vfs_lockf.c revision 1.14 1 1.14 perry /* $NetBSD: vfs_lockf.c,v 1.14 1998/08/04 04:03:19 perry Exp $ */
2 1.5 cgd
3 1.1 ws /*
4 1.4 mycroft * Copyright (c) 1982, 1986, 1989, 1993
5 1.4 mycroft * The Regents of the University of California. All rights reserved.
6 1.1 ws *
7 1.1 ws * This code is derived from software contributed to Berkeley by
8 1.1 ws * Scooter Morris at Genentech Inc.
9 1.1 ws *
10 1.1 ws * Redistribution and use in source and binary forms, with or without
11 1.1 ws * modification, are permitted provided that the following conditions
12 1.1 ws * are met:
13 1.1 ws * 1. Redistributions of source code must retain the above copyright
14 1.1 ws * notice, this list of conditions and the following disclaimer.
15 1.1 ws * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 ws * notice, this list of conditions and the following disclaimer in the
17 1.1 ws * documentation and/or other materials provided with the distribution.
18 1.1 ws * 3. All advertising materials mentioning features or use of this software
19 1.1 ws * must display the following acknowledgement:
20 1.1 ws * This product includes software developed by the University of
21 1.1 ws * California, Berkeley and its contributors.
22 1.1 ws * 4. Neither the name of the University nor the names of its contributors
23 1.1 ws * may be used to endorse or promote products derived from this software
24 1.1 ws * without specific prior written permission.
25 1.1 ws *
26 1.1 ws * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
27 1.1 ws * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
28 1.1 ws * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
29 1.1 ws * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
30 1.1 ws * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
31 1.1 ws * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
32 1.1 ws * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
33 1.1 ws * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
34 1.1 ws * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
35 1.1 ws * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
36 1.1 ws * SUCH DAMAGE.
37 1.1 ws *
38 1.12 fvdl * @(#)ufs_lockf.c 8.4 (Berkeley) 10/26/94
39 1.1 ws */
40 1.1 ws
41 1.1 ws #include <sys/param.h>
42 1.1 ws #include <sys/systm.h>
43 1.1 ws #include <sys/kernel.h>
44 1.1 ws #include <sys/file.h>
45 1.1 ws #include <sys/proc.h>
46 1.1 ws #include <sys/vnode.h>
47 1.1 ws #include <sys/malloc.h>
48 1.1 ws #include <sys/fcntl.h>
49 1.1 ws #include <sys/lockf.h>
50 1.1 ws
51 1.1 ws /*
52 1.6 mycroft * This variable controls the maximum number of processes that will
53 1.6 mycroft * be checked in doing deadlock detection.
54 1.6 mycroft */
55 1.6 mycroft int maxlockdepth = MAXDEPTH;
56 1.6 mycroft
57 1.6 mycroft #ifdef LOCKF_DEBUG
58 1.6 mycroft int lockf_debug = 0;
59 1.6 mycroft #endif
60 1.6 mycroft
61 1.6 mycroft #define NOLOCKF (struct lockf *)0
62 1.6 mycroft #define SELF 0x1
63 1.6 mycroft #define OTHERS 0x2
64 1.6 mycroft
65 1.6 mycroft /*
66 1.4 mycroft * Do an advisory lock operation.
67 1.1 ws */
68 1.4 mycroft int
69 1.1 ws lf_advlock(head, size, id, op, fl, flags)
70 1.1 ws struct lockf **head;
71 1.3 cgd off_t size;
72 1.1 ws caddr_t id;
73 1.1 ws int op;
74 1.1 ws register struct flock *fl;
75 1.1 ws int flags;
76 1.1 ws {
77 1.1 ws register struct lockf *lock;
78 1.1 ws off_t start, end;
79 1.1 ws int error;
80 1.1 ws
81 1.1 ws /*
82 1.1 ws * Convert the flock structure into a start and end.
83 1.1 ws */
84 1.1 ws switch (fl->l_whence) {
85 1.1 ws case SEEK_SET:
86 1.1 ws case SEEK_CUR:
87 1.1 ws /*
88 1.1 ws * Caller is responsible for adding any necessary offset
89 1.1 ws * when SEEK_CUR is used.
90 1.1 ws */
91 1.1 ws start = fl->l_start;
92 1.1 ws break;
93 1.1 ws
94 1.1 ws case SEEK_END:
95 1.1 ws start = size + fl->l_start;
96 1.1 ws break;
97 1.1 ws
98 1.1 ws default:
99 1.1 ws return (EINVAL);
100 1.1 ws }
101 1.1 ws if (start < 0)
102 1.1 ws return (EINVAL);
103 1.10 kleink
104 1.10 kleink /*
105 1.10 kleink * Avoid the common case of unlocking when inode has no locks.
