xref: /linux/fs/smb/client/misc.c (revision e83330c55edc0c3ac08aa6c95e49e4694c65523b)
1 // SPDX-License-Identifier: LGPL-2.1
2 /*
3  *
4  *   Copyright (C) International Business Machines  Corp., 2002,2008
5  *   Author(s): Steve French (sfrench@us.ibm.com)
6  *
7  */
8 
9 #include <linux/slab.h>
10 #include <linux/ctype.h>
11 #include <linux/mempool.h>
12 #include <linux/vmalloc.h>
13 #include "cifsglob.h"
14 #include "cifsproto.h"
15 #include "cifs_debug.h"
16 #include "smberr.h"
17 #include "nterr.h"
18 #include "cifs_unicode.h"
19 #include "smb2pdu.h"
20 #include "smb2proto.h"
21 #include "smb1proto.h"
22 #include "cifsfs.h"
23 #ifdef CONFIG_CIFS_DFS_UPCALL
24 #include "dns_resolve.h"
25 #include "dfs_cache.h"
26 #include "dfs.h"
27 #endif
28 #include "fs_context.h"
29 #include "cached_dir.h"
30 
31 struct tcon_list {
32 	struct list_head entry;
33 	struct cifs_tcon *tcon;
34 };
35 
36 /* The xid serves as a useful identifier for each incoming vfs request,
37    in a similar way to the mid which is useful to track each sent smb,
38    and CurrentXid can also provide a running counter (although it
39    will eventually wrap past zero) of the total vfs operations handled
40    since the cifs fs was mounted */
41 
42 unsigned int
43 _get_xid(void)
44 {
45 	unsigned int xid;
46 
47 	spin_lock(&GlobalMid_Lock);
48 	GlobalTotalActiveXid++;
49 
50 	/* keep high water mark for number of simultaneous ops in filesystem */
51 	if (GlobalTotalActiveXid > GlobalMaxActiveXid)
52 		GlobalMaxActiveXid = GlobalTotalActiveXid;
53 	if (GlobalTotalActiveXid > 65000)
54 		cifs_dbg(FYI, "warning: more than 65000 requests active\n");
55 	xid = GlobalCurrentXid++;
56 	spin_unlock(&GlobalMid_Lock);
57 	return xid;
58 }
59 
60 void
61 _free_xid(unsigned int xid)
62 {
63 	spin_lock(&GlobalMid_Lock);
64 	/* if (GlobalTotalActiveXid == 0)
65 		BUG(); */
66 	GlobalTotalActiveXid--;
67 	spin_unlock(&GlobalMid_Lock);
68 }
69 
70 struct cifs_ses *
71 sesInfoAlloc(void)
72 {
73 	struct cifs_ses *ret_buf;
74 
75 	ret_buf = kzalloc_obj(struct cifs_ses);
76 	if (ret_buf) {
77 		atomic_inc(&sesInfoAllocCount);
78 		spin_lock_init(&ret_buf->ses_lock);
79 		ret_buf->ses_status = SES_NEW;
80 		++ret_buf->ses_count;
81 		INIT_LIST_HEAD(&ret_buf->smb_ses_list);
82 		INIT_LIST_HEAD(&ret_buf->tcon_list);
83 		mutex_init(&ret_buf->session_mutex);
84 		spin_lock_init(&ret_buf->iface_lock);
85 		INIT_LIST_HEAD(&ret_buf->iface_list);
86 		spin_lock_init(&ret_buf->chan_lock);
87 	}
88 	return ret_buf;
89 }
90 
91 void
92 sesInfoFree(struct cifs_ses *buf_to_free)
93 {
94 	struct cifs_server_iface *iface = NULL, *niface = NULL;
95 
96 	if (buf_to_free == NULL) {
97 		cifs_dbg(FYI, "Null buffer passed to sesInfoFree\n");
98 		return;
99 	}
100 
101 	unload_nls(buf_to_free->local_nls);
102 	atomic_dec(&sesInfoAllocCount);
103 	kfree(buf_to_free->serverOS);
104 	kfree(buf_to_free->serverDomain);
105 	kfree(buf_to_free->serverNOS);
106 	kfree_sensitive(buf_to_free->password);
107 	kfree_sensitive(buf_to_free->password2);
108 	kfree(buf_to_free->user_name);
109 	kfree(buf_to_free->domainName);
110 	kfree(buf_to_free->dns_dom);
111 	kfree_sensitive(buf_to_free->auth_key.response);
112 	spin_lock(&buf_to_free->iface_lock);
113 	list_for_each_entry_safe(iface, niface, &buf_to_free->iface_list,
114 				 iface_head)
115 		kref_put(&iface->refcount, release_iface);
116 	spin_unlock(&buf_to_free->iface_lock);
117 	kfree_sensitive(buf_to_free);
118 }
119 
120 struct cifs_tcon *
121 tcon_info_alloc(bool dir_leases_enabled, enum smb3_tcon_ref_trace trace)
122 {
123 	struct cifs_tcon *ret_buf;
124 	static atomic_t tcon_debug_id;
125 
126 	ret_buf = kzalloc_obj(*ret_buf);
127 	if (!ret_buf)
128 		return NULL;
129 
130 	if (dir_leases_enabled == true) {
131 		ret_buf->cfids = init_cached_dirs();
132 		if (!ret_buf->cfids) {
133 			kfree(ret_buf);
134 			return NULL;
135 		}
136 	}
137 	/* else ret_buf->cfids is already set to NULL above */
138 
139 	atomic_inc(&tconInfoAllocCount);
140 	ret_buf->status = TID_NEW;
141 	ret_buf->debug_id = atomic_inc_return(&tcon_debug_id);
142 	ret_buf->tc_count = 1;
143 	spin_lock_init(&ret_buf->tc_lock);
144 	INIT_LIST_HEAD(&ret_buf->openFileList);
145 	INIT_LIST_HEAD(&ret_buf->tcon_list);
146 	INIT_LIST_HEAD(&ret_buf->cifs_sb_list);
147 	spin_lock_init(&ret_buf->open_file_lock);
148 	spin_lock_init(&ret_buf->stat_lock);
149 	spin_lock_init(&ret_buf->sb_list_lock);
150 	atomic_set(&ret_buf->num_local_opens, 0);
