source: mainline/uspace/srv/vfs/vfs_ops.c@ 460514d

lfn serial ticket/834-toolchain-update topic/msim-upgrade topic/simplify-dev-export
Last change on this file since 460514d was 460514d, checked in by Maurizio Lombardi <m.lombardi85@…>, 14 years ago

mount() should fail if there is not enough memory to add the respective entry to the mtab list

  • Property mode set to 100644
File size: 35.0 KB
Line 
1/*
2 * Copyright (c) 2008 Jakub Jermar
3 * All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 *
9 * - Redistributions of source code must retain the above copyright
10 * notice, this list of conditions and the following disclaimer.
11 * - Redistributions in binary form must reproduce the above copyright
12 * notice, this list of conditions and the following disclaimer in the
13 * documentation and/or other materials provided with the distribution.
14 * - The name of the author may not be used to endorse or promote products
15 * derived from this software without specific prior written permission.
16 *
17 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
18 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
19 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
20 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
21 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
22 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
23 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
24 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
25 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
26 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27 */
28
29/** @addtogroup fs
30 * @{
31 */
32
33/**
34 * @file vfs_ops.c
35 * @brief Operations that VFS offers to its clients.
36 */
37
38#include "vfs.h"
39#include <macros.h>
40#include <stdint.h>
41#include <async.h>
42#include <errno.h>
43#include <stdio.h>
44#include <stdlib.h>
45#include <str.h>
46#include <bool.h>
47#include <fibril_synch.h>
48#include <adt/list.h>
49#include <unistd.h>
50#include <ctype.h>
51#include <fcntl.h>
52#include <assert.h>
53#include <vfs/canonify.h>
54#include <vfs/vfs_mtab.h>
55
56FIBRIL_MUTEX_INITIALIZE(mtab_list_lock);
57LIST_INITIALIZE(mtab_list);
58static size_t mtab_size = 0;
59
60/* Forward declarations of static functions. */
61static int vfs_truncate_internal(fs_handle_t, service_id_t, fs_index_t,
62 aoff64_t);
63
64/**
65 * This rwlock prevents the race between a triplet-to-VFS-node resolution and a
66 * concurrent VFS operation which modifies the file system namespace.
67 */
68FIBRIL_RWLOCK_INITIALIZE(namespace_rwlock);
69
70vfs_pair_t rootfs = {
71 .fs_handle = 0,
72 .service_id = 0
73};
74
75static int vfs_mount_internal(ipc_callid_t rid, service_id_t service_id,
76 fs_handle_t fs_handle, char *mp, char *opts)
77{
78 vfs_lookup_res_t mp_res;
79 vfs_lookup_res_t mr_res;
80 vfs_node_t *mp_node = NULL;
81 vfs_node_t *mr_node;
82 fs_index_t rindex;
83 aoff64_t rsize;
84 unsigned rlnkcnt;
85 async_exch_t *exch;
86 sysarg_t rc;
87 aid_t msg;
88 ipc_call_t answer;
89
90 /* Resolve the path to the mountpoint. */
91 fibril_rwlock_write_lock(&namespace_rwlock);
92 if (rootfs.fs_handle) {
93 /* We already have the root FS. */
94 if (str_cmp(mp, "/") == 0) {
95 /* Trying to mount root FS over root FS */
96 fibril_rwlock_write_unlock(&namespace_rwlock);
97 async_answer_0(rid, EBUSY);
98 return EBUSY;
99 }
100
101 rc = vfs_lookup_internal(mp, L_MP, &mp_res, NULL);
102 if (rc != EOK) {
103 /* The lookup failed for some reason. */
104 fibril_rwlock_write_unlock(&namespace_rwlock);
105 async_answer_0(rid, rc);
106 return rc;
107 }
108
109 mp_node = vfs_node_get(&mp_res);
110 if (!mp_node) {
111 fibril_rwlock_write_unlock(&namespace_rwlock);
112 async_answer_0(rid, ENOMEM);
113 return ENOMEM;
114 }
115
116 /*
117 * Now we hold a reference to mp_node.
118 * It will be dropped upon the corresponding VFS_IN_UNMOUNT.
119 * This prevents the mount point from being deleted.
120 */
121 } else {
122 /* We still don't have the root file system mounted. */
123 if (str_cmp(mp, "/") == 0) {
124 /*
125 * For this simple, but important case,
126 * we are almost done.
127 */
128
129 /* Tell the mountee that it is being mounted. */
130 exch = vfs_exchange_grab(fs_handle);
131 msg = async_send_1(exch, VFS_OUT_MOUNTED,
132 (sysarg_t) service_id, &answer);
133 /* Send the mount options */
134 rc = async_data_write_start(exch, (void *)opts,
135 str_size(opts));
136 vfs_exchange_release(exch);
137
138 if (rc != EOK) {
139 async_wait_for(msg, NULL);
140 fibril_rwlock_write_unlock(&namespace_rwlock);
141 async_answer_0(rid, rc);
142 return rc;
143 }
144 async_wait_for(msg, &rc);
145
146 if (rc != EOK) {
147 fibril_rwlock_write_unlock(&namespace_rwlock);
148 async_answer_0(rid, rc);
149 return rc;
150 }
151
152 rindex = (fs_index_t) IPC_GET_ARG1(answer);
153 rsize = (aoff64_t) MERGE_LOUP32(IPC_GET_ARG2(answer),
154 IPC_GET_ARG3(answer));
155 rlnkcnt = (unsigned) IPC_GET_ARG4(answer);
156
157 mr_res.triplet.fs_handle = fs_handle;
158 mr_res.triplet.service_id = service_id;
159 mr_res.triplet.index = rindex;
160 mr_res.size = rsize;
161 mr_res.lnkcnt = rlnkcnt;
162 mr_res.type = VFS_NODE_DIRECTORY;
163
164 rootfs.fs_handle = fs_handle;
165 rootfs.service_id = service_id;
166
167 /* Add reference to the mounted root. */
168 mr_node = vfs_node_get(&mr_res);
169 assert(mr_node);
170
171 fibril_rwlock_write_unlock(&namespace_rwlock);
172 async_answer_0(rid, rc);
173 return rc;
174 } else {
175 /*
176 * We can't resolve this without the root filesystem
177 * being mounted first.
