kern_event.c revision 1.1.1.1.2.5 1 /* $NetBSD: kern_event.c,v 1.1.1.1.2.5 2001/09/07 22:01:52 thorpej Exp $ */
2 /*-
3 * Copyright (c) 1999,2000,2001 Jonathan Lemon <jlemon (at) FreeBSD.org>
4 * All rights reserved.
5 *
6 * Redistribution and use in source and binary forms, with or without
7 * modification, are permitted provided that the following conditions
8 * are met:
9 * 1. Redistributions of source code must retain the above copyright
10 * notice, this list of conditions and the following disclaimer.
11 * 2. 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 *
15 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
16 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
17 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
18 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
19 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
20 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
21 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
22 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
23 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
24 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
25 * SUCH DAMAGE.
26 *
27 * $FreeBSD: src/sys/kern/kern_event.c,v 1.27 2001/07/05 17:10:44 rwatson Exp $
28 */
29
30 #include <sys/param.h>
31 #include <sys/systm.h>
32 #include <sys/kernel.h>
33 #include <sys/proc.h>
34 #include <sys/malloc.h>
35 #include <sys/unistd.h>
36 #include <sys/file.h>
37 #include <sys/fcntl.h>
38 #include <sys/select.h>
39 #include <sys/queue.h>
40 #include <sys/event.h>
41 #include <sys/eventvar.h>
42 #include <sys/poll.h>
43 #include <sys/pool.h>
44 #include <sys/protosw.h>
45 #include <sys/socket.h>
46 #include <sys/socketvar.h>
47 #include <sys/stat.h>
48 #include <sys/uio.h>
49 #include <sys/mount.h>
50 #include <sys/filedesc.h>
51 #include <sys/syscallargs.h>
52
53 static int kqueue_scan(struct file *fp, int maxevents,
54 struct kevent *ulistp, const struct timespec *timeout,
55 struct proc *p, register_t *retval);
56 static void kqueue_wakeup(struct kqueue *kq);
57
58 static int kqueue_read(struct file *fp, off_t *offset, struct uio *uio,
59 struct ucred *cred, int flags);
60 static int kqueue_write(struct file *fp, off_t *offset, struct uio *uio,
61 struct ucred *cred, int flags);
62 static int kqueue_ioctl(struct file *fp, u_long com, caddr_t data,
63 struct proc *p);
64 static int kqueue_fcntl(struct file *fp, u_int com, caddr_t data,
65 struct proc *p);
66 static int kqueue_poll(struct file *fp, int events, struct proc *p);
67 static int kqueue_kqfilter(struct file *fp, struct knote *kn);
68 static int kqueue_stat(struct file *fp, struct stat *sp, struct proc *p);
69 static int kqueue_close(struct file *fp, struct proc *p);
70
71 static struct fileops kqueueops = {
72 kqueue_read, kqueue_write, kqueue_ioctl, kqueue_fcntl, kqueue_poll,
73 kqueue_stat, kqueue_close, kqueue_kqfilter
74 };
75
76 static void knote_attach(struct knote *kn, struct filedesc *fdp);
77 static void knote_drop(struct knote *kn, struct proc *p);
78 static void knote_enqueue(struct knote *kn);
79 static void knote_dequeue(struct knote *kn);
80
81 static void filt_kqdetach(struct knote *kn);
82 static int filt_kqueue(struct knote *kn, long hint);
83 static int filt_procattach(struct knote *kn);
84 static void filt_procdetach(struct knote *kn);
85 static int filt_proc(struct knote *kn, long hint);
86 static int filt_fileattach(struct knote *kn);
87
88 static const struct filterops kqread_filtops =
89 { 1, NULL, filt_kqdetach, filt_kqueue };
90 static const struct filterops proc_filtops =
91 { 0, filt_procattach, filt_procdetach, filt_proc };
92 static const struct filterops file_filtops =
93 { 1, filt_fileattach, NULL, NULL };
94
95 struct pool kqueue_pool;
96 struct pool knote_pool;
97
98 #define KNOTE_ACTIVATE(kn) \
99 do { \
100 kn->kn_status |= KN_ACTIVE; \
101 if ((kn->kn_status & (KN_QUEUED | KN_DISABLED)) == 0) \
102 knote_enqueue(kn); \
103 } while(0)
104
105 #define KN_HASHSIZE 64 /* XXX should be tunable */
106 #define KN_HASH(val, mask) (((val) ^ (val >> 8)) & (mask))
107
108 extern const struct filterops sig_filtops;
109
110 /*
111 * Table for for all system-defined filters.
112 * These should be listed in the numeric order of the EVFILT_* defines.
113 * If filtops is NULL, the filter isn't implemented in NetBSD.
114 * End of list is when name is NULL.
115 */
116 struct kfilter {
117 const char *name; /* name of filter */
118 uint32_t filter; /* id of filter */
119 const struct filterops *filtops;/* operations for filter */
120 };
121
122 /* System defined filters */
123 static const struct kfilter sys_kfilters[] = {
124 { "EVFILT_READ", EVFILT_READ, &file_filtops },
125 { "EVFILT_WRITE", EVFILT_WRITE, &file_filtops },
126 { "EVFILT_AIO", EVFILT_AIO, NULL },
127 { "EVFILT_VNODE", EVFILT_VNODE, &file_filtops },
128 { "EVFILT_PROC", EVFILT_PROC, &proc_filtops },
129 { "EVFILT_SIGNAL", EVFILT_SIGNAL, &sig_filtops },
130 { NULL, 0, NULL }, /* end of list */
131 };
132
133 /* User defined kfilters */
134 static struct kfilter *user_kfilters; /* array */
135 static int user_kfilterc; /* current offset */
136 static int user_kfiltermaxc; /* max size so far */
137
138 /*
139 * kqueue_init:
140 *
141 * Initialize the kqueue/knote facility.