151 	atomic_set(&ret_buf->num_remote_opens, 0);
152 	ret_buf->stats_from_time = ktime_get_real_seconds();
153 #ifdef CONFIG_CIFS_FSCACHE
154 	mutex_init(&ret_buf->fscache_lock);
155 #endif
156 	trace_smb3_tcon_ref(ret_buf->debug_id, ret_buf->tc_count, trace);
157 #ifdef CONFIG_CIFS_DFS_UPCALL
158 	INIT_LIST_HEAD(&ret_buf->dfs_ses_list);
159 #endif
160 	INIT_LIST_HEAD(&ret_buf->pending_opens);
161 	INIT_DELAYED_WORK(&ret_buf->query_interfaces,
162 			  smb2_query_server_interfaces);
163 #ifdef CONFIG_CIFS_DFS_UPCALL
164 	INIT_DELAYED_WORK(&ret_buf->dfs_cache_work, dfs_cache_refresh);
165 #endif
166 
167 	return ret_buf;
168 }
169 
170 void
171 tconInfoFree(struct cifs_tcon *tcon, enum smb3_tcon_ref_trace trace)
172 {
173 	if (tcon == NULL) {
174 		cifs_dbg(FYI, "Null buffer passed to tconInfoFree\n");
175 		return;
176 	}
177 	trace_smb3_tcon_ref(tcon->debug_id, tcon->tc_count, trace);
178 	free_cached_dirs(tcon->cfids);
179 	atomic_dec(&tconInfoAllocCount);
180 	kfree(tcon->nativeFileSystem);
181 	kfree_sensitive(tcon->password);
182 	kfree(tcon->origin_fullpath);
183 	kfree(tcon);
184 }
185 
186 void *
187 cifs_buf_get(void)
188 {
189 	void *ret_buf = NULL;
190 	/*
191 	 * SMB2 header is bigger than CIFS one - no problems to clean some
192 	 * more bytes for CIFS.
193 	 */
194 	size_t buf_size = sizeof(struct smb2_hdr);
195 
196 	/*
197 	 * We could use negotiated size instead of max_msgsize -
198 	 * but it may be more efficient to always alloc same size
199 	 * albeit slightly larger than necessary and maxbuffersize
200 	 * defaults to this and can not be bigger.
201 	 */
202 	ret_buf = mempool_alloc(cifs_req_poolp, GFP_NOFS);
203 
204 	/* clear the first few header bytes */
205 	/* for most paths, more is cleared in header_assemble */
206 	memset(ret_buf, 0, buf_size + 3);
207 	atomic_inc(&buf_alloc_count);
208 #ifdef CONFIG_CIFS_STATS2
209 	atomic_inc(&total_buf_alloc_count);
210 #endif /* CONFIG_CIFS_STATS2 */
211 
212 	return ret_buf;
213 }
214 
215 void
216 cifs_buf_release(void *buf_to_free)
217 {
218 	if (buf_to_free == NULL) {
219 		/* cifs_dbg(FYI, "Null buffer passed to cifs_buf_release\n");*/
220 		return;
221 	}
222 	mempool_free(buf_to_free, cifs_req_poolp);
223 
224 	atomic_dec(&buf_alloc_count);
225 	return;
226 }
227 
228 void *
229 cifs_small_buf_get(void)
230 {
231 	void *ret_buf = NULL;
232 
233 /* We could use negotiated size instead of max_msgsize -
234    but it may be more efficient to always alloc same size
235    albeit slightly larger than necessary and maxbuffersize
236    defaults to this and can not be bigger */
237 	ret_buf = mempool_alloc(cifs_sm_req_poolp, GFP_NOFS);
238 	/* No need to clear memory here, cleared in header assemble */
239 	atomic_inc(&small_buf_alloc_count);
240 #ifdef CONFIG_CIFS_STATS2
241 	atomic_inc(&total_small_buf_alloc_count);
242 #endif /* CONFIG_CIFS_STATS2 */
243 
244 	return ret_buf;
245 }
246 
247 void
248 cifs_small_buf_release(void *buf_to_free)
249 {
250 
251 	if (buf_to_free == NULL) {
252 		cifs_dbg(FYI, "Null buffer passed to cifs_small_buf_release\n");
253 		return;
254 	}
255 	mempool_free(buf_to_free, cifs_sm_req_poolp);
256 
257 	atomic_dec(&small_buf_alloc_count);
258 	return;
259 }
260 
261 void
262 free_rsp_buf(int resp_buftype, void *rsp)
263 {
264 	if (resp_buftype == CIFS_SMALL_BUFFER)
265 		cifs_small_buf_release(rsp);
266 	else if (resp_buftype == CIFS_LARGE_BUFFER)
267 		cifs_buf_release(rsp);
268 }
269 
270 void
271 dump_smb(void *buf, int smb_buf_length)
272 {
273 	if (traceSMB == 0)
274 		return;
275 
276 	print_hex_dump(KERN_DEBUG, "", DUMP_PREFIX_NONE, 8, 2, buf,
277 		       smb_buf_length, true);
278 }
279 
280 void
281 cifs_autodisable_serverino(struct cifs_sb_info *cifs_sb, const char *reason, int rc)
282 {
283 	unsigned int sbflags = cifs_sb_flags(cifs_sb);
284 
285 	if (sbflags & CIFS_MOUNT_SERVER_INUM) {
286 		struct cifs_tcon *tcon = NULL;
287 
288 		if (cifs_sb->master_tlink)
289 			tcon = cifs_sb_master_tcon(cifs_sb);
290 
291 		atomic_andnot(CIFS_MOUNT_SERVER_INUM, &cifs_sb->mnt_cifs_flags);
292 		cifs_sb->mnt_cifs_serverino_autodisabled = true;
293 		if (rc)
294 			cifs_dbg(VFS, "%s: %d\n", reason, rc);
295 		else
296 			cifs_dbg(VFS, "%s\n", reason);
297 		cifs_dbg(VFS, "Autodisabling the use of server inode numbers on %s\n",
298 			 tcon ? tcon->tree_name : "new server");
299 		cifs_dbg(VFS, "The server doesn't seem to support them properly or the files might be on different servers (DFS)\n");
