kern_event.c revision 1.108 1 1.108 christos /* $NetBSD: kern_event.c,v 1.108 2020/10/31 01:08:32 christos Exp $ */
2 1.49 ad
3 1.49 ad /*-
4 1.64 ad * Copyright (c) 2008, 2009 The NetBSD Foundation, Inc.
5 1.49 ad * All rights reserved.
6 1.49 ad *
7 1.64 ad * This code is derived from software contributed to The NetBSD Foundation
8 1.64 ad * by Andrew Doran.
9 1.64 ad *
10 1.49 ad * Redistribution and use in source and binary forms, with or without
11 1.49 ad * modification, are permitted provided that the following conditions
12 1.49 ad * are met:
13 1.49 ad * 1. Redistributions of source code must retain the above copyright
14 1.49 ad * notice, this list of conditions and the following disclaimer.
15 1.49 ad * 2. Redistributions in binary form must reproduce the above copyright
16 1.49 ad * notice, this list of conditions and the following disclaimer in the
17 1.49 ad * documentation and/or other materials provided with the distribution.
18 1.49 ad *
19 1.49 ad * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.49 ad * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.49 ad * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.49 ad * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.49 ad * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.49 ad * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.49 ad * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.49 ad * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.49 ad * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.49 ad * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.49 ad * POSSIBILITY OF SUCH DAMAGE.
30 1.49 ad */
31 1.28 kardel
32 1.1 lukem /*-
33 1.1 lukem * Copyright (c) 1999,2000,2001 Jonathan Lemon <jlemon (at) FreeBSD.org>
34 1.108 christos * Copyright (c) 2009 Apple, Inc
35 1.1 lukem * All rights reserved.
36 1.1 lukem *
37 1.1 lukem * Redistribution and use in source and binary forms, with or without
38 1.1 lukem * modification, are permitted provided that the following conditions
39 1.1 lukem * are met:
40 1.1 lukem * 1. Redistributions of source code must retain the above copyright
41 1.1 lukem * notice, this list of conditions and the following disclaimer.
42 1.1 lukem * 2. Redistributions in binary form must reproduce the above copyright
43 1.1 lukem * notice, this list of conditions and the following disclaimer in the
44 1.1 lukem * documentation and/or other materials provided with the distribution.
45 1.1 lukem *
46 1.1 lukem * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
47 1.1 lukem * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
48 1.1 lukem * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
49 1.1 lukem * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
50 1.1 lukem * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
51 1.1 lukem * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
52 1.1 lukem * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
53 1.1 lukem * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
54 1.1 lukem * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
55 1.1 lukem * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
56 1.1 lukem * SUCH DAMAGE.
57 1.1 lukem *
58 1.49 ad * FreeBSD: src/sys/kern/kern_event.c,v 1.27 2001/07/05 17:10:44 rwatson Exp
59 1.1 lukem */
60 1.14 jdolecek
61 1.14 jdolecek #include <sys/cdefs.h>
62 1.108 christos __KERNEL_RCSID(0, "$NetBSD: kern_event.c,v 1.108 2020/10/31 01:08:32 christos Exp $");
63 1.1 lukem
64 1.1 lukem #include <sys/param.h>
65 1.1 lukem #include <sys/systm.h>
66 1.1 lukem #include <sys/kernel.h>
67 1.86 christos #include <sys/wait.h>
68 1.1 lukem #include <sys/proc.h>
69 1.1 lukem #include <sys/file.h>
70 1.3 jdolecek #include <sys/select.h>
71 1.1 lukem #include <sys/queue.h>
72 1.1 lukem #include <sys/event.h>
73 1.1 lukem #include <sys/eventvar.h>
74 1.1 lukem #include <sys/poll.h>
75 1.49 ad #include <sys/kmem.h>
76 1.1 lukem #include <sys/stat.h>
77 1.3 jdolecek #include <sys/filedesc.h>
78 1.3 jdolecek #include <sys/syscallargs.h>
79 1.27 elad #include <sys/kauth.h>
80 1.40 ad #include <sys/conf.h>
81 1.49 ad #include <sys/atomic.h>
82 1.1 lukem
83 1.49 ad static int kqueue_scan(file_t *, size_t, struct kevent *,
84 1.49 ad const struct timespec *, register_t *,
85 1.49 ad const struct kevent_ops *, struct kevent *,
86 1.49 ad size_t);
87 1.49 ad static int kqueue_ioctl(file_t *, u_long, void *);
88 1.49 ad static int kqueue_fcntl(file_t *, u_int, void *);
89 1.49 ad static int kqueue_poll(file_t *, int);
90 1.49 ad static int kqueue_kqfilter(file_t *, struct knote *);
91 1.49 ad static int kqueue_stat(file_t *, struct stat *);
92 1.49 ad static int kqueue_close(file_t *);
93 1.49 ad static int kqueue_register(struct kqueue *, struct kevent *);
94 1.49 ad static void kqueue_doclose(struct kqueue *, struct klist *, int);
95 1.49 ad
96 1.49 ad static void knote_detach(struct knote *, filedesc_t *fdp, bool);
97 1.49 ad static void knote_enqueue(struct knote *);
98 1.49 ad static void knote_activate(struct knote *);
99 1.49 ad
100 1.49 ad static void filt_kqdetach(struct knote *);
101 1.49 ad static int filt_kqueue(struct knote *, long hint);
102 1.49 ad static int filt_procattach(struct knote *);
103 1.49 ad static void filt_procdetach(struct knote *);
104 1.49 ad static int filt_proc(struct knote *, long hint);
105 1.49 ad static int filt_fileattach(struct knote *);
106 1.49 ad static void filt_timerexpire(void *x);
107 1.49 ad static int filt_timerattach(struct knote *);
108 1.49 ad static void filt_timerdetach(struct knote *);
109 1.49 ad static int filt_timer(struct knote *, long hint);
110 1.102 christos static int filt_fsattach(struct knote *kn);
111 1.102 christos static void filt_fsdetach(struct knote *kn);
112 1.102 christos static int filt_fs(struct knote *kn, long hint);
113 1.108 christos static int filt_userattach(struct knote *);
114 1.108 christos static void filt_userdetach(struct knote *);
115 1.108 christos static int filt_user(struct knote *, long hint);
116 1.108 christos static void filt_usertouch(struct knote *, struct kevent *, long type);
117 1.1 lukem
118 1.21 christos static const struct fileops kqueueops = {
119 1.101 christos .fo_name = "kqueue",
120 1.64 ad .fo_read = (void *)enxio,
121 1.64 ad .fo_write = (void *)enxio,
122 1.64 ad .fo_ioctl = kqueue_ioctl,
123 1.64 ad .fo_fcntl = kqueue_fcntl,
124 1.64 ad .fo_poll = kqueue_poll,
125 1.64 ad .fo_stat = kqueue_stat,
126 1.64 ad .fo_close = kqueue_close,
127 1.64 ad .fo_kqfilter = kqueue_kqfilter,
128 1.68 dsl .fo_restart = fnullop_restart,
129 1.1 lukem };
130 1.1 lukem
131 1.96 maya static const struct filterops kqread_filtops = {
132 1.96 maya .f_isfd = 1,
133 1.96 maya .f_attach = NULL,
134 1.96 maya .f_detach = filt_kqdetach,
135 1.96 maya .f_event = filt_kqueue,
136 1.96 maya };
137 1.96 maya
138 1.96 maya static const struct filterops proc_filtops = {
139 1.96 maya .f_isfd = 0,
140 1.96 maya .f_attach = filt_procattach,
141 1.96 maya .f_detach = filt_procdetach,
142 1.96 maya .f_event = filt_proc,
143 1.96 maya };
144 1.96 maya
145 1.96 maya static const struct filterops file_filtops = {
146 1.96 maya .f_isfd = 1,
147 1.96 maya .f_attach = filt_fileattach,
148 1.96 maya .f_detach = NULL,
149 1.96 maya .f_event = NULL,
150 1.96 maya };
151 1.96 maya
152 1.96 maya static const struct filterops timer_filtops = {
153 1.96 maya .f_isfd = 0,
154 1.96 maya .f_attach = filt_timerattach,
155 1.96 maya .f_detach = filt_timerdetach,
156 1.96 maya .f_event = filt_timer,
157 1.96 maya };
158 1.1 lukem
159 1.102 christos static const struct filterops fs_filtops = {
160 1.102 christos .f_isfd = 0,
161 1.102 christos .f_attach = filt_fsattach,
162 1.102 christos .f_detach = filt_fsdetach,
163 1.102 christos .f_event = filt_fs,
164 1.102 christos };
165 1.102 christos
166 1.108 christos static const struct filterops user_filtops = {
167 1.108 christos .f_isfd = 0,
168 1.108 christos .f_attach = filt_userattach,
169 1.108 christos .f_detach = filt_userdetach,
170 1.108 christos .f_event = filt_user,
171 1.108 christos .f_touch = filt_usertouch,
172 1.108 christos };
173 1.108 christos
174 1.49 ad static u_int kq_ncallouts = 0;
175 1.8 jdolecek static int kq_calloutmax = (4 * 1024);
176 1.7 thorpej
177 1.1 lukem #define KN_HASHSIZE 64 /* XXX should be tunable */
178 1.3 jdolecek #define KN_HASH(val, mask) (((val) ^ (val >> 8)) & (mask))
179 1.1 lukem
180 1.3 jdolecek extern const struct filterops sig_filtops;
181 1.1 lukem
182 1.1 lukem /*
183 1.1 lukem * Table for for all system-defined filters.