178 */
179 fibril_rwlock_write_unlock(&namespace_rwlock);
180 async_answer_0(rid, ENOENT);
181 return ENOENT;
182 }
183 }
184
185 /*
186 * At this point, we have all necessary pieces: file system handle
187 * and service ID, and we know the mount point VFS node.
188 */
189
190 async_exch_t *mountee_exch = vfs_exchange_grab(fs_handle);
191 assert(mountee_exch);
192
193 exch = vfs_exchange_grab(mp_res.triplet.fs_handle);
194 msg = async_send_4(exch, VFS_OUT_MOUNT,
195 (sysarg_t) mp_res.triplet.service_id,
196 (sysarg_t) mp_res.triplet.index,
197 (sysarg_t) fs_handle,
198 (sysarg_t) service_id, &answer);
199
200 /* Send connection */
201 rc = async_exchange_clone(exch, mountee_exch);
202 vfs_exchange_release(mountee_exch);
203
204 if (rc != EOK) {
205 vfs_exchange_release(exch);
206 async_wait_for(msg, NULL);
207
208 /* Mount failed, drop reference to mp_node. */
209 if (mp_node)
210 vfs_node_put(mp_node);
211
212 async_answer_0(rid, rc);
213 fibril_rwlock_write_unlock(&namespace_rwlock);
214 return rc;
215 }
216
217 /* send the mount options */
218 rc = async_data_write_start(exch, (void *) opts, str_size(opts));
219 if (rc != EOK) {
220 vfs_exchange_release(exch);
221 async_wait_for(msg, NULL);
222
223 /* Mount failed, drop reference to mp_node. */
224 if (mp_node)
225 vfs_node_put(mp_node);
226
227 fibril_rwlock_write_unlock(&namespace_rwlock);
228 async_answer_0(rid, rc);
229 return rc;
230 }
231
232 /*
233 * Wait for the answer before releasing the exchange to avoid deadlock
234 * in case the answer depends on further calls to the same file system.
235 * Think of a case when mounting a FS on a file_bd backed by a file on
236 * the same FS.
237 */
238 async_wait_for(msg, &rc);
239 vfs_exchange_release(exch);
240
241 if (rc == EOK) {
242 rindex = (fs_index_t) IPC_GET_ARG1(answer);
243 rsize = (aoff64_t) MERGE_LOUP32(IPC_GET_ARG2(answer),
244 IPC_GET_ARG3(answer));
245 rlnkcnt = (unsigned) IPC_GET_ARG4(answer);
246
247 mr_res.triplet.fs_handle = fs_handle;
248 mr_res.triplet.service_id = service_id;
249 mr_res.triplet.index = rindex;
250 mr_res.size = rsize;
251 mr_res.lnkcnt = rlnkcnt;
252 mr_res.type = VFS_NODE_DIRECTORY;
253
254 /* Add reference to the mounted root. */
255 mr_node = vfs_node_get(&mr_res);
256 assert(mr_node);
257 } else {
258 /* Mount failed, drop reference to mp_node. */
259 if (mp_node)
260 vfs_node_put(mp_node);
261 }
262
263 async_answer_0(rid, rc);
264 fibril_rwlock_write_unlock(&namespace_rwlock);
265 return rc;
266}
267
268void vfs_mount(ipc_callid_t rid, ipc_call_t *request)
269{
270 service_id_t service_id;
271
272 /*
273 * We expect the library to do the device-name to device-handle
274 * translation for us, thus the device handle will arrive as ARG1
275 * in the request.
276 */
277 service_id = (service_id_t) IPC_GET_ARG1(*request);
278
279 /*
280 * Mount flags are passed as ARG2.
281 */
282 unsigned int flags = (unsigned int) IPC_GET_ARG2(*request);
283
284 /*
285 * Instance number is passed as ARG3.
286 */
287 unsigned int instance = IPC_GET_ARG3(*request);
288
289 /* We want the client to send us the mount point. */
290 char *mp;
291 int rc = async_data_write_accept((void **) &mp, true, 0, MAX_PATH_LEN,
292 0, NULL);
293 if (rc != EOK) {
294 async_answer_0(rid, rc);
295 return;
296 }
297
298 /* Now we expect to receive the mount options. */
299 char *opts;
300 rc = async_data_write_accept((void **) &opts, true, 0, MAX_MNTOPTS_LEN,
301 0, NULL);
302 if (rc != EOK) {
303 free(mp);
304 async_answer_0(rid, rc);
305 return;
306 }
307
308 /*
309 * Now, we expect the client to send us data with the name of the file
310 * system.
311 */
312 char *fs_name;
313 rc = async_data_write_accept((void **) &fs_name, true, 0,
314 FS_NAME_MAXLEN, 0, NULL);
315 if (rc != EOK) {
316 free(mp);
317 free(opts);
318 async_answer_0(rid, rc);
319 return;
320 }
321
322 /*
323 * Wait for VFS_IN_PING so that we can return an error if we don't know
324 * fs_name.
325 */
326 ipc_call_t data;
327 ipc_callid_t callid = async_get_call(&data);
328 if (IPC_GET_IMETHOD(data) != VFS_IN_PING) {
329 async_answer_0(callid, ENOTSUP);
330 async_answer_0(rid, ENOTSUP);
331 free(mp);
332 free(opts);
333 free(fs_name);
334 return;
335 }
336
337 /*
338 * Check if we know a file system with the same name as is in fs_name.
339 * This will also give us its file system handle.