300 		cifs_dbg(VFS, "Hardlinks will not be recognized on this mount. Consider mounting with the \"noserverino\" option to silence this message.\n");
301 
302 	}
303 }
304 
305 void cifs_set_oplock_level(struct cifsInodeInfo *cinode, __u32 oplock)
306 {
307 	oplock &= 0xF;
308 
309 	if (oplock == OPLOCK_EXCLUSIVE) {
310 		cinode->oplock = CIFS_CACHE_WRITE_FLG | CIFS_CACHE_READ_FLG;
311 		cifs_dbg(FYI, "Exclusive Oplock granted on inode %p\n",
312 			 &cinode->netfs.inode);
313 	} else if (oplock == OPLOCK_READ) {
314 		cinode->oplock = CIFS_CACHE_READ_FLG;
315 		cifs_dbg(FYI, "Level II Oplock granted on inode %p\n",
316 			 &cinode->netfs.inode);
317 	} else
318 		cinode->oplock = 0;
319 }
320 
321 /*
322  * We wait for oplock breaks to be processed before we attempt to perform
323  * writes.
324  */
325 int cifs_get_writer(struct cifsInodeInfo *cinode)
326 {
327 	int rc;
328 
329 start:
330 	rc = wait_on_bit(&cinode->flags, CIFS_INODE_PENDING_OPLOCK_BREAK,
331 			 TASK_KILLABLE);
332 	if (rc)
333 		return rc;
334 
335 	spin_lock(&cinode->writers_lock);
336 	if (!cinode->writers)
337 		set_bit(CIFS_INODE_PENDING_WRITERS, &cinode->flags);
338 	cinode->writers++;
339 	/* Check to see if we have started servicing an oplock break */
340 	if (test_bit(CIFS_INODE_PENDING_OPLOCK_BREAK, &cinode->flags)) {
341 		cinode->writers--;
342 		if (cinode->writers == 0) {
343 			clear_bit(CIFS_INODE_PENDING_WRITERS, &cinode->flags);
344 			wake_up_bit(&cinode->flags, CIFS_INODE_PENDING_WRITERS);
345 		}
346 		spin_unlock(&cinode->writers_lock);
347 		goto start;
348 	}
349 	spin_unlock(&cinode->writers_lock);
350 	return 0;
351 }
352 
353 void cifs_put_writer(struct cifsInodeInfo *cinode)
354 {
355 	spin_lock(&cinode->writers_lock);
356 	cinode->writers--;
357 	if (cinode->writers == 0) {
358 		clear_bit(CIFS_INODE_PENDING_WRITERS, &cinode->flags);
359 		wake_up_bit(&cinode->flags, CIFS_INODE_PENDING_WRITERS);
360 	}
361 	spin_unlock(&cinode->writers_lock);
362 }
363 
364 /**
365  * cifs_queue_oplock_break - queue the oplock break handler for cfile
366  * @cfile: The file to break the oplock on
367  *
368  * This function is called from the demultiplex thread when it
369  * receives an oplock break for @cfile.
370  *
371  * Assumes the tcon->open_file_lock is held.
372  * Assumes cfile->file_info_lock is NOT held.
373  */
374 void cifs_queue_oplock_break(struct cifsFileInfo *cfile)
375 {
376 	/*
377 	 * Bump the handle refcount now while we hold the
378 	 * open_file_lock to enforce the validity of it for the oplock
379 	 * break handler. The matching put is done at the end of the
380 	 * handler.
381 	 *
382 	 * Only take a reference if the work is actually queued.
383 	 */
384 	if (queue_work(cifsoplockd_wq, &cfile->oplock_break))
385 		cifsFileInfo_get(cfile);
386 }
387 
388 void cifs_done_oplock_break(struct cifsInodeInfo *cinode)
389 {
390 	clear_bit(CIFS_INODE_PENDING_OPLOCK_BREAK, &cinode->flags);
391 	wake_up_bit(&cinode->flags, CIFS_INODE_PENDING_OPLOCK_BREAK);
392 }
393 
394 bool
395 backup_cred(struct cifs_sb_info *cifs_sb)
396 {
397 	unsigned int sbflags = cifs_sb_flags(cifs_sb);
398 
399 	if (sbflags & CIFS_MOUNT_CIFS_BACKUPUID) {
400 		if (uid_eq(cifs_sb->ctx->backupuid, current_fsuid()))
401 			return true;
402 	}
403 	if (sbflags & CIFS_MOUNT_CIFS_BACKUPGID) {
404 		if (in_group_p(cifs_sb->ctx->backupgid))
405 			return true;
406 	}
407 
408 	return false;
409 }
410 
411 void
412 cifs_del_pending_open(struct cifs_pending_open *open)
413 {
414 	spin_lock(&tlink_tcon(open->tlink)->open_file_lock);
415 	list_del(&open->olist);
416 	spin_unlock(&tlink_tcon(open->tlink)->open_file_lock);
417 }
418 
419 void
420 cifs_add_pending_open_locked(struct cifs_fid *fid, struct tcon_link *tlink,
421 			     struct cifs_pending_open *open)
422 {
423 	memcpy(open->lease_key, fid->lease_key, SMB2_LEASE_KEY_SIZE);
424 	open->oplock = CIFS_OPLOCK_NO_CHANGE;
425 	open->tlink = tlink;
426 	fid->pending_open = open;
427 	list_add_tail(&open->olist, &tlink_tcon(tlink)->pending_opens);
428 }
429 
430 void
431 cifs_add_pending_open(struct cifs_fid *fid, struct tcon_link *tlink,
432 		      struct cifs_pending_open *open)
433 {
434 	spin_lock(&tlink_tcon(tlink)->open_file_lock);
435 	cifs_add_pending_open_locked(fid, tlink, open);
436 	spin_unlock(&tlink_tcon(open->tlink)->open_file_lock);
437 }
438 
439 /*
440  * Critical section which runs after acquiring deferred_lock.