184 1.3 jdolecek * These should be listed in the numeric order of the EVFILT_* defines.
185 1.3 jdolecek * If filtops is NULL, the filter isn't implemented in NetBSD.
186 1.3 jdolecek * End of list is when name is NULL.
187 1.93 riastrad *
188 1.49 ad * Note that 'refcnt' is meaningless for built-in filters.
189 1.1 lukem */
190 1.3 jdolecek struct kfilter {
191 1.49 ad const char *name; /* name of filter */
192 1.49 ad uint32_t filter; /* id of filter */
193 1.49 ad unsigned refcnt; /* reference count */
194 1.3 jdolecek const struct filterops *filtops;/* operations for filter */
195 1.49 ad size_t namelen; /* length of name string */
196 1.3 jdolecek };
197 1.3 jdolecek
198 1.49 ad /* System defined filters */
199 1.49 ad static struct kfilter sys_kfilters[] = {
200 1.49 ad { "EVFILT_READ", EVFILT_READ, 0, &file_filtops, 0 },
201 1.49 ad { "EVFILT_WRITE", EVFILT_WRITE, 0, &file_filtops, 0, },
202 1.49 ad { "EVFILT_AIO", EVFILT_AIO, 0, NULL, 0 },
203 1.49 ad { "EVFILT_VNODE", EVFILT_VNODE, 0, &file_filtops, 0 },
204 1.49 ad { "EVFILT_PROC", EVFILT_PROC, 0, &proc_filtops, 0 },
205 1.49 ad { "EVFILT_SIGNAL", EVFILT_SIGNAL, 0, &sig_filtops, 0 },
206 1.49 ad { "EVFILT_TIMER", EVFILT_TIMER, 0, &timer_filtops, 0 },
207 1.102 christos { "EVFILT_FS", EVFILT_FS, 0, &fs_filtops, 0 },
208 1.108 christos { "EVFILT_USER", EVFILT_USER, 0, &user_filtops, 0 },
209 1.49 ad { NULL, 0, 0, NULL, 0 },
210 1.1 lukem };
211 1.1 lukem
212 1.49 ad /* User defined kfilters */
213 1.3 jdolecek static struct kfilter *user_kfilters; /* array */
214 1.3 jdolecek static int user_kfilterc; /* current offset */
215 1.3 jdolecek static int user_kfiltermaxc; /* max size so far */
216 1.49 ad static size_t user_kfiltersz; /* size of allocated memory */
217 1.49 ad
218 1.95 riastrad /*
219 1.95 riastrad * Global Locks.
220 1.95 riastrad *
221 1.95 riastrad * Lock order:
222 1.95 riastrad *
223 1.95 riastrad * kqueue_filter_lock
224 1.95 riastrad * -> kn_kq->kq_fdp->fd_lock
225 1.95 riastrad * -> object lock (e.g., device driver lock, kqueue_misc_lock, &c.)
226 1.95 riastrad * -> kn_kq->kq_lock
227 1.95 riastrad *
228 1.95 riastrad * Locking rules:
229 1.95 riastrad *
230 1.95 riastrad * f_attach: fdp->fd_lock, KERNEL_LOCK
231 1.95 riastrad * f_detach: fdp->fd_lock, KERNEL_LOCK
232 1.95 riastrad * f_event(!NOTE_SUBMIT) via kevent: fdp->fd_lock, _no_ object lock
233 1.95 riastrad * f_event via knote: whatever caller guarantees
234 1.95 riastrad * Typically, f_event(NOTE_SUBMIT) via knote: object lock
235 1.95 riastrad * f_event(!NOTE_SUBMIT) via knote: nothing,
236 1.95 riastrad * acquires/releases object lock inside.
237 1.95 riastrad */
238 1.49 ad static krwlock_t kqueue_filter_lock; /* lock on filter lists */
239 1.49 ad static kmutex_t kqueue_misc_lock; /* miscellaneous */
240 1.49 ad
241 1.66 elad static kauth_listener_t kqueue_listener;
242 1.66 elad
243 1.66 elad static int
244 1.66 elad kqueue_listener_cb(kauth_cred_t cred, kauth_action_t action, void *cookie,
245 1.66 elad void *arg0, void *arg1, void *arg2, void *arg3)
246 1.66 elad {
247 1.66 elad struct proc *p;
248 1.66 elad int result;
249 1.66 elad
250 1.66 elad result = KAUTH_RESULT_DEFER;
251 1.66 elad p = arg0;
252 1.66 elad
253 1.66 elad if (action != KAUTH_PROCESS_KEVENT_FILTER)
254 1.66 elad return result;
255 1.66 elad
256 1.66 elad if ((kauth_cred_getuid(p->p_cred) != kauth_cred_getuid(cred) ||
257 1.66 elad ISSET(p->p_flag, PK_SUGID)))
258 1.66 elad return result;
259 1.66 elad
260 1.66 elad result = KAUTH_RESULT_ALLOW;
261 1.66 elad
262 1.66 elad return result;
263 1.66 elad }
264 1.66 elad
265 1.49 ad /*
266 1.49 ad * Initialize the kqueue subsystem.
267 1.49 ad */
268 1.49 ad void
269 1.49 ad kqueue_init(void)
270 1.49 ad {
271 1.49 ad
272 1.49 ad rw_init(&kqueue_filter_lock);
273 1.49 ad mutex_init(&kqueue_misc_lock, MUTEX_DEFAULT, IPL_NONE);
274 1.66 elad
275 1.66 elad kqueue_listener = kauth_listen_scope(KAUTH_SCOPE_PROCESS,
276 1.66 elad kqueue_listener_cb, NULL);
277 1.49 ad }
278 1.3 jdolecek
279 1.3 jdolecek /*
280 1.3 jdolecek * Find kfilter entry by name, or NULL if not found.
281 1.3 jdolecek */
282 1.49 ad static struct kfilter *
283 1.3 jdolecek kfilter_byname_sys(const char *name)
284 1.3 jdolecek {
285 1.3 jdolecek int i;
286 1.3 jdolecek
287 1.49 ad KASSERT(rw_lock_held(&kqueue_filter_lock));
288 1.49 ad
289 1.3 jdolecek for (i = 0; sys_kfilters[i].name != NULL; i++) {
290 1.3 jdolecek if (strcmp(name, sys_kfilters[i].name) == 0)
291 1.49 ad return &sys_kfilters[i];
292 1.3 jdolecek }
293 1.49 ad return NULL;
294 1.3 jdolecek }
295 1.3 jdolecek
296 1.3 jdolecek static struct kfilter *
297 1.3 jdolecek kfilter_byname_user(const char *name)
298 1.3 jdolecek {
299 1.3 jdolecek int i;
300 1.3 jdolecek
301 1.49 ad KASSERT(rw_lock_held(&kqueue_filter_lock));
302 1.49 ad
303 1.31 seanb /* user filter slots have a NULL name if previously deregistered */
304 1.31 seanb for (i = 0; i < user_kfilterc ; i++) {
305 1.31 seanb if (user_kfilters[i].name != NULL &&
306 1.3 jdolecek strcmp(name, user_kfilters[i].name) == 0)
307 1.49 ad return &user_kfilters[i];
308 1.3 jdolecek }
309 1.49 ad return NULL;
310 1.3 jdolecek }
311 1.3 jdolecek
312 1.49 ad static struct kfilter *
313 1.3 jdolecek kfilter_byname(const char *name)
314 1.3 jdolecek {
315 1.49 ad struct kfilter *kfilter;
316 1.49 ad
317 1.49 ad KASSERT(rw_lock_held(&kqueue_filter_lock));
318 1.3 jdolecek
319 1.3 jdolecek if ((kfilter = kfilter_byname_sys(name)) != NULL)
320 1.49 ad return kfilter;
321 1.3 jdolecek
322 1.49 ad return kfilter_byname_user(name);
323 1.3 jdolecek }
324 1.3 jdolecek
325 1.3 jdolecek /*
326 1.3 jdolecek * Find kfilter entry by filter id, or NULL if not found.
327 1.3 jdolecek * Assumes entries are indexed in filter id order, for speed.
328 1.3 jdolecek */
329 1.49 ad static struct kfilter *
330 1.3 jdolecek kfilter_byfilter(uint32_t filter)
331 1.3 jdolecek {
332 1.49 ad struct kfilter *kfilter;
333 1.49 ad
334 1.49 ad KASSERT(rw_lock_held(&kqueue_filter_lock));
335 1.3 jdolecek
336 1.3 jdolecek if (filter < EVFILT_SYSCOUNT) /* it's a system filter */
337 1.3 jdolecek kfilter = &sys_kfilters[filter];
338 1.3 jdolecek else if (user_kfilters != NULL &&
339 1.3 jdolecek filter < EVFILT_SYSCOUNT + user_kfilterc)
340 1.3 jdolecek /* it's a user filter */
341 1.3 jdolecek kfilter = &user_kfilters[filter - EVFILT_SYSCOUNT];
342 1.3 jdolecek else
343 1.3 jdolecek return (NULL); /* out of range */
344 1.3 jdolecek KASSERT(kfilter->filter == filter); /* sanity check! */
345 1.3 jdolecek return (kfilter);
346 1.3 jdolecek }
347 1.3 jdolecek
348 1.3 jdolecek /*
349 1.3 jdolecek * Register a new kfilter. Stores the entry in user_kfilters.