106 1.10 kleink */
107 1.10 kleink if (*head == (struct lockf *)0) {
108 1.10 kleink if (op != F_SETLK) {
109 1.10 kleink fl->l_type = F_UNLCK;
110 1.10 kleink return (0);
111 1.10 kleink }
112 1.10 kleink }
113 1.10 kleink
114 1.1 ws if (fl->l_len == 0)
115 1.1 ws end = -1;
116 1.1 ws else
117 1.1 ws end = start + fl->l_len - 1;
118 1.1 ws /*
119 1.4 mycroft * Create the lockf structure.
120 1.1 ws */
121 1.13 perry MALLOC(lock, struct lockf *, sizeof(*lock), M_LOCKF, M_WAITOK);
122 1.1 ws lock->lf_start = start;
123 1.1 ws lock->lf_end = end;
124 1.1 ws lock->lf_id = id;
125 1.1 ws lock->lf_head = head;
126 1.1 ws lock->lf_type = fl->l_type;
127 1.1 ws lock->lf_next = (struct lockf *)0;
128 1.12 fvdl TAILQ_INIT(&lock->lf_blkhd);
129 1.1 ws lock->lf_flags = flags;
130 1.1 ws /*
131 1.1 ws * Do the requested operation.
132 1.1 ws */
133 1.4 mycroft switch (op) {
134 1.4 mycroft
135 1.1 ws case F_SETLK:
136 1.1 ws return (lf_setlock(lock));
137 1.1 ws
138 1.1 ws case F_UNLCK:
139 1.1 ws error = lf_clearlock(lock);
140 1.1 ws FREE(lock, M_LOCKF);
141 1.1 ws return (error);
142 1.1 ws
143 1.1 ws case F_GETLK:
144 1.1 ws error = lf_getlock(lock, fl);
145 1.1 ws FREE(lock, M_LOCKF);
146 1.1 ws return (error);
147 1.4 mycroft
148 1.1 ws default:
149 1.4 mycroft FREE(lock, M_LOCKF);
150 1.1 ws return (EINVAL);
151 1.1 ws }
152 1.1 ws /* NOTREACHED */
153 1.1 ws }
154 1.1 ws
155 1.1 ws /*
156 1.1 ws * Set a byte-range lock.
157 1.1 ws */
158 1.4 mycroft int
159 1.1 ws lf_setlock(lock)
160 1.1 ws register struct lockf *lock;
161 1.1 ws {
162 1.1 ws register struct lockf *block;
163 1.1 ws struct lockf **head = lock->lf_head;
164 1.1 ws struct lockf **prev, *overlap, *ltmp;
165 1.1 ws static char lockstr[] = "lockf";
166 1.1 ws int ovcase, priority, needtolink, error;
167 1.1 ws
168 1.1 ws #ifdef LOCKF_DEBUG
169 1.1 ws if (lockf_debug & 1)
170 1.1 ws lf_print("lf_setlock", lock);
171 1.1 ws #endif /* LOCKF_DEBUG */
172 1.1 ws
173 1.1 ws /*
174 1.1 ws * Set the priority
175 1.1 ws */
176 1.1 ws priority = PLOCK;
177 1.1 ws if (lock->lf_type == F_WRLCK)
178 1.1 ws priority += 4;
179 1.1 ws priority |= PCATCH;
180 1.1 ws /*
181 1.1 ws * Scan lock list for this file looking for locks that would block us.
182 1.1 ws */
183 1.7 christos while ((block = lf_getblock(lock)) != NULL) {
184 1.1 ws /*
185 1.1 ws * Free the structure and return if nonblocking.
186 1.1 ws */
187 1.1 ws if ((lock->lf_flags & F_WAIT) == 0) {
188 1.1 ws FREE(lock, M_LOCKF);
189 1.1 ws return (EAGAIN);
190 1.1 ws }
191 1.1 ws /*
192 1.1 ws * We are blocked. Since flock style locks cover
193 1.1 ws * the whole file, there is no chance for deadlock.
194 1.1 ws * For byte-range locks we must check for deadlock.
195 1.1 ws *
196 1.1 ws * Deadlock detection is done by looking through the
197 1.1 ws * wait channels to see if there are any cycles that
198 1.1 ws * involve us. MAXDEPTH is set just to make sure we
199 1.1 ws * do not go off into neverland.