441  * As there is no reference count on cifs_deferred_close, pdclose
442  * should not be used outside deferred_lock.
443  */
444 bool
445 cifs_is_deferred_close(struct cifsFileInfo *cfile, struct cifs_deferred_close **pdclose)
446 {
447 	struct cifs_deferred_close *dclose;
448 
449 	list_for_each_entry(dclose, &CIFS_I(d_inode(cfile->dentry))->deferred_closes, dlist) {
450 		if ((dclose->netfid == cfile->fid.netfid) &&
451 			(dclose->persistent_fid == cfile->fid.persistent_fid) &&
452 			(dclose->volatile_fid == cfile->fid.volatile_fid)) {
453 			*pdclose = dclose;
454 			return true;
455 		}
456 	}
457 	return false;
458 }
459 
460 /*
461  * Critical section which runs after acquiring deferred_lock.
462  */
463 void
464 cifs_add_deferred_close(struct cifsFileInfo *cfile, struct cifs_deferred_close *dclose)
465 {
466 	bool is_deferred = false;
467 	struct cifs_deferred_close *pdclose;
468 
469 	is_deferred = cifs_is_deferred_close(cfile, &pdclose);
470 	if (is_deferred) {
471 		kfree(dclose);
472 		return;
473 	}
474 
475 	dclose->tlink = cfile->tlink;
476 	dclose->netfid = cfile->fid.netfid;
477 	dclose->persistent_fid = cfile->fid.persistent_fid;
478 	dclose->volatile_fid = cfile->fid.volatile_fid;
479 	list_add_tail(&dclose->dlist, &CIFS_I(d_inode(cfile->dentry))->deferred_closes);
480 }
481 
482 /*
483  * Critical section which runs after acquiring deferred_lock.
484  */
485 void
486 cifs_del_deferred_close(struct cifsFileInfo *cfile)
487 {
488 	bool is_deferred = false;
489 	struct cifs_deferred_close *dclose;
490 
491 	is_deferred = cifs_is_deferred_close(cfile, &dclose);
492 	if (!is_deferred)
493 		return;
494 	list_del(&dclose->dlist);
495 	kfree(dclose);
496 }
497 
498 void
499 cifs_close_deferred_file(struct cifsInodeInfo *cifs_inode)
500 {
501 	struct cifsFileInfo *cfile = NULL, *failed_cfile = NULL;
502 	struct file_list *tmp_list, *tmp_next_list;
503 	LIST_HEAD(file_head);
504 
505 	if (cifs_inode == NULL)
506 		return;
507 
508 	spin_lock(&cifs_inode->open_file_lock);
509 	list_for_each_entry(cfile, &cifs_inode->openFileList, flist) {
510 		if (delayed_work_pending(&cfile->deferred)) {
511 			if (cancel_delayed_work(&cfile->deferred)) {
512 				spin_lock(&cifs_inode->deferred_lock);
513 				cifs_del_deferred_close(cfile);
514 				spin_unlock(&cifs_inode->deferred_lock);
515 
516 				tmp_list = kmalloc_obj(struct file_list,
517 						       GFP_ATOMIC);
518 				if (tmp_list == NULL) {
519 					failed_cfile = cfile;
520 					break;
521 				}
522 				tmp_list->cfile = cfile;
523 				list_add_tail(&tmp_list->list, &file_head);
524 			}
525 		}
526 	}
527 	spin_unlock(&cifs_inode->open_file_lock);
528 
529 	if (failed_cfile)
530 		_cifsFileInfo_put(failed_cfile, false, false);
531 
532 	list_for_each_entry_safe(tmp_list, tmp_next_list, &file_head, list) {
533 		_cifsFileInfo_put(tmp_list->cfile, false, false);
534 		list_del(&tmp_list->list);
535 		kfree(tmp_list);
536 	}
537 }
538 
539 void
540 cifs_close_all_deferred_files(struct cifs_tcon *tcon)
541 {
542 	struct cifsFileInfo *cfile, *failed_cfile = NULL;
543 	struct file_list *tmp_list, *tmp_next_list;
544 	LIST_HEAD(file_head);
545 
546 	spin_lock(&tcon->open_file_lock);
547 	list_for_each_entry(cfile, &tcon->openFileList, tlist) {
548 		if (delayed_work_pending(&cfile->deferred)) {
549 			if (cancel_delayed_work(&cfile->deferred)) {
550 				spin_lock(&CIFS_I(d_inode(cfile->dentry))->deferred_lock);
551 				cifs_del_deferred_close(cfile);
552 				spin_unlock(&CIFS_I(d_inode(cfile->dentry))->deferred_lock);
553 
554 				tmp_list = kmalloc_obj(struct file_list,
555 						       GFP_ATOMIC);
556 				if (tmp_list == NULL) {
557 					failed_cfile = cfile;
558 					break;
