERT(ed->ed_next != NULL);
1284         env = cl_env_get(&refcheck);
1285         if (IS_ERR(env))
1286                 RETURN(PTR_ERR(env));
1287
1288         info    = echo_env_info(env);
1289         io      = &info->eti_io;
1290         queue   = &info->eti_queue;
1291
1292         cl_2queue_init(queue);
1293
1294         io->ci_ignore_layout = 1;
1295         rc = cl_io_init(env, io, CIT_MISC, obj);
1296         if (rc < 0)
1297                 GOTO(out, rc);
1298         LASSERT(rc == 0);
1299
1300
1301         rc = cl_echo_enqueue0(env, eco, offset,
1302                               offset + npages * CFS_PAGE_SIZE - 1,
1303                               rw == READ ? LCK_PR : LCK_PW, &lh.cookie,
1304                               CEF_NEVER);
1305         if (rc < 0)
1306                 GOTO(error_lock, rc);
1307
1308         for (i = 0; i < npages; i++) {
1309                 LASSERT(pages[i]);
1310                 clp = cl_page_find(env, obj, cl_index(obj, offset),
1311                                    pages[i], CPT_TRANSIENT);
1312                 if (IS_ERR(clp)) {
1313                         rc = PTR_ERR(clp);
1314                         break;
1315                 }
1316                 LASSERT(clp->cp_type == CPT_TRANSIENT);
1317
1318                 rc = cl_page_own(env, io, clp);
1319                 if (rc) {
1320                         LASSERT(clp->cp_state == CPS_FREEING);
1321                         cl_page_put(env, clp);
1322                         break;
1323                 }
1324
1325                 cl_2queue_add(queue, clp);
1326
1327                 /* drop the reference count for cl_page_find, so that the page
1328                  * will be freed in cl_2queue_fini. */
1329                 cl_page_put(env, clp);
1330                 cl_page_clip(env, clp, 0, page_size);
1331
1332                 offset += page_size;
1333         }
1334
1335         if (rc == 0) {
1336                 enum cl_req_type typ = rw == READ ? CRT_READ : CRT_WRITE;
1337
1338                 async = async && (typ == CRT_WRITE);
1339                 if (async)
1340                         rc = cl_echo_async_brw(env, io, typ, queue);
1341                 else
1342                         rc = cl_io_submit_sync(env, io, typ, queue, 0);
1343                 CDEBUG(D_INFO, "echo_client %s write returns %d\n",
1344                        async ? "async" : "sync", rc);
1345         }
1346
1347         cl_echo_cancel0(env, ed, lh.cookie);
1348         EXIT;
1349 error_lock:
1350         cl_2queue_discard(env, io, queue);
1351         cl_2queue_disown(env, io, queue);
1352         cl_2queue_fini(env, queue);
1353         cl_io_fini(env, io);
1354 out:
1355         cl_env_put(env, &refcheck);
1356         return rc;
1357 }
1358 /** @} echo_exports */
1359
1360
1361 static obd_id last_object_id;
1362
1363 static int
1364 echo_copyout_lsm (struct lov_stripe_md *lsm, void *_ulsm, int ulsm_nob)
1365 {
1366         struct lov_stripe_md *ulsm = _ulsm;
1367         int nob, i;
1368
1369         nob = offsetof (struct lov_stripe_md, lsm_oinfo[lsm->lsm_stripe_count]);
1370         if (nob > ulsm_nob)
1371                 return (-EINVAL);
1372
1373         if (cfs_copy_to_user (ulsm, lsm, sizeof(ulsm)))
1374                 return (-EFAULT);
1375
1376         for (i = 0; i < lsm->lsm_stripe_count; i++) {
1377                 if (cfs_copy_to_user (ulsm->lsm_oinfo[i], lsm->lsm_oinfo[i],
1378                                       sizeof(lsm->lsm_oinfo[0])))
1379                         return (-EFAULT);
1380         }
1381         return 0;
1382 }
1383
1384 static int
1385 echo_copyin_lsm (struct echo_device *ed, struct lov_stripe_md *lsm,
1386                  void *ulsm, int ulsm_nob)
1387 {
1388         struct echo_client_obd *ec = ed->ed_ec;
1389         int                     i;
1390
1391         if (ulsm_nob < sizeof (*lsm))
1392                 return (-EINVAL);
1393
1394         if (cfs_copy_from_user (lsm, ulsm, sizeof (*lsm)))
1395                 return (-EFAULT);
1396
1397         if (lsm->lsm_stripe_count > ec->ec_nstripes ||
1398             lsm->lsm_magic != LOV_MAGIC ||
1399             (lsm->lsm_stripe_size & (~CFS_PAGE_MASK)) != 0 ||
1400             ((__u64)lsm->lsm_stripe_size * lsm->lsm_stripe_count > ~0UL))
1401                 return (-EINVAL);
1402
1403
1404         for (i = 0; i < lsm->lsm_stripe_count; i++) {
1405                 if (cfs_copy_from_user(lsm->lsm_oinfo[i],
1406                                        ((struct lov_stripe_md *)ulsm)-> \
1407                                        lsm_oinfo[i],
1408                                        sizeof(lsm->lsm_oinfo[0])))
1409                         return (-EFAULT);
1410         }
1411         return (0);
1412 }
1413
1414 static inline void echo_md_build_name(struct lu_name *lname, char *name,
1415                                       __u64 id)
1416 {
1417         sprintf(name, LPU64, id);
1418         lname->ln_name = name;
1419         lname->ln_namelen = strlen(name);
1420 }
1421
1422 static int
1423 echo_md_create_internal(const struct lu_env *env, struct echo_device *ed,
1424                         struct md_object *parent, struct lu_fid *fid,
1425                         struct lu_name *lname, struct md_op_spec *spec,
1426                         struct md_attr *ma)
1427 {
1428         struct lu_object        *ec_child, *child;
1429         struct lu_device        *ld = ed->ed_next;
1430         struct echo_thread_info *info = echo_env_info(env);
1431         struct lu_fid           *fid2 = &info->eti_fid2;
1432         struct lu_object_conf    conf = { .loc_flags = LOC_F_NEW };
1433         int                      rc;
1434
1435         rc = mdo_lookup(env, parent, lname, fid2, spec);
1436         if (rc == 0)
1437                 return -EEXIST;
1438         else if (rc != -ENOENT)
1439                 return rc;
1440
1441         ec_child = lu_object_find_at(env, &ed->ed_cl.cd_lu_dev,
1442                                      fid, &conf);
1443         if (IS_ERR(ec_child)) {
1444                 CERROR("Can not find the child "DFID": rc = %ld\n", PFID(fid),
1445                         PTR_ERR(ec_child));
1446                 return PTR_ERR(ec_child);
1447         }
1448
1449         child = lu_object_locate(ec_child->lo_header, ld->ld_type);
1450         if (child == NULL) {
1451                 CERROR("Can not locate the child "DFID"\n", PFID(fid));
1452                 GOTO(out_put, rc = -EINVAL);
1453         }
1454
1455         CDEBUG(D_RPCTRACE, "Start creating object "DFID" %s %p\n",
1456                PFID(lu_object_fid(&parent->mo_lu)), lname->ln_name, parent);
1457
1458         /*
1459          * Do not perform lookup sanity check. We know that name does not exist.