200 1.1 ws */
201 1.1 ws if ((lock->lf_flags & F_POSIX) &&
202 1.1 ws (block->lf_flags & F_POSIX)) {
203 1.1 ws register struct proc *wproc;
204 1.1 ws register struct lockf *waitblock;
205 1.1 ws int i = 0;
206 1.1 ws
207 1.1 ws /* The block is waiting on something */
208 1.1 ws wproc = (struct proc *)block->lf_id;
209 1.1 ws while (wproc->p_wchan &&
210 1.1 ws (wproc->p_wmesg == lockstr) &&
211 1.1 ws (i++ < maxlockdepth)) {
212 1.1 ws waitblock = (struct lockf *)wproc->p_wchan;
213 1.1 ws /* Get the owner of the blocking lock */
214 1.1 ws waitblock = waitblock->lf_next;
215 1.1 ws if ((waitblock->lf_flags & F_POSIX) == 0)
216 1.1 ws break;
217 1.1 ws wproc = (struct proc *)waitblock->lf_id;
218 1.1 ws if (wproc == (struct proc *)lock->lf_id) {
219 1.1 ws free(lock, M_LOCKF);
220 1.1 ws return (EDEADLK);
221 1.1 ws }
222 1.1 ws }
223 1.1 ws }
224 1.1 ws /*
225 1.1 ws * For flock type locks, we must first remove
226 1.1 ws * any shared locks that we hold before we sleep
227 1.1 ws * waiting for an exclusive lock.
228 1.1 ws */
229 1.1 ws if ((lock->lf_flags & F_FLOCK) &&
230 1.1 ws lock->lf_type == F_WRLCK) {
231 1.1 ws lock->lf_type = F_UNLCK;
232 1.1 ws (void) lf_clearlock(lock);
233 1.1 ws lock->lf_type = F_WRLCK;
234 1.1 ws }
235 1.1 ws /*
236 1.1 ws * Add our lock to the blocked list and sleep until we're free.
237 1.1 ws * Remember who blocked us (for deadlock detection).
238 1.1 ws */
239 1.1 ws lock->lf_next = block;
240 1.12 fvdl TAILQ_INSERT_TAIL(&block->lf_blkhd, lock, lf_block);
241 1.1 ws #ifdef LOCKF_DEBUG
242 1.1 ws if (lockf_debug & 1) {
243 1.1 ws lf_print("lf_setlock: blocking on", block);
244 1.1 ws lf_printlist("lf_setlock", block);
245 1.1 ws }
246 1.1 ws #endif /* LOCKF_DEBUG */
247 1.7 christos error = tsleep((caddr_t)lock, priority, lockstr, 0);
248 1.7 christos if (error) {
249 1.1 ws /*
250 1.12 fvdl * We may have been awakened by a signal (in
251 1.12 fvdl * which case we must remove ourselves from the
252 1.12 fvdl * blocked list) and/or by another process
253 1.12 fvdl * releasing a lock (in which case we have already
254 1.12 fvdl * been removed from the blocked list and our
255 1.12 fvdl * lf_next field set to NOLOCKF).
256 1.1 ws */
257 1.12 fvdl if (lock->lf_next)
258 1.12 fvdl TAILQ_REMOVE(&lock->lf_next->lf_blkhd, lock,
259 1.12 fvdl lf_block);
260 1.4 mycroft free(lock, M_LOCKF);
261 1.4 mycroft return (error);
262 1.1 ws }
263 1.1 ws }
264 1.1 ws /*
265 1.1 ws * No blocks!! Add the lock. Note that we will
266 1.1 ws * downgrade or upgrade any overlapping locks this
267 1.1 ws * process already owns.
268 1.1 ws *
269 1.1 ws * Skip over locks owned by other processes.
270 1.1 ws * Handle any locks that overlap and are owned by ourselves.
271 1.1 ws */
272 1.1 ws prev = head;
273 1.1 ws block = *head;
274 1.1 ws needtolink = 1;
275 1.1 ws for (;;) {
276 1.7 christos ovcase = lf_findoverlap(block, lock, SELF, &prev, &overlap);
277 1.7 christos if (ovcase)
278 1.1 ws block = overlap->lf_next;
279 1.1 ws /*
280 1.1 ws * Six cases:
281 1.1 ws * 0) no overlap
282 1.1 ws * 1) overlap == lock
283 1.1 ws * 2) overlap contains lock
284 1.1 ws * 3) lock contains overlap
285 1.1 ws * 4) overlap starts before lock
286 1.1 ws * 5) overlap ends after lock
287 1.1 ws */
288 1.1 ws switch (ovcase) {
289 1.1 ws case 0: /* no overlap */
290 1.1 ws if (needtolink) {
291 1.1 ws *prev = lock;
292 1.1 ws lock->lf_next = overlap;
293 1.1 ws }
294 1.1 ws break;
295 1.1 ws
296 1.1 ws case 1: /* overlap == lock */
297 1.1 ws /*
298 1.1 ws * If downgrading lock, others may be
299 1.1 ws * able to acquire it.