350 1.3 jdolecek * Returns 0 if operation succeeded, or an appropriate errno(2) otherwise.
351 1.3 jdolecek * If retfilter != NULL, the new filterid is returned in it.
352 1.3 jdolecek */
353 1.3 jdolecek int
354 1.3 jdolecek kfilter_register(const char *name, const struct filterops *filtops,
355 1.49 ad int *retfilter)
356 1.1 lukem {
357 1.3 jdolecek struct kfilter *kfilter;
358 1.49 ad size_t len;
359 1.31 seanb int i;
360 1.3 jdolecek
361 1.3 jdolecek if (name == NULL || name[0] == '\0' || filtops == NULL)
362 1.3 jdolecek return (EINVAL); /* invalid args */
363 1.49 ad
364 1.49 ad rw_enter(&kqueue_filter_lock, RW_WRITER);
365 1.49 ad if (kfilter_byname(name) != NULL) {
366 1.49 ad rw_exit(&kqueue_filter_lock);
367 1.3 jdolecek return (EEXIST); /* already exists */
368 1.49 ad }
369 1.49 ad if (user_kfilterc > 0xffffffff - EVFILT_SYSCOUNT) {
370 1.49 ad rw_exit(&kqueue_filter_lock);
371 1.3 jdolecek return (EINVAL); /* too many */
372 1.49 ad }
373 1.3 jdolecek
374 1.31 seanb for (i = 0; i < user_kfilterc; i++) {
375 1.31 seanb kfilter = &user_kfilters[i];
376 1.31 seanb if (kfilter->name == NULL) {
377 1.31 seanb /* Previously deregistered slot. Reuse. */
378 1.31 seanb goto reuse;
379 1.31 seanb }
380 1.31 seanb }
381 1.31 seanb
382 1.3 jdolecek /* check if need to grow user_kfilters */
383 1.3 jdolecek if (user_kfilterc + 1 > user_kfiltermaxc) {
384 1.49 ad /* Grow in KFILTER_EXTENT chunks. */
385 1.3 jdolecek user_kfiltermaxc += KFILTER_EXTENT;
386 1.69 dsl len = user_kfiltermaxc * sizeof(*kfilter);
387 1.49 ad kfilter = kmem_alloc(len, KM_SLEEP);
388 1.49 ad memset((char *)kfilter + user_kfiltersz, 0, len - user_kfiltersz);
389 1.49 ad if (user_kfilters != NULL) {
390 1.49 ad memcpy(kfilter, user_kfilters, user_kfiltersz);
391 1.49 ad kmem_free(user_kfilters, user_kfiltersz);
392 1.49 ad }
393 1.49 ad user_kfiltersz = len;
394 1.3 jdolecek user_kfilters = kfilter;
395 1.3 jdolecek }
396 1.31 seanb /* Adding new slot */
397 1.31 seanb kfilter = &user_kfilters[user_kfilterc++];
398 1.31 seanb reuse:
399 1.97 christos kfilter->name = kmem_strdupsize(name, &kfilter->namelen, KM_SLEEP);
400 1.3 jdolecek
401 1.31 seanb kfilter->filter = (kfilter - user_kfilters) + EVFILT_SYSCOUNT;
402 1.3 jdolecek
403 1.49 ad kfilter->filtops = kmem_alloc(sizeof(*filtops), KM_SLEEP);
404 1.49 ad memcpy(__UNCONST(kfilter->filtops), filtops, sizeof(*filtops));
405 1.3 jdolecek
406 1.3 jdolecek if (retfilter != NULL)
407 1.31 seanb *retfilter = kfilter->filter;
408 1.49 ad rw_exit(&kqueue_filter_lock);
409 1.49 ad
410 1.3 jdolecek return (0);
411 1.1 lukem }
412 1.1 lukem
413 1.3 jdolecek /*
414 1.3 jdolecek * Unregister a kfilter previously registered with kfilter_register.
415 1.3 jdolecek * This retains the filter id, but clears the name and frees filtops (filter
416 1.3 jdolecek * operations), so that the number isn't reused during a boot.
417 1.3 jdolecek * Returns 0 if operation succeeded, or an appropriate errno(2) otherwise.
418 1.3 jdolecek */
419 1.3 jdolecek int
420 1.3 jdolecek kfilter_unregister(const char *name)
421 1.1 lukem {
422 1.3 jdolecek struct kfilter *kfilter;
423 1.3 jdolecek
424 1.3 jdolecek if (name == NULL || name[0] == '\0')
425 1.3 jdolecek return (EINVAL); /* invalid name */
426 1.3 jdolecek
427 1.49 ad rw_enter(&kqueue_filter_lock, RW_WRITER);
428 1.49 ad if (kfilter_byname_sys(name) != NULL) {
429 1.49 ad rw_exit(&kqueue_filter_lock);
430 1.3 jdolecek return (EINVAL); /* can't detach system filters */
431 1.49 ad }
432 1.1 lukem
433 1.3 jdolecek kfilter = kfilter_byname_user(name);
434 1.49 ad if (kfilter == NULL) {
435 1.49 ad rw_exit(&kqueue_filter_lock);
436 1.3 jdolecek return (ENOENT);
437 1.49 ad }
438 1.49 ad if (kfilter->refcnt != 0) {
439 1.49 ad rw_exit(&kqueue_filter_lock);
440 1.49 ad return (EBUSY);
441 1.49 ad }
442 1.1 lukem
443 1.49 ad /* Cast away const (but we know it's safe. */
444 1.49 ad kmem_free(__UNCONST(kfilter->name), kfilter->namelen);
445 1.31 seanb kfilter->name = NULL; /* mark as `not implemented' */
446 1.31 seanb
447 1.3 jdolecek if (kfilter->filtops != NULL) {
448 1.49 ad /* Cast away const (but we know it's safe. */
449 1.49 ad kmem_free(__UNCONST(kfilter->filtops),
450 1.49 ad sizeof(*kfilter->filtops));
451 1.3 jdolecek kfilter->filtops = NULL; /* mark as `not implemented' */
452 1.3 jdolecek }
453 1.49 ad rw_exit(&kqueue_filter_lock);
454 1.49 ad
455 1.1 lukem return (0);
456 1.1 lukem }
457 1.1 lukem
458 1.3 jdolecek
459 1.3 jdolecek /*
460 1.3 jdolecek * Filter attach method for EVFILT_READ and EVFILT_WRITE on normal file
461 1.49 ad * descriptors. Calls fileops kqfilter method for given file descriptor.
462 1.3 jdolecek */
463 1.3 jdolecek static int
464 1.3 jdolecek filt_fileattach(struct knote *kn)
465 1.3 jdolecek {
466 1.49 ad file_t *fp;
467 1.49 ad
468 1.49 ad fp = kn->kn_obj;
469 1.3 jdolecek
470 1.49 ad return (*fp->f_ops->fo_kqfilter)(fp, kn);
471 1.3 jdolecek }
472 1.3 jdolecek
473 1.3 jdolecek /*
474 1.3 jdolecek * Filter detach method for EVFILT_READ on kqueue descriptor.
475 1.3 jdolecek */
476 1.1 lukem static void
477 1.1 lukem filt_kqdetach(struct knote *kn)
478 1.1 lukem {
479 1.3 jdolecek struct kqueue *kq;
480 1.1 lukem
481 1.82 matt kq = ((file_t *)kn->kn_obj)->f_kqueue;
482 1.49 ad
483 1.49 ad mutex_spin_enter(&kq->kq_lock);
484 1.5 christos SLIST_REMOVE(&kq->kq_sel.sel_klist, kn, knote, kn_selnext);
485 1.49 ad mutex_spin_exit(&kq->kq_lock);
486 1.1 lukem }
487 1.1 lukem
488 1.3 jdolecek /*
489 1.3 jdolecek * Filter event method for EVFILT_READ on kqueue descriptor.
490 1.3 jdolecek */
491 1.1 lukem /*ARGSUSED*/
492 1.1 lukem static int
493 1.33 yamt filt_kqueue(struct knote *kn, long hint)
494 1.1 lukem {
495 1.3 jdolecek struct kqueue *kq;
496 1.49 ad int rv;
497 1.49 ad
498 1.82 matt kq = ((file_t *)kn->kn_obj)->f_kqueue;
499 1.1 lukem
500 1.49 ad if (hint != NOTE_SUBMIT)
501 1.49 ad mutex_spin_enter(&kq->kq_lock);
502 1.1 lukem kn->kn_data = kq->kq_count;
503 1.49 ad rv = (kn->kn_data > 0);
504 1.49 ad if (hint != NOTE_SUBMIT)
505 1.49 ad mutex_spin_exit(&kq->kq_lock);
506 1.49 ad
507 1.49 ad return rv;
508 1.1 lukem }
509 1.1 lukem
510 1.3 jdolecek /*
511 1.3 jdolecek * Filter attach method for EVFILT_PROC.