1460          */
1461         spec->sp_cr_lookup = 0;
1462         rc = mdo_create(env, parent, lname, lu2md(child), spec, ma);
1463         if (rc) {
1464                 CERROR("Can not create child "DFID": rc = %d\n", PFID(fid), rc);
1465                 GOTO(out_put, rc);
1466         }
1467         CDEBUG(D_RPCTRACE, "End creating object "DFID" %s %p rc  = %d\n",
1468                PFID(lu_object_fid(&parent->mo_lu)), lname->ln_name, parent, rc);
1469 out_put:
1470         lu_object_put(env, ec_child);
1471         return rc;
1472 }
1473
1474 static int echo_set_lmm_size(const struct lu_env *env,
1475                              struct lu_device *ld,
1476                              struct md_attr *ma, int *lmm_size,
1477                              int *cookie_size)
1478 {
1479         struct md_device *md = lu2md_dev(ld);
1480         int               rc;
1481         ENTRY;
1482
1483         md = lu2md_dev(ld);
1484         rc = md->md_ops->mdo_maxsize_get(env, md,
1485                                          lmm_size, cookie_size);
1486         if (rc)
1487                 RETURN(rc);
1488
1489         ma->ma_lmm_size = *lmm_size;
1490         if (*lmm_size > 0) {
1491                 OBD_ALLOC(ma->ma_lmm, *lmm_size);
1492                 if (ma->ma_lmm == NULL) {
1493                         ma->ma_lmm_size = 0;
1494                         RETURN(-ENOMEM);
1495                 }
1496         }
1497
1498         ma->ma_cookie_size = *cookie_size;
1499         if (*cookie_size > 0) {
1500                 OBD_ALLOC(ma->ma_cookie, *cookie_size);
1501                 if (ma->ma_cookie == NULL) {
1502                         ma->ma_cookie_size = 0;
1503                         RETURN(-ENOMEM);
1504                 }
1505         }
1506
1507         RETURN(0);
1508 }
1509
1510 static int echo_create_md_object(const struct lu_env *env,
1511                                  struct echo_device *ed,
1512                                  struct lu_object *ec_parent,
1513                                  struct lu_fid *fid,
1514                                  char *name, int namelen,
1515                                  __u64 id, __u32 mode, int count,
1516                                  int stripe_count, int stripe_offset)
1517 {
1518         struct lu_object        *parent;
1519         struct echo_thread_info *info = echo_env_info(env);
1520         struct lu_name          *lname = &info->eti_lname;
1521         struct md_op_spec       *spec = &info->eti_spec;
1522         struct md_attr          *ma = &info->eti_ma;
1523         struct lu_device        *ld = ed->ed_next;
1524         int                      rc = 0;
1525         int                      lmm_size = 0;
1526         int                      cookie_size = 0;
1527         int                      i;
1528
1529         parent = lu_object_locate(ec_parent->lo_header, ld->ld_type);
1530         if (ec_parent == NULL) {
1531                 lu_object_put(env, ec_parent);
1532                 RETURN(PTR_ERR(parent));
1533         }
1534
1535         memset(ma, 0, sizeof(*ma));
1536         memset(spec, 0, sizeof(*spec));
1537         if (stripe_count != 0) {
1538                 spec->sp_cr_flags |= FMODE_WRITE;
1539                 rc = echo_set_lmm_size(env, ld, ma, &lmm_size, &cookie_size);
1540                 if (rc)
1541                         GOTO(out_free, rc);
1542                 if (stripe_count != -1) {
1543                         struct lov_user_md_v3 *lum = &info->eti_lum;
1544                         lum->lmm_magic = LOV_USER_MAGIC_V3;
1545                         lum->lmm_stripe_count = stripe_count;
1546                         lum->lmm_stripe_offset = stripe_offset;
1547                         lum->lmm_pattern = 0;
1548                         spec->u.sp_ea.eadata = lum;
1549                         spec->sp_cr_flags |= MDS_OPEN_HAS_EA;
1550                 }
1551         }
1552
1553         ma->ma_attr.la_mode = mode;
1554         ma->ma_attr.la_valid = LA_CTIME;
1555         ma->ma_attr.la_ctime = cfs_time_current_64();
1556
1557         if (name != NULL) {
1558                 lname->ln_name = name;
1559                 lname->ln_namelen = namelen;
1560                 /* If name is specified, only create one object by name */
1561                 rc = echo_md_create_internal(env, ed, lu2md(parent), fid, lname,
1562                                              spec, ma);
1563                 GOTO(out_free, rc);
1564         }
1565
1566         /* Create multiple object sequenced by id */
1567         for (i = 0; i < count; i++) {
1568                 char *tmp_name = info->eti_name;
1569
1570                 echo_md_build_name(lname, tmp_name, id);
1571
1572                 rc = echo_md_create_internal(env, ed, lu2md(parent), fid, lname,
1573                                              spec, ma);
1574                 if (rc) {
1575                         CERROR("Can not create child %s: rc = %d\n", tmp_name,
1576                                 rc);
1577                         break;
1578                 }
1579                 id++;
1580                 fid->f_oid++;
1581         }
1582
1583 out_free:
1584         if (lmm_size > 0 && ma->ma_lmm != NULL)
1585                 OBD_FREE(ma->ma_lmm, lmm_size);
1586         if (cookie_size > 0 && ma->ma_cookie != NULL)
1587                 OBD_FREE(ma->ma_cookie, cookie_size);
1588
1589         return rc;
1590 }
1591
1592 static struct lu_object *echo_md_lookup(const struct lu_env *env,
1593                                         struct echo_device *ed,
1594                                         struct md_object *parent,
1595                                         struct lu_name *lname)
1596 {
1597         struct echo_thread_info *info = echo_env_info(env);
1598         struct lu_fid           *fid = &info->eti_fid;
1599         struct lu_object        *child;
1600         int    rc;
1601         ENTRY;
1602
1603         CDEBUG(D_INFO, "lookup %s in parent "DFID" %p\n", lname->ln_name,
1604                PFID(fid), parent);
1605         rc = mdo_lookup(env, parent, lname, fid, NULL);
1606         if (rc) {
1607                 CERROR("lookup %s: rc = %d\n", lname->ln_name, rc);
1608                 RETURN(ERR_PTR(rc));
1609         }
1610
1611         child = lu_object_find_at(env, &ed->ed_cl.cd_lu_dev, fid, NULL);
1612
1613         RETURN(child);
1614 }
1615
1616 static int echo_setattr_object(const struct lu_env *env,
1617                                struct echo_device *ed,
1618                                struct lu_object *ec_parent,
1619                                __u64 id, int count)
1620 {
1621         struct lu_object        *parent;
1622         struct echo_thread_info *info = echo_env_info(env);
1623         struct lu_name          *lname = &info->eti_lname;
1624         char                    *name = info->eti_name;
1625         struct lu_device        *ld = ed->ed_next;
1626         struct lu_buf           *buf = &info->eti_buf;
1627         int                      rc = 0;
1628         int                      i;
1629
1630         parent = lu_object_locate(ec_parent->lo_header, ld->ld_type);
1631         if (ec_parent == NULL) {
1632                 lu_object_put(env, ec_parent);
1633                 return PTR_ERR(parent);
1634         }
1635
1636         buf->lb_buf = info->eti_xattr_buf;
1637         buf->lb_len = sizeof(info->eti_xattr_buf);
1638         for (i = 0; i < count; i++) {
1639                 struct lu_object *ec_child, *child;
1640
1641                 echo_md_build_name(lname, name, id);
1642
1643                 ec_child = echo_md_lookup(env, ed, lu2md(parent), lname);
1644                 if (IS_ERR(ec_child)) {
1645                         CERROR("Can't find child %s: rc = %ld\n",
1646                                 lname->ln_name, PTR_ERR(ec_child));
1647                         RETURN(PTR_ERR(ec_child));
1648                 }
1649
1650                 child = lu_object_locate(ec_child->lo_header, ld->ld_type);
1651                 if (child == NULL) {
1652                         CERROR("Can not locate the child %s\n", lname->ln_name);
1653                         lu_object_put(env, ec_child);
1654                         rc = -EINVAL;
1655                         break;
1656                 }
1657
1658                 CDEBUG(D_RPCTRACE, "Start setattr object "DFID"\n",
1659                        PFID(lu_object_fid(child)));
1660
1661                 sprintf(name, "%s.test1", XATTR_USER_PREFIX);
1662                 rc = mo_xattr_set(env, lu2md(child), buf, name,
1663                                   LU_XATTR_CREATE);
1664                 if (rc) {
1665                         CERROR("Can not setattr child "DFID": rc = %d\n",
1666                                 PFID(lu_object_fid(child)), rc);
1667                         lu_object_put(env, ec_child);
1668                         break;
1669                 }
1670                 CDEBUG(D_RPCTRACE, "End setattr object "DFID"\n",