300 1.1 ws */
301 1.1 ws if (lock->lf_type == F_RDLCK &&
302 1.1 ws overlap->lf_type == F_WRLCK)
303 1.1 ws lf_wakelock(overlap);
304 1.1 ws overlap->lf_type = lock->lf_type;
305 1.1 ws FREE(lock, M_LOCKF);
306 1.1 ws lock = overlap; /* for debug output below */
307 1.1 ws break;
308 1.1 ws
309 1.1 ws case 2: /* overlap contains lock */
310 1.1 ws /*
311 1.1 ws * Check for common starting point and different types.
312 1.1 ws */
313 1.1 ws if (overlap->lf_type == lock->lf_type) {
314 1.1 ws free(lock, M_LOCKF);
315 1.1 ws lock = overlap; /* for debug output below */
316 1.1 ws break;
317 1.1 ws }
318 1.1 ws if (overlap->lf_start == lock->lf_start) {
319 1.1 ws *prev = lock;
320 1.1 ws lock->lf_next = overlap;
321 1.1 ws overlap->lf_start = lock->lf_end + 1;
322 1.1 ws } else
323 1.1 ws lf_split(overlap, lock);
324 1.1 ws lf_wakelock(overlap);
325 1.1 ws break;
326 1.1 ws
327 1.1 ws case 3: /* lock contains overlap */
328 1.1 ws /*
329 1.1 ws * If downgrading lock, others may be able to
330 1.1 ws * acquire it, otherwise take the list.
331 1.1 ws */
332 1.1 ws if (lock->lf_type == F_RDLCK &&
333 1.1 ws overlap->lf_type == F_WRLCK) {
334 1.1 ws lf_wakelock(overlap);
335 1.1 ws } else {
336 1.12 fvdl while ((ltmp = overlap->lf_blkhd.tqh_first)) {
337 1.12 fvdl TAILQ_REMOVE(&overlap->lf_blkhd, ltmp,
338 1.12 fvdl lf_block);
339 1.12 fvdl TAILQ_INSERT_TAIL(&lock->lf_blkhd,
340 1.12 fvdl ltmp, lf_block);
341 1.12 fvdl }
342 1.1 ws }
343 1.1 ws /*
344 1.1 ws * Add the new lock if necessary and delete the overlap.
345 1.1 ws */
346 1.1 ws if (needtolink) {
347 1.1 ws *prev = lock;
348 1.1 ws lock->lf_next = overlap->lf_next;
349 1.1 ws prev = &lock->lf_next;
350 1.1 ws needtolink = 0;
351 1.1 ws } else
352 1.1 ws *prev = overlap->lf_next;
353 1.1 ws free(overlap, M_LOCKF);
354 1.1 ws continue;
355 1.1 ws
356 1.1 ws case 4: /* overlap starts before lock */
357 1.1 ws /*
358 1.1 ws * Add lock after overlap on the list.
359 1.1 ws */
360 1.1 ws lock->lf_next = overlap->lf_next;
361 1.1 ws overlap->lf_next = lock;
362 1.1 ws overlap->lf_end = lock->lf_start - 1;
363 1.1 ws prev = &lock->lf_next;
364 1.1 ws lf_wakelock(overlap);
365 1.1 ws needtolink = 0;
366 1.1 ws continue;
367 1.1 ws
368 1.1 ws case 5: /* overlap ends after lock */
369 1.1 ws /*
370 1.1 ws * Add the new lock before overlap.
371 1.1 ws */
372 1.1 ws if (needtolink) {
373 1.1 ws *prev = lock;
374 1.1 ws lock->lf_next = overlap;
375 1.1 ws }
376 1.1 ws overlap->lf_start = lock->lf_end + 1;
377 1.1 ws lf_wakelock(overlap);
378 1.1 ws break;
379 1.1 ws }
380 1.1 ws break;
381 1.1 ws }
382 1.1 ws #ifdef LOCKF_DEBUG
383 1.1 ws if (lockf_debug & 1) {
384 1.1 ws lf_print("lf_setlock: got the lock", lock);
385 1.1 ws lf_printlist("lf_setlock", lock);
386 1.1 ws }
387 1.1 ws #endif /* LOCKF_DEBUG */
388 1.1 ws return (0);
389 1.1 ws }
390 1.1 ws
391 1.1 ws /*
392 1.1 ws * Remove a byte-range lock on an inode.
393 1.1 ws *
394 1.1 ws * Generally, find the lock (or an overlap to that lock)
395 1.1 ws * and remove it (or shrink it), then wakeup anyone we can.