142 */
143 void
144 kqueue_init(void)
145 {
146
147 pool_init(&kqueue_pool, sizeof(struct kqueue), 0, 0, 0, "kqueuepl",
148 0, pool_page_alloc_nointr, pool_page_free_nointr, M_KEVENT);
149 pool_init(&knote_pool, sizeof(struct knote), 0, 0, 0, "knotepl",
150 0, pool_page_alloc_nointr, pool_page_free_nointr, M_KEVENT);
151 }
152
153 /*
154 * Find kfilter entry by name, or NULL if not found.
155 */
156 static const struct kfilter *
157 kfilter_byname_sys(const char *name)
158 {
159 int i;
160
161 for (i = 0; sys_kfilters[i].name != NULL; i++) {
162 if (strcmp(name, sys_kfilters[i].name) == 0)
163 return (&sys_kfilters[i]);
164 }
165 return (NULL);
166 }
167
168 static struct kfilter *
169 kfilter_byname_user(const char *name)
170 {
171 int i;
172
173 for (i = 0; user_kfilters[i].name != NULL; i++) {
174 if (user_kfilters[i].name != '\0' &&
175 strcmp(name, user_kfilters[i].name) == 0)
176 return (&user_kfilters[i]);
177 }
178 return (NULL);
179 }
180
181 static const struct kfilter *
182 kfilter_byname(const char *name)
183 {
184 const struct kfilter *kfilter;
185
186 if ((kfilter = kfilter_byname_sys(name)) != NULL)
187 return (kfilter);
188
189 return (kfilter_byname_user(name));
190 }
191
192 /*
193 * Find kfilter entry by filter id, or NULL if not found.
194 * Assumes entries are indexed in filter id order, for speed.
195 */
196 static const struct kfilter *
197 kfilter_byfilter(uint32_t filter)
198 {
199 const struct kfilter *kfilter;
200
201 if (filter < EVFILT_SYSCOUNT) /* it's a system filter */
202 kfilter = &sys_kfilters[filter];
203 else if (user_kfilters != NULL &&
204 filter < EVFILT_SYSCOUNT + user_kfilterc)
205 /* it's a user filter */
206 kfilter = &user_kfilters[filter - EVFILT_SYSCOUNT];
207 else
208 return (NULL); /* out of range */
209 KASSERT(kfilter->filter == filter); /* sanity check! */
210 return (kfilter);
211 }
212
213 /*
214 * Register a new kfilter. Stores the entry in user_kfilters.
215 * Returns 0 if operation succeeded, or an appropriate errno(2) otherwise.
216 * If retfilter != NULL, the new filterid is returned in it.
217 */
218 int
219 kfilter_register(const char *name, const struct filterops *filtops,
220 int *retfilter)
221 {
222 struct kfilter *kfilter;
223 void *space;
224 int len;
225
226 if (name == NULL || name[0] == '\0' || filtops == NULL)
227 return (EINVAL); /* invalid args */
228 if (kfilter_byname(name) != NULL)
229 return (EEXIST); /* already exists */
230 if (user_kfilterc > 0xffffffff - EVFILT_SYSCOUNT)
231 return (EINVAL); /* too many */
232
233 /* need to grow user_kfilters */
234 if (user_kfilterc + 1 > user_kfiltermaxc) {
235 /*
236 * grow in KFILTER_EXTENT chunks. use
237 * malloc(9), because we want to
238 * traverse user_kfilters as an array.
239 */
240 user_kfiltermaxc += KFILTER_EXTENT;
241 kfilter = malloc(user_kfiltermaxc * sizeof(struct filter *),
242 M_KEVENT, M_WAITOK);
243 /* copy existing user_kfilters */
244 if (user_kfilters != NULL)
245 memcpy((caddr_t)kfilter, (caddr_t)user_kfilters,
246 user_kfilterc * sizeof(struct kfilter *));
247 /* zero new sections */
248 memset((caddr_t)kfilter +
249 user_kfilterc * sizeof(struct kfilter *), 0,
250 (user_kfiltermaxc - user_kfilterc) *
251 sizeof(struct kfilter *));
252 /* switch to new kfilter */
253 if (user_kfilters != NULL)
254 FREE(user_kfilters, M_KEVENT);
255 user_kfilters = kfilter;
256 }
257 len = strlen(name) + 1; /* copy name */
258 space = malloc(len, M_KEVENT, M_WAITOK);
259 memcpy(space, name, len);
260 user_kfilters[user_kfilterc].name = space;
261
262 user_kfilters[user_kfilterc].filter = user_kfilterc + EVFILT_SYSCOUNT;
263
264 len = sizeof(struct filterops); /* copy filtops */
265 space = malloc(len, M_KEVENT, M_WAITOK);
266 memcpy(space, filtops, len);
267 user_kfilters[user_kfilterc].filtops = space;
268
269 if (retfilter != NULL)
270 *retfilter = user_kfilters[user_kfilterc].filter;
271 user_kfilterc++; /* finally, increment count */
272 return (0);
273 }
274
275 /*
276 * Unregister a kfilter previously registered with kfilter_register.
277 * This retains the filter id, but clears the name and frees filtops (filter
278 * operations), so that the number isn't reused during a boot.
279 * Returns 0 if operation succeeded, or an appropriate errno(2) otherwise.