1671                        PFID(lu_object_fid(child)));
1672                 id++;
1673                 lu_object_put(env, ec_child);
1674         }
1675         return rc;
1676 }
1677
1678 static int echo_getattr_object(const struct lu_env *env,
1679                                struct echo_device *ed,
1680                                struct lu_object *ec_parent,
1681                                __u64 id, int count)
1682 {
1683         struct lu_object        *parent;
1684         struct echo_thread_info *info = echo_env_info(env);
1685         struct lu_name          *lname = &info->eti_lname;
1686         char                    *name = info->eti_name;
1687         struct md_attr          *ma = &info->eti_ma;
1688         struct lu_device        *ld = ed->ed_next;
1689         int                      rc = 0;
1690         int                      lmm_size = 0;
1691         int                      cookie_size = 0;
1692         int                      i;
1693
1694         parent = lu_object_locate(ec_parent->lo_header, ld->ld_type);
1695         if (ec_parent == NULL) {
1696                 lu_object_put(env, ec_parent);
1697                 return PTR_ERR(parent);
1698         }
1699
1700         memset(ma, 0, sizeof(*ma));
1701         rc = echo_set_lmm_size(env, ld, ma, &lmm_size, &cookie_size);
1702         if (rc)
1703                 GOTO(out_free, rc);
1704
1705         ma->ma_need |= MA_INODE | MA_LOV | MA_PFID | MA_HSM | MA_ACL_DEF;
1706         ma->ma_acl = info->eti_xattr_buf;
1707         ma->ma_acl_size = sizeof(info->eti_xattr_buf);
1708
1709         for (i = 0; i < count; i++) {
1710                 struct lu_object *ec_child, *child;
1711
1712                 ma->ma_valid = 0;
1713                 echo_md_build_name(lname, name, id);
1714
1715                 ec_child = echo_md_lookup(env, ed, lu2md(parent), lname);
1716                 if (IS_ERR(ec_child)) {
1717                         CERROR("Can't find child %s: rc = %ld\n",
1718                                lname->ln_name, PTR_ERR(ec_child));
1719                         RETURN(PTR_ERR(ec_child));
1720                 }
1721
1722                 child = lu_object_locate(ec_child->lo_header, ld->ld_type);
1723                 if (child == NULL) {
1724                         CERROR("Can not locate the child %s\n", lname->ln_name);
1725                         lu_object_put(env, ec_child);
1726                         GOTO(out_free, rc = -EINVAL);
1727                 }
1728
1729                 CDEBUG(D_RPCTRACE, "Start getattr object "DFID"\n",
1730                        PFID(lu_object_fid(child)));
1731                 rc = mo_attr_get(env, lu2md(child), ma);
1732                 if (rc) {
1733                         CERROR("Can not getattr child "DFID": rc = %d\n",
1734                                 PFID(lu_object_fid(child)), rc);
1735                         lu_object_put(env, ec_child);
1736                         break;
1737                 }
1738                 CDEBUG(D_RPCTRACE, "End getattr object "DFID"\n",
1739                        PFID(lu_object_fid(child)));
1740                 id++;
1741                 lu_object_put(env, ec_child);
1742         }
1743
1744 out_free:
1745         if (lmm_size > 0 && ma->ma_lmm != NULL)
1746                 OBD_FREE(ma->ma_lmm, lmm_size);
1747         if (cookie_size > 0 && ma->ma_cookie != NULL)
1748                 OBD_FREE(ma->ma_cookie, cookie_size);
1749         return rc;
1750 }
1751
1752 static int echo_lookup_object(const struct lu_env *env,
1753                               struct echo_device *ed,
1754                               struct lu_object *ec_parent,
1755                               __u64 id, int count)
1756 {
1757         struct lu_object        *parent;
1758         struct echo_thread_info *info = echo_env_info(env);
1759         struct lu_name          *lname = &info->eti_lname;
1760         char                    *name = info->eti_name;
1761         struct lu_fid           *fid = &info->eti_fid;
1762         struct lu_device        *ld = ed->ed_next;
1763         int                      rc = 0;
1764         int                      i;
1765
1766         parent = lu_object_locate(ec_parent->lo_header, ld->ld_type);
1767         if (ec_parent == NULL) {
1768                 lu_object_put(env, ec_parent);
1769                 return PTR_ERR(parent);
1770         }
1771
1772         /*prepare the requests*/
1773         for (i = 0; i < count; i++) {
1774                 echo_md_build_name(lname, name, id);
1775
1776                 CDEBUG(D_RPCTRACE, "Start lookup object "DFID" %s %p\n",
1777                        PFID(lu_object_fid(parent)), lname->ln_name, parent);
1778
1779                 rc = mdo_lookup(env, lu2md(parent), lname, fid, NULL);
1780                 if (rc) {
1781                         CERROR("Can not lookup child %s: rc = %d\n", name, rc);
1782                         break;
1783                 }
1784                 CDEBUG(D_RPCTRACE, "End lookup object "DFID" %s %p\n",
1785                        PFID(lu_object_fid(parent)), lname->ln_name, parent);
1786
1787                 id++;
1788         }
1789         return rc;
1790 }
1791
1792 static int echo_md_destroy_internal(const struct lu_env *env,
1793                                     struct echo_device *ed,
1794                                     struct md_object *parent,
1795                                     struct lu_name *lname,
1796                                     struct md_attr *ma)
1797 {
1798         struct lu_device   *ld = ed->ed_next;
1799         struct lu_object   *ec_child;
1800         struct lu_object   *child;
1801         int                 rc;
1802
1803         ec_child = echo_md_lookup(env, ed, parent, lname);
1804         if (IS_ERR(ec_child)) {
1805                 CERROR("Can't find child %s: rc = %ld\n", lname->ln_name,
1806                         PTR_ERR(ec_child));
1807                 RETURN(PTR_ERR(ec_child));
1808         }
1809
1810         child = lu_object_locate(ec_child->lo_header, ld->ld_type);
1811         if (child == NULL) {
1812                 CERROR("Can not locate the child %s\n", lname->ln_name);
1813                 GOTO(out_put, rc = -EINVAL);
1814         }
1815
1816         CDEBUG(D_RPCTRACE, "Start destroy object "DFID" %s %p\n",
1817                PFID(lu_object_fid(&parent->mo_lu)), lname->ln_name, parent);
1818
1819 #if LUSTRE_VERSION_CODE < OBD_OCD_VERSION(2, 3, 55, 0)
1820         /* After 2.4, MDT will send destroy RPC to OST directly, so no need
1821          * this flag */
1822         ma->ma_valid |= MA_FLAGS;
1823         ma->ma_attr_flags |= MDS_UNLINK_DESTROY;
1824 #else
1825 #warning "Please remove this after 2.4 (LOD/OSP)"
1826 #endif
1827         rc = mdo_unlink(env, parent, lu2md(child), lname, ma);
1828         if (rc) {
1829                 CERROR("Can not unlink child %s: rc = %d\n",
1830                         lname->ln_name, rc);
1831                 GOTO(out_put, rc);
1832         }
1833         CDEBUG(D_RPCTRACE, "End destroy object "DFID" %s %p\n",
1834                PFID(lu_object_fid(&parent->mo_lu)), lname->ln_name, parent);
1835 out_put:
1836         lu_object_put(env, ec_child);
1837         return rc;
1838 }
1839
1840 static int echo_destroy_object(const struct lu_env *env,
1841                                struct echo_device *ed,
1842                                struct lu_object *ec_parent,
1843                                char *name, int namelen,
1844                                __u64 id, __u32 mode,
1845                                int count)
1846 {
1847         struct echo_thread_info *info = echo_env_info(env);
1848         struct lu_name          *lname = &info->eti_lname;
1849         struct md_attr          *ma = &info->eti_ma;
1850         struct lu_device        *ld = ed->ed_next;
1851         struct lu_object        *parent;
1852         int                      rc = 0;
1853         int                      lmm_size = 0;
1854         int                      cookie_size = 0;
1855         int                      i;
1856         ENTRY;
1857
1858         parent = lu_object_locate(ec_parent->lo_header, ld->ld_type);
1859         if (parent == NULL)
1860                 RETURN(-EINVAL);
1861
1862         memset(ma, 0, sizeof(*ma));
1863         ma->ma_attr.la_mode = mode;
1864         ma->ma_attr.la_valid = LA_CTIME;
1865         ma->ma_attr.la_ctime = cfs_time_current_64();
1866         ma->ma_need = MA_INODE;
1867         ma->ma_valid = 0;
1868
1869         rc = echo_set_lmm_size(env, ld, ma, &lmm_size, &cookie_size);
1870         if (rc)
1871                 GOTO(out_free, rc);
1872         if (name != NULL) {
1873                 lname->ln_name = name;
1874                 lname->ln_namelen = namelen;
1875                 rc = echo_md_destroy_internal(env, ed, lu2md(parent), lname,
1876                                               ma);
1877                 GOTO(out_free, rc);
1878         }
1879
1880         /*prepare the requests*/