340 */
341 fibril_mutex_lock(&fs_list_lock);
342 fs_handle_t fs_handle;
343recheck:
344 fs_handle = fs_name_to_handle(instance, fs_name, false);
345 if (!fs_handle) {
346 if (flags & IPC_FLAG_BLOCKING) {
347 fibril_condvar_wait(&fs_list_cv, &fs_list_lock);
348 goto recheck;
349 }
350
351 fibril_mutex_unlock(&fs_list_lock);
352 async_answer_0(callid, ENOENT);
353 async_answer_0(rid, ENOENT);
354 free(mp);
355 free(fs_name);
356 free(opts);
357 return;
358 }
359 fibril_mutex_unlock(&fs_list_lock);
360
361 /* Add the filesystem info to the list of mounted filesystems */
362 mtab_ent_t *mtab_ent = malloc(sizeof(mtab_ent_t));
363 if (!mtab_ent) {
364 async_answer_0(callid, ENOMEM);
365 async_answer_0(rid, ENOMEM);
366 free(mp);
367 free(fs_name);
368 free(opts);
369 return;
370 }
371
372 /* Do the mount */
373 rc = vfs_mount_internal(rid, service_id, fs_handle, mp, opts);
374 if (rc != EOK) {
375 async_answer_0(callid, ENOTSUP);
376 async_answer_0(rid, ENOTSUP);
377 free(mtab_ent);
378 free(mp);
379 free(opts);
380 free(fs_name);
381 return;
382 }
383
384 /* Add the filesystem info to the list of mounted filesystems */
385
386 str_cpy(mtab_ent->mp, MAX_PATH_LEN, mp);
387 str_cpy(mtab_ent->fs_name, FS_NAME_MAXLEN, fs_name);
388 str_cpy(mtab_ent->opts, MAX_MNTOPTS_LEN, opts);
389 mtab_ent->instance = instance;
390 mtab_ent->service_id = service_id;
391
392 link_initialize(&mtab_ent->link);
393
394 fibril_mutex_lock(&mtab_list_lock);
395 list_append(&mtab_ent->link, &mtab_list);
396 mtab_size++;
397 fibril_mutex_unlock(&mtab_list_lock);
398
399 free(mp);
400 free(fs_name);
401 free(opts);
402
403 /* Acknowledge that we know fs_name. */
404 async_answer_0(callid, EOK);
405}
406
407void vfs_unmount(ipc_callid_t rid, ipc_call_t *request)
408{
409 int rc;
410 char *mp;
411 vfs_lookup_res_t mp_res;
412 vfs_lookup_res_t mr_res;
413 vfs_node_t *mr_node;
414 async_exch_t *exch;
415
416 /*
417 * Receive the mount point path.
418 */
419 rc = async_data_write_accept((void **) &mp, true, 0, MAX_PATH_LEN,
420 0, NULL);
421 if (rc != EOK)
422 async_answer_0(rid, rc);
423
424 /*
425 * Taking the namespace lock will do two things for us. First, it will
426 * prevent races with other lookup operations. Second, it will stop new
427 * references to already existing VFS nodes and creation of new VFS
428 * nodes. This is because new references are added as a result of some
429 * lookup operation or at least of some operation which is protected by
430 * the namespace lock.
431 */
432 fibril_rwlock_write_lock(&namespace_rwlock);
433
434 /*
435 * Lookup the mounted root and instantiate it.
436 */
437 rc = vfs_lookup_internal(mp, L_ROOT, &mr_res, NULL);
438 if (rc != EOK) {
439 fibril_rwlock_write_unlock(&namespace_rwlock);
440 free(mp);
441 async_answer_0(rid, rc);
442 return;
443 }
444 mr_node = vfs_node_get(&mr_res);
445 if (!mr_node) {
446 fibril_rwlock_write_unlock(&namespace_rwlock);
447 free(mp);
448 async_answer_0(rid, ENOMEM);
449 return;
450 }
451
452 /*
453 * Count the total number of references for the mounted file system. We
454 * are expecting at least two. One which we got above and one which we
455 * got when the file system was mounted. If we find more, it means that
456 * the file system cannot be gracefully unmounted at the moment because
457 * someone is working with it.
458 */
459 if (vfs_nodes_refcount_sum_get(mr_node->fs_handle,
460 mr_node->service_id) != 2) {
461 fibril_rwlock_write_unlock(&namespace_rwlock);
462 vfs_node_put(mr_node);
463 free(mp);
464 async_answer_0(rid, EBUSY);
465 return;
466 }
467
468 if (str_cmp(mp, "/") == 0) {
469
470 /*
471 * Unmounting the root file system.
472 *
473 * In this case, there is no mount point node and we send
474 * VFS_OUT_UNMOUNTED directly to the mounted file system.
475 */
476
477 exch = vfs_exchange_grab(mr_node->fs_handle);
478 rc = async_req_1_0(exch, VFS_OUT_UNMOUNTED,
479 mr_node->service_id);
480 vfs_exchange_release(exch);
481
482 if (rc != EOK) {
483 fibril_rwlock_write_unlock(&namespace_rwlock);
484 free(mp);
485 vfs_node_put(mr_node);
486 async_answer_0(rid, rc);
487 return;
488 }
489
490 rootfs.fs_handle = 0;
491 rootfs.service_id = 0;
492 } else {
493
494 /*
495 * Unmounting a non-root file system.
496 *
497 * We have a regular mount point node representing the parent
498 * file system, so we delegate the operation to it.
499 */
500
501 rc = vfs_lookup_internal(mp, L_MP, &mp_res, NULL);
502 if (rc != EOK) {
503 fibril_rwlock_write_unlock(&namespace_rwlock);
504 free(mp);
505 vfs_node_put(mr_node);
506 async_answer_0(rid, rc);
507 return;
508 }
509
510 vfs_node_t *mp_node = vfs_node_get(&mp_res);
511 if (!mp_node) {
512 fibril_rwlock_write_unlock(&namespace_rwlock);
513 free(mp);
514 vfs_node_put(mr_node);
515 async_answer_0(rid, ENOMEM);
516 return;
517 }
518
519 exch = vfs_exchange_grab(mp_node->fs_handle);
520 rc = async_req_2_0(exch, VFS_OUT_UNMOUNT,
521 mp_node->service_id, mp_node->index);
522 vfs_exchange_release(exch);
523
524 if (rc != EOK) {
525 fibril_rwlock_write_unlock(&namespace_rwlock);
526 free(mp);
527 vfs_node_put(mp_node);
528 vfs_node_put(mr_node);
529 async_answer_0(rid, rc);
530 return;
531 }
532
533 /* Drop the reference we got above. */
534 vfs_node_put(mp_node);
535 /* Drop the reference from when the file system was mounted. */
536 vfs_node_put(mp_node);
537 }
538
539 /*
540 * All went well, the mounted file system was successfully unmounted.
541 * The only thing left is to forget the unmounted root VFS node.