512 1.3 jdolecek */
513 1.1 lukem static int
514 1.1 lukem filt_procattach(struct knote *kn)
515 1.1 lukem {
516 1.78 pooka struct proc *p;
517 1.30 ad struct lwp *curl;
518 1.30 ad
519 1.30 ad curl = curlwp;
520 1.1 lukem
521 1.107 ad mutex_enter(&proc_lock);
522 1.77 joerg if (kn->kn_flags & EV_FLAG1) {
523 1.77 joerg /*
524 1.77 joerg * NOTE_TRACK attaches to the child process too early
525 1.77 joerg * for proc_find, so do a raw look up and check the state
526 1.77 joerg * explicitly.
527 1.77 joerg */
528 1.77 joerg p = proc_find_raw(kn->kn_id);
529 1.77 joerg if (p != NULL && p->p_stat != SIDL)
530 1.77 joerg p = NULL;
531 1.77 joerg } else {
532 1.77 joerg p = proc_find(kn->kn_id);
533 1.77 joerg }
534 1.77 joerg
535 1.49 ad if (p == NULL) {
536 1.107 ad mutex_exit(&proc_lock);
537 1.49 ad return ESRCH;
538 1.49 ad }
539 1.3 jdolecek
540 1.3 jdolecek /*
541 1.3 jdolecek * Fail if it's not owned by you, or the last exec gave us
542 1.3 jdolecek * setuid/setgid privs (unless you're root).
543 1.3 jdolecek */
544 1.57 ad mutex_enter(p->p_lock);
545 1.107 ad mutex_exit(&proc_lock);
546 1.46 elad if (kauth_authorize_process(curl->l_cred, KAUTH_PROCESS_KEVENT_FILTER,
547 1.49 ad p, NULL, NULL, NULL) != 0) {
548 1.57 ad mutex_exit(p->p_lock);
549 1.49 ad return EACCES;
550 1.49 ad }
551 1.1 lukem
552 1.49 ad kn->kn_obj = p;
553 1.3 jdolecek kn->kn_flags |= EV_CLEAR; /* automatically set */
554 1.1 lukem
555 1.1 lukem /*
556 1.1 lukem * internal flag indicating registration done by kernel
557 1.1 lukem */
558 1.1 lukem if (kn->kn_flags & EV_FLAG1) {
559 1.3 jdolecek kn->kn_data = kn->kn_sdata; /* ppid */
560 1.1 lukem kn->kn_fflags = NOTE_CHILD;
561 1.1 lukem kn->kn_flags &= ~EV_FLAG1;
562 1.1 lukem }
563 1.1 lukem SLIST_INSERT_HEAD(&p->p_klist, kn, kn_selnext);
564 1.57 ad mutex_exit(p->p_lock);
565 1.1 lukem
566 1.49 ad return 0;
567 1.1 lukem }
568 1.1 lukem
569 1.1 lukem /*
570 1.3 jdolecek * Filter detach method for EVFILT_PROC.
571 1.3 jdolecek *
572 1.1 lukem * The knote may be attached to a different process, which may exit,
573 1.1 lukem * leaving nothing for the knote to be attached to. So when the process
574 1.1 lukem * exits, the knote is marked as DETACHED and also flagged as ONESHOT so
575 1.1 lukem * it will be deleted when read out. However, as part of the knote deletion,
576 1.1 lukem * this routine is called, so a check is needed to avoid actually performing
577 1.3 jdolecek * a detach, because the original process might not exist any more.
578 1.1 lukem */
579 1.1 lukem static void
580 1.1 lukem filt_procdetach(struct knote *kn)
581 1.1 lukem {
582 1.3 jdolecek struct proc *p;
583 1.1 lukem
584 1.1 lukem if (kn->kn_status & KN_DETACHED)
585 1.1 lukem return;
586 1.1 lukem
587 1.49 ad p = kn->kn_obj;
588 1.3 jdolecek
589 1.57 ad mutex_enter(p->p_lock);
590 1.1 lukem SLIST_REMOVE(&p->p_klist, kn, knote, kn_selnext);
591 1.57 ad mutex_exit(p->p_lock);
592 1.1 lukem }
593 1.1 lukem
594 1.3 jdolecek /*
595 1.3 jdolecek * Filter event method for EVFILT_PROC.
596 1.3 jdolecek */
597 1.1 lukem static int
598 1.1 lukem filt_proc(struct knote *kn, long hint)
599 1.1 lukem {
600 1.49 ad u_int event, fflag;
601 1.49 ad struct kevent kev;
602 1.49 ad struct kqueue *kq;
603 1.49 ad int error;
604 1.1 lukem
605 1.1 lukem event = (u_int)hint & NOTE_PCTRLMASK;
606 1.49 ad kq = kn->kn_kq;
607 1.49 ad fflag = 0;
608 1.1 lukem
609 1.49 ad /* If the user is interested in this event, record it. */
610 1.1 lukem if (kn->kn_sfflags & event)
611 1.49 ad fflag |= event;
612 1.1 lukem
613 1.1 lukem if (event == NOTE_EXIT) {
614 1.83 christos struct proc *p = kn->kn_obj;
615 1.83 christos
616 1.83 christos if (p != NULL)
617 1.86 christos kn->kn_data = P_WAITSTATUS(p);
618 1.3 jdolecek /*
619 1.49 ad * Process is gone, so flag the event as finished.
620 1.49 ad *
621 1.3 jdolecek * Detach the knote from watched process and mark
622 1.3 jdolecek * it as such. We can't leave this to kqueue_scan(),
623 1.3 jdolecek * since the process might not exist by then. And we
624 1.3 jdolecek * have to do this now, since psignal KNOTE() is called
625 1.3 jdolecek * also for zombies and we might end up reading freed
626 1.3 jdolecek * memory if the kevent would already be picked up
627 1.22 perry * and knote g/c'ed.
628 1.3 jdolecek */
629 1.49 ad filt_procdetach(kn);
630 1.49 ad
631 1.49 ad mutex_spin_enter(&kq->kq_lock);
632 1.1 lukem kn->kn_status |= KN_DETACHED;
633 1.3 jdolecek /* Mark as ONESHOT, so that the knote it g/c'ed when read */
634 1.22 perry kn->kn_flags |= (EV_EOF | EV_ONESHOT);
635 1.49 ad kn->kn_fflags |= fflag;
636 1.49 ad mutex_spin_exit(&kq->kq_lock);
637 1.49 ad
638 1.49 ad return 1;
639 1.1 lukem }
640 1.1 lukem
641 1.49 ad mutex_spin_enter(&kq->kq_lock);
642 1.1 lukem if ((event == NOTE_FORK) && (kn->kn_sfflags & NOTE_TRACK)) {
643 1.1 lukem /*
644 1.49 ad * Process forked, and user wants to track the new process,
645 1.49 ad * so attach a new knote to it, and immediately report an
646 1.49 ad * event with the parent's pid. Register knote with new
647 1.49 ad * process.