280 */
281 int
282 kfilter_unregister(const char *name)
283 {
284 struct kfilter *kfilter;
285
286 if (name == NULL || name[0] == '\0')
287 return (EINVAL); /* invalid name */
288
289 if (kfilter_byname_sys(name) != NULL)
290 return (EINVAL); /* can't detach system filters */
291
292 kfilter = kfilter_byname_user(name);
293 if (kfilter == NULL) /* not found */
294 return (ENOENT);
295
296 if (kfilter->name[0] != '\0') {
297 /* XXX Cast away const (but we know it's safe. */
298 free((void *) kfilter->name, M_KEVENT);
299 kfilter->name = ""; /* mark as `not implemented' */
300 }
301 if (kfilter->filtops != NULL) {
302 /* XXX Cast away const (but we know it's safe. */
303 free((void *) kfilter->filtops, M_KEVENT);
304 kfilter->filtops = NULL; /* mark as `not implemented' */
305 }
306 return (0);
307 }
308
309
310 /*
311 * Filter attach method for EVFILT_READ and EVFILT_WRITE on normal file
312 * descriptors. Calls struct fileops kqfilter method for given file descriptor.
313 */
314 static int
315 filt_fileattach(struct knote *kn)
316 {
317 struct file *fp;
318
319 fp = kn->kn_fp;
320 return ((*fp->f_ops->fo_kqfilter)(fp, kn));
321 }
322
323 /*
324 * Filter detach method for EVFILT_READ on kqueue descriptor.
325 */
326 static void
327 filt_kqdetach(struct knote *kn)
328 {
329 struct kqueue *kq;
330
331 kq = (struct kqueue *)kn->kn_fp->f_data;
332 SLIST_REMOVE(&kq->kq_sel.si_klist, kn, knote, kn_selnext);
333 }
334
335 /*
336 * Filter event method for EVFILT_READ on kqueue descriptor.
337 */
338 /*ARGSUSED*/
339 static int
340 filt_kqueue(struct knote *kn, long hint)
341 {
342 struct kqueue *kq;
343
344 kq = (struct kqueue *)kn->kn_fp->f_data;
345 kn->kn_data = kq->kq_count;
346 return (kn->kn_data > 0);
347 }
348
349 /*
350 * Filter attach method for EVFILT_PROC.
351 */
352 static int
353 filt_procattach(struct knote *kn)
354 {
355 struct proc *p;
356
357 p = pfind(kn->kn_id);
358 if (p == NULL)
359 return (ESRCH);
360
361 kn->kn_ptr.p_proc = p;
362 kn->kn_flags |= EV_CLEAR; /* automatically set */
363
364 /*
365 * internal flag indicating registration done by kernel
366 */
367 if (kn->kn_flags & EV_FLAG1) {
368 kn->kn_data = kn->kn_sdata; /* ppid */
369 kn->kn_fflags = NOTE_CHILD;
370 kn->kn_flags &= ~EV_FLAG1;
371 }
372
373 /* XXXLUKEM */
374 /* XXX lock the proc here while adding to the list? */
375 SLIST_INSERT_HEAD(&p->p_klist, kn, kn_selnext);
376
377 return (0);
378 }
379
380 /*
381 * Filter detach method for EVFILT_PROC.
382 *
383 * The knote may be attached to a different process, which may exit,
384 * leaving nothing for the knote to be attached to. So when the process
385 * exits, the knote is marked as DETACHED and also flagged as ONESHOT so
386 * it will be deleted when read out. However, as part of the knote deletion,
387 * this routine is called, so a check is needed to avoid actually performing
388 * a detach, because the original process does not exist any more.
389 */
390 static void
391 filt_procdetach(struct knote *kn)
392 {
393 struct proc *p;
394
395 p = kn->kn_ptr.p_proc;
396 if (kn->kn_status & KN_DETACHED)
397 return;
398
399 /* XXXLUKEM */
400 /* XXX locking? this might modify another process. */
401 SLIST_REMOVE(&p->p_klist, kn, knote, kn_selnext);
402 }
403
404 /*
405 * Filter event method for EVFILT_PROC.
406 */
407 static int
408 filt_proc(struct knote *kn, long hint)
409 {
410 u_int event;
411
412 /*
413 * mask off extra data
414 */
415 event = (u_int)hint & NOTE_PCTRLMASK;
416
417 /*
418 * if the user is interested in this event, record it.
419 */
420 if (kn->kn_sfflags & event)
421 kn->kn_fflags |= event;
422
423 /*
424 * process is gone, so flag the event as finished.
425 */
426 if (event == NOTE_EXIT) {
427 kn->kn_status |= KN_DETACHED;
428 kn->kn_flags |= (EV_EOF | EV_ONESHOT);
429 return (1);
430 }
431
432 /*
433 * process forked, and user wants to track the new process,
434 * so attach a new knote to it, and immediately report an
435 * event with the parent's pid.
436 */
437 if ((event == NOTE_FORK) && (kn->kn_sfflags & NOTE_TRACK)) {
438 struct kevent kev;
439 int error;
440
441 /*
442 * register knote with new process.
443 */
444 kev.ident = hint & NOTE_PDATAMASK; /* pid */
445 kev.filter = kn->kn_filter;
446 kev.flags = kn->kn_flags | EV_ADD | EV_ENABLE | EV_FLAG1;
447 kev.fflags = kn->kn_sfflags;
448 kev.data = kn->kn_id; /* parent */
449 kev.udata = kn->kn_kevent.udata; /* preserve udata */
450 error = kqueue_register(kn->kn_kq, &kev, NULL);
451 if (error)
452 kn->kn_fflags |= NOTE_TRACKERR;
453 }
454
455 return (kn->kn_fflags != 0);
456 }
457
458 /*
459 * kqueue(2) system call.