396 1.1 ws */
397 1.4 mycroft int
398 1.1 ws lf_clearlock(unlock)
399 1.1 ws register struct lockf *unlock;
400 1.1 ws {
401 1.1 ws struct lockf **head = unlock->lf_head;
402 1.1 ws register struct lockf *lf = *head;
403 1.1 ws struct lockf *overlap, **prev;
404 1.1 ws int ovcase;
405 1.1 ws
406 1.1 ws if (lf == NOLOCKF)
407 1.1 ws return (0);
408 1.1 ws #ifdef LOCKF_DEBUG
409 1.1 ws if (unlock->lf_type != F_UNLCK)
410 1.1 ws panic("lf_clearlock: bad type");
411 1.1 ws if (lockf_debug & 1)
412 1.1 ws lf_print("lf_clearlock", unlock);
413 1.1 ws #endif /* LOCKF_DEBUG */
414 1.1 ws prev = head;
415 1.7 christos while ((ovcase = lf_findoverlap(lf, unlock, SELF,
416 1.7 christos &prev, &overlap)) != 0) {
417 1.1 ws /*
418 1.1 ws * Wakeup the list of locks to be retried.
419 1.1 ws */
420 1.1 ws lf_wakelock(overlap);
421 1.1 ws
422 1.1 ws switch (ovcase) {
423 1.1 ws
424 1.1 ws case 1: /* overlap == lock */
425 1.1 ws *prev = overlap->lf_next;
426 1.1 ws FREE(overlap, M_LOCKF);
427 1.1 ws break;
428 1.1 ws
429 1.1 ws case 2: /* overlap contains lock: split it */
430 1.1 ws if (overlap->lf_start == unlock->lf_start) {
431 1.1 ws overlap->lf_start = unlock->lf_end + 1;
432 1.1 ws break;
433 1.1 ws }
434 1.1 ws lf_split(overlap, unlock);
435 1.1 ws overlap->lf_next = unlock->lf_next;
436 1.1 ws break;
437 1.1 ws
438 1.1 ws case 3: /* lock contains overlap */
439 1.1 ws *prev = overlap->lf_next;
440 1.1 ws lf = overlap->lf_next;
441 1.1 ws free(overlap, M_LOCKF);
442 1.1 ws continue;
443 1.1 ws
444 1.1 ws case 4: /* overlap starts before lock */
445 1.1 ws overlap->lf_end = unlock->lf_start - 1;
446 1.1 ws prev = &overlap->lf_next;
447 1.1 ws lf = overlap->lf_next;
448 1.1 ws continue;
449 1.1 ws
450 1.1 ws case 5: /* overlap ends after lock */
451 1.1 ws overlap->lf_start = unlock->lf_end + 1;
452 1.1 ws break;
453 1.1 ws }
454 1.1 ws break;
455 1.1 ws }
456 1.1 ws #ifdef LOCKF_DEBUG
457 1.1 ws if (lockf_debug & 1)
458 1.1 ws lf_printlist("lf_clearlock", unlock);
459 1.1 ws #endif /* LOCKF_DEBUG */
460 1.1 ws return (0);
461 1.1 ws }
462 1.1 ws
463 1.1 ws /*
464 1.1 ws * Check whether there is a blocking lock,
465 1.1 ws * and if so return its process identifier.
466 1.1 ws */
467 1.4 mycroft int
468 1.1 ws lf_getlock(lock, fl)
469 1.1 ws register struct lockf *lock;
470 1.1 ws register struct flock *fl;
471 1.1 ws {
472 1.1 ws register struct lockf *block;
473 1.1 ws
474 1.1 ws #ifdef LOCKF_DEBUG
475 1.1 ws if (lockf_debug & 1)
476 1.1 ws lf_print("lf_getlock", lock);
477 1.1 ws #endif /* LOCKF_DEBUG */
478 1.1 ws
479 1.7 christos if ((block = lf_getblock(lock)) != NULL) {
480 1.1 ws fl->l_type = block->lf_type;
481 1.1 ws fl->l_whence = SEEK_SET;
482 1.1 ws fl->l_start = block->lf_start;
483 1.1 ws if (block->lf_end == -1)
484 1.1 ws fl->l_len = 0;
485 1.1 ws else
486 1.1 ws fl->l_len = block->lf_end - block->lf_start + 1;
487 1.1 ws if (block->lf_flags & F_POSIX)
488 1.1 ws fl->l_pid = ((struct proc *)(block->lf_id))->p_pid;
489 1.1 ws else
490 1.1 ws fl->l_pid = -1;
491 1.1 ws } else {
492 1.1 ws fl->l_type = F_UNLCK;
493 1.1 ws }
494 1.1 ws return (0);
495 1.1 ws }
496 1.1 ws
497 1.1 ws /*
498 1.1 ws * Walk the list of locks for an inode and
499 1.1 ws * return the first blocking lock.