648 1.1 lukem */
649 1.104 maxv memset(&kev, 0, sizeof(kev));
650 1.1 lukem kev.ident = hint & NOTE_PDATAMASK; /* pid */
651 1.1 lukem kev.filter = kn->kn_filter;
652 1.1 lukem kev.flags = kn->kn_flags | EV_ADD | EV_ENABLE | EV_FLAG1;
653 1.1 lukem kev.fflags = kn->kn_sfflags;
654 1.1 lukem kev.data = kn->kn_id; /* parent */
655 1.1 lukem kev.udata = kn->kn_kevent.udata; /* preserve udata */
656 1.49 ad mutex_spin_exit(&kq->kq_lock);
657 1.49 ad error = kqueue_register(kq, &kev);
658 1.49 ad mutex_spin_enter(&kq->kq_lock);
659 1.49 ad if (error != 0)
660 1.1 lukem kn->kn_fflags |= NOTE_TRACKERR;
661 1.1 lukem }
662 1.49 ad kn->kn_fflags |= fflag;
663 1.49 ad fflag = kn->kn_fflags;
664 1.49 ad mutex_spin_exit(&kq->kq_lock);
665 1.1 lukem
666 1.49 ad return fflag != 0;
667 1.8 jdolecek }
668 1.8 jdolecek
669 1.8 jdolecek static void
670 1.8 jdolecek filt_timerexpire(void *knx)
671 1.8 jdolecek {
672 1.8 jdolecek struct knote *kn = knx;
673 1.8 jdolecek int tticks;
674 1.8 jdolecek
675 1.49 ad mutex_enter(&kqueue_misc_lock);
676 1.8 jdolecek kn->kn_data++;
677 1.49 ad knote_activate(kn);
678 1.8 jdolecek if ((kn->kn_flags & EV_ONESHOT) == 0) {
679 1.8 jdolecek tticks = mstohz(kn->kn_sdata);
680 1.73 christos if (tticks <= 0)
681 1.73 christos tticks = 1;
682 1.39 ad callout_schedule((callout_t *)kn->kn_hook, tticks);
683 1.8 jdolecek }
684 1.49 ad mutex_exit(&kqueue_misc_lock);
685 1.8 jdolecek }
686 1.8 jdolecek
687 1.8 jdolecek /*
688 1.8 jdolecek * data contains amount of time to sleep, in milliseconds
689 1.22 perry */
690 1.8 jdolecek static int
691 1.8 jdolecek filt_timerattach(struct knote *kn)
692 1.8 jdolecek {
693 1.39 ad callout_t *calloutp;
694 1.49 ad struct kqueue *kq;
695 1.8 jdolecek int tticks;
696 1.8 jdolecek
697 1.8 jdolecek tticks = mstohz(kn->kn_sdata);
698 1.8 jdolecek
699 1.8 jdolecek /* if the supplied value is under our resolution, use 1 tick */
700 1.8 jdolecek if (tticks == 0) {
701 1.8 jdolecek if (kn->kn_sdata == 0)
702 1.49 ad return EINVAL;
703 1.8 jdolecek tticks = 1;
704 1.8 jdolecek }
705 1.8 jdolecek
706 1.49 ad if (atomic_inc_uint_nv(&kq_ncallouts) >= kq_calloutmax ||
707 1.49 ad (calloutp = kmem_alloc(sizeof(*calloutp), KM_NOSLEEP)) == NULL) {
708 1.49 ad atomic_dec_uint(&kq_ncallouts);
709 1.49 ad return ENOMEM;
710 1.49 ad }
711 1.54 ad callout_init(calloutp, CALLOUT_MPSAFE);
712 1.49 ad
713 1.49 ad kq = kn->kn_kq;
714 1.49 ad mutex_spin_enter(&kq->kq_lock);
715 1.8 jdolecek kn->kn_flags |= EV_CLEAR; /* automatically set */
716 1.49 ad kn->kn_hook = calloutp;
717 1.49 ad mutex_spin_exit(&kq->kq_lock);
718 1.49 ad
719 1.8 jdolecek callout_reset(calloutp, tticks, filt_timerexpire, kn);
720 1.8 jdolecek
721 1.8 jdolecek return (0);
722 1.8 jdolecek }
723 1.8 jdolecek
724 1.8 jdolecek static void
725 1.8 jdolecek filt_timerdetach(struct knote *kn)
726 1.8 jdolecek {
727 1.39 ad callout_t *calloutp;
728 1.103 christos struct kqueue *kq = kn->kn_kq;
729 1.103 christos
730 1.103 christos mutex_spin_enter(&kq->kq_lock);
731 1.103 christos /* prevent rescheduling when we expire */
732 1.103 christos kn->kn_flags |= EV_ONESHOT;
733 1.103 christos mutex_spin_exit(&kq->kq_lock);
734 1.8 jdolecek
735 1.39 ad calloutp = (callout_t *)kn->kn_hook;
736 1.55 ad callout_halt(calloutp, NULL);
737 1.39 ad callout_destroy(calloutp);
738 1.49 ad kmem_free(calloutp, sizeof(*calloutp));
739 1.49 ad atomic_dec_uint(&kq_ncallouts);
740 1.8 jdolecek }
741 1.8 jdolecek
742 1.8 jdolecek static int
743 1.33 yamt filt_timer(struct knote *kn, long hint)
744 1.8 jdolecek {
745 1.49 ad int rv;
746 1.49 ad
747 1.49 ad mutex_enter(&kqueue_misc_lock);
748 1.49 ad rv = (kn->kn_data != 0);
749 1.49 ad mutex_exit(&kqueue_misc_lock);
750 1.49 ad
751 1.49 ad return rv;
752 1.1 lukem }
753 1.1 lukem
754 1.3 jdolecek /*
755 1.102 christos * Filter event method for EVFILT_FS.
756 1.102 christos */
757 1.102 christos struct klist fs_klist = SLIST_HEAD_INITIALIZER(&fs_klist);
758 1.102 christos
759 1.102 christos static int
760 1.102 christos filt_fsattach(struct knote *kn)
761 1.102 christos {
762 1.102 christos
763 1.102 christos mutex_enter(&kqueue_misc_lock);
764 1.102 christos kn->kn_flags |= EV_CLEAR;
765 1.102 christos SLIST_INSERT_HEAD(&fs_klist, kn, kn_selnext);
766 1.102 christos mutex_exit(&kqueue_misc_lock);
767 1.102 christos
768 1.102 christos return 0;
769 1.102 christos }
770 1.102 christos
771 1.102 christos static void
772 1.102 christos filt_fsdetach(struct knote *kn)
773 1.102 christos {
774 1.102 christos
775 1.102 christos mutex_enter(&kqueue_misc_lock);
776 1.102 christos SLIST_REMOVE(&fs_klist, kn, knote, kn_selnext);
777 1.102 christos mutex_exit(&kqueue_misc_lock);
778 1.102 christos }
779 1.102 christos
780 1.102 christos static int
781 1.102 christos filt_fs(struct knote *kn, long hint)
782 1.102 christos {
783 1.102 christos int rv;
784 1.102 christos
785 1.102 christos mutex_enter(&kqueue_misc_lock);
786 1.102 christos kn->kn_fflags |= hint;
787 1.102 christos rv = (kn->kn_fflags != 0);
788 1.102 christos mutex_exit(&kqueue_misc_lock);
789 1.102 christos
790 1.102 christos return rv;
791 1.102 christos }
792 1.102 christos
793 1.108 christos static int
794 1.108 christos filt_userattach(struct knote *kn)
795 1.108 christos {
796 1.108 christos struct kqueue *kq = kn->kn_kq;
797 1.108 christos
798 1.108 christos /*
799 1.108 christos * EVFILT_USER knotes are not attached to anything in the kernel.
800 1.108 christos */
801 1.108 christos mutex_spin_enter(&kq->kq_lock);
802 1.108 christos kn->kn_hook = NULL;
803 1.108 christos if (kn->kn_fflags & NOTE_TRIGGER)
804 1.108 christos kn->kn_hookid = 1;
805 1.108 christos else
806 1.108 christos kn->kn_hookid = 0;
807 1.108 christos mutex_spin_exit(&kq->kq_lock);
808 1.108 christos return (0);
809 1.108 christos }
810 1.108 christos
811 1.108 christos static void
812 1.108 christos filt_userdetach(struct knote *kn)
813 1.108 christos {
814 1.108 christos
815 1.108 christos /*
816 1.108 christos * EVFILT_USER knotes are not attached to anything in the kernel.
817 1.108 christos */
818 1.108 christos }
819 1.108 christos
820 1.108 christos static int
821 1.108 christos filt_user(struct knote *kn, long hint)
822 1.108 christos {
823 1.108 christos struct kqueue *kq = kn->kn_kq;
824 1.108 christos int hookid;
825 1.108 christos
826 1.108 christos mutex_spin_enter(&kq->kq_lock);
827 1.108 christos hookid = kn->kn_hookid;
828 1.108 christos mutex_spin_exit(&kq->kq_lock);
829 1.108 christos
830 1.108 christos return hookid;
831 1.108 christos }
832 1.108 christos
833 1.108 christos static void
834 1.108 christos filt_usertouch(struct knote *kn, struct kevent *kev, long type)
835 1.108 christos {
836 1.108 christos struct kqueue *kq = kn->kn_kq;
837 1.108 christos int ffctrl;
838 1.108 christos
839 1.108 christos mutex_spin_enter(&kq->kq_lock);
840 1.108 christos switch (type) {
841 1.108 christos case EVENT_REGISTER:
842 1.108 christos if (kev->fflags & NOTE_TRIGGER)
843 1.108 christos kn->kn_hookid = 1;
844 1.108 christos
845 1.108 christos ffctrl = kev->fflags & NOTE_FFCTRLMASK;
846 1.108 christos kev->fflags &= NOTE_FFLAGSMASK;
847 1.108 christos switch (ffctrl) {
848 1.108 christos case NOTE_FFNOP:
849 1.108 christos break;
850 1.108 christos
851 1.108 christos case NOTE_FFAND:
852 1.108 christos kn->kn_sfflags &= kev->fflags;
853 1.108 christos break;
854 1.108 christos
855 1.108 christos case NOTE_FFOR:
856 1.108 christos kn->kn_sfflags |= kev->fflags;
857 1.108 christos break;
858 1.108 christos
859 1.108 christos case NOTE_FFCOPY:
860 1.108 christos kn->kn_sfflags = kev->fflags;
861 1.108 christos break;
862 1.108 christos
863 1.108 christos default:
864 1.108 christos /* XXX Return error? */
865 1.108 christos break;
866 1.108 christos }
867 1.108 christos kn->kn_sdata = kev->data;
868 1.108 christos if (kev->flags & EV_CLEAR) {
869 1.108 christos kn->kn_hookid = 0;
870 1.108 christos kn->kn_data = 0;
871 1.108 christos kn->kn_fflags = 0;
872 1.108 christos }
873 1.108 christos break;
874 1.108 christos
875 1.108 christos case EVENT_PROCESS:
876 1.108 christos *kev = kn->kn_kevent;
877 1.108 christos kev->fflags = kn->kn_sfflags;
878 1.108 christos kev->data = kn->kn_sdata;
879 1.108 christos if (kn->kn_flags & EV_CLEAR) {
880 1.108 christos kn->kn_hookid = 0;
881 1.108 christos kn->kn_data = 0;
882 1.108 christos kn->kn_fflags = 0;
883 1.108 christos }
884 1.108 christos break;
885 1.108 christos
886 1.108 christos default:
887 1.108 christos panic("filt_usertouch() - invalid type (%ld)", type);
888 1.108 christos break;
889 1.108 christos }
890 1.108 christos mutex_spin_exit(&kq->kq_lock);
891 1.108 christos }
892 1.108 christos
893 1.102 christos /*
894 1.3 jdolecek * filt_seltrue:
895 1.3 jdolecek *
896 1.3 jdolecek * This filter "event" routine simulates seltrue().