542 */
543 vfs_node_forget(mr_node);
544 fibril_rwlock_write_unlock(&namespace_rwlock);
545
546 fibril_mutex_lock(&mtab_list_lock);
547
548 int found = 0;
549
550 list_foreach(mtab_list, cur) {
551 mtab_ent_t *mtab_ent = list_get_instance(cur, mtab_ent_t,
552 link);
553
554 if (str_cmp(mtab_ent->mp, mp) == 0) {
555 list_remove(&mtab_ent->link);
556 mtab_size--;
557 free(mtab_ent);
558 found = 1;
559 break;
560 }
561 }
562 assert(found);
563 fibril_mutex_unlock(&mtab_list_lock);
564
565 free(mp);
566
567 async_answer_0(rid, EOK);
568}
569
570void vfs_open(ipc_callid_t rid, ipc_call_t *request)
571{
572 /*
573 * The POSIX interface is open(path, oflag, mode).
574 * We can receive oflags and mode along with the VFS_IN_OPEN call;
575 * the path will need to arrive in another call.
576 *
577 * We also receive one private, non-POSIX set of flags called lflag
578 * used to pass information to vfs_lookup_internal().
579 */
580 int lflag = IPC_GET_ARG1(*request);
581 int oflag = IPC_GET_ARG2(*request);
582 int mode = IPC_GET_ARG3(*request);
583
584 /* Ignore mode for now. */
585 (void) mode;
586
587 /*
588 * Make sure that we are called with exactly one of L_FILE and
589 * L_DIRECTORY. Make sure that the user does not pass L_OPEN,
590 * L_ROOT or L_MP.
591 */
592 if (((lflag & (L_FILE | L_DIRECTORY)) == 0) ||
593 ((lflag & (L_FILE | L_DIRECTORY)) == (L_FILE | L_DIRECTORY)) ||
594 (lflag & (L_OPEN | L_ROOT | L_MP))) {
595 async_answer_0(rid, EINVAL);
596 return;
597 }
598
599 if (oflag & O_CREAT)
600 lflag |= L_CREATE;
601 if (oflag & O_EXCL)
602 lflag |= L_EXCLUSIVE;
603
604 char *path;
605 int rc = async_data_write_accept((void **) &path, true, 0, 0, 0, NULL);
606 if (rc != EOK) {
607 async_answer_0(rid, rc);
608 return;
609 }
610
611 /*
612 * Avoid the race condition in which the file can be deleted before we
613 * find/create-and-lock the VFS node corresponding to the looked-up
614 * triplet.
615 */
616 if (lflag & L_CREATE)
617 fibril_rwlock_write_lock(&namespace_rwlock);
618 else
619 fibril_rwlock_read_lock(&namespace_rwlock);
620
621 /* The path is now populated and we can call vfs_lookup_internal(). */
622 vfs_lookup_res_t lr;
623 rc = vfs_lookup_internal(path, lflag | L_OPEN, &lr, NULL);
624 if (rc != EOK) {
625 if (lflag & L_CREATE)
626 fibril_rwlock_write_unlock(&namespace_rwlock);
627 else
628 fibril_rwlock_read_unlock(&namespace_rwlock);
629 async_answer_0(rid, rc);
630 free(path);
631 return;
632 }
633
634 /* Path is no longer needed. */
635 free(path);
636
637 vfs_node_t *node = vfs_node_get(&lr);
638 if (lflag & L_CREATE)
639 fibril_rwlock_write_unlock(&namespace_rwlock);
640 else
641 fibril_rwlock_read_unlock(&namespace_rwlock);
642
643 /* Truncate the file if requested and if necessary. */
644 if (oflag & O_TRUNC) {
645 fibril_rwlock_write_lock(&node->contents_rwlock);
646 if (node->size) {
647 rc = vfs_truncate_internal(node->fs_handle,
648 node->service_id, node->index, 0);
649 if (rc) {
650 fibril_rwlock_write_unlock(&node->contents_rwlock);
651 vfs_node_put(node);
652 async_answer_0(rid, rc);
653 return;
654 }
655 node->size = 0;
656 }
657 fibril_rwlock_write_unlock(&node->contents_rwlock);
658 }
659
660 /*
661 * Get ourselves a file descriptor and the corresponding vfs_file_t
662 * structure.
663 */
664 int fd = vfs_fd_alloc((oflag & O_DESC) != 0);
665 if (fd < 0) {
666 vfs_node_put(node);
667 async_answer_0(rid, fd);
668 return;
669 }
670 vfs_file_t *file = vfs_file_get(fd);
671 assert(file);
672 file->node = node;
673 if (oflag & O_APPEND)
674 file->append = true;
675
676 /*
677 * The following increase in reference count is for the fact that the
678 * file is being opened and that a file structure is pointing to it.
679 * It is necessary so that the file will not disappear when
680 * vfs_node_put() is called. The reference will be dropped by the
681 * respective VFS_IN_CLOSE.
682 */
683 vfs_node_addref(node);
684 vfs_node_put(node);
685 vfs_file_put(file);
686
687 /* Success! Return the new file descriptor to the client. */
688 async_answer_1(rid, EOK, fd);
689}
690
691void vfs_sync(ipc_callid_t rid, ipc_call_t *request)
692{
693 int fd = IPC_GET_ARG1(*request);
694
695 /* Lookup the file structure corresponding to the file descriptor. */
696 vfs_file_t *file = vfs_file_get(fd);
697 if (!file) {
698 async_answer_0(rid, ENOENT);
699 return;
700 }
701
702 /*
703 * Lock the open file structure so that no other thread can manipulate
704 * the same open file at a time.
705 */
706 fibril_mutex_lock(&file->lock);
707 async_exch_t *fs_exch = vfs_exchange_grab(file->node->fs_handle);
708
709 /* Make a VFS_OUT_SYMC request at the destination FS server. */
710 aid_t msg;
711 ipc_call_t answer;
712 msg = async_send_2(fs_exch, VFS_OUT_SYNC, file->node->service_id,
713 file->node->index, &answer);
714
715 vfs_exchange_release(fs_exch);
716
717 /* Wait for reply from the FS server. */
718 sysarg_t rc;
719 async_wait_for(msg, &rc);
720
721 fibril_mutex_unlock(&file->lock);
722
723 vfs_file_put(file);
724 async_answer_0(rid, rc);
725}
726
727void vfs_close(ipc_callid_t rid, ipc_call_t *request)
728{
729 int fd = IPC_GET_ARG1(*request);
730 int ret = vfs_fd_free(fd);
731 async_answer_0(rid, ret);
732}
733
734static void vfs_rdwr(ipc_callid_t rid, ipc_call_t *request, bool read)
735{
736 /*
737 * The following code strongly depends on the fact that the files data
738 * structure can be only accessed by a single fibril and all file
739 * operations are serialized (i.e. the reads and writes cannot
740 * interleave and a file cannot be closed while it is being read).