460 */
461 int
462 sys_kqueue(struct proc *p, void *v, register_t *retval)
463 {
464 struct filedesc *fdp;
465 struct kqueue *kq;
466 struct file *fp;
467 int fd, error;
468
469 fdp = p->p_fd;
470 error = falloc(p, &fp, &fd); /* setup a new file descriptor */
471 if (error)
472 return (error);
473 fp->f_flag = FREAD | FWRITE;
474 fp->f_type = DTYPE_KQUEUE;
475 fp->f_ops = &kqueueops;
476 kq = pool_get(&kqueue_pool, PR_WAITOK);
477 memset((char *)kq, 0, sizeof(struct kqueue));
478 TAILQ_INIT(&kq->kq_head);
479 fp->f_data = (caddr_t)kq; /* store the kqueue with the fp */
480 *retval = fd;
481 if (fdp->fd_knlistsize < 0)
482 fdp->fd_knlistsize = 0; /* this process has a kq */
483 kq->kq_fdp = fdp;
484 FILE_SET_MATURE(fp);
485 FILE_UNUSE(fp, p); /* falloc() does FILE_USE() */
486 return (error);
487 }
488
489 /*
490 * kevent(2) system call.
491 */
492 int
493 sys_kevent(struct proc *p, void *v, register_t *retval)
494 {
495 struct sys_kevent_args /* {
496 syscallarg(int) fd;
497 syscallarg(const struct kevent *) changelist;
498 syscallarg(int) nchanges;
499 syscallarg(struct kevent *) eventlist;
500 syscallarg(int) nevents;
501 syscallarg(const struct timespec *) timeout;
502 } */ *uap = v;
503 struct filedesc *fdp;
504 struct kevent *kevp;
505 struct kqueue *kq;
506 struct file *fp;
507 struct timespec ts;
508 int i, n, nerrors, error;
509
510 fdp = p->p_fd; /* check that we're dealing with a kq */
511 if ((u_int)SCARG(uap, fd) >= fdp->fd_nfiles ||
512 (fp = fdp->fd_ofiles[SCARG(uap, fd)]) == NULL ||
513 (fp->f_type != DTYPE_KQUEUE))
514 return (EBADF);
515
516 FILE_USE(fp);
517
518 if (SCARG(uap, timeout) != NULL) {
519 error = copyin(SCARG(uap, timeout), &ts, sizeof(ts));
520 if (error)
521 goto done;
522 SCARG(uap, timeout) = &ts;
523 }
524
525 kq = (struct kqueue *)fp->f_data;
526 nerrors = 0;
527
528 /* traverse list of events to register */
529 while (SCARG(uap, nchanges) > 0) {
530 /* copyin a maximum of KQ_EVENTS at each pass */
531 n = MIN(SCARG(uap, nchanges), KQ_NEVENTS);
532 error = copyin(SCARG(uap, changelist), kq->kq_kev,
533 n * sizeof(struct kevent));
534 if (error)
535 goto done;
536 for (i = 0; i < n; i++) {
537 kevp = &kq->kq_kev[i];
538 kevp->flags &= ~EV_SYSFLAGS;
539 /* register each knote */
540 error = kqueue_register(kq, kevp, p);
541 if (error) {
542 if (SCARG(uap, nevents) != 0) {
543 kevp->flags = EV_ERROR;
544 kevp->data = error;
545 error = copyout((caddr_t)kevp,
546 (caddr_t)SCARG(uap, eventlist),
547 sizeof(*kevp));
548 if (error)
549 goto done;
550 SCARG(uap, eventlist)++;
551 SCARG(uap, nevents)--;
552 nerrors++;
553 } else {
554 goto done;
555 }
556 }
557 }
558 SCARG(uap, nchanges) -= n; /* update the results */
559 SCARG(uap, changelist) += n;
560 }
561 if (nerrors) {
562 *retval = nerrors;
563 error = 0;
564 goto done;
565 }
566
567 /* actually scan through the events */
568 error = kqueue_scan(fp, SCARG(uap, nevents), SCARG(uap, eventlist),
569 SCARG(uap, timeout), p, retval);
570 done:
571 FILE_UNUSE(fp, p);
572 return (error);
573 }
574
575 /*
576 * Register a given kevent kev onto the kqueue
577 */
578 int
579 kqueue_register(struct kqueue *kq, struct kevent *kev, struct proc *p)
580 {
581 const struct kfilter *kfilter;
582 struct filedesc *fdp;
583 struct file *fp;
584 struct knote *kn;
585 int s, error;
586
587 fdp = kq->kq_fdp;
588 fp = NULL;
589 kn = NULL;
590 error = 0;
591 kfilter = kfilter_byfilter(kev->filter);
592 if (kfilter == NULL || kfilter->filtops == NULL)
593 return (EINVAL); /* filter not found nor implemented */
594
595 /* search if knote already exists */
596 if (kfilter->filtops->f_isfd) { /* monitoring a file descriptor */
597 if ((u_int)kev->ident >= fdp->fd_nfiles ||
598 (fp = fdp->fd_ofiles[kev->ident]) == NULL)
599 return (EBADF); /* validate descriptor */
600 FILE_USE(fp);
601
602 if (kev->ident < fdp->fd_knlistsize) {
603 SLIST_FOREACH(kn, &fdp->fd_knlist[kev->ident], kn_link)
604 if (kq == kn->kn_kq &&
605 kev->filter == kn->kn_filter)
606 break;
607 }
608 } else {
609 /*
610 * not monitoring a file descriptor, so
611 * lookup knotes in internal hash table
612 */
613 if (fdp->fd_knhashmask != 0) {
614 struct klist *list;
615
616 list = &fdp->fd_knhash[
617 KN_HASH((u_long)kev->ident, fdp->fd_knhashmask)];
618 SLIST_FOREACH(kn, list, kn_link)
619 if (kev->ident == kn->kn_id &&
620 kq == kn->kn_kq &&
621 kev->filter == kn->kn_filter)
622 break;
623 }
624 }
625
626 if (kn == NULL && ((kev->flags & EV_ADD) == 0)) {
627 error = ENOENT; /* filter not found */
628 goto done;
629 }
630
631 /*
632 * kn now contains the matching knote, or NULL if no match
633 */
634 if (kev->flags & EV_ADD) { /* add knote */
635
636 if (kn == NULL) { /* create new knote */
637 kn = pool_get(&knote_pool, PR_WAITOK);
638 if (kn == NULL) {
639 error = ENOMEM;
640 goto done;
641 }
642 kn->kn_fp = fp;
643 kn->kn_kq = kq;
644 kn->kn_fop = kfilter->filtops;
645
646 /*
647 * apply reference count to knote structure, and
648 * do not release it at the end of this routine.