559 				}
560 				tmp_list->cfile = cfile;
561 				list_add_tail(&tmp_list->list, &file_head);
562 			}
563 		}
564 	}
565 	spin_unlock(&tcon->open_file_lock);
566 
567 	if (failed_cfile)
568 		_cifsFileInfo_put(failed_cfile, true, false);
569 
570 	list_for_each_entry_safe(tmp_list, tmp_next_list, &file_head, list) {
571 		_cifsFileInfo_put(tmp_list->cfile, true, false);
572 		list_del(&tmp_list->list);
573 		kfree(tmp_list);
574 	}
575 }
576 
577 void cifs_close_all_deferred_files_sb(struct cifs_sb_info *cifs_sb)
578 {
579 	struct rb_root *root = &cifs_sb->tlink_tree;
580 	struct rb_node *node;
581 	struct cifs_tcon *tcon;
582 	struct tcon_link *tlink;
583 	struct tcon_list *tmp_list, *q;
584 	LIST_HEAD(tcon_head);
585 
586 	spin_lock(&cifs_sb->tlink_tree_lock);
587 	for (node = rb_first(root); node; node = rb_next(node)) {
588 		tlink = rb_entry(node, struct tcon_link, tl_rbnode);
589 		tcon = tlink_tcon(tlink);
590 		if (IS_ERR(tcon))
591 			continue;
592 		tmp_list = kmalloc_obj(struct tcon_list, GFP_ATOMIC);
593 		if (tmp_list == NULL)
594 			break;
595 		tmp_list->tcon = tcon;
596 		/* Take a reference on tcon to prevent it from being freed */
597 		spin_lock(&tcon->tc_lock);
598 		++tcon->tc_count;
599 		trace_smb3_tcon_ref(tcon->debug_id, tcon->tc_count,
600 				    netfs_trace_tcon_ref_get_close_defer_files);
601 		spin_unlock(&tcon->tc_lock);
602 		list_add_tail(&tmp_list->entry, &tcon_head);
603 	}
604 	spin_unlock(&cifs_sb->tlink_tree_lock);
605 
606 	list_for_each_entry_safe(tmp_list, q, &tcon_head, entry) {
607 		cifs_close_all_deferred_files(tmp_list->tcon);
608 		list_del(&tmp_list->entry);
609 		cifs_put_tcon(tmp_list->tcon, netfs_trace_tcon_ref_put_close_defer_files);
610 		kfree(tmp_list);
611 	}
612 }
613 
614 void cifs_close_deferred_file_under_dentry(struct cifs_tcon *tcon,
615 					   struct dentry *dentry)
616 {
617 	struct file_list *tmp_list, *tmp_next_list;
618 	struct cifsFileInfo *cfile, *failed_cfile = NULL;
619 	LIST_HEAD(file_head);
620 
621 	spin_lock(&tcon->open_file_lock);
622 	list_for_each_entry(cfile, &tcon->openFileList, tlist) {
623 		if ((cfile->dentry == dentry) &&
624 		    delayed_work_pending(&cfile->deferred) &&
625 		    cancel_delayed_work(&cfile->deferred)) {
626 			spin_lock(&CIFS_I(d_inode(cfile->dentry))->deferred_lock);
627 			cifs_del_deferred_close(cfile);
628 			spin_unlock(&CIFS_I(d_inode(cfile->dentry))->deferred_lock);
629 
630 			tmp_list = kmalloc_obj(struct file_list, GFP_ATOMIC);
631 			if (tmp_list == NULL) {
632 				failed_cfile = cfile;
633 				break;
634 			}
635 			tmp_list->cfile = cfile;
636 			list_add_tail(&tmp_list->list, &file_head);
637 		}
638 	}
639 	spin_unlock(&tcon->open_file_lock);
640 
641 	if (failed_cfile)
642 		_cifsFileInfo_put(failed_cfile, true, false);
643 
644 	list_for_each_entry_safe(tmp_list, tmp_next_list, &file_head, list) {
645 		_cifsFileInfo_put(tmp_list->cfile, true, false);
646 		list_del(&tmp_list->list);
647 		kfree(tmp_list);
648 	}
649 }
650 
651 /*
652  * If a dentry has been deleted, all corresponding open handles should know that
653  * so that we do not defer close them.
654  */
655 void cifs_mark_open_handles_for_deleted_file(struct inode *inode,
656 					     const char *path)
657 {
658 	struct cifsFileInfo *cfile;
659 	void *page;
660 	const char *full_path;
661 	struct cifsInodeInfo *cinode = CIFS_I(inode);
662 
663 	page = alloc_dentry_path();
664 	spin_lock(&cinode->open_file_lock);
665 
666 	/*
667 	 * note: we need to construct path from dentry and compare only if the
668 	 * inode has any hardlinks. When number of hardlinks is 1, we can just
669 	 * mark all open handles since they are going to be from the same file.