741 *
742 * Additional synchronization needs to be added once the table of
743 * open files supports parallel access!
744 */
745
746 int fd = IPC_GET_ARG1(*request);
747
748 /* Lookup the file structure corresponding to the file descriptor. */
749 vfs_file_t *file = vfs_file_get(fd);
750 if (!file) {
751 async_answer_0(rid, ENOENT);
752 return;
753 }
754
755 /*
756 * Lock the open file structure so that no other thread can manipulate
757 * the same open file at a time.
758 */
759 fibril_mutex_lock(&file->lock);
760
761 vfs_info_t *fs_info = fs_handle_to_info(file->node->fs_handle);
762 assert(fs_info);
763
764 /*
765 * Lock the file's node so that no other client can read/write to it at
766 * the same time unless the FS supports concurrent reads/writes and its
767 * write implementation does not modify the file size.
768 */
769 if ((read) ||
770 ((fs_info->concurrent_read_write) && (fs_info->write_retains_size)))
771 fibril_rwlock_read_lock(&file->node->contents_rwlock);
772 else
773 fibril_rwlock_write_lock(&file->node->contents_rwlock);
774
775 if (file->node->type == VFS_NODE_DIRECTORY) {
776 /*
777 * Make sure that no one is modifying the namespace
778 * while we are in readdir().
779 */
780 assert(read);
781 fibril_rwlock_read_lock(&namespace_rwlock);
782 }
783
784 async_exch_t *fs_exch = vfs_exchange_grab(file->node->fs_handle);
785
786 /*
787 * Make a VFS_READ/VFS_WRITE request at the destination FS server
788 * and forward the IPC_M_DATA_READ/IPC_M_DATA_WRITE request to the
789 * destination FS server. The call will be routed as if sent by
790 * ourselves. Note that call arguments are immutable in this case so we
791 * don't have to bother.
792 */
793 sysarg_t rc;
794 ipc_call_t answer;
795 if (read) {
796 rc = async_data_read_forward_4_1(fs_exch, VFS_OUT_READ,
797 file->node->service_id, file->node->index,
798 LOWER32(file->pos), UPPER32(file->pos), &answer);
799 } else {
800 if (file->append)
801 file->pos = file->node->size;
802
803 rc = async_data_write_forward_4_1(fs_exch, VFS_OUT_WRITE,
804 file->node->service_id, file->node->index,
805 LOWER32(file->pos), UPPER32(file->pos), &answer);
806 }
807
808 vfs_exchange_release(fs_exch);
809
810 size_t bytes = IPC_GET_ARG1(answer);
811
812 if (file->node->type == VFS_NODE_DIRECTORY)
813 fibril_rwlock_read_unlock(&namespace_rwlock);
814
815 /* Unlock the VFS node. */
816 if ((read) ||
817 ((fs_info->concurrent_read_write) && (fs_info->write_retains_size)))
818 fibril_rwlock_read_unlock(&file->node->contents_rwlock);
819 else {
820 /* Update the cached version of node's size. */
821 if (rc == EOK)
822 file->node->size = MERGE_LOUP32(IPC_GET_ARG2(answer),
823 IPC_GET_ARG3(answer));
824 fibril_rwlock_write_unlock(&file->node->contents_rwlock);
825 }
826
827 /* Update the position pointer and unlock the open file. */
828 if (rc == EOK)
829 file->pos += bytes;
830 fibril_mutex_unlock(&file->lock);
831 vfs_file_put(file);
832
833 /*
834 * FS server's reply is the final result of the whole operation we
835 * return to the client.
836 */
837 async_answer_1(rid, rc, bytes);
838}
839
840void vfs_read(ipc_callid_t rid, ipc_call_t *request)
841{
842 vfs_rdwr(rid, request, true);
843}
844
845void vfs_write(ipc_callid_t rid, ipc_call_t *request)
846{
847 vfs_rdwr(rid, request, false);
848}
849
850void vfs_seek(ipc_callid_t rid, ipc_call_t *request)
851{
852 int fd = (int) IPC_GET_ARG1(*request);
853 off64_t off = (off64_t) MERGE_LOUP32(IPC_GET_ARG2(*request),
854 IPC_GET_ARG3(*request));
855 int whence = (int) IPC_GET_ARG4(*request);
856
857 /* Lookup the file structure corresponding to the file descriptor. */
858 vfs_file_t *file = vfs_file_get(fd);
859 if (!file) {
860 async_answer_0(rid, ENOENT);
861 return;
862 }
863
864 fibril_mutex_lock(&file->lock);
865
866 off64_t newoff;
867 switch (whence) {
868 case SEEK_SET:
869 if (off >= 0) {
870 file->pos = (aoff64_t) off;
871 fibril_mutex_unlock(&file->lock);
872 vfs_file_put(file);
873 async_answer_1(rid, EOK, off);
874 return;
875 }
876 break;
877 case SEEK_CUR:
878 if ((off >= 0) && (file->pos + off < file->pos)) {
879 fibril_mutex_unlock(&file->lock);
880 vfs_file_put(file);
881 async_answer_0(rid, EOVERFLOW);
882 return;
883 }
884
885 if ((off < 0) && (file->pos < (aoff64_t) -off)) {
886 fibril_mutex_unlock(&file->lock);
887 vfs_file_put(file);
888 async_answer_0(rid, EOVERFLOW);
889 return;
890 }
891
892 file->pos += off;
893 newoff = (file->pos > OFF64_MAX) ? OFF64_MAX : file->pos;
894
895 fibril_mutex_unlock(&file->lock);
896 vfs_file_put(file);
897 async_answer_2(rid, EOK, LOWER32(newoff),
898 UPPER32(newoff));
899 return;
900 case SEEK_END:
901 fibril_rwlock_read_lock(&file->node->contents_rwlock);
902 aoff64_t size = file->node->size;
903
904 if ((off >= 0) && (size + off < size)) {
905 fibril_rwlock_read_unlock(&file->node->contents_rwlock);
906 fibril_mutex_unlock(&file->lock);
907 vfs_file_put(file);
908 async_answer_0(rid, EOVERFLOW);
909 return;
910 }
911
912 if ((off < 0) && (size < (aoff64_t) -off)) {
913 fibril_rwlock_read_unlock(&file->node->contents_rwlock);
914 fibril_mutex_unlock(&file->lock);
915 vfs_file_put(file);
916 async_answer_0(rid, EOVERFLOW);
917 return;