649 */
650 fp = NULL;
651
652 kn->kn_sfflags = kev->fflags;
653 kn->kn_sdata = kev->data;
654 kev->fflags = 0;
655 kev->data = 0;
656 kn->kn_kevent = *kev;
657
658 knote_attach(kn, fdp);
659 if ((error = kfilter->filtops->f_attach(kn)) != 0) {
660 knote_drop(kn, p);
661 goto done;
662 }
663 } else { /* modify existing knote */
664 /*
665 * The user may change some filter values after the
666 * initial EV_ADD, but doing so will not reset any
667 * filter which have already been triggered.
668 */
669 kn->kn_sfflags = kev->fflags;
670 kn->kn_sdata = kev->data;
671 kn->kn_kevent.udata = kev->udata;
672 }
673
674 s = splhigh();
675 if (kn->kn_fop->f_event(kn, 0))
676 KNOTE_ACTIVATE(kn);
677 splx(s);
678
679 } else if (kev->flags & EV_DELETE) { /* delete knote */
680 kn->kn_fop->f_detach(kn);
681 knote_drop(kn, p);
682 goto done;
683 }
684
685 /* disable knote */
686 if ((kev->flags & EV_DISABLE) &&
687 ((kn->kn_status & KN_DISABLED) == 0)) {
688 s = splhigh();
689 kn->kn_status |= KN_DISABLED;
690 splx(s);
691 }
692
693 /* enable knote */
694 if ((kev->flags & EV_ENABLE) && (kn->kn_status & KN_DISABLED)) {
695 s = splhigh();
696 kn->kn_status &= ~KN_DISABLED;
697 if ((kn->kn_status & KN_ACTIVE) &&
698 ((kn->kn_status & KN_QUEUED) == 0))
699 knote_enqueue(kn);
700 splx(s);
701 }
702
703 done:
704 if (fp != NULL)
705 FILE_UNUSE(fp, p);
706 return (error);
707 }
708
709 /*
710 * Scan through the list of events on fp (for a maximum of maxevents),
711 * returning the results in to ulistp. Timeout is determined by tsp; if
712 * NULL, wait indefinitely, if 0 valued, perform a poll, otherwise wait
713 * as appropriate.
714 */
715 static int
716 kqueue_scan(struct file *fp, int maxevents, struct kevent *ulistp,
717 const struct timespec *tsp, struct proc *p, register_t *retval)
718 {
719 struct kqueue *kq;
720 struct kevent *kevp;
721 struct timeval atv;
722 struct knote *kn, marker;
723 int s, count, timeout, nkev, error;
724
725 kq = (struct kqueue *)fp->f_data;
726 count = maxevents;
727 nkev = error = 0;
728 if (count == 0)
729 goto done;
730
731 if (tsp != NULL) { /* timeout supplied */
732 TIMESPEC_TO_TIMEVAL(&atv, tsp);
733 if (itimerfix(&atv)) {
734 error = EINVAL;
735 goto done;
736 }
737 s = splclock();
738 timeradd(&atv, &time, &atv); /* calc. time to wait until */
739 splx(s);
740 if (tsp->tv_sec == 0 && tsp->tv_nsec == 0)
741 timeout = -1; /* perform a poll */
742 else
743 timeout = hzto(&atv); /* calculate hz till timeout */
744 } else {
745 atv.tv_sec = 0; /* no timeout, wait forever */
746 atv.tv_usec = 0;
747 timeout = 0;
748 }
749 goto start;
750
751 retry:
752 if (atv.tv_sec || atv.tv_usec) { /* timeout requested */
753 s = splclock();
754 if (timercmp(&time, &atv, >=)) {
755 splx(s);
756 goto done; /* timeout reached */
757 }
758 splx(s);
759 timeout = hzto(&atv); /* recalc. timeout remaining */
760 }
761
762 start:
763 kevp = kq->kq_kev;
764 s = splhigh();
765 if (kq->kq_count == 0) {
766 if (timeout < 0) {
767 error = EWOULDBLOCK;
768 } else {
769 kq->kq_state |= KQ_SLEEP;
770 error = tsleep(kq, PSOCK | PCATCH, "kqread", timeout);
771 }
772 splx(s);
773 if (error == 0)
774 goto retry;
775 /* don't restart after signals... */
776 if (error == ERESTART)
777 error = EINTR;
778 else if (error == EWOULDBLOCK)
779 error = 0;
780 goto done;
781 }
782
783 TAILQ_INSERT_TAIL(&kq->kq_head, &marker, kn_tqe);
784 /* mark end of knote list */
785 while (count) { /* while user wants data ... */
786 kn = TAILQ_FIRST(&kq->kq_head); /* get next knote */
787 TAILQ_REMOVE(&kq->kq_head, kn, kn_tqe);
788 if (kn == &marker) { /* if it's our marker, stop */
789 splx(s);
790 if (count == maxevents)
791 goto retry;
792 goto done;
793 }
794 if (kn->kn_status & KN_DISABLED) {
795 /* don't want disabled events */
796 kn->kn_status &= ~KN_QUEUED;
797 kq->kq_count--;
798 continue;
799 }
800 if ((kn->kn_flags & EV_ONESHOT) == 0 &&
801 kn->kn_fop->f_event(kn, 0) == 0) {
802 /*
803 * non-ONESHOT event that hasn't
804 * triggered again, so de-queue.