500 1.1 ws */
501 1.1 ws struct lockf *
502 1.1 ws lf_getblock(lock)
503 1.1 ws register struct lockf *lock;
504 1.1 ws {
505 1.1 ws struct lockf **prev, *overlap, *lf = *(lock->lf_head);
506 1.1 ws int ovcase;
507 1.1 ws
508 1.1 ws prev = lock->lf_head;
509 1.7 christos while ((ovcase = lf_findoverlap(lf, lock, OTHERS,
510 1.7 christos &prev, &overlap)) != 0) {
511 1.1 ws /*
512 1.1 ws * We've found an overlap, see if it blocks us
513 1.1 ws */
514 1.1 ws if ((lock->lf_type == F_WRLCK || overlap->lf_type == F_WRLCK))
515 1.1 ws return (overlap);
516 1.1 ws /*
517 1.1 ws * Nope, point to the next one on the list and
518 1.1 ws * see if it blocks us
519 1.1 ws */
520 1.1 ws lf = overlap->lf_next;
521 1.1 ws }
522 1.1 ws return (NOLOCKF);
523 1.1 ws }
524 1.1 ws
525 1.1 ws /*
526 1.1 ws * Walk the list of locks for an inode to
527 1.1 ws * find an overlapping lock (if any).
528 1.1 ws *
529 1.1 ws * NOTE: this returns only the FIRST overlapping lock. There
530 1.1 ws * may be more than one.
531 1.1 ws */
532 1.4 mycroft int
533 1.1 ws lf_findoverlap(lf, lock, type, prev, overlap)
534 1.1 ws register struct lockf *lf;
535 1.1 ws struct lockf *lock;
536 1.1 ws int type;
537 1.1 ws struct lockf ***prev;
538 1.1 ws struct lockf **overlap;
539 1.1 ws {
540 1.1 ws off_t start, end;
541 1.1 ws
542 1.1 ws *overlap = lf;
543 1.1 ws if (lf == NOLOCKF)
544 1.1 ws return (0);
545 1.1 ws #ifdef LOCKF_DEBUG
546 1.1 ws if (lockf_debug & 2)
547 1.1 ws lf_print("lf_findoverlap: looking for overlap in", lock);
548 1.1 ws #endif /* LOCKF_DEBUG */
549 1.1 ws start = lock->lf_start;
550 1.1 ws end = lock->lf_end;
551 1.1 ws while (lf != NOLOCKF) {
552 1.1 ws if (((type & SELF) && lf->lf_id != lock->lf_id) ||
553 1.1 ws ((type & OTHERS) && lf->lf_id == lock->lf_id)) {
554 1.1 ws *prev = &lf->lf_next;
555 1.1 ws *overlap = lf = lf->lf_next;
556 1.1 ws continue;
557 1.1 ws }
558 1.1 ws #ifdef LOCKF_DEBUG
559 1.1 ws if (lockf_debug & 2)
560 1.1 ws lf_print("\tchecking", lf);
561 1.1 ws #endif /* LOCKF_DEBUG */
562 1.1 ws /*
563 1.1 ws * OK, check for overlap
564 1.1 ws *
565 1.1 ws * Six cases:
566 1.1 ws * 0) no overlap
567 1.1 ws * 1) overlap == lock
568 1.1 ws * 2) overlap contains lock
569 1.1 ws * 3) lock contains overlap
570 1.1 ws * 4) overlap starts before lock
571 1.1 ws * 5) overlap ends after lock
572 1.1 ws */
573 1.1 ws if ((lf->lf_end != -1 && start > lf->lf_end) ||
574 1.1 ws (end != -1 && lf->lf_start > end)) {
575 1.1 ws /* Case 0 */
576 1.1 ws #ifdef LOCKF_DEBUG
577 1.1 ws if (lockf_debug & 2)
578 1.9 christos printf("no overlap\n");
579 1.1 ws #endif /* LOCKF_DEBUG */
580 1.1 ws if ((type & SELF) && end != -1 && lf->lf_start > end)
581 1.1 ws return (0);
582 1.1 ws *prev = &lf->lf_next;
583 1.1 ws *overlap = lf = lf->lf_next;
584 1.1 ws continue;
585 1.1 ws }
586 1.1 ws if ((lf->lf_start == start) && (lf->lf_end == end)) {
587 1.1 ws /* Case 1 */
588 1.1 ws #ifdef LOCKF_DEBUG
589 1.1 ws if (lockf_debug & 2)
590 1.9 christos printf("overlap == lock\n");
591 1.1 ws #endif /* LOCKF_DEBUG */
592 1.1 ws return (1);
593 1.1 ws }
594 1.1 ws if ((lf->lf_start <= start) &&
595 1.1 ws (end != -1) &&
596 1.1 ws ((lf->lf_end >= end) || (lf->lf_end == -1))) {
597 1.1 ws /* Case 2 */
598 1.1 ws #ifdef LOCKF_DEBUG
599 1.1 ws if (lockf_debug & 2)
600 1.9 christos printf("overlap contains lock\n");
601 1.1 ws #endif /* LOCKF_DEBUG */
602 1.1 ws return (2);
603 1.1 ws }