918 }
919
920 file->pos = size + off;
921 newoff = (file->pos > OFF64_MAX) ? OFF64_MAX : file->pos;
922
923 fibril_rwlock_read_unlock(&file->node->contents_rwlock);
924 fibril_mutex_unlock(&file->lock);
925 vfs_file_put(file);
926 async_answer_2(rid, EOK, LOWER32(newoff), UPPER32(newoff));
927 return;
928 }
929
930 fibril_mutex_unlock(&file->lock);
931 vfs_file_put(file);
932 async_answer_0(rid, EINVAL);
933}
934
935int vfs_truncate_internal(fs_handle_t fs_handle, service_id_t service_id,
936 fs_index_t index, aoff64_t size)
937{
938 async_exch_t *exch = vfs_exchange_grab(fs_handle);
939 sysarg_t rc = async_req_4_0(exch, VFS_OUT_TRUNCATE,
940 (sysarg_t) service_id, (sysarg_t) index, LOWER32(size),
941 UPPER32(size));
942 vfs_exchange_release(exch);
943
944 return (int) rc;
945}
946
947void vfs_truncate(ipc_callid_t rid, ipc_call_t *request)
948{
949 int fd = IPC_GET_ARG1(*request);
950 aoff64_t size = (aoff64_t) MERGE_LOUP32(IPC_GET_ARG2(*request),
951 IPC_GET_ARG3(*request));
952 int rc;
953
954 vfs_file_t *file = vfs_file_get(fd);
955 if (!file) {
956 async_answer_0(rid, ENOENT);
957 return;
958 }
959 fibril_mutex_lock(&file->lock);
960
961 fibril_rwlock_write_lock(&file->node->contents_rwlock);
962 rc = vfs_truncate_internal(file->node->fs_handle,
963 file->node->service_id, file->node->index, size);
964 if (rc == EOK)
965 file->node->size = size;
966 fibril_rwlock_write_unlock(&file->node->contents_rwlock);
967
968 fibril_mutex_unlock(&file->lock);
969 vfs_file_put(file);
970 async_answer_0(rid, (sysarg_t)rc);
971}
972
973void vfs_fstat(ipc_callid_t rid, ipc_call_t *request)
974{
975 int fd = IPC_GET_ARG1(*request);
976 sysarg_t rc;
977
978 vfs_file_t *file = vfs_file_get(fd);
979 if (!file) {
980 async_answer_0(rid, ENOENT);
981 return;
982 }
983
984 ipc_callid_t callid;
985 if (!async_data_read_receive(&callid, NULL)) {
986 vfs_file_put(file);
987 async_answer_0(callid, EINVAL);
988 async_answer_0(rid, EINVAL);
989 return;
990 }
991
992 fibril_mutex_lock(&file->lock);
993
994 async_exch_t *exch = vfs_exchange_grab(file->node->fs_handle);
995
996 aid_t msg;
997 msg = async_send_3(exch, VFS_OUT_STAT, file->node->service_id,
998 file->node->index, true, NULL);
999 async_forward_fast(callid, exch, 0, 0, 0, IPC_FF_ROUTE_FROM_ME);
1000
1001 vfs_exchange_release(exch);
1002
1003 async_wait_for(msg, &rc);
1004
1005 fibril_mutex_unlock(&file->lock);
1006 vfs_file_put(file);
1007 async_answer_0(rid, rc);
1008}
1009
1010void vfs_stat(ipc_callid_t rid, ipc_call_t *request)
1011{
1012 char *path;
1013 int rc = async_data_write_accept((void **) &path, true, 0, 0, 0, NULL);
1014 if (rc != EOK) {
1015 async_answer_0(rid, rc);
1016 return;
1017 }
1018
1019 ipc_callid_t callid;
1020 if (!async_data_read_receive(&callid, NULL)) {
1021 free(path);
1022 async_answer_0(callid, EINVAL);
1023 async_answer_0(rid, EINVAL);
1024 return;
1025 }
1026
1027 vfs_lookup_res_t lr;
1028 fibril_rwlock_read_lock(&namespace_rwlock);
1029 rc = vfs_lookup_internal(path, L_NONE, &lr, NULL);
1030 free(path);
1031 if (rc != EOK) {
1032 fibril_rwlock_read_unlock(&namespace_rwlock);
1033 async_answer_0(callid, rc);
1034 async_answer_0(rid, rc);
1035 return;
1036 }
1037 vfs_node_t *node = vfs_node_get(&lr);
1038 if (!node) {
1039 fibril_rwlock_read_unlock(&namespace_rwlock);
1040 async_answer_0(callid, ENOMEM);
1041 async_answer_0(rid, ENOMEM);
1042 return;
1043 }
1044
1045 fibril_rwlock_read_unlock(&namespace_rwlock);
1046
1047 async_exch_t *exch = vfs_exchange_grab(node->fs_handle);
1048
1049 aid_t msg;
1050 msg = async_send_3(exch, VFS_OUT_STAT, node->service_id,
1051 node->index, false, NULL);
1052 async_forward_fast(callid, exch, 0, 0, 0, IPC_FF_ROUTE_FROM_ME);
1053
1054 vfs_exchange_release(exch);
1055
1056 sysarg_t rv;
1057 async_wait_for(msg, &rv);
1058
1059 async_answer_0(rid, rv);
1060
1061 vfs_node_put(node);
1062}
1063
1064void vfs_mkdir(ipc_callid_t rid, ipc_call_t *request)
1065{
1066 int mode = IPC_GET_ARG1(*request);
1067
1068 char *path;
1069 int rc = async_data_write_accept((void **) &path, true, 0, 0, 0, NULL);
1070 if (rc != EOK) {
1071 async_answer_0(rid, rc);
1072 return;
1073 }
1074
1075 /* Ignore mode for now. */
1076 (void) mode;
1077
1078 fibril_rwlock_write_lock(&namespace_rwlock);
1079 int lflag = L_DIRECTORY | L_CREATE | L_EXCLUSIVE;
1080 rc = vfs_lookup_internal(path, lflag, NULL, NULL);
1081 fibril_rwlock_write_unlock(&namespace_rwlock);
1082 free(path);
1083 async_answer_0(rid, rc);
1084}
1085
1086void vfs_unlink(ipc_callid_t rid, ipc_call_t *request)
1087{
1088 int lflag = IPC_GET_ARG1(*request);
1089
1090 char *path;
1091 int rc = async_data_write_accept((void **) &path, true, 0, 0, 0, NULL);
1092 if (rc != EOK) {
1093 async_answer_0(rid, rc);
1094 return;
1095 }
1096
1097 fibril_rwlock_write_lock(&namespace_rwlock);
1098 lflag &= L_DIRECTORY; /* sanitize lflag */
1099 vfs_lookup_res_t lr;
1100 rc = vfs_lookup_internal(path, lflag | L_UNLINK, &lr, NULL);
1101 free(path);
1102 if (rc != EOK) {
1103 fibril_rwlock_write_unlock(&namespace_rwlock);
1104 async_answer_0(rid, rc);
1105 return;
1106 }
1107
1108 /*
1109 * The name has already been unlinked by vfs_lookup_internal().