805 */
806 kn->kn_status &= ~(KN_QUEUED | KN_ACTIVE);
807 kq->kq_count--;
808 continue;
809 }
810 *kevp = kn->kn_kevent;
811 kevp++;
812 nkev++;
813 if (kn->kn_flags & EV_ONESHOT) {
814 /* delete ONESHOT events after retrieval */
815 kn->kn_status &= ~KN_QUEUED;
816 kq->kq_count--;
817 splx(s);
818 kn->kn_fop->f_detach(kn);
819 knote_drop(kn, p);
820 s = splhigh();
821 } else if (kn->kn_flags & EV_CLEAR) {
822 /* clear state after retrieval */
823 kn->kn_data = 0;
824 kn->kn_fflags = 0;
825 kn->kn_status &= ~(KN_QUEUED | KN_ACTIVE);
826 kq->kq_count--;
827 } else {
828 /* add event back on list */
829 TAILQ_INSERT_TAIL(&kq->kq_head, kn, kn_tqe);
830 }
831 count--;
832 if (nkev == KQ_NEVENTS) {
833 /* do copyouts in KQ_NEVENTS chunks */
834 splx(s);
835 error = copyout((caddr_t)&kq->kq_kev, (caddr_t)ulistp,
836 sizeof(struct kevent) * nkev);
837 ulistp += nkev;
838 nkev = 0;
839 kevp = kq->kq_kev;
840 s = splhigh();
841 if (error)
842 break;
843 }
844 }
845 /* remove marker */
846 TAILQ_REMOVE(&kq->kq_head, &marker, kn_tqe);
847 splx(s);
848 done:
849 if (nkev != 0) /* copyout remaining events */
850 error = copyout((caddr_t)&kq->kq_kev, (caddr_t)ulistp,
851 sizeof(struct kevent) * nkev);
852 *retval = maxevents - count;
853 return (error);
854 }
855
856 /*
857 * struct fileops read method for a kqueue descriptor.
858 * Not implemented.
859 * XXX: This could be expanded to call kqueue_scan, if desired.
860 */
861 /*ARGSUSED*/
862 static int
863 kqueue_read(struct file *fp, off_t *offset, struct uio *uio,
864 struct ucred *cred, int flags)
865 {
866
867 return (ENXIO);
868 }
869
870 /*
871 * struct fileops write method for a kqueue descriptor.
872 * Not implemented.
873 */
874 /*ARGSUSED*/
875 static int
876 kqueue_write(struct file *fp, off_t *offset, struct uio *uio,
877 struct ucred *cred, int flags)
878 {
879
880 return (ENXIO);
881 }
882
883 /*
884 * struct fileops ioctl method for a kqueue descriptor.
885 *
886 * Two ioctls are currently supported. They both use struct kfilter_mapping:
887 * KFILTER_BYNAME find name for filter, and return result in
888 * name, which is of size len.
889 * KFILTER_BYFILTER find filter for name. len is ignored.
890 */
891 /*ARGSUSED*/
892 static int
893 kqueue_ioctl(struct file *fp, u_long com, caddr_t data, struct proc *p)
894 {
895 struct kfilter_mapping *km;
896 const struct kfilter *kfilter;
897 char *name;
898 int error;
899
900 km = (struct kfilter_mapping *)data;
901 error = 0;
902
903 switch (com) {
904 case KFILTER_BYFILTER: /* convert filter -> name */
905 kfilter = kfilter_byfilter(km->filter);
906 if (kfilter != NULL)
907 error = copyoutstr(kfilter->name, km->name, km->len,
908 NULL);
909 else
910 error = ENOENT;
911 break;
912
913 case KFILTER_BYNAME: /* convert name -> filter */
914 MALLOC(name, char *, KFILTER_MAXNAME, M_KEVENT, M_WAITOK);
915 error = copyinstr(km->name, name, KFILTER_MAXNAME, NULL);
916 if (error) {
917 free(name, M_KEVENT);
918 break;
919 }
920 kfilter = kfilter_byname(name);
921 if (kfilter != NULL)
922 km->filter = kfilter->filter;
923 else
924 error = ENOENT;
925 free(name, M_KEVENT);
926 break;
927
928 #if 1 /* XXXLUKEM - test register & unregister */
929 case KFILTER_REGISTER:
930 case KFILTER_UNREGISTER:
931 MALLOC(name, char *, KFILTER_MAXNAME, M_KEVENT, M_WAITOK);
932 error = copyinstr(km->name, name, KFILTER_MAXNAME, NULL);
933 if (error) {
934 free(name, M_KEVENT);
935 break;
936 }
937 if (com == KFILTER_REGISTER) {
938 kfilter = kfilter_byfilter(km->filter);
939 if (kfilter != NULL) {
940 error = kfilter_register(name,
941 kfilter->filtops, &km->filter);
942 } else
943 error = ENOENT;
944 } else
945 error = kfilter_unregister(name);
946 free(name, M_KEVENT);
947 break;
948 #endif
949
950 default:
951 error = ENOTTY;
952
953 }
954 return (error);
955 }
956
957 /*
958 * struct fileops fcntl method for a kqueue descriptor.