670 	 */
671 	if (inode->i_nlink > 1) {
672 		list_for_each_entry(cfile, &cinode->openFileList, flist) {
673 			full_path = build_path_from_dentry(cfile->dentry, page);
674 			if (!IS_ERR(full_path) && strcmp(full_path, path) == 0)
675 				cfile->status_file_deleted = true;
676 		}
677 	} else {
678 		list_for_each_entry(cfile, &cinode->openFileList, flist)
679 			cfile->status_file_deleted = true;
680 	}
681 	spin_unlock(&cinode->open_file_lock);
682 	free_dentry_path(page);
683 }
684 
685 /* parses DFS referral V3 structure
686  * caller is responsible for freeing target_nodes
687  * returns:
688  * - on success - 0
689  * - on failure - errno
690  */
691 int
692 parse_dfs_referrals(struct get_dfs_referral_rsp *rsp, u32 rsp_size,
693 		    unsigned int *num_of_nodes,
694 		    struct dfs_info3_param **target_nodes,
695 		    const struct nls_table *nls_codepage, int remap,
696 		    const char *searchName, bool is_unicode)
697 {
698 	int i, rc = 0;
699 	char *data_end;
700 	struct dfs_referral_level_3 *ref;
701 	unsigned int path_consumed;
702 	size_t search_name_len;
703 
704 	if (rsp_size < sizeof(*rsp)) {
705 		cifs_dbg(VFS | ONCE,
706 			 "%s: header is malformed (size is %u, must be %zu)\n",
707 			 __func__, rsp_size, sizeof(*rsp));
708 		rc = -EINVAL;
709 		goto parse_DFS_referrals_exit;
710 	}
711 
712 	*num_of_nodes = le16_to_cpu(rsp->NumberOfReferrals);
713 
714 	if (*num_of_nodes < 1) {
715 		cifs_dbg(VFS | ONCE, "%s: [path=%s] num_referrals must be at least > 0, but we got %d\n",
716 			 __func__, searchName, *num_of_nodes);
717 		rc = -ENOENT;
718 		goto parse_DFS_referrals_exit;
719 	}
720 
721 	if (sizeof(*rsp) + *num_of_nodes * sizeof(REFERRAL3) > rsp_size) {
722 		cifs_dbg(VFS | ONCE,
723 			 "%s: malformed buffer (size is %u, must be at least %zu)\n",
724 			 __func__, rsp_size,
725 			 sizeof(*rsp) + *num_of_nodes * sizeof(REFERRAL3));
726 		rc = -EINVAL;
727 		goto parse_DFS_referrals_exit;
728 	}
729 
730 	ref = (struct dfs_referral_level_3 *) &(rsp->referrals);
731 	if (ref->VersionNumber != cpu_to_le16(3)) {
732 		cifs_dbg(VFS, "Referrals of V%d version are not supported, should be V3\n",
733 			 le16_to_cpu(ref->VersionNumber));
734 		rc = -EINVAL;
735 		goto parse_DFS_referrals_exit;
736 	}
737 
738 	/* get the upper boundary of the resp buffer */
739 	data_end = (char *)rsp + rsp_size;
740 
741 	cifs_dbg(FYI, "num_referrals: %d dfs flags: 0x%x ...\n",
742 		 *num_of_nodes, le32_to_cpu(rsp->DFSFlags));
743 
744 	*target_nodes = kzalloc_objs(struct dfs_info3_param, *num_of_nodes);
745 	if (*target_nodes == NULL) {
746 		rc = -ENOMEM;
747 		goto parse_DFS_referrals_exit;
748 	}
749 	search_name_len = strlen(searchName);
750 
751 	/* collect necessary data from referrals */
752 	for (i = 0; i < *num_of_nodes; i++) {
753 		char *temp;
754 		int max_len;
755 		struct dfs_info3_param *node = (*target_nodes)+i;
756 
757 		node->flags = le32_to_cpu(rsp->DFSFlags);
758 		path_consumed = le16_to_cpu(rsp->PathConsumed);
759 		if (is_unicode) {
760 			size_t search_name_utf16_len = search_name_len * 2 + 2;
761 			__le16 *tmp;
762 
763 			if (path_consumed > search_name_utf16_len) {
764 				rc = -EINVAL;
765 				goto parse_DFS_referrals_exit;
766 			}
767 
768 			tmp = kmalloc(search_name_utf16_len, GFP_KERNEL);
769 			if (!tmp) {
770 				rc = -ENOMEM;
771 				goto parse_DFS_referrals_exit;
772 			}
773 			cifsConvertToUTF16((__le16 *)tmp, searchName,
774 					   PATH_MAX, nls_codepage, remap);
775 			node->path_consumed = cifs_utf16_bytes(tmp, path_consumed,
776 							       nls_codepage);
777 			kfree(tmp);
778 		} else {
779 			if (path_consumed > search_name_len) {
780 				rc = -EINVAL;
781 				goto parse_DFS_referrals_exit;
782 			}
783 
784 			node->path_consumed = path_consumed;
785 		}
786 
787 		node->server_type = le16_to_cpu(ref->ServerType);
788 		node->ref_flag = le16_to_cpu(ref->ReferralEntryFlags);
789 
790 		/* copy DfsPath */
791 		if (le16_to_cpu(ref->DfsPathOffset) < sizeof(*ref) ||
792 		    le16_to_cpu(ref->DfsPathOffset) > data_end - (char *)ref) {
793 			cifs_dbg(VFS, "%s: DfsPathOffset %u out of range [%zu, %td]\n",
794 				 __func__, le16_to_cpu(ref->DfsPathOffset),
795 				 sizeof(*ref), data_end - (char *)ref);
796 			rc = -EINVAL;
797 			goto parse_DFS_referrals_exit;
798 		}
799 		temp = (char *)ref + le16_to_cpu(ref->DfsPathOffset);
800 		max_len = data_end - temp;
801 		node->path_name = cifs_strndup_from_utf16(temp, max_len,
802 						is_unicode, nls_codepage);
803 		if (!node->path_name) {
804 			rc = -ENOMEM;
805 			goto parse_DFS_referrals_exit;
806 		}
807 
808 		/* copy link target UNC */
809 		if (le16_to_cpu(ref->NetworkAddressOffset) < sizeof(*ref) ||
810 		    le16_to_cpu(ref->NetworkAddressOffset) > data_end - (char *)ref) {
811 			cifs_dbg(VFS, "%s: NetworkAddressOffset %u out of range [%zu, %td]\n",
812 				 __func__, le16_to_cpu(ref->NetworkAddressOffset),
813 				 sizeof(*ref), data_end - (char *)ref);
814 			rc = -EINVAL;
815 			goto parse_DFS_referrals_exit;
816 		}
817 		temp = (char *)ref + le16_to_cpu(ref->NetworkAddressOffset);