1881         for (i = 0; i < count; i++) {
1882                 char *tmp_name = info->eti_name;
1883
1884                 ma->ma_need |= MA_LOV;
1885                 ma->ma_valid = 0;
1886                 echo_md_build_name(lname, tmp_name, id);
1887
1888                 rc = echo_md_destroy_internal(env, ed, lu2md(parent), lname,
1889                                               ma);
1890                 if (rc) {
1891                         CERROR("Can not unlink child %s: rc = %d\n", name, rc);
1892                         break;
1893                 }
1894                 id++;
1895         }
1896
1897 out_free:
1898         if (lmm_size > 0 && ma->ma_lmm != NULL)
1899                 OBD_FREE(ma->ma_lmm, lmm_size);
1900         if (cookie_size > 0 && ma->ma_cookie != NULL)
1901                 OBD_FREE(ma->ma_cookie, cookie_size);
1902         RETURN(rc);
1903 }
1904
1905 static struct lu_object *echo_resolve_path(const struct lu_env *env,
1906                                            struct echo_device *ed, char *path,
1907                                            int path_len)
1908 {
1909         struct lu_device        *ld = ed->ed_next;
1910         struct md_device        *md = lu2md_dev(ld);
1911         struct echo_thread_info *info = echo_env_info(env);
1912         struct lu_fid           *fid = &info->eti_fid;
1913         struct lu_name          *lname = &info->eti_lname;
1914         struct lu_object        *parent = NULL;
1915         struct lu_object        *child = NULL;
1916         int rc = 0;
1917         ENTRY;
1918
1919         /*Only support MDD layer right now*/
1920         rc = md->md_ops->mdo_root_get(env, md, fid);
1921         if (rc) {
1922                 CERROR("get root error: rc = %d\n", rc);
1923                 RETURN(ERR_PTR(rc));
1924         }
1925
1926         parent = lu_object_find_at(env, &ed->ed_cl.cd_lu_dev, fid, NULL);
1927         if (IS_ERR(parent)) {
1928                 CERROR("Can not find the parent "DFID": rc = %ld\n",
1929                         PFID(fid), PTR_ERR(parent));
1930                 RETURN(parent);
1931         }
1932
1933         while (1) {
1934                 struct lu_object *ld_parent;
1935                 char *e;
1936
1937                 e = strsep(&path, "/");
1938                 if (e == NULL)
1939                         break;
1940
1941                 if (e[0] == 0) {
1942                         if (!path || path[0] == '\0')
1943                                 break;
1944                         continue;
1945                 }
1946
1947                 lname->ln_name = e;
1948                 lname->ln_namelen = strlen(e);
1949
1950                 ld_parent = lu_object_locate(parent->lo_header, ld->ld_type);
1951                 if (ld_parent == NULL) {
1952                         lu_object_put(env, parent);
1953                         rc = -EINVAL;
1954                         break;
1955                 }
1956
1957                 child = echo_md_lookup(env, ed, lu2md(ld_parent), lname);
1958                 lu_object_put(env, parent);
1959                 if (IS_ERR(child)) {
1960                         rc = (int)PTR_ERR(child);
1961                         CERROR("lookup %s under parent "DFID": rc = %d\n",
1962                                 lname->ln_name, PFID(lu_object_fid(ld_parent)),
1963                                 rc);
1964                         break;
1965                 }
1966                 parent = child;
1967         }
1968         if (rc)
1969                 RETURN(ERR_PTR(rc));
1970
1971         RETURN(parent);
1972 }
1973
1974 #define ECHO_MD_CTX_TAG (LCT_REMEMBER | LCT_MD_THREAD)
1975 #define ECHO_MD_SES_TAG (LCT_REMEMBER | LCT_SESSION)
1976 static int echo_md_handler(struct echo_device *ed, int command,
1977                            char *path, int path_len, int id, int count,
1978                            struct obd_ioctl_data *data)
1979 {
1980         struct lu_device      *ld = ed->ed_next;
1981         struct lu_env         *env;
1982         int                    refcheck;
1983         struct lu_object      *parent;
1984         char                  *name = NULL;
1985         int                    namelen = data->ioc_plen2;
1986         int                    rc = 0;
1987         ENTRY;
1988
1989         if (ld == NULL) {
1990                 CERROR("MD echo client is not being initialized properly\n");
1991                 RETURN(-EINVAL);
1992         }
1993
1994         if (strcmp(ld->ld_type->ldt_name, LUSTRE_MDD_NAME)) {
1995                 CERROR("Only support MDD layer right now!\n");
1996                 RETURN(-EINVAL);
1997         }
1998
1999         env = cl_env_get(&refcheck);
2000         if (IS_ERR(env))
2001                 RETURN(PTR_ERR(env));
2002
2003         rc = lu_env_refill_by_tags(env, ECHO_MD_CTX_TAG, ECHO_MD_SES_TAG);
2004         if (rc != 0) {
2005                 cl_env_put(env, &refcheck);
2006                 RETURN(rc);
2007         }
2008
2009         parent = echo_resolve_path(env, ed, path, path_len);
2010         if (IS_ERR(parent)) {
2011                 CERROR("Can not resolve the path %s: rc = %ld\n", path,
2012                         PTR_ERR(parent));
2013                 cl_env_put(env, &refcheck);
2014                 RETURN(PTR_ERR(parent));
2015         }
2016
2017         if (namelen > 0) {
2018                 OBD_ALLOC(name, namelen + 1);
2019                 if (name == NULL)
2020                         RETURN(-ENOMEM);
2021                 if (cfs_copy_from_user(name, data->ioc_pbuf2, namelen)) {
2022                         OBD_FREE(name, namelen + 1);
2023                         RETURN(-EFAULT);
2024                 }
2025         }
2026
2027         switch (command) {
2028         case ECHO_MD_CREATE:
2029         case ECHO_MD_MKDIR: {
2030                 struct echo_thread_info *info = echo_env_info(env);
2031                 __u32 mode = data->ioc_obdo2.o_mode;
2032                 struct lu_fid *fid = &info->eti_fid;
2033                 int stripe_count = (int)data->ioc_obdo2.o_misc;
2034                 int stripe_index = (int)data->ioc_obdo2.o_stripe_idx;
2035
2036                 fid->f_seq = data->ioc_obdo1.o_seq;
2037                 fid->f_oid = (__u32)data->ioc_obdo1.o_id;
2038                 fid->f_ver = 0;
2039                 rc = echo_create_md_object(env, ed, parent, fid, name, namelen,
2040                                            id, mode, count, stripe_count,
2041                                            stripe_index);
2042                 break;
2043         }
2044         case ECHO_MD_DESTROY:
2045         case ECHO_MD_RMDIR: {
2046                 __u32 mode = data->ioc_obdo2.o_mode;
2047
2048                 rc = echo_destroy_object(env, ed, parent, name, namelen,
2049                                          id, mode, count);
2050                 break;
2051         }
2052         case ECHO_MD_LOOKUP:
2053                 rc = echo_lookup_object(env, ed, parent, id, count);
2054                 break;
2055         case ECHO_MD_GETATTR:
2056                 rc = echo_getattr_object(env, ed, parent, id, count);
2057                 break;
2058         case ECHO_MD_SETATTR:
2059                 rc = echo_setattr_object(env, ed, parent, id, count);
2060                 break;
2061         default:
2062                 CERROR("unknown command %d\n", command);
2063                 rc = -EINVAL;
2064                 break;
2065         }
2066         if (name != NULL)
2067                 OBD_FREE(name, namelen + 1);
2068         lu_object_put(env, parent);
2069         cl_env_put(env, &refcheck);
2070         return rc;
2071 }
2072
2073 static int echo_create_object(const struct lu_env *env, struct echo_device *ed,
2074                               int on_target, struct obdo *oa, void *ulsm,
2075                               int ulsm_nob, struct obd_trans_info *oti)
2076 {
2077         struct echo_object     *eco;
2078         struct echo_client_obd *ec = ed->ed_ec;
2079         struct lov_stripe_md   *lsm = NULL;
2080         int                     rc;
2081         int                     created = 0;
2082         ENTRY;
2083
2084         if ((oa->o_valid & OBD_MD_FLID) == 0 && /* no obj id */
2085             (on_target ||                       /* set_stripe */
2086              ec->ec_nstripes != 0)) {           /* LOV */
2087                 CERROR ("No valid oid\n");
2088                 RETURN(-EINVAL);
2089         }
2090
2091         rc = obd_alloc_memmd(ec->ec_exp, &lsm);
2092         if (rc < 0) {
2093                 CERROR("Cannot allocate md: rc = %d\n", rc);
2094                 GOTO(failed, rc);
2095         }
2096
2097         if (ulsm != NULL) {
2098                 int i, idx;
2099
2100                 rc = echo_copyin_lsm (ed, lsm, ulsm, ulsm_nob);
2101                 if (rc != 0)
2102                         GOTO(failed, rc);
2103
2104                 if (lsm->lsm_stripe_count == 0)
2105                         lsm->lsm_stripe_count = ec->ec_nstripes;