897 1.3 jdolecek */
898 1.1 lukem int
899 1.33 yamt filt_seltrue(struct knote *kn, long hint)
900 1.1 lukem {
901 1.1 lukem
902 1.3 jdolecek /*
903 1.3 jdolecek * We don't know how much data can be read/written,
904 1.3 jdolecek * but we know that it *can* be. This is about as
905 1.3 jdolecek * good as select/poll does as well.
906 1.3 jdolecek */
907 1.3 jdolecek kn->kn_data = 0;
908 1.3 jdolecek return (1);
909 1.3 jdolecek }
910 1.3 jdolecek
911 1.3 jdolecek /*
912 1.3 jdolecek * This provides full kqfilter entry for device switch tables, which
913 1.3 jdolecek * has same effect as filter using filt_seltrue() as filter method.
914 1.3 jdolecek */
915 1.3 jdolecek static void
916 1.33 yamt filt_seltruedetach(struct knote *kn)
917 1.3 jdolecek {
918 1.3 jdolecek /* Nothing to do */
919 1.3 jdolecek }
920 1.3 jdolecek
921 1.96 maya const struct filterops seltrue_filtops = {
922 1.96 maya .f_isfd = 1,
923 1.96 maya .f_attach = NULL,
924 1.96 maya .f_detach = filt_seltruedetach,
925 1.96 maya .f_event = filt_seltrue,
926 1.108 christos .f_touch = NULL,
927 1.96 maya };
928 1.3 jdolecek
929 1.3 jdolecek int
930 1.33 yamt seltrue_kqfilter(dev_t dev, struct knote *kn)
931 1.3 jdolecek {
932 1.3 jdolecek switch (kn->kn_filter) {
933 1.3 jdolecek case EVFILT_READ:
934 1.3 jdolecek case EVFILT_WRITE:
935 1.3 jdolecek kn->kn_fop = &seltrue_filtops;
936 1.3 jdolecek break;
937 1.3 jdolecek default:
938 1.43 pooka return (EINVAL);
939 1.3 jdolecek }
940 1.3 jdolecek
941 1.3 jdolecek /* Nothing more to do */
942 1.3 jdolecek return (0);
943 1.3 jdolecek }
944 1.3 jdolecek
945 1.3 jdolecek /*
946 1.3 jdolecek * kqueue(2) system call.
947 1.3 jdolecek */
948 1.72 christos static int
949 1.72 christos kqueue1(struct lwp *l, int flags, register_t *retval)
950 1.3 jdolecek {
951 1.49 ad struct kqueue *kq;
952 1.49 ad file_t *fp;
953 1.49 ad int fd, error;
954 1.3 jdolecek
955 1.49 ad if ((error = fd_allocfile(&fp, &fd)) != 0)
956 1.49 ad return error;
957 1.75 christos fp->f_flag = FREAD | FWRITE | (flags & (FNONBLOCK|FNOSIGPIPE));
958 1.1 lukem fp->f_type = DTYPE_KQUEUE;
959 1.1 lukem fp->f_ops = &kqueueops;
960 1.49 ad kq = kmem_zalloc(sizeof(*kq), KM_SLEEP);
961 1.49 ad mutex_init(&kq->kq_lock, MUTEX_DEFAULT, IPL_SCHED);
962 1.49 ad cv_init(&kq->kq_cv, "kqueue");
963 1.49 ad selinit(&kq->kq_sel);
964 1.1 lukem TAILQ_INIT(&kq->kq_head);
965 1.82 matt fp->f_kqueue = kq;
966 1.3 jdolecek *retval = fd;
967 1.49 ad kq->kq_fdp = curlwp->l_fd;
968 1.72 christos fd_set_exclose(l, fd, (flags & O_CLOEXEC) != 0);
969 1.49 ad fd_affix(curproc, fp, fd);
970 1.49 ad return error;
971 1.1 lukem }
972 1.1 lukem
973 1.3 jdolecek /*
974 1.72 christos * kqueue(2) system call.
975 1.72 christos */
976 1.72 christos int
977 1.72 christos sys_kqueue(struct lwp *l, const void *v, register_t *retval)
978 1.72 christos {
979 1.72 christos return kqueue1(l, 0, retval);
980 1.72 christos }
981 1.72 christos
982 1.72 christos int
983 1.72 christos sys_kqueue1(struct lwp *l, const struct sys_kqueue1_args *uap,
984 1.72 christos register_t *retval)
985 1.72 christos {
986 1.72 christos /* {
987 1.72 christos syscallarg(int) flags;
988 1.72 christos } */
989 1.72 christos return kqueue1(l, SCARG(uap, flags), retval);
990 1.72 christos }
991 1.72 christos
992 1.72 christos /*
993 1.3 jdolecek * kevent(2) system call.
994 1.3 jdolecek */
995 1.61 christos int
996 1.81 matt kevent_fetch_changes(void *ctx, const struct kevent *changelist,
997 1.61 christos struct kevent *changes, size_t index, int n)
998 1.24 cube {
999 1.49 ad
1000 1.24 cube return copyin(changelist + index, changes, n * sizeof(*changes));
1001 1.24 cube }
1002 1.24 cube
1003 1.61 christos int
1004 1.81 matt kevent_put_events(void *ctx, struct kevent *events,
1005 1.61 christos struct kevent *eventlist, size_t index, int n)
1006 1.24 cube {
1007 1.49 ad
1008 1.24 cube return copyout(events, eventlist + index, n * sizeof(*events));
1009 1.24 cube }
1010 1.24 cube
1011 1.24 cube static const struct kevent_ops kevent_native_ops = {
1012 1.60 gmcgarry .keo_private = NULL,
1013 1.60 gmcgarry .keo_fetch_timeout = copyin,
1014 1.60 gmcgarry .keo_fetch_changes = kevent_fetch_changes,
1015 1.60 gmcgarry .keo_put_events = kevent_put_events,
1016 1.24 cube };
1017 1.24 cube
1018 1.1 lukem int
1019 1.61 christos sys___kevent50(struct lwp *l, const struct sys___kevent50_args *uap,
1020 1.61 christos register_t *retval)
1021 1.1 lukem {
1022 1.44 dsl /* {
1023 1.3 jdolecek syscallarg(int) fd;
1024 1.3 jdolecek syscallarg(const struct kevent *) changelist;
1025 1.3 jdolecek syscallarg(size_t) nchanges;
1026 1.3 jdolecek syscallarg(struct kevent *) eventlist;
1027 1.3 jdolecek syscallarg(size_t) nevents;
1028 1.3 jdolecek syscallarg(const struct timespec *) timeout;
1029 1.44 dsl } */
1030 1.24 cube
1031 1.49 ad return kevent1(retval, SCARG(uap, fd), SCARG(uap, changelist),
1032 1.24 cube SCARG(uap, nchanges), SCARG(uap, eventlist), SCARG(uap, nevents),
1033 1.24 cube SCARG(uap, timeout), &kevent_native_ops);
1034 1.24 cube }
1035 1.24 cube
1036 1.24 cube int
1037 1.49 ad kevent1(register_t *retval, int fd,
1038 1.49 ad const struct kevent *changelist, size_t nchanges,
1039 1.49 ad struct kevent *eventlist, size_t nevents,
1040 1.49 ad const struct timespec *timeout,
1041 1.49 ad const struct kevent_ops *keops)
1042 1.24 cube {
1043 1.49 ad struct kevent *kevp;
1044 1.49 ad struct kqueue *kq;
1045 1.3 jdolecek struct timespec ts;
1046 1.49 ad size_t i, n, ichange;
1047 1.49 ad int nerrors, error;
1048 1.80 maxv struct kevent kevbuf[KQ_NEVENTS]; /* approx 300 bytes on 64-bit */
1049 1.49 ad file_t *fp;
1050 1.3 jdolecek
1051 1.3 jdolecek /* check that we're dealing with a kq */
1052 1.49 ad fp = fd_getfile(fd);
1053 1.10 pk if (fp == NULL)
1054 1.1 lukem return (EBADF);
1055 1.10 pk
1056 1.10 pk if (fp->f_type != DTYPE_KQUEUE) {
1057 1.49 ad fd_putfile(fd);
1058 1.10 pk return (EBADF);
1059 1.10 pk }
1060 1.1 lukem
1061 1.24 cube if (timeout != NULL) {
1062 1.24 cube error = (*keops->keo_fetch_timeout)(timeout, &ts, sizeof(ts));
1063 1.1 lukem if (error)
1064 1.1 lukem goto done;
1065 1.24 cube timeout = &ts;
1066 1.1 lukem }
1067 1.1 lukem
1068 1.82 matt kq = fp->f_kqueue;
1069 1.1 lukem nerrors = 0;
1070 1.24 cube ichange = 0;
1071 1.1 lukem
1072 1.3 jdolecek /* traverse list of events to register */
1073 1.24 cube while (nchanges > 0) {
1074 1.49 ad n = MIN(nchanges, __arraycount(kevbuf));
1075 1.24 cube error = (*keops->keo_fetch_changes)(keops->keo_private,
1076 1.49 ad changelist, kevbuf, ichange, n);
1077 1.1 lukem if (error)
1078 1.1 lukem goto done;
1079 1.1 lukem for (i = 0; i < n; i++) {
1080 1.49 ad kevp = &kevbuf[i];
1081 1.1 lukem kevp->flags &= ~EV_SYSFLAGS;
1082 1.3 jdolecek /* register each knote */
1083 1.49 ad error = kqueue_register(kq, kevp);
1084 1.89 abhinav if (!error && !(kevp->flags & EV_RECEIPT))
1085 1.89 abhinav continue;
1086 1.89 abhinav if (nevents == 0)