959 * Not implemented.
960 */
961 /*ARGSUSED*/
962 static int
963 kqueue_fcntl(struct file *fp, u_int com, caddr_t data, struct proc *p)
964 {
965
966 return (ENOTTY);
967 }
968
969 /*
970 * struct fileops poll method for a kqueue descriptor.
971 * Determine if kqueue has events pending.
972 */
973 /*ARGSUSED*/
974 static int
975 kqueue_poll(struct file *fp, int events, struct proc *p)
976 {
977 struct kqueue *kq;
978 int revents, s;
979
980 kq = (struct kqueue *)fp->f_data;
981 revents = 0;
982 s = splnet(); /* XXXLUKEM: is this correct? */
983 if (events & (POLLIN | POLLRDNORM)) {
984 if (kq->kq_count) {
985 revents |= events & (POLLIN | POLLRDNORM);
986 } else {
987 /* XXXLUKEM: splsched() for next? */
988 selrecord(p, &kq->kq_sel);
989 kq->kq_state |= KQ_SEL;
990 }
991 }
992 splx(s);
993 return (revents);
994 }
995
996 /*
997 * struct fileops stat method for a kqueue descriptor.
998 * Returns dummy info, with st_size being number of events pending.
999 */
1000 /*ARGSUSED*/
1001 static int
1002 kqueue_stat(struct file *fp, struct stat *st, struct proc *p)
1003 {
1004 struct kqueue *kq;
1005
1006 kq = (struct kqueue *)fp->f_data;
1007 memset((void *)st, 0, sizeof(*st));
1008 st->st_size = kq->kq_count;
1009 st->st_blksize = sizeof(struct kevent);
1010 st->st_mode = S_IFIFO;
1011 return (0);
1012 }
1013
1014 /*
1015 * struct fileops close method for a kqueue descriptor.
1016 * Cleans up kqueue.
1017 */
1018 /*ARGSUSED*/
1019 static int
1020 kqueue_close(struct file *fp, struct proc *p)
1021 {
1022 struct kqueue *kq;
1023 struct filedesc *fdp;
1024 struct knote **knp, *kn, *kn0;
1025 int i;
1026
1027 kq = (struct kqueue *)fp->f_data;
1028 fdp = p->p_fd;
1029 for (i = 0; i < fdp->fd_knlistsize; i++) {
1030 knp = &SLIST_FIRST(&fdp->fd_knlist[i]);
1031 kn = *knp;
1032 while (kn != NULL) {
1033 kn0 = SLIST_NEXT(kn, kn_link);
1034 if (kq == kn->kn_kq) {
1035 kn->kn_fop->f_detach(kn);
1036 FILE_UNUSE(kn->kn_fp, p);
1037 pool_put(&knote_pool, kn);
1038 *knp = kn0;
1039 } else {
1040 knp = &SLIST_NEXT(kn, kn_link);
1041 }
1042 kn = kn0;
1043 }
1044 }
1045 if (fdp->fd_knhashmask != 0) {
1046 for (i = 0; i < fdp->fd_knhashmask + 1; i++) {
1047 knp = &SLIST_FIRST(&fdp->fd_knhash[i]);
1048 kn = *knp;
1049 while (kn != NULL) {
1050 kn0 = SLIST_NEXT(kn, kn_link);
1051 if (kq == kn->kn_kq) {
1052 kn->kn_fop->f_detach(kn);
1053 /* XXX non-fd release of kn->kn_ptr */
1054 pool_put(&knote_pool, kn);
1055 *knp = kn0;
1056 } else {
1057 knp = &SLIST_NEXT(kn, kn_link);
1058 }
1059 kn = kn0;
1060 }
1061 }
1062 }
1063 pool_put(&kqueue_pool, kq);
1064 fp->f_data = NULL;
1065
1066 return (0);
1067 }
1068
1069 /*
1070 * wakeup a kqueue
1071 */
1072 static void
1073 kqueue_wakeup(struct kqueue *kq)
1074 {
1075
1076 if (kq->kq_state & KQ_SLEEP) { /* if currently sleeping ... */
1077 kq->kq_state &= ~KQ_SLEEP;
1078 wakeup(kq); /* ... wakeup */
1079 }
1080 if (kq->kq_state & KQ_SEL) { /* if currently polling ... */
1081 kq->kq_state &= ~KQ_SEL;
1082 selwakeup(&kq->kq_sel); /* ... selwakeup */
1083 }
1084 KNOTE(&kq->kq_sel.si_klist, 0);
1085 }
1086
1087 /*
1088 * struct fileops kqfilter method for a kqueue descriptor.
1089 * Event triggered when monitored kqueue changes.
1090 */
1091 /*ARGSUSED*/
1092 static int
1093 kqueue_kqfilter(struct file *fp, struct knote *kn)
1094 {
1095 struct kqueue *kq;
1096
1097 kq = (struct kqueue *)kn->kn_fp->f_data;
1098 if (kn->kn_filter != EVFILT_READ)
1099 return (1);
1100 kn->kn_fop = &kqread_filtops;
1101 SLIST_INSERT_HEAD(&kq->kq_sel.si_klist, kn, kn_selnext);
1102 return (0);
1103 }
1104
1105
1106 /*
1107 * Walk down a list of knotes, activating them if their event has triggered.