2106
2107                 if (lsm->lsm_stripe_size == 0)
2108                         lsm->lsm_stripe_size = CFS_PAGE_SIZE;
2109
2110                 idx = cfs_rand();
2111
2112                 /* setup stripes: indices + default ids if required */
2113                 for (i = 0; i < lsm->lsm_stripe_count; i++) {
2114                         if (lsm->lsm_oinfo[i]->loi_id == 0)
2115                                 lsm->lsm_oinfo[i]->loi_id = lsm->lsm_object_id;
2116
2117                         lsm->lsm_oinfo[i]->loi_ost_idx =
2118                                 (idx + i) % ec->ec_nstripes;
2119                 }
2120         }
2121
2122         /* setup object ID here for !on_target and LOV hint */
2123         if (oa->o_valid & OBD_MD_FLID)
2124                 lsm->lsm_object_id = oa->o_id;
2125
2126         if (lsm->lsm_object_id == 0)
2127                 lsm->lsm_object_id = ++last_object_id;
2128
2129         rc = 0;
2130         if (on_target) {
2131                 /* Only echo objects are allowed to be created */
2132                 LASSERT((oa->o_valid & OBD_MD_FLGROUP) &&
2133                         (oa->o_seq == FID_SEQ_ECHO));
2134                 rc = obd_create(env, ec->ec_exp, oa, &lsm, oti);
2135                 if (rc != 0) {
2136                         CERROR("Cannot create objects: rc = %d\n", rc);
2137                         GOTO(failed, rc);
2138                 }
2139                 created = 1;
2140         }
2141
2142         /* See what object ID we were given */
2143         oa->o_id = lsm->lsm_object_id;
2144         oa->o_valid |= OBD_MD_FLID;
2145
2146         eco = cl_echo_object_find(ed, &lsm);
2147         if (IS_ERR(eco))
2148                 GOTO(failed, rc = PTR_ERR(eco));
2149         cl_echo_object_put(eco);
2150
2151         CDEBUG(D_INFO, "oa->o_id = %lx\n", (long)oa->o_id);
2152         EXIT;
2153
2154  failed:
2155         if (created && rc)
2156                 obd_destroy(env, ec->ec_exp, oa, lsm, oti, NULL, NULL);
2157         if (lsm)
2158                 obd_free_memmd(ec->ec_exp, &lsm);
2159         if (rc)
2160                 CERROR("create object failed with: rc = %d\n", rc);
2161         return (rc);
2162 }
2163
2164 static int echo_get_object(struct echo_object **ecop, struct echo_device *ed,
2165                            struct obdo *oa)
2166 {
2167         struct echo_client_obd *ec  = ed->ed_ec;
2168         struct lov_stripe_md   *lsm = NULL;
2169         struct echo_object     *eco;
2170         int                     rc;
2171         ENTRY;
2172
2173         if ((oa->o_valid & OBD_MD_FLID) == 0 ||
2174             oa->o_id == 0)  /* disallow use of object id 0 */
2175         {
2176                 CERROR ("No valid oid\n");
2177                 RETURN(-EINVAL);
2178         }
2179
2180         rc = obd_alloc_memmd(ec->ec_exp, &lsm);
2181         if (rc < 0)
2182                 RETURN(rc);
2183
2184         lsm->lsm_object_id = oa->o_id;
2185         if (oa->o_valid & OBD_MD_FLGROUP)
2186                 lsm->lsm_object_seq = oa->o_seq;
2187         else
2188                 lsm->lsm_object_seq = FID_SEQ_ECHO;
2189
2190         rc = 0;
2191         eco = cl_echo_object_find(ed, &lsm);
2192         if (!IS_ERR(eco))
2193                 *ecop = eco;
2194         else
2195                 rc = PTR_ERR(eco);
2196         if (lsm)
2197                 obd_free_memmd(ec->ec_exp, &lsm);
2198         RETURN(rc);
2199 }
2200
2201 static void echo_put_object(struct echo_object *eco)
2202 {
2203         if (cl_echo_object_put(eco))
2204                 CERROR("echo client: drop an object failed");
2205 }
2206
2207 static void
2208 echo_get_stripe_off_id (struct lov_stripe_md *lsm, obd_off *offp, obd_id *idp)
2209 {
2210         unsigned long stripe_count;
2211         unsigned long stripe_size;
2212         unsigned long width;
2213         unsigned long woffset;
2214         int           stripe_index;
2215         obd_off       offset;
2216
2217         if (lsm->lsm_stripe_count <= 1)
2218                 return;
2219
2220         offset       = *offp;
2221         stripe_size  = lsm->lsm_stripe_size;
2222         stripe_count = lsm->lsm_stripe_count;
2223
2224         /* width = # bytes in all stripes */
2225         width = stripe_size * stripe_count;
2226
2227         /* woffset = offset within a width; offset = whole number of widths */
2228         woffset = do_div (offset, width);
2229
2230         stripe_index = woffset / stripe_size;
2231
2232         *idp = lsm->lsm_oinfo[stripe_index]->loi_id;
2233         *offp = offset * stripe_size + woffset % stripe_size;
2234 }
2235
2236 static void
2237 echo_client_page_debug_setup(struct lov_stripe_md *lsm,
2238                              cfs_page_t *page, int rw, obd_id id,
2239                              obd_off offset, obd_off count)
2240 {
2241         char    *addr;
2242         obd_off  stripe_off;
2243         obd_id   stripe_id;
2244         int      delta;
2245
2246         /* no partial pages on the client */
2247         LASSERT(count == CFS_PAGE_SIZE);
2248
2249         addr = cfs_kmap(page);
2250
2251         for (delta = 0; delta < CFS_PAGE_SIZE; delta += OBD_ECHO_BLOCK_SIZE) {
2252                 if (rw == OBD_BRW_WRITE) {
2253                         stripe_off = offset + delta;
2254                         stripe_id = id;
2255                         echo_get_stripe_off_id(lsm, &stripe_off, &stripe_id);
2256                 } else {
2257                         stripe_off = 0xdeadbeef00c0ffeeULL;
2258                         stripe_id = 0xdeadbeef00c0ffeeULL;
2259                 }
2260                 block_debug_setup(addr + delta, OBD_ECHO_BLOCK_SIZE,
2261                                   stripe_off, stripe_id);
2262         }
2263
2264         cfs_kunmap(page);
2265 }
2266
2267 static int echo_client_page_debug_check(struct lov_stripe_md *lsm,
2268                                         cfs_page_t *page, obd_id id,
2269                                         obd_off offset, obd_off count)
2270 {
2271         obd_off stripe_off;
2272         obd_id  stripe_id;
2273         char   *addr;
2274         int     delta;
2275         int     rc;
2276         int     rc2;
2277
2278         /* no partial pages on the client */
2279         LASSERT(count == CFS_PAGE_SIZE);
2280
2281         addr = cfs_kmap(page);
2282
2283         for (rc = delta = 0; delta < CFS_PAGE_SIZE; delta += OBD_ECHO_BLOCK_SIZE) {
2284                 stripe_off = offset + delta;
2285                 stripe_id = id;
2286                 echo_get_stripe_off_id (lsm, &stripe_off, &stripe_id);
2287
2288                 rc2 = block_debug_check("test_brw",
2289                                         addr + delta, OBD_ECHO_BLOCK_SIZE,
2290                                         stripe_off, stripe_id);
2291                 if (rc2 != 0) {
2292                         CERROR ("Error in echo object "LPX64"\n", id);
2293                         rc = rc2;
2294                 }
2295         }
2296
2297         cfs_kunmap(page);
2298         return rc;
2299 }
2300
2301 static int echo_client_kbrw(struct echo_device *ed, int rw, struct obdo *oa,
2302                             struct echo_object *eco, obd_off offset,
2303                             obd_size count, int async,
2304                             struct obd_trans_info *oti)
2305 {
2306         struct lov_stripe_md   *lsm = eco->eo_lsm;
2307         obd_count               npages;
2308         struct brw_page        *pga;
2309         struct brw_page        *pgp;
2310         cfs_page_t            **pages;
2311         obd_off                 off;
2312         int                     i;
2313         int                     rc;
2314         int                     verify;
2315         int                     gfp_mask;
2316         int                     brw_flags = 0;
2317         ENTRY;
2318
2319         verify = ((oa->o_id) != ECHO_PERSISTENT_OBJID &&
2320                   (oa->o_valid & OBD_MD_FLFLAGS) != 0 &&
2321                   (oa->o_flags & OBD_FL_DEBUG_CHECK) != 0);
2322
2323         gfp_mask = ((oa->o_id & 2) == 0) ? CFS_ALLOC_STD : CFS_ALLOC_HIGHUSER;
2324
2325         LASSERT(rw == OBD_BRW_WRITE || rw == OBD_BRW_READ);
2326         LASSERT(lsm != NULL);
2327         LASSERT(lsm->lsm_object_id == oa->o_id);
2328
2329         if (count <= 0 ||
2330             (count & (~CFS_PAGE_MASK)) != 0)
2331                 RETURN(-EINVAL);
2332
2333         /* XXX think again with misaligned I/O */
2334         npages = count >> CFS_PAGE_SHIFT;
2335
2336         if (rw == OBD_BRW_WRITE)
2337                 brw_flags = OBD_BRW_ASYNC;
2338
2339         OBD_ALLOC(pga, npages * sizeof(*pga));
2340         if (pga == NULL)
2341                 RETURN(-ENOMEM);
2342
2343         OBD_ALLOC(pages, npages * sizeof(*pages));
2344         if (pages == NULL) {
2345                 OBD_FREE(pga, npages * sizeof(*pga));
2346                 RETURN(-ENOMEM);
2347         }
2348
2349         for (i = 0, pgp = pga, off = offset;