1087 1.89 abhinav goto done;
1088 1.89 abhinav kevp->flags = EV_ERROR;
1089 1.89 abhinav kevp->data = error;
1090 1.89 abhinav error = (*keops->keo_put_events)
1091 1.89 abhinav (keops->keo_private, kevp,
1092 1.89 abhinav eventlist, nerrors, 1);
1093 1.89 abhinav if (error)
1094 1.89 abhinav goto done;
1095 1.89 abhinav nevents--;
1096 1.89 abhinav nerrors++;
1097 1.1 lukem }
1098 1.24 cube nchanges -= n; /* update the results */
1099 1.24 cube ichange += n;
1100 1.1 lukem }
1101 1.1 lukem if (nerrors) {
1102 1.3 jdolecek *retval = nerrors;
1103 1.1 lukem error = 0;
1104 1.1 lukem goto done;
1105 1.1 lukem }
1106 1.1 lukem
1107 1.3 jdolecek /* actually scan through the events */
1108 1.49 ad error = kqueue_scan(fp, nevents, eventlist, timeout, retval, keops,
1109 1.49 ad kevbuf, __arraycount(kevbuf));
1110 1.3 jdolecek done:
1111 1.49 ad fd_putfile(fd);
1112 1.1 lukem return (error);
1113 1.1 lukem }
1114 1.1 lukem
1115 1.3 jdolecek /*
1116 1.3 jdolecek * Register a given kevent kev onto the kqueue
1117 1.3 jdolecek */
1118 1.49 ad static int
1119 1.49 ad kqueue_register(struct kqueue *kq, struct kevent *kev)
1120 1.1 lukem {
1121 1.49 ad struct kfilter *kfilter;
1122 1.49 ad filedesc_t *fdp;
1123 1.49 ad file_t *fp;
1124 1.49 ad fdfile_t *ff;
1125 1.49 ad struct knote *kn, *newkn;
1126 1.49 ad struct klist *list;
1127 1.49 ad int error, fd, rv;
1128 1.3 jdolecek
1129 1.3 jdolecek fdp = kq->kq_fdp;
1130 1.3 jdolecek fp = NULL;
1131 1.3 jdolecek kn = NULL;
1132 1.3 jdolecek error = 0;
1133 1.49 ad fd = 0;
1134 1.49 ad
1135 1.49 ad newkn = kmem_zalloc(sizeof(*newkn), KM_SLEEP);
1136 1.49 ad
1137 1.49 ad rw_enter(&kqueue_filter_lock, RW_READER);
1138 1.3 jdolecek kfilter = kfilter_byfilter(kev->filter);
1139 1.3 jdolecek if (kfilter == NULL || kfilter->filtops == NULL) {
1140 1.3 jdolecek /* filter not found nor implemented */
1141 1.49 ad rw_exit(&kqueue_filter_lock);
1142 1.49 ad kmem_free(newkn, sizeof(*newkn));
1143 1.1 lukem return (EINVAL);
1144 1.1 lukem }
1145 1.1 lukem
1146 1.3 jdolecek /* search if knote already exists */
1147 1.3 jdolecek if (kfilter->filtops->f_isfd) {
1148 1.3 jdolecek /* monitoring a file descriptor */
1149 1.87 christos /* validate descriptor */
1150 1.88 christos if (kev->ident > INT_MAX
1151 1.88 christos || (fp = fd_getfile(fd = kev->ident)) == NULL) {
1152 1.49 ad rw_exit(&kqueue_filter_lock);
1153 1.49 ad kmem_free(newkn, sizeof(*newkn));
1154 1.49 ad return EBADF;
1155 1.49 ad }
1156 1.74 rmind mutex_enter(&fdp->fd_lock);
1157 1.65 ad ff = fdp->fd_dt->dt_ff[fd];
1158 1.98 christos if (ff->ff_refcnt & FR_CLOSING) {
1159 1.98 christos error = EBADF;
1160 1.98 christos goto doneunlock;
1161 1.98 christos }
1162 1.49 ad if (fd <= fdp->fd_lastkqfile) {
1163 1.49 ad SLIST_FOREACH(kn, &ff->ff_knlist, kn_link) {
1164 1.1 lukem if (kq == kn->kn_kq &&
1165 1.1 lukem kev->filter == kn->kn_filter)
1166 1.1 lukem break;
1167 1.49 ad }
1168 1.1 lukem }
1169 1.1 lukem } else {
1170 1.3 jdolecek /*
1171 1.3 jdolecek * not monitoring a file descriptor, so
1172 1.3 jdolecek * lookup knotes in internal hash table
1173 1.3 jdolecek */
1174 1.74 rmind mutex_enter(&fdp->fd_lock);
1175 1.1 lukem if (fdp->fd_knhashmask != 0) {
1176 1.1 lukem list = &fdp->fd_knhash[
1177 1.1 lukem KN_HASH((u_long)kev->ident, fdp->fd_knhashmask)];
1178 1.49 ad SLIST_FOREACH(kn, list, kn_link) {
1179 1.1 lukem if (kev->ident == kn->kn_id &&
1180 1.1 lukem kq == kn->kn_kq &&
1181 1.1 lukem kev->filter == kn->kn_filter)
1182 1.1 lukem break;
1183 1.49 ad }
1184 1.1 lukem }
1185 1.1 lukem }
1186 1.1 lukem
1187 1.1 lukem /*
1188 1.1 lukem * kn now contains the matching knote, or NULL if no match
1189 1.1 lukem */
1190 1.108 christos if (kn == NULL) {
1191 1.108 christos if (kev->flags & EV_ADD) {
1192 1.3 jdolecek /* create new knote */
1193 1.49 ad kn = newkn;
1194 1.49 ad newkn = NULL;
1195 1.49 ad kn->kn_obj = fp;
1196 1.79 christos kn->kn_id = kev->ident;
1197 1.1 lukem kn->kn_kq = kq;
1198 1.3 jdolecek kn->kn_fop = kfilter->filtops;
1199 1.49 ad kn->kn_kfilter = kfilter;
1200 1.49 ad kn->kn_sfflags = kev->fflags;
1201 1.49 ad kn->kn_sdata = kev->data;
1202 1.49 ad kev->fflags = 0;
1203 1.49 ad kev->data = 0;
1204 1.49 ad kn->kn_kevent = *kev;
1205 1.1 lukem
1206 1.85 christos KASSERT(kn->kn_fop != NULL);
1207 1.1 lukem /*
1208 1.1 lukem * apply reference count to knote structure, and
1209 1.1 lukem * do not release it at the end of this routine.
1210 1.1 lukem */
1211 1.1 lukem fp = NULL;
1212 1.1 lukem
1213 1.49 ad if (!kn->kn_fop->f_isfd) {
1214 1.49 ad /*
1215 1.49 ad * If knote is not on an fd, store on
1216 1.49 ad * internal hash table.
1217 1.49 ad */
1218 1.49 ad if (fdp->fd_knhashmask == 0) {
1219 1.49 ad /* XXXAD can block with fd_lock held */
1220 1.49 ad fdp->fd_knhash = hashinit(KN_HASHSIZE,
1221 1.59 ad HASH_LIST, true,
1222 1.49 ad &fdp->fd_knhashmask);
1223 1.49 ad }
1224 1.49 ad list = &fdp->fd_knhash[KN_HASH(kn->kn_id,
1225 1.49 ad fdp->fd_knhashmask)];
1226 1.49 ad } else {
1227 1.49 ad /* Otherwise, knote is on an fd. */
1228 1.49 ad list = (struct klist *)
1229 1.65 ad &fdp->fd_dt->dt_ff[kn->kn_id]->ff_knlist;
1230 1.49 ad if ((int)kn->kn_id > fdp->fd_lastkqfile)
1231 1.49 ad fdp->fd_lastkqfile = kn->kn_id;
1232 1.49 ad }
1233 1.49 ad SLIST_INSERT_HEAD(list, kn, kn_link);
1234 1.1 lukem
1235 1.49 ad KERNEL_LOCK(1, NULL); /* XXXSMP */
1236 1.49 ad error = (*kfilter->filtops->f_attach)(kn);
1237 1.49 ad KERNEL_UNLOCK_ONE(NULL); /* XXXSMP */
1238 1.49 ad if (error != 0) {
1239 1.100 christos #ifdef DEBUG
1240 1.105 christos struct proc *p = curlwp->l_proc;
1241 1.101 christos const file_t *ft = kn->kn_obj;
1242 1.105 christos printf("%s: %s[%d]: event type %d not "
1243 1.105 christos "supported for file type %d/%s "
1244 1.105 christos "(error %d)\n", __func__,
1245 1.105 christos p->p_comm, p->p_pid,
1246 1.101 christos kn->kn_filter, ft ? ft->f_type : -1,
1247 1.101 christos ft ? ft->f_ops->fo_name : "?", error);
1248 1.100 christos #endif
1249 1.100 christos
1250 1.49 ad /* knote_detach() drops fdp->fd_lock */
1251 1.49 ad knote_detach(kn, fdp, false);
1252 1.1 lukem goto done;
1253 1.1 lukem }
1254 1.49 ad atomic_inc_uint(&kfilter->refcnt);
1255 1.108 christos goto done_ev_add;
1256 1.1 lukem } else {
1257 1.108 christos /* No matching knote and the EV_ADD flag is not set. */
1258 1.108 christos error = ENOENT;
1259 1.108 christos goto doneunlock;
1260 1.1 lukem }
1261 1.108 christos }
1262 1.108 christos
1263 1.108 christos if (kev->flags & EV_DELETE) {
1264 1.108 christos /* knote_detach() drops fdp->fd_lock */
1265 1.108 christos knote_detach(kn, fdp, true);
1266 1.108 christos goto done;
1267 1.108 christos }
1268 1.108 christos
1269 1.108 christos /*
1270 1.108 christos * The user may change some filter values after the
1271 1.108 christos * initial EV_ADD, but doing so will not reset any
1272 1.108 christos * filter which have already been triggered.