604 1.1 ws if (start <= lf->lf_start &&
605 1.4 mycroft (end == -1 ||
606 1.1 ws (lf->lf_end != -1 && end >= lf->lf_end))) {
607 1.1 ws /* Case 3 */
608 1.1 ws #ifdef LOCKF_DEBUG
609 1.1 ws if (lockf_debug & 2)
610 1.9 christos printf("lock contains overlap\n");
611 1.1 ws #endif /* LOCKF_DEBUG */
612 1.1 ws return (3);
613 1.1 ws }
614 1.1 ws if ((lf->lf_start < start) &&
615 1.1 ws ((lf->lf_end >= start) || (lf->lf_end == -1))) {
616 1.1 ws /* Case 4 */
617 1.1 ws #ifdef LOCKF_DEBUG
618 1.1 ws if (lockf_debug & 2)
619 1.9 christos printf("overlap starts before lock\n");
620 1.1 ws #endif /* LOCKF_DEBUG */
621 1.1 ws return (4);
622 1.1 ws }
623 1.1 ws if ((lf->lf_start > start) &&
624 1.1 ws (end != -1) &&
625 1.1 ws ((lf->lf_end > end) || (lf->lf_end == -1))) {
626 1.1 ws /* Case 5 */
627 1.1 ws #ifdef LOCKF_DEBUG
628 1.1 ws if (lockf_debug & 2)
629 1.9 christos printf("overlap ends after lock\n");
630 1.1 ws #endif /* LOCKF_DEBUG */
631 1.1 ws return (5);
632 1.1 ws }
633 1.1 ws panic("lf_findoverlap: default");
634 1.1 ws }
635 1.1 ws return (0);
636 1.1 ws }
637 1.1 ws
638 1.1 ws /*
639 1.1 ws * Split a lock and a contained region into
640 1.1 ws * two or three locks as necessary.
641 1.1 ws */
642 1.2 cgd void
643 1.1 ws lf_split(lock1, lock2)
644 1.1 ws register struct lockf *lock1;
645 1.1 ws register struct lockf *lock2;
646 1.1 ws {
647 1.1 ws register struct lockf *splitlock;
648 1.1 ws
649 1.1 ws #ifdef LOCKF_DEBUG
650 1.1 ws if (lockf_debug & 2) {
651 1.1 ws lf_print("lf_split", lock1);
652 1.1 ws lf_print("splitting from", lock2);
653 1.1 ws }
654 1.1 ws #endif /* LOCKF_DEBUG */
655 1.1 ws /*
656 1.1 ws * Check to see if spliting into only two pieces.
657 1.1 ws */
658 1.1 ws if (lock1->lf_start == lock2->lf_start) {
659 1.1 ws lock1->lf_start = lock2->lf_end + 1;
660 1.1 ws lock2->lf_next = lock1;
661 1.1 ws return;
662 1.1 ws }
663 1.1 ws if (lock1->lf_end == lock2->lf_end) {
664 1.1 ws lock1->lf_end = lock2->lf_start - 1;
665 1.1 ws lock2->lf_next = lock1->lf_next;
666 1.1 ws lock1->lf_next = lock2;
667 1.1 ws return;
668 1.1 ws }
669 1.1 ws /*
670 1.1 ws * Make a new lock consisting of the last part of
671 1.1 ws * the encompassing lock
672 1.1 ws */
673 1.13 perry MALLOC(splitlock, struct lockf *, sizeof(*splitlock), M_LOCKF, M_WAITOK);
674 1.14 perry memcpy((caddr_t)splitlock, (caddr_t)lock1, sizeof(*splitlock));
675 1.1 ws splitlock->lf_start = lock2->lf_end + 1;
676 1.12 fvdl TAILQ_INIT(&splitlock->lf_blkhd);
677 1.1 ws lock1->lf_end = lock2->lf_start - 1;
678 1.1 ws /*
679 1.1 ws * OK, now link it in
680 1.1 ws */
681 1.1 ws splitlock->lf_next = lock1->lf_next;
682 1.1 ws lock2->lf_next = splitlock;
683 1.1 ws lock1->lf_next = lock2;
684 1.1 ws }
685 1.1 ws
686 1.1 ws /*
687 1.1 ws * Wakeup a blocklist
688 1.1 ws */
689 1.2 cgd void
690 1.1 ws lf_wakelock(listhead)
691 1.1 ws struct lockf *listhead;
692 1.1 ws {
693 1.12 fvdl register struct lockf *wakelock;
694 1.1 ws
695 1.12 fvdl while ((wakelock = listhead->lf_blkhd.tqh_first)) {
696 1.12 fvdl TAILQ_REMOVE(&listhead->lf_blkhd, wakelock, lf_block);
697 1.1 ws wakelock->lf_next = NOLOCKF;
698 1.1 ws #ifdef LOCKF_DEBUG
699 1.1 ws if (lockf_debug & 2)
700 1.1 ws lf_print("lf_wakelock: awakening", wakelock);
701 1.12 fvdl #endif
702 1.1 ws wakeup((caddr_t)wakelock);
703 1.1 ws }
704 1.1 ws }
705 1.1 ws
706 1.1 ws #ifdef LOCKF_DEBUG
707 1.1 ws /*
708 1.1 ws * Print out a lock.