2350              i < npages;
2351              i++, pgp++, off += CFS_PAGE_SIZE) {
2352
2353                 LASSERT (pgp->pg == NULL);      /* for cleanup */
2354
2355                 rc = -ENOMEM;
2356                 OBD_PAGE_ALLOC(pgp->pg, gfp_mask);
2357                 if (pgp->pg == NULL)
2358                         goto out;
2359
2360                 pages[i] = pgp->pg;
2361                 pgp->count = CFS_PAGE_SIZE;
2362                 pgp->off = off;
2363                 pgp->flag = brw_flags;
2364
2365                 if (verify)
2366                         echo_client_page_debug_setup(lsm, pgp->pg, rw,
2367                                                      oa->o_id, off, pgp->count);
2368         }
2369
2370         /* brw mode can only be used at client */
2371         LASSERT(ed->ed_next != NULL);
2372         rc = cl_echo_object_brw(eco, rw, offset, pages, npages, async);
2373
2374  out:
2375         if (rc != 0 || rw != OBD_BRW_READ)
2376                 verify = 0;
2377
2378         for (i = 0, pgp = pga; i < npages; i++, pgp++) {
2379                 if (pgp->pg == NULL)
2380                         continue;
2381
2382                 if (verify) {
2383                         int vrc;
2384                         vrc = echo_client_page_debug_check(lsm, pgp->pg, oa->o_id,
2385                                                            pgp->off, pgp->count);
2386                         if (vrc != 0 && rc == 0)
2387                                 rc = vrc;
2388                 }
2389                 OBD_PAGE_FREE(pgp->pg);
2390         }
2391         OBD_FREE(pga, npages * sizeof(*pga));
2392         OBD_FREE(pages, npages * sizeof(*pages));
2393         RETURN(rc);
2394 }
2395
2396 static int echo_client_prep_commit(struct obd_export *exp, int rw,
2397                                    struct obdo *oa, struct echo_object *eco,
2398                                    obd_off offset, obd_size count,
2399                                    obd_size batch, struct obd_trans_info *oti,
2400                                    int async)
2401 {
2402         struct lov_stripe_md *lsm = eco->eo_lsm;
2403         struct obd_ioobj ioo;
2404         struct niobuf_local *lnb;
2405         struct niobuf_remote *rnb;
2406         obd_off off;
2407         obd_size npages, tot_pages;
2408         int i, ret = 0;
2409         ENTRY;
2410
2411         if (count <= 0 || (count & (~CFS_PAGE_MASK)) != 0 ||
2412             (lsm != NULL && lsm->lsm_object_id != oa->o_id))
2413                 RETURN(-EINVAL);
2414
2415         npages = batch >> CFS_PAGE_SHIFT;
2416         tot_pages = count >> CFS_PAGE_SHIFT;
2417
2418         OBD_ALLOC(lnb, npages * sizeof(struct niobuf_local));
2419         OBD_ALLOC(rnb, npages * sizeof(struct niobuf_remote));
2420
2421         if (lnb == NULL || rnb == NULL)
2422                 GOTO(out, ret = -ENOMEM);
2423
2424         obdo_to_ioobj(oa, &ioo);
2425
2426         off = offset;
2427
2428         for(; tot_pages; tot_pages -= npages) {
2429                 int lpages;
2430
2431                 if (tot_pages < npages)
2432                         npages = tot_pages;
2433
2434                 for (i = 0; i < npages; i++, off += CFS_PAGE_SIZE) {
2435                         rnb[i].offset = off;
2436                         rnb[i].len = CFS_PAGE_SIZE;
2437                 }
2438
2439                 ioo.ioo_bufcnt = npages;
2440                 oti->oti_transno = 0;
2441
2442                 lpages = npages;
2443                 ret = obd_preprw(NULL, rw, exp, oa, 1, &ioo, rnb, &lpages,
2444                                  lnb, oti, NULL);
2445                 if (ret != 0)
2446                         GOTO(out, ret);
2447                 LASSERT(lpages == npages);
2448
2449                 for (i = 0; i < lpages; i++) {
2450                         cfs_page_t *page = lnb[i].page;
2451
2452                         /* read past eof? */
2453                         if (page == NULL && lnb[i].rc == 0)
2454                                 continue;
2455
2456                         if (async)
2457                                 lnb[i].flags |= OBD_BRW_ASYNC;
2458
2459                         if (oa->o_id == ECHO_PERSISTENT_OBJID ||
2460                             (oa->o_valid & OBD_MD_FLFLAGS) == 0 ||
2461                             (oa->o_flags & OBD_FL_DEBUG_CHECK) == 0)
2462                                 continue;
2463
2464                         if (rw == OBD_BRW_WRITE)
2465                                 echo_client_page_debug_setup(lsm, page, rw,
2466                                                              oa->o_id,
2467                                                              rnb[i].offset,
2468                                                              rnb[i].len);
2469                         else
2470                                 echo_client_page_debug_check(lsm, page,
2471                                                              oa->o_id,
2472                                                              rnb[i].offset,
2473                                                              rnb[i].len);
2474                 }
2475
2476                 ret = obd_commitrw(NULL, rw, exp, oa, 1, &ioo,
2477                                    rnb, npages, lnb, oti, ret);
2478                 if (ret != 0)
2479                         GOTO(out, ret);
2480
2481                 /* Reset oti otherwise it would confuse ldiskfs. */
2482                 memset(oti, 0, sizeof(*oti));
2483         }
2484
2485 out:
2486         if (lnb)
2487                 OBD_FREE(lnb, npages * sizeof(struct niobuf_local));
2488         if (rnb)
2489                 OBD_FREE(rnb, npages * sizeof(struct niobuf_remote));
2490         RETURN(ret);
2491 }
2492
2493 static int echo_client_brw_ioctl(int rw, struct obd_export *exp,
2494                                  struct obd_ioctl_data *data)
2495 {
2496         struct obd_device *obd = class_exp2obd(exp);
2497         struct echo_device *ed = obd2echo_dev(obd);
2498         struct echo_client_obd *ec = ed->ed_ec;
2499         struct obd_trans_info dummy_oti = { 0 };
2500         struct obdo *oa = &data->ioc_obdo1;
2501         struct echo_object *eco;
2502         int rc;
2503         int async = 1;
2504         long test_mode;
2505         ENTRY;
2506
2507         LASSERT(oa->o_valid & OBD_MD_FLGROUP);
2508
2509         rc = echo_get_object(&eco, ed, oa);
2510         if (rc)
2511                 RETURN(rc);
2512
2513         oa->o_valid &= ~OBD_MD_FLHANDLE;
2514
2515         /* obdfilter doesn't support obd_brw now, simulate via prep + commit */
2516         test_mode = (long)data->ioc_pbuf1;
2517         if (test_mode == 1)
2518                 async = 0;
2519
2520         if (ed->ed_next == NULL && test_mode != 3) {
2521                 test_mode = 3;
2522                 data->ioc_plen1 = data->ioc_count;
2523         }
2524
2525         /* Truncate batch size to maximum */
2526         if (data->ioc_plen1 > PTLRPC_MAX_BRW_SIZE)
2527                 data->ioc_plen1 = PTLRPC_MAX_BRW_SIZE;
2528
2529         switch (test_mode) {
2530         case 1:
2531                 /* fall through */
2532         case 2:
2533                 rc = echo_client_kbrw(ed, rw, oa,
2534                                       eco, data->ioc_offset,
2535                                       data->ioc_count, async, &dummy_oti);
2536                 break;
2537         case 3:
2538                 rc = echo_client_prep_commit(ec->ec_exp, rw, oa,
2539                                             eco, data->ioc_offset,
2540                                             data->ioc_count, data->ioc_plen1,
2541                                             &dummy_oti, async);
2542                 break;
2543         default:
2544                 rc = -EINVAL;
2545         }
2546         echo_put_object(eco);
2547         RETURN(rc);
2548 }
2549
2550 static int
2551 echo_client_enqueue(struct obd_export *exp, struct obdo *oa,
2552                     int mode, obd_off offset, obd_size nob)
2553 {
2554         struct echo_device     *ed = obd2echo_dev(exp->exp_obd);
2555         struct lustre_handle   *ulh = &oa->o_handle;
2556         struct echo_object     *eco;
2557         obd_off                 end;
2558         int                     rc;
2559         ENTRY;
2560
2561         if (ed->ed_next == NULL)
2562                 RETURN(-EOPNOTSUPP);
2563
2564         if (!(mode == LCK_PR || mode == LCK_PW))
2565                 RETURN(-EINVAL);
2566
2567         if ((offset & (~CFS_PAGE_MASK)) != 0 ||
2568             (nob & (~CFS_PAGE_MASK)) != 0)
2569                 RETURN(-EINVAL);
2570
2571         rc = echo_get_object (&eco, ed, oa);
2572         if (rc != 0)
2573                 RETURN(rc);
2574
2575         end = (nob == 0) ? ((obd_off) -1) : (offset + nob - 1);
2576         rc = cl_echo_enqueue(eco, offset, end, mode, &ulh->cookie);
2577         if (rc == 0) {
2578                 oa->o_valid |= OBD_MD_FLHANDLE;