1273 1.108 christos */
1274 1.108 christos kn->kn_kevent.udata = kev->udata;
1275 1.108 christos KASSERT(kn->kn_fop != NULL);
1276 1.108 christos if (!kn->kn_fop->f_isfd && kn->kn_fop->f_touch != NULL) {
1277 1.49 ad KERNEL_LOCK(1, NULL); /* XXXSMP */
1278 1.108 christos (*kn->kn_fop->f_touch)(kn, kev, EVENT_REGISTER);
1279 1.49 ad KERNEL_UNLOCK_ONE(NULL); /* XXXSMP */
1280 1.49 ad } else {
1281 1.108 christos kn->kn_sfflags = kev->fflags;
1282 1.108 christos kn->kn_sdata = kev->data;
1283 1.1 lukem }
1284 1.1 lukem
1285 1.108 christos /*
1286 1.108 christos * We can get here if we are trying to attach
1287 1.108 christos * an event to a file descriptor that does not
1288 1.108 christos * support events, and the attach routine is
1289 1.108 christos * broken and does not return an error.
1290 1.108 christos */
1291 1.108 christos done_ev_add:
1292 1.108 christos KASSERT(kn->kn_fop != NULL);
1293 1.108 christos KASSERT(kn->kn_fop->f_event != NULL);
1294 1.108 christos KERNEL_LOCK(1, NULL); /* XXXSMP */
1295 1.108 christos rv = (*kn->kn_fop->f_event)(kn, 0);
1296 1.108 christos KERNEL_UNLOCK_ONE(NULL); /* XXXSMP */
1297 1.108 christos if (rv)
1298 1.108 christos knote_activate(kn);
1299 1.108 christos
1300 1.3 jdolecek /* disable knote */
1301 1.49 ad if ((kev->flags & EV_DISABLE)) {
1302 1.49 ad mutex_spin_enter(&kq->kq_lock);
1303 1.49 ad if ((kn->kn_status & KN_DISABLED) == 0)
1304 1.49 ad kn->kn_status |= KN_DISABLED;
1305 1.49 ad mutex_spin_exit(&kq->kq_lock);
1306 1.1 lukem }
1307 1.1 lukem
1308 1.3 jdolecek /* enable knote */
1309 1.49 ad if ((kev->flags & EV_ENABLE)) {
1310 1.49 ad knote_enqueue(kn);
1311 1.1 lukem }
1312 1.98 christos doneunlock:
1313 1.49 ad mutex_exit(&fdp->fd_lock);
1314 1.3 jdolecek done:
1315 1.49 ad rw_exit(&kqueue_filter_lock);
1316 1.49 ad if (newkn != NULL)
1317 1.49 ad kmem_free(newkn, sizeof(*newkn));
1318 1.1 lukem if (fp != NULL)
1319 1.49 ad fd_putfile(fd);
1320 1.1 lukem return (error);
1321 1.1 lukem }
1322 1.1 lukem
1323 1.52 yamt #if defined(DEBUG)
1324 1.94 christos #define KN_FMT(buf, kn) \
1325 1.94 christos (snprintb((buf), sizeof(buf), __KN_FLAG_BITS, (kn)->kn_status), buf)
1326 1.94 christos
1327 1.52 yamt static void
1328 1.94 christos kqueue_check(const char *func, size_t line, const struct kqueue *kq)
1329 1.52 yamt {
1330 1.52 yamt const struct knote *kn;
1331 1.52 yamt int count;
1332 1.52 yamt int nmarker;
1333 1.94 christos char buf[128];
1334 1.52 yamt
1335 1.52 yamt KASSERT(mutex_owned(&kq->kq_lock));
1336 1.52 yamt KASSERT(kq->kq_count >= 0);
1337 1.52 yamt
1338 1.52 yamt count = 0;
1339 1.52 yamt nmarker = 0;
1340 1.52 yamt TAILQ_FOREACH(kn, &kq->kq_head, kn_tqe) {
1341 1.52 yamt if ((kn->kn_status & (KN_MARKER | KN_QUEUED)) == 0) {
1342 1.94 christos panic("%s,%zu: kq=%p kn=%p !(MARKER|QUEUED) %s",
1343 1.94 christos func, line, kq, kn, KN_FMT(buf, kn));
1344 1.52 yamt }
1345 1.52 yamt if ((kn->kn_status & KN_MARKER) == 0) {
1346 1.52 yamt if (kn->kn_kq != kq) {
1347 1.94 christos panic("%s,%zu: kq=%p kn(%p) != kn->kq(%p): %s",
1348 1.94 christos func, line, kq, kn, kn->kn_kq,
1349 1.94 christos KN_FMT(buf, kn));
1350 1.52 yamt }
1351 1.52 yamt if ((kn->kn_status & KN_ACTIVE) == 0) {
1352 1.94 christos panic("%s,%zu: kq=%p kn=%p: !ACTIVE %s",
1353 1.94 christos func, line, kq, kn, KN_FMT(buf, kn));
1354 1.52 yamt }
1355 1.52 yamt count++;
1356 1.52 yamt if (count > kq->kq_count) {
1357 1.52 yamt goto bad;
1358 1.52 yamt }
1359 1.52 yamt } else {
1360 1.52 yamt nmarker++;
1361 1.52 yamt #if 0
1362 1.52 yamt if (nmarker > 10000) {
1363 1.94 christos panic("%s,%zu: kq=%p too many markers: "
1364 1.94 christos "%d != %d, nmarker=%d",
1365 1.94 christos func, line, kq, kq->kq_count, count,
1366 1.94 christos nmarker);
1367 1.52 yamt }
1368 1.52 yamt #endif
1369 1.52 yamt }
1370 1.52 yamt }
1371 1.52 yamt if (kq->kq_count != count) {
1372 1.52 yamt bad:
1373 1.94 christos panic("%s,%zu: kq=%p kq->kq_count(%d) != count(%d), nmarker=%d",
1374 1.94 christos func, line, kq, kq->kq_count, count, nmarker);
1375 1.52 yamt }
1376 1.52 yamt }
1377 1.94 christos #define kq_check(a) kqueue_check(__func__, __LINE__, (a))
1378 1.52 yamt #else /* defined(DEBUG) */
1379 1.52 yamt #define kq_check(a) /* nothing */
1380 1.52 yamt #endif /* defined(DEBUG) */
1381 1.52 yamt
1382 1.3 jdolecek /*
1383 1.3 jdolecek * Scan through the list of events on fp (for a maximum of maxevents),
1384 1.3 jdolecek * returning the results in to ulistp. Timeout is determined by tsp; if
1385 1.3 jdolecek * NULL, wait indefinitely, if 0 valued, perform a poll, otherwise wait
1386 1.3 jdolecek * as appropriate.
1387 1.3 jdolecek */
1388 1.1 lukem static int
1389 1.49 ad kqueue_scan(file_t *fp, size_t maxevents, struct kevent *ulistp,
1390 1.49 ad const struct timespec *tsp, register_t *retval,
1391 1.49 ad const struct kevent_ops *keops, struct kevent *kevbuf,
1392 1.49 ad size_t kevcnt)
1393 1.1 lukem {
1394 1.3 jdolecek struct kqueue *kq;
1395 1.3 jdolecek struct kevent *kevp;
1396 1.62 christos struct timespec ats, sleepts;
1397 1.85 christos struct knote *kn, *marker, morker;
1398 1.24 cube size_t count, nkev, nevents;
1399 1.108 christos int timeout, error, touch, rv;
1400 1.49 ad filedesc_t *fdp;
1401 1.1 lukem
1402 1.49 ad fdp = curlwp->l_fd;
1403 1.82 matt kq = fp->f_kqueue;
1404 1.1 lukem count = maxevents;
1405 1.24 cube nkev = nevents = error = 0;
1406 1.49 ad if (count == 0) {
1407 1.49 ad *retval = 0;
1408 1.49 ad return 0;
1409 1.49 ad }
1410