818 		max_len = data_end - temp;
819 		node->node_name = cifs_strndup_from_utf16(temp, max_len,
820 						is_unicode, nls_codepage);
821 		if (!node->node_name) {
822 			rc = -ENOMEM;
823 			goto parse_DFS_referrals_exit;
824 		}
825 
826 		node->ttl = le32_to_cpu(ref->TimeToLive);
827 
828 		ref++;
829 	}
830 
831 parse_DFS_referrals_exit:
832 	if (rc) {
833 		free_dfs_info_array(*target_nodes, *num_of_nodes);
834 		*target_nodes = NULL;
835 		*num_of_nodes = 0;
836 	}
837 	return rc;
838 }
839 
840 void extract_unc_hostname(const char *unc, const char **h, size_t *len)
841 {
842 	const char *end;
843 
844 	/* skip initial slashes */
845 	while (*unc && (*unc == '\\' || *unc == '/'))
846 		unc++;
847 
848 	end = unc;
849 
850 	while (*end && !(*end == '\\' || *end == '/'))
851 		end++;
852 
853 	*h = unc;
854 	*len = end - unc;
855 }
856 
857 /**
858  * copy_path_name - copy src path to dst, possibly truncating
859  * @dst: The destination buffer
860  * @src: The source name
861  *
862  * returns number of bytes written (including trailing nul)
863  */
864 int copy_path_name(char *dst, const char *src)
865 {
866 	int name_len;
867 
868 	/*
869 	 * PATH_MAX includes nul, so if strlen(src) >= PATH_MAX it
870 	 * will truncate and strlen(dst) will be PATH_MAX-1
871 	 */
872 	name_len = strscpy(dst, src, PATH_MAX);
873 	if (WARN_ON_ONCE(name_len < 0))
874 		name_len = PATH_MAX-1;
875 
876 	/* we count the trailing nul */
877 	name_len++;
878 	return name_len;
879 }
880 
881 struct super_cb_data {
882 	void *data;
883 	struct super_block *sb;
884 };
885 
886 static void tcon_super_cb(struct super_block *sb, void *arg)
887 {
888 	struct super_cb_data *sd = arg;
889 	struct cifs_sb_info *cifs_sb;
890 	struct cifs_tcon *t1 = sd->data, *t2;
891 
892 	if (sd->sb)
893 		return;
894 
895 	cifs_sb = CIFS_SB(sb);
896 	t2 = cifs_sb_master_tcon(cifs_sb);
897 
898 	spin_lock(&t2->tc_lock);
899 	if ((t1->ses == t2->ses ||
900 	     t1->ses->dfs_root_ses == t2->ses->dfs_root_ses) &&
901 	    t1->ses->server == t2->ses->server &&
902 	    t2->origin_fullpath &&
903 	    dfs_src_pathname_equal(t2->origin_fullpath, t1->origin_fullpath)) {
904 		/*
905 		 * Take the active reference while iterate_supers_type() still
906 		 * holds s_umount shared.
907 		 */
908 		cifs_sb_active(sb);
909 		sd->sb = sb;
910 	}
911 	spin_unlock(&t2->tc_lock);
912 }
913 
914 static struct super_block *__cifs_get_super(void (*f)(struct super_block *, void *),
915 					    void *data)
916 {
917 	struct super_cb_data sd = {
918 		.data = data,
919 		.sb = NULL,
920 	};
921 	struct file_system_type **fs_type = (struct file_system_type *[]) {
922 		&cifs_fs_type, &smb3_fs_type, NULL,
923 	};
924 
925 	for (; *fs_type; fs_type++) {
926 		iterate_supers_type(*fs_type, f, &sd);
927 		if (sd.sb)
928 			return sd.sb;
929 	}
930 	pr_warn_once("%s: could not find dfs superblock\n", __func__);
931 	return ERR_PTR(-EINVAL);
932 }
933 
934 static void __cifs_put_super(struct super_block *sb)
935 {
936 	if (!IS_ERR_OR_NULL(sb))
937 		cifs_sb_deactive(sb);
938 }
939 
940 struct super_block *cifs_get_dfs_tcon_super(struct cifs_tcon *tcon)
941 {
942 	spin_lock(&tcon->tc_lock);
943 	if (!tcon->origin_fullpath) {
944 		spin_unlock(&tcon->tc_lock);
945 		return ERR_PTR(-ENOENT);
946 	}
947 	spin_unlock(&tcon->tc_lock);
948 	return __cifs_get_super(tcon_super_cb, tcon);
949 }
950 
951 void cifs_put_tcp_super(struct super_block *sb)
952 {
953 	__cifs_put_super(sb);
954 }
955 
956 #ifdef CONFIG_CIFS_DFS_UPCALL
957 int match_target_ip(struct TCP_Server_Info *server,
958 		    const char *host, size_t hostlen,
959 		    bool *result)
960 {
961 	struct sockaddr_storage ss;
962 	int rc;
963 
964 	cifs_dbg(FYI, "%s: hostname=%.*s\n", __func__, (int)hostlen, host);
965 
966 	*result = false;
967 
968 	rc = dns_resolve_name(server->dns_dom, host, hostlen,
969 			      (struct sockaddr *)&ss);
970 	if (rc < 0)
971 		return rc;
972 
973 	spin_lock(&server->srv_lock);
974 	*result = cifs_match_ipaddr((struct sockaddr *)&server->dstaddr, (struct sockaddr *)&ss);
975 	spin_unlock(&server->srv_lock);
976 	cifs_dbg(FYI, "%s: ip addresses matched: %s\n", __func__, str_yes_no(*result));
977 	return 0;
978 }
979 
980 int cifs_update_super_prepath(struct cifs_sb_info *cifs_sb, char *prefix)
981 {
982 	int rc;
983 
984 	kfree(cifs_sb->prepath);
985 	cifs_sb->prepath = NULL;
986 
987 	if (prefix && *prefix) {
988 		cifs_sb->prepath = cifs_sanitize_prepath(prefix, GFP_ATOMIC);
989 		if (IS_ERR(cifs_sb->prepath)) {
990 			rc = PTR_ERR(cifs_sb->prepath);
991 			cifs_sb->prepath = NULL;
992 			return rc;
993 		}
994 		if (cifs_sb->prepath)
995 			convert_delimiter(cifs_sb->prepath, CIFS_DIR_SEP(cifs_sb));
996 	}
997 
998 	atomic_or(CIFS_MOUNT_USE_PREFIX_PATH, &cifs_sb->mnt_cifs_flags);
999 	return 0;
1000 }
1001 
1002 /*
1003  * Handle weird Windows SMB server behaviour. It responds with
1004  * STATUS_OBJECT_NAME_INVALID code to SMB2 QUERY_INFO request for
1005  * "\<server>\<dfsname>\<linkpath>" DFS reference, where <dfsname> contains
1006  * non-ASCII unicode symbols.