2579                 CDEBUG(D_INFO, "Cookie is "LPX64"\n", ulh->cookie);
2580         }
2581         echo_put_object(eco);
2582         RETURN(rc);
2583 }
2584
2585 static int
2586 echo_client_cancel(struct obd_export *exp, struct obdo *oa)
2587 {
2588         struct echo_device *ed     = obd2echo_dev(exp->exp_obd);
2589         __u64               cookie = oa->o_handle.cookie;
2590
2591         if ((oa->o_valid & OBD_MD_FLHANDLE) == 0)
2592                 return -EINVAL;
2593
2594         CDEBUG(D_INFO, "Cookie is "LPX64"\n", cookie);
2595         return cl_echo_cancel(ed, cookie);
2596 }
2597
2598 static int
2599 echo_client_iocontrol(unsigned int cmd, struct obd_export *exp, int len,
2600                       void *karg, void *uarg)
2601 {
2602         struct obd_device      *obd = exp->exp_obd;
2603         struct echo_device     *ed = obd2echo_dev(obd);
2604         struct echo_client_obd *ec = ed->ed_ec;
2605         struct echo_object     *eco;
2606         struct obd_ioctl_data  *data = karg;
2607         struct obd_trans_info   dummy_oti;
2608         struct lu_env          *env;
2609         struct oti_req_ack_lock *ack_lock;
2610         struct obdo            *oa;
2611         struct lu_fid           fid;
2612         int                     rw = OBD_BRW_READ;
2613         int                     rc = 0;
2614         int                     i;
2615         ENTRY;
2616
2617         memset(&dummy_oti, 0, sizeof(dummy_oti));
2618
2619         oa = &data->ioc_obdo1;
2620         if (!(oa->o_valid & OBD_MD_FLGROUP)) {
2621                 oa->o_valid |= OBD_MD_FLGROUP;
2622                 oa->o_seq = FID_SEQ_ECHO;
2623         }
2624
2625         /* This FID is unpacked just for validation at this point */
2626         rc = fid_ostid_unpack(&fid, &oa->o_oi, 0);
2627         if (rc < 0)
2628                 RETURN(rc);
2629
2630         OBD_ALLOC_PTR(env);
2631         if (env == NULL)
2632                 RETURN(-ENOMEM);
2633
2634         rc = lu_env_init(env, LCT_DT_THREAD);
2635         if (rc)
2636                 GOTO(out, rc = -ENOMEM);
2637
2638         switch (cmd) {
2639         case OBD_IOC_CREATE:                    /* may create echo object */
2640                 if (!cfs_capable(CFS_CAP_SYS_ADMIN))
2641                         GOTO (out, rc = -EPERM);
2642
2643                 rc = echo_create_object(env, ed, 1, oa, data->ioc_pbuf1,
2644                                         data->ioc_plen1, &dummy_oti);
2645                 GOTO(out, rc);
2646
2647         case OBD_IOC_ECHO_MD: {
2648                 int count;
2649                 int cmd;
2650                 char *dir = NULL;
2651                 int dirlen;
2652                 __u64 id;
2653
2654                 if (!cfs_capable(CFS_CAP_SYS_ADMIN))
2655                         GOTO(out, rc = -EPERM);
2656
2657                 count = data->ioc_count;
2658                 cmd = data->ioc_command;
2659
2660                 id = data->ioc_obdo2.o_id;
2661
2662                 dirlen = data->ioc_plen1;
2663                 OBD_ALLOC(dir, dirlen + 1);
2664                 if (dir == NULL)
2665                         GOTO(out, rc = -ENOMEM);
2666
2667                 if (cfs_copy_from_user(dir, data->ioc_pbuf1, dirlen)) {
2668                         OBD_FREE(dir, data->ioc_plen1 + 1);
2669                         GOTO(out, rc = -EFAULT);
2670                 }
2671
2672                 rc = echo_md_handler(ed, cmd, dir, dirlen, id, count, data);
2673                 OBD_FREE(dir, dirlen + 1);
2674                 GOTO(out, rc);
2675         }
2676         case OBD_IOC_ECHO_ALLOC_SEQ: {
2677                 struct lu_env   *cl_env;
2678                 int              refcheck;
2679                 __u64            seq;
2680                 int              max_count;
2681
2682                 if (!cfs_capable(CFS_CAP_SYS_ADMIN))
2683                         GOTO(out, rc = -EPERM);
2684
2685                 cl_env = cl_env_get(&refcheck);
2686                 if (IS_ERR(cl_env))
2687                         GOTO(out, rc = PTR_ERR(cl_env));
2688
2689                 rc = lu_env_refill_by_tags(cl_env, ECHO_MD_CTX_TAG,
2690                                             ECHO_MD_SES_TAG);
2691                 if (rc != 0) {
2692                         cl_env_put(cl_env, &refcheck);
2693                         GOTO(out, rc);
2694                 }
2695
2696                 rc = seq_client_get_seq(cl_env, ed->ed_cl_seq, &seq);
2697                 cl_env_put(cl_env, &refcheck);
2698                 if (rc < 0) {
2699                         CERROR("%s: Can not alloc seq: rc = %d\n",
2700                                obd->obd_name, rc);
2701                         GOTO(out, rc);
2702                 }
2703
2704                 if (cfs_copy_to_user(data->ioc_pbuf1, &seq, data->ioc_plen1))
2705                         return -EFAULT;
2706
2707                 max_count = LUSTRE_SEQ_MAX_WIDTH;
2708                 if (cfs_copy_to_user(data->ioc_pbuf2, &max_count,
2709                                      data->ioc_plen2))
2710                         return -EFAULT;
2711                 GOTO(out, rc);
2712         }
2713         case OBD_IOC_DESTROY:
2714                 if (!cfs_capable(CFS_CAP_SYS_ADMIN))
2715                         GOTO (out, rc = -EPERM);
2716
2717                 rc = echo_get_object(&eco, ed, oa);
2718                 if (rc == 0) {
2719                         rc = obd_destroy(env, ec->ec_exp, oa, eco->eo_lsm,
2720                                          &dummy_oti, NULL, NULL);
2721                         if (rc == 0)
2722                                 eco->eo_deleted = 1;
2723                         echo_put_object(eco);
2724                 }
2725                 GOTO(out, rc);
2726
2727         case OBD_IOC_GETATTR:
2728                 rc = echo_get_object(&eco, ed, oa);
2729                 if (rc == 0) {
2730                         struct obd_info oinfo = { { { 0 } } };
2731                         oinfo.oi_md = eco->eo_lsm;
2732                         oinfo.oi_oa = oa;
2733                         rc = obd_getattr(env, ec->ec_exp, &oinfo);
2734                         echo_put_object(eco);
2735                 }
2736                 GOTO(out, rc);
2737
2738         case OBD_IOC_SETATTR:
2739                 if (!cfs_capable(CFS_CAP_SYS_ADMIN))
2740                         GOTO (out, rc = -EPERM);
2741
2742                 rc = echo_get_object(&eco, ed, oa);
2743                 if (rc == 0) {
2744                         struct obd_info oinfo = { { { 0 } } };
2745                         oinfo.oi_oa = oa;
2746                         oinfo.oi_md = eco->eo_lsm;
2747
2748                         rc = obd_setattr(env, ec->ec_exp, &oinfo, NULL);
2749                         echo_put_object(eco);
2750                 }
2751                 GOTO(out, rc);
2752
2753         case OBD_IOC_BRW_WRITE:
2754                 if (!cfs_capable(CFS_CAP_SYS_ADMIN))
2755                         GOTO (out, rc = -EPERM);
2756
2757                 rw = OBD_BRW_WRITE;
2758                 /* fall through */
2759         case OBD_IOC_BRW_READ:
2760                 rc = echo_client_brw_ioctl(rw, exp, data);
2761                 GOTO(out, rc);
2762
2763         case ECHO_IOC_GET_STRIPE:
2764                 rc = echo_get_object(&eco, ed, oa);
2765                 if (rc == 0) {
2766                         rc = echo_copyout_lsm(eco->eo_lsm, data->ioc_pbuf1,
2767                                               data->ioc_plen1);
2768                         echo_put_object(eco);
2769                 }
2770                 GOTO(out, rc);
2771
2772         case ECHO_IOC_SET_STRIPE:
2773                 if (!cfs_capable(CFS_CAP_SYS_ADMIN))
2774                         GOTO (out, rc = -EPERM);
2775
2776                 if (data->ioc_pbuf1 == NULL) {  /* unset */
2777                         rc = echo_get_object(&eco, ed, oa);
2778                         if (rc == 0) {
2779                                 eco->eo_deleted = 1;
2780                                 echo_put_object(eco);
2781                         }
2782                 } else {
2783                         rc = echo_create_object(env, ed, 0, oa,
2784                                                 data->ioc_pbuf1,
2785                                                 data->ioc_plen1, &dummy_oti);
2786                 }
2787                 GOTO (out, rc);
2788
2789         case ECHO_IOC_ENQUEUE:
2790                 if (!cfs_capable(CFS_CAP_SYS_ADMIN))
2791                         GOTO (out, rc = -EPERM);
2792
2793                 rc = echo_client_enqueue(exp, oa,
2794                                          data->ioc_conn1, /* lock mode */
2795                                          data->ioc_offset,
2796                                          data->ioc_count);/*extent*/
2797                 GOTO (out, rc);
2798
2799         case ECHO_IOC_CANCEL:
2800                 rc = echo_client_cancel(exp, oa);
2801                 GOTO (out, rc);
2802
2803         default:
2804                 CERROR ("echo_ioctl(): unrecognised ioctl %#x\n", cmd);
2805                 GOTO (out, rc = -ENOTTY);
2806         }
2807
2808         EXIT;
2809 out:
2810         lu_env_fini(env);
2811         OBD_FREE_PTR(env);
2812
2813         /* XXX this should be in a helper also called by target_send_reply */
2814         for (ack_lock = dummy_oti.oti_ack_locks, i = 0; i < 4;
2815              i++, ack_lock++) {
2816                 if (!ack_lock->mode)
2817                         break;
2818                 ldlm_lock_decref(&ack_lock->lock, ack_lock->mode);
2819         }
2820
2821         return rc;
2822 }
2823
2824 static int echo_client_setup(const struct lu_env *env,
2825                              struct obd_device *obddev, struct lustre_cfg *lcfg)
2826 {
2827         struct echo_client_obd *ec = &obddev->u.echo_client;
2828         struct obd_device *tgt;
2829         struct obd_uuid echo_uuid = { "ECHO_UUID" };
2830         struct obd_connect_data *ocd = NULL;
2831         int rc;
2832         ENTRY;
2833
2834         if (lcfg->lcfg_bufcount < 2 || LUSTRE_CFG_BUFLEN(lcfg, 1) < 1) {
2835                 CERROR("requires a TARGET OBD name\n");
2836                 RETURN(-EINVAL);
2837         }
2838
2839         tgt = class_name2obd(lustre_cfg_string(lcfg, 1));
2840         if (!tgt || !tgt->obd_attached || !tgt->obd_set_up) {
2841                 CERROR("device not attached or not set up (%s)\n",
2842                        lustre_cfg_string(lcfg, 1));
2843                 RETURN(-EINVAL);
2844         }
2845
2846         cfs_spin_lock_init (&ec->ec_lock);
2847         CFS_INIT_LIST_HEAD (&ec->ec_objects);
2848         CFS_INIT_LIST_HEAD (&ec->ec_locks);
2849         ec->ec_unique = 0;
2850         ec->ec_nstripes = 0;
2851
2852         if (!strcmp(tgt->obd_type->typ_name, LUSTRE_MDT_NAME)) {
2853                 lu_context_tags_update(ECHO_MD_CTX_TAG);
2854                 lu_session_tags_update(ECHO_MD_SES_TAG);
2855                 RETURN(0);
2856         }
2857
2858         OBD_ALLOC(ocd, sizeof(*ocd));
2859         if (ocd == NULL) {
2860                 CERROR("Can't alloc ocd connecting to %s\n",
2861                        lustre_cfg_string(lcfg, 1));
2862                 return -ENOMEM;
2863         }
2864
2865         ocd->ocd_connect_flags = OBD_CONNECT_VERSION | OBD_CONNECT_REQPORTAL |
2866                                  OBD_CONNECT_GRANT | OBD_CONNECT_FULL20 |
2867                                  OBD_CONNECT_64BITHASH;
2868         ocd->ocd_version = LUSTRE_VERSION_CODE;
2869         ocd->ocd_group = FID_SEQ_ECHO;
2870
2871         rc = obd_connect(env, &ec->ec_exp, tgt, &echo_uuid, ocd, NULL);
2872         if (rc == 0) {
2873                 /* Turn off pinger because it connects to tgt obd directly. */
2874                 cfs_spin_lock(&tgt->obd_dev_lock);
2875                 cfs_list_del_init(&ec->ec_exp->exp_obd_chain_timed);
2876                 cfs_spin_unlock(&tgt->obd_dev_lock);
2877         }
2878
2879         OBD_FREE(ocd, sizeof(*ocd));
2880
2881         if (rc != 0) {
2882                 CERROR("fail to connect to device %s\n",
2883                        lustre_cfg_string(lcfg, 1));
2884                 return (rc);
2885         }
2886
2887         RETURN(rc);
2888 }
2889
2890 static int echo_client_cleanup(struct obd_device *obddev)
2891 {
2892         struct echo_device *ed = obd2echo_dev(obddev);
2893         struct echo_client_obd *ec = &obddev->u.echo_client;
2894         int rc;
2895         ENTRY;
2896
2897         /*Do nothing for Metadata echo client*/
2898         if (ed == NULL )
2899                 RETURN(0);
2900
2901         if (ed->ed_next_ismd) {
2902                 lu_context_tags_clear(ECHO_MD_CTX_TAG);
2903                 lu_session_tags_clear(ECHO_MD_SES_TAG);
2904                 RETURN(0);
2905         }
2906
2907         if (!cfs_list_empty(&obddev->obd_exports)) {
2908                 CERROR("still has clients!\n");
2909                 RETURN(-EBUSY);
2910         }
2911
2912         LASSERT(cfs_atomic_read(&ec->ec_exp->exp_refcount) > 0);
2913         rc = obd_disconnect(ec->ec_exp);
2914         if (rc != 0)
2915                 CERROR("fail to disconnect device: %d\n", rc);
2916
2917         RETURN(rc);
2918 }
2919
2920 static int echo_client_connect(const struct lu_env *env,
2921                                struct obd_export **exp,
2922                                struct obd_device *src, struct obd_uuid *cluuid,
2923                                struct obd_connect_data *data, void *localdata)
2924 {
2925         int                rc;
2926         struct lustre_handle conn = { 0 };
2927
2928         ENTRY;
2929         rc = class_connect(&conn, src, cluuid);
2930         if (rc == 0) {
2931                 *exp = class_conn2export(&conn);
2932         }
2933
2934         RETURN (rc);
2935 }
2936
2937 static int echo_client_disconnect(struct obd_export *exp)
2938 {
2939 #if 0
2940         struct obd_device      *obd;
2941         struct echo_client_obd *ec;
2942         struct ec_lock         *ecl;
2943 #endif
2944         int                     rc;
2945         ENTRY;
2946
2947         if (exp == NULL)
2948                 GOTO(out, rc = -EINVAL);
2949
2950 #if 0
2951         obd = exp->exp_obd;
2952         ec = &obd->u.echo_client;
2953
2954         /* no more contention on export's lock list */
2955         while (!cfs_list_empty (&exp->exp_ec_data.eced_locks)) {
2956                 ecl = cfs_list_entry (exp->exp_ec_data.eced_locks.next,
2957                                       struct ec_lock, ecl_exp_chain);
2958                 cfs_list_del (&ecl->ecl_exp_chain);
2959
2960                 rc = obd_cancel(ec->ec_exp, ecl->ecl_object->eco_lsm,
2961                                  ecl->ecl_mode, &ecl->ecl_lock_handle);
2962
2963                 CDEBUG (D_INFO, "Cancel lock on object "LPX64" on disconnect "
2964                         "(%d)\n", ecl->ecl_object->eco_id, rc);
2965
2966                 echo_put_object (ecl->ecl_object);
2967                 OBD_FREE (ecl, sizeof (*ecl));
2968         }
2969 #endif
2970
2971         rc = class_disconnect(exp);
2972         GOTO(out, rc);
2973  out:
2974         return rc;
2975 }
2976
2977 static struct obd_ops echo_client_obd_ops = {
2978         .o_owner       = THIS_MODULE,
2979
2980 #if 0
2981         .o_setup       = echo_client_setup,
2982         .o_cleanup     = echo_client_cleanup,
2983 #endif
2984
2985         .o_iocontrol   = echo_client_iocontrol,
2986         .o_connect     = echo_client_connect,
2987         .o_disconnect  = echo_client_disconnect
2988 };
2989
2990 int echo_client_init(void)
2991 {
2992         struct lprocfs_static_vars lvars = { 0 };
2993         int rc;
2994
2995         lprocfs_echo_init_vars(&lvars);
2996
2997         rc = lu_kmem_init(echo_caches);
2998         if (rc == 0) {
2999                 rc = class_register_type(&echo_client_obd_ops, NULL,
3000                                          lvars.module_vars,
3001                                          LUSTRE_ECHO_CLIENT_NAME,
3002                                          &echo_device_type);
3003                 if (rc)
3004                         lu_kmem_fini(echo_caches);
3005         }
3006         return rc;
3007 }
3008
3009 void echo_client_exit(void)
3010 {
3011         class_unregister_type(LUSTRE_ECHO_CLIENT_NAME);
3012         lu_kmem_fini(echo_caches);
3013 }
3014
3015 #ifdef __KERNEL__
3016 static int __init obdecho_init(void)
3017 {
3018         struct lprocfs_static_vars lvars;
3019         int rc;
3020
3021         ENTRY;
3022         LCONSOLE_INFO("Echo OBD driver; http://www.lustre.org/\n");
3023
3024         LASSERT(CFS_PAGE_SIZE % OBD_ECHO_BLOCK_SIZE == 0);
3025
3026         lprocfs_echo_init_vars(&lvars);
3027
3028 # ifdef HAVE_SERVER_SUPPORT
3029         rc = echo_persistent_pages_init();
3030         if (rc != 0)
3031                 goto failed_0;
3032
3033         rc = class_register_type(&echo_obd_ops, NULL, lvars.module_vars,
3034                                  LUSTRE_ECHO_NAME, NULL);
3035         if (rc != 0)
3036                 goto failed_1;
3037 # endif
3038
3039         rc = echo_client_init();
3040
3041 # ifdef HAVE_SERVER_SUPPORT
3042         if (rc == 0)
3043                 RETURN(0);
3044
3045         class_unregister_type(LUSTRE_ECHO_NAME);
3046 failed_1:
3047         echo_persistent_pages_fini();
3048 failed_0:
3049 # endif
3050         RETURN(rc);
3051 }
3052
3053 static void /*__exit*/ obdecho_exit(void)
3054 {
3055         echo_client_exit();
3056
3057 # ifdef HAVE_SERVER_SUPPORT
3058         class_unregister_type(LUSTRE_ECHO_NAME);
3059         echo_persistent_pages_fini();
3060 # endif
3061 }
3062
3063 MODULE_AUTHOR("Sun Microsystems, Inc. <http://www.lustre.org/>");
3064 MODULE_DESCRIPTION("Lustre Testing Echo OBD driver");
3065 MODULE_LICENSE("GPL");
3066
3067 cfs_module(obdecho, LUSTRE_VERSION_STRING, obdecho_init, obdecho_exit);
3068 #endif /* __KERNEL__ */
3069
3070 /** @} echo_client */