709 1.1 ws */
710 1.4 mycroft void
711 1.1 ws lf_print(tag, lock)
712 1.1 ws char *tag;
713 1.1 ws register struct lockf *lock;
714 1.1 ws {
715 1.1 ws
716 1.9 christos printf("%s: lock %p for ", tag, lock);
717 1.1 ws if (lock->lf_flags & F_POSIX)
718 1.9 christos printf("proc %d", ((struct proc *)(lock->lf_id))->p_pid);
719 1.1 ws else
720 1.11 jtk printf("id 0x%p", lock->lf_id);
721 1.11 jtk printf(" %s, start %qx, end %qx",
722 1.1 ws lock->lf_type == F_RDLCK ? "shared" :
723 1.1 ws lock->lf_type == F_WRLCK ? "exclusive" :
724 1.1 ws lock->lf_type == F_UNLCK ? "unlock" :
725 1.1 ws "unknown", lock->lf_start, lock->lf_end);
726 1.12 fvdl if (lock->lf_blkhd.tqh_first)
727 1.12 fvdl printf(" block %p\n", lock->lf_blkhd.tqh_first);
728 1.1 ws else
729 1.9 christos printf("\n");
730 1.1 ws }
731 1.1 ws
732 1.4 mycroft void
733 1.1 ws lf_printlist(tag, lock)
734 1.1 ws char *tag;
735 1.1 ws struct lockf *lock;
736 1.1 ws {
737 1.12 fvdl register struct lockf *lf, *blk;
738 1.1 ws
739 1.11 jtk printf("%s: Lock list:\n", tag);
740 1.12 fvdl for (lf = *lock->lf_head; lf; lf = lf->lf_next) {
741 1.9 christos printf("\tlock %p for ", lf);
742 1.1 ws if (lf->lf_flags & F_POSIX)
743 1.9 christos printf("proc %d", ((struct proc *)(lf->lf_id))->p_pid);
744 1.1 ws else
745 1.11 jtk printf("id 0x%p", lf->lf_id);
746 1.11 jtk printf(", %s, start %qx, end %qx",
747 1.1 ws lf->lf_type == F_RDLCK ? "shared" :
748 1.1 ws lf->lf_type == F_WRLCK ? "exclusive" :
749 1.1 ws lf->lf_type == F_UNLCK ? "unlock" :
750 1.1 ws "unknown", lf->lf_start, lf->lf_end);
751 1.12 fvdl for (blk = lf->lf_blkhd.tqh_first; blk;
752 1.12 fvdl blk = blk->lf_block.tqe_next) {
753 1.12 fvdl if (blk->lf_flags & F_POSIX)
754 1.12 fvdl printf("proc %d",
755 1.12 fvdl ((struct proc *)(blk->lf_id))->p_pid);
756 1.12 fvdl else
757 1.12 fvdl printf("id 0x%p", blk->lf_id);
758 1.12 fvdl printf(", %s, start %qx, end %qx",
759 1.12 fvdl blk->lf_type == F_RDLCK ? "shared" :
760 1.12 fvdl blk->lf_type == F_WRLCK ? "exclusive" :
761 1.12 fvdl blk->lf_type == F_UNLCK ? "unlock" :
762 1.12 fvdl "unknown", blk->lf_start, blk->lf_end);
763 1.12 fvdl if (blk->lf_blkhd.tqh_first)
764 1.12 fvdl panic("lf_printlist: bad list");
765 1.12 fvdl }
766 1.12 fvdl printf("\n");
767 1.1 ws }
768 1.1 ws }
769 1.1 ws #endif /* LOCKF_DEBUG */
770