1110 * We have to get and put the VFS node to ensure that it is
1111 * VFS_OUT_DESTROY'ed after the last reference to it is dropped.
1112 */
1113 vfs_node_t *node = vfs_node_get(&lr);
1114 fibril_mutex_lock(&nodes_mutex);
1115 node->lnkcnt--;
1116 fibril_mutex_unlock(&nodes_mutex);
1117 fibril_rwlock_write_unlock(&namespace_rwlock);
1118 vfs_node_put(node);
1119 async_answer_0(rid, EOK);
1120}
1121
1122void vfs_rename(ipc_callid_t rid, ipc_call_t *request)
1123{
1124 /* Retrieve the old path. */
1125 char *old;
1126 int rc = async_data_write_accept((void **) &old, true, 0, 0, 0, NULL);
1127 if (rc != EOK) {
1128 async_answer_0(rid, rc);
1129 return;
1130 }
1131
1132 /* Retrieve the new path. */
1133 char *new;
1134 rc = async_data_write_accept((void **) &new, true, 0, 0, 0, NULL);
1135 if (rc != EOK) {
1136 free(old);
1137 async_answer_0(rid, rc);
1138 return;
1139 }
1140
1141 size_t olen;
1142 size_t nlen;
1143 char *oldc = canonify(old, &olen);
1144 char *newc = canonify(new, &nlen);
1145
1146 if ((!oldc) || (!newc)) {
1147 async_answer_0(rid, EINVAL);
1148 free(old);
1149 free(new);
1150 return;
1151 }
1152
1153 oldc[olen] = '\0';
1154 newc[nlen] = '\0';
1155
1156 if ((!str_lcmp(newc, oldc, str_length(oldc))) &&
1157 ((newc[str_length(oldc)] == '/') ||
1158 (str_length(oldc) == 1) ||
1159 (str_length(oldc) == str_length(newc)))) {
1160 /*
1161 * oldc is a prefix of newc and either
1162 * - newc continues with a / where oldc ends, or
1163 * - oldc was / itself, or
1164 * - oldc and newc are equal.
1165 */
1166 async_answer_0(rid, EINVAL);
1167 free(old);
1168 free(new);
1169 return;
1170 }
1171
1172 vfs_lookup_res_t old_lr;
1173 vfs_lookup_res_t new_lr;
1174 vfs_lookup_res_t new_par_lr;
1175 fibril_rwlock_write_lock(&namespace_rwlock);
1176
1177 /* Lookup the node belonging to the old file name. */
1178 rc = vfs_lookup_internal(oldc, L_NONE, &old_lr, NULL);
1179 if (rc != EOK) {
1180 fibril_rwlock_write_unlock(&namespace_rwlock);
1181 async_answer_0(rid, rc);
1182 free(old);
1183 free(new);
1184 return;
1185 }
1186
1187 vfs_node_t *old_node = vfs_node_get(&old_lr);
1188 if (!old_node) {
1189 fibril_rwlock_write_unlock(&namespace_rwlock);
1190 async_answer_0(rid, ENOMEM);
1191 free(old);
1192 free(new);
1193 return;
1194 }
1195
1196 /* Determine the path to the parent of the node with the new name. */
1197 char *parentc = str_dup(newc);
1198 if (!parentc) {
1199 fibril_rwlock_write_unlock(&namespace_rwlock);
1200 vfs_node_put(old_node);
1201 async_answer_0(rid, rc);
1202 free(old);
1203 free(new);
1204 return;
1205 }
1206
1207 char *lastsl = str_rchr(parentc + 1, '/');
1208 if (lastsl)
1209 *lastsl = '\0';
1210 else
1211 parentc[1] = '\0';
1212
1213 /* Lookup parent of the new file name. */
1214 rc = vfs_lookup_internal(parentc, L_NONE, &new_par_lr, NULL);
1215 free(parentc); /* not needed anymore */
1216 if (rc != EOK) {
1217 fibril_rwlock_write_unlock(&namespace_rwlock);
1218 vfs_node_put(old_node);
1219 async_answer_0(rid, rc);
1220 free(old);
1221 free(new);
1222 return;
1223 }
1224
1225 /* Check whether linking to the same file system instance. */
1226 if ((old_node->fs_handle != new_par_lr.triplet.fs_handle) ||
1227 (old_node->service_id != new_par_lr.triplet.service_id)) {
1228 fibril_rwlock_write_unlock(&namespace_rwlock);
1229 vfs_node_put(old_node);
1230 async_answer_0(rid, EXDEV); /* different file systems */
1231 free(old);
1232 free(new);
1233 return;
1234 }
1235
1236 /* Destroy the old link for the new name. */
1237 vfs_node_t *new_node = NULL;
1238 rc = vfs_lookup_internal(newc, L_UNLINK, &new_lr, NULL);
1239
1240 switch (rc) {
1241 case ENOENT:
1242 /* simply not in our way */
1243 break;
1244 case EOK:
1245 new_node = vfs_node_get(&new_lr);
1246 if (!new_node) {
1247 fibril_rwlock_write_unlock(&namespace_rwlock);
1248 vfs_node_put(old_node);
1249 async_answer_0(rid, ENOMEM);
1250 free(old);
1251 free(new);
1252 return;
1253 }
1254 fibril_mutex_lock(&nodes_mutex);
1255 new_node->lnkcnt--;
1256 fibril_mutex_unlock(&nodes_mutex);
1257 break;
1258 default:
1259 fibril_rwlock_write_unlock(&namespace_rwlock);
1260 vfs_node_put(old_node);
1261 async_answer_0(rid, ENOTEMPTY);
1262 free(old);
1263 free(new);
1264 return;
1265 }
1266
1267 /* Create the new link for the new name. */
1268 rc = vfs_lookup_internal(newc, L_LINK, NULL, NULL, old_node->index);
1269 if (rc != EOK) {
1270 fibril_rwlock_write_unlock(&namespace_rwlock);
1271 vfs_node_put(old_node);
1272 if (new_node)
1273 vfs_node_put(new_node);
1274 async_answer_0(rid, rc);
1275 free(old);
1276 free(new);
1277 return;
1278 }
1279
1280 fibril_mutex_lock(&nodes_mutex);
1281 old_node->lnkcnt++;
1282 fibril_mutex_unlock(&nodes_mutex);
1283
1284 /* Destroy the link for the old name. */
1285 rc = vfs_lookup_internal(oldc, L_UNLINK, NULL, NULL);
1286 if (rc != EOK) {
1287 fibril_rwlock_write_unlock(&namespace_rwlock);
1288 vfs_node_put(old_node);
1289 if (new_node)
1290 vfs_node_put(new_node);
1291 async_answer_0(rid, rc);
1292 free(old);
1293 free(new);
1294 return;
1295 }
1296
1297 fibril_mutex_lock(&nodes_mutex);
1298 old_node->lnkcnt--;
1299 fibril_mutex_unlock(&nodes_mutex);
1300 fibril_rwlock_write_unlock(&namespace_rwlock);
1301 vfs_node_put(old_node);
1302
1303 if (new_node)
1304 vfs_node_put(new_node);
1305
1306 free(old);
1307 free(new);
1308 async_answer_0(rid, EOK);
1309}
1310
1311void vfs_dup(ipc_callid_t rid, ipc_call_t *request)
1312{
1313 int oldfd = IPC_GET_ARG1(*request);
1314 int newfd = IPC_GET_ARG2(*request);
1315
1316 /* If the file descriptors are the same, do nothing. */
1317 if (oldfd == newfd) {
1318 async_answer_1(rid, EOK, newfd);
1319 return;
1320 }
1321
1322 /* Lookup the file structure corresponding to oldfd. */
1323 vfs_file_t *oldfile = vfs_file_get(oldfd);
1324 if (!oldfile) {
1325 async_answer_0(rid, EBADF);
1326 return;
1327 }
1328
1329 /*
1330 * Lock the open file structure so that no other thread can manipulate
1331 * the same open file at a time.
1332 */
1333 fibril_mutex_lock(&oldfile->lock);
1334
1335 /* Make sure newfd is closed. */
1336 (void) vfs_fd_free(newfd);
1337
1338 /* Assign the old file to newfd. */
1339 int ret = vfs_fd_assign(oldfile, newfd);
1340 fibril_mutex_unlock(&oldfile->lock);
1341 vfs_file_put(oldfile);
1342
1343 if (ret != EOK)
1344 async_answer_0(rid, ret);
1345 else
1346 async_answer_1(rid, EOK, newfd);
1347}
1348
1349void vfs_wait_handle(ipc_callid_t rid, ipc_call_t *request)
1350{
1351 int fd = vfs_wait_handle_internal();
1352 async_answer_1(rid, EOK, fd);
1353}
1354
1355void vfs_get_mtab(ipc_callid_t rid, ipc_call_t *request)
1356{
1357 ipc_callid_t callid;
1358 ipc_call_t data;
1359 sysarg_t rc = EOK;
1360 size_t len;
1361
1362 fibril_mutex_lock(&mtab_list_lock);
1363
1364 /* Send to the caller the number of mounted filesystems */
1365 callid = async_get_call(&data);
1366 if (IPC_GET_IMETHOD(data) != VFS_IN_PING) {
1367 rc = ENOTSUP;
1368 async_answer_0(callid, rc);
1369 goto exit;
1370 }
1371 async_answer_1(callid, EOK, mtab_size);
1372
1373 list_foreach(mtab_list, cur) {
1374 mtab_ent_t *mtab_ent = list_get_instance(cur, mtab_ent_t,
1375 link);
1376
1377 rc = ENOTSUP;
1378
1379 if (!async_data_read_receive(&callid, &len))
1380 goto exit;
1381
1382 (void) async_data_read_finalize(callid, mtab_ent->mp,
1383 str_size(mtab_ent->mp));
1384
1385 if (!async_data_read_receive(&callid, &len))
1386 goto exit;
1387
1388 (void) async_data_read_finalize(callid, mtab_ent->opts,
1389 str_size(mtab_ent->opts));
1390
1391 if (!async_data_read_receive(&callid, &len))
1392 goto exit;
1393
1394 (void) async_data_read_finalize(callid, mtab_ent->fs_name,
1395 str_size(mtab_ent->fs_name));
1396
1397 callid = async_get_call(&data);
1398
1399 if (IPC_GET_IMETHOD(data) != VFS_IN_PING) {
1400 rc = ENOTSUP;
1401 async_answer_0(callid, rc);
1402 goto exit;
1403 }
1404
1405 rc = EOK;
1406 async_answer_2(callid, rc, mtab_ent->instance,
1407 mtab_ent->service_id);
1408 }
1409
1410exit:
1411 fibril_mutex_unlock(&mtab_list_lock);
1412 async_answer_0(rid, rc);
1413}
1414
1415/**
1416 * @}
1417 */
Note: See TracBrowser for help on using the repository browser.