1108 */
1109 void
1110 knote(struct klist *list, long hint)
1111 {
1112 struct knote *kn;
1113
1114 SLIST_FOREACH(kn, list, kn_selnext)
1115 if (kn->kn_fop->f_event(kn, hint))
1116 KNOTE_ACTIVATE(kn);
1117 }
1118
1119 /*
1120 * Remove all knotes from a specified klist
1121 */
1122 void
1123 knote_remove(struct proc *p, struct klist *list)
1124 {
1125 struct knote *kn;
1126
1127 while ((kn = SLIST_FIRST(list)) != NULL) {
1128 kn->kn_fop->f_detach(kn);
1129 knote_drop(kn, p);
1130 }
1131 }
1132
1133 /*
1134 * Remove all knotes referencing a specified fd
1135 */
1136 void
1137 knote_fdclose(struct proc *p, int fd)
1138 {
1139 struct filedesc *fdp;
1140 struct klist *list;
1141
1142 fdp = p->p_fd;
1143 list = &fdp->fd_knlist[fd];
1144 knote_remove(p, list);
1145 }
1146
1147 /*
1148 * Attach a new knote to a file descriptor
1149 */
1150 static void
1151 knote_attach(struct knote *kn, struct filedesc *fdp)
1152 {
1153 struct klist *list;
1154 int size;
1155
1156 if (! kn->kn_fop->f_isfd) {
1157 /*
1158 * if knote is not on an fd, store
1159 * on internal hash table.
1160 */
1161 if (fdp->fd_knhashmask == 0)
1162 fdp->fd_knhash = hashinit(KN_HASHSIZE, HASH_LIST,
1163 M_KEVENT, M_WAITOK, &fdp->fd_knhashmask);
1164 list = &fdp->fd_knhash[KN_HASH(kn->kn_id, fdp->fd_knhashmask)];
1165 goto done;
1166 }
1167
1168 /*
1169 * otherwise, knote is on an fd.
1170 * knotes are stored in fd_knlist
1171 * indexed by kn->kn_id.
1172 */
1173 if (fdp->fd_knlistsize <= kn->kn_id) {
1174 /* expand list if too small */
1175 size = fdp->fd_knlistsize;
1176 while (size <= kn->kn_id)
1177 size += KQ_EXTENT; /* grow in KQ_EXTENT chunks */
1178 list = malloc(size * sizeof(struct klist *), M_KEVENT,M_WAITOK);
1179 /* copy existing knlist */
1180 memcpy((caddr_t)list, (caddr_t)fdp->fd_knlist,
1181 fdp->fd_knlistsize * sizeof(struct klist *));
1182 /* zero new sections */
1183 memset((caddr_t)list +
1184 fdp->fd_knlistsize * sizeof(struct klist *), 0,
1185 (size - fdp->fd_knlistsize) * sizeof(struct klist *));
1186 if (fdp->fd_knlist != NULL) /* switch to new knlist */
1187 FREE(fdp->fd_knlist, M_KEVENT);
1188 fdp->fd_knlistsize = size;
1189 fdp->fd_knlist = list;
1190 }
1191 list = &fdp->fd_knlist[kn->kn_id]; /* get list head for this fd */
1192 done:
1193 SLIST_INSERT_HEAD(list, kn, kn_link); /* add new knote */
1194 kn->kn_status = 0;
1195 }
1196
1197 /*
1198 * Drop knote.
1199 * Should be called at spl == 0, since we don't want to hold spl
1200 * while calling FILE_UNUSE and free.
1201 */
1202 static void
1203 knote_drop(struct knote *kn, struct proc *p)
1204 {
1205 struct filedesc *fdp;
1206 struct klist *list;
1207
1208 fdp = p->p_fd;
1209 if (kn->kn_fop->f_isfd)
1210 list = &fdp->fd_knlist[kn->kn_id];
1211 else
1212 list = &fdp->fd_knhash[KN_HASH(kn->kn_id, fdp->fd_knhashmask)];
1213
1214 SLIST_REMOVE(list, kn, knote, kn_link);
1215 if (kn->kn_status & KN_QUEUED)
1216 knote_dequeue(kn);
1217 if (kn->kn_fop->f_isfd)
1218 FILE_UNUSE(kn->kn_fp, p);
1219 pool_put(&knote_pool, kn);
1220 }
1221
1222
1223 /*
1224 * Queue new event for knote.
1225 */
1226 static void
1227 knote_enqueue(struct knote *kn)
1228 {
1229 struct kqueue *kq;
1230 int s;
1231
1232 kq = kn->kn_kq;
1233 s = splhigh();
1234 KASSERT((kn->kn_status & KN_QUEUED) == 0);
1235
1236 TAILQ_INSERT_TAIL(&kq->kq_head, kn, kn_tqe);
1237 kn->kn_status |= KN_QUEUED;
1238 kq->kq_count++;
1239 splx(s);
1240 kqueue_wakeup(kq);
1241 }
1242
1243 /*
1244 * Dequeue event for knote.
1245 */
1246 static void
1247 knote_dequeue(struct knote *kn)
1248 {
1249 struct kqueue *kq;
1250 int s;
1251
1252 kq = kn->kn_kq;
1253 s = splhigh();
1254 KASSERT(kn->kn_status & KN_QUEUED);
1255
1256 TAILQ_REMOVE(&kq->kq_head, kn, kn_tqe);
1257 kn->kn_status &= ~KN_QUEUED;
1258 kq->kq_count--;
1259 splx(s);
1260 }
1261