1007  */
1008 int cifs_inval_name_dfs_link_error(const unsigned int xid,
1009 				   struct cifs_tcon *tcon,
1010 				   struct cifs_sb_info *cifs_sb,
1011 				   const char *full_path,
1012 				   bool *islink)
1013 {
1014 	struct TCP_Server_Info *server = tcon->ses->server;
1015 	struct cifs_ses *ses = tcon->ses;
1016 	size_t len;
1017 	char *path;
1018 	char *ref_path;
1019 
1020 	*islink = false;
1021 
1022 	/*
1023 	 * Fast path - skip check when @full_path doesn't have a prefix path to
1024 	 * look up or tcon is not DFS.
1025 	 */
1026 	if (strlen(full_path) < 2 || !cifs_sb ||
1027 	    (cifs_sb_flags(cifs_sb) & CIFS_MOUNT_NO_DFS) ||
1028 	    !is_tcon_dfs(tcon))
1029 		return 0;
1030 
1031 	spin_lock(&server->srv_lock);
1032 	if (!server->leaf_fullpath) {
1033 		spin_unlock(&server->srv_lock);
1034 		return 0;
1035 	}
1036 	spin_unlock(&server->srv_lock);
1037 
1038 	/*
1039 	 * Slow path - tcon is DFS and @full_path has prefix path, so attempt
1040 	 * to get a referral to figure out whether it is an DFS link.
1041 	 */
1042 	len = strnlen(tcon->tree_name, MAX_TREE_SIZE + 1) + strlen(full_path) + 1;
1043 	path = kmalloc(len, GFP_KERNEL);
1044 	if (!path)
1045 		return -ENOMEM;
1046 
1047 	scnprintf(path, len, "%s%s", tcon->tree_name, full_path);
1048 	ref_path = dfs_cache_canonical_path(path + 1, cifs_sb->local_nls,
1049 					    cifs_remap(cifs_sb));
1050 	kfree(path);
1051 
1052 	if (IS_ERR(ref_path)) {
1053 		if (PTR_ERR(ref_path) != -EINVAL)
1054 			return PTR_ERR(ref_path);
1055 	} else {
1056 		struct dfs_info3_param *refs = NULL;
1057 		int num_refs = 0;
1058 
1059 		/*
1060 		 * XXX: we are not using dfs_cache_find() here because we might
1061 		 * end up filling all the DFS cache and thus potentially
1062 		 * removing cached DFS targets that the client would eventually
1063 		 * need during failover.
1064 		 */
1065 		ses = CIFS_DFS_ROOT_SES(ses);
1066 		if (ses->server->ops->get_dfs_refer &&
1067 		    !ses->server->ops->get_dfs_refer(xid, ses, ref_path, &refs,
1068 						     &num_refs, cifs_sb->local_nls,
1069 						     cifs_remap(cifs_sb)))
1070 			*islink = refs[0].server_type == DFS_TYPE_LINK;
1071 		free_dfs_info_array(refs, num_refs);
1072 		kfree(ref_path);
1073 	}
1074 	return 0;
1075 }
1076 #endif
1077 
1078 int cifs_wait_for_server_reconnect(struct TCP_Server_Info *server, bool retry)
1079 {
1080 	int timeout = 10;
1081 	int rc;
1082 
1083 	spin_lock(&server->srv_lock);
1084 	if (server->tcpStatus != CifsNeedReconnect) {
1085 		spin_unlock(&server->srv_lock);
1086 		return 0;
1087 	}
1088 	timeout *= server->nr_targets;
1089 	spin_unlock(&server->srv_lock);
1090 
1091 	/*
1092 	 * Give demultiplex thread up to 10 seconds to each target available for
1093 	 * reconnect -- should be greater than cifs socket timeout which is 7
1094 	 * seconds.
1095 	 *
1096 	 * On "soft" mounts we wait once. Hard mounts keep retrying until
1097 	 * process is killed or server comes back on-line.
1098 	 */
1099 	do {
1100 		rc = wait_event_interruptible_timeout(server->response_q,
1101 						      (server->tcpStatus != CifsNeedReconnect),
1102 						      timeout * HZ);
1103 		if (rc < 0) {
1104 			cifs_dbg(FYI, "%s: aborting reconnect due to received signal\n",
1105 				 __func__);
1106 			return -ERESTARTSYS;
1107 		}
1108 
1109 		/* are we still trying to reconnect? */
1110 		spin_lock(&server->srv_lock);
1111 		if (server->tcpStatus != CifsNeedReconnect) {
1112 			spin_unlock(&server->srv_lock);
1113 			return 0;
1114 		}
1115 		spin_unlock(&server->srv_lock);
1116 	} while (retry);
1117 
1118 	cifs_dbg(FYI, "%s: gave up waiting on reconnect\n", __func__);
1119 	return -EHOSTDOWN;
1120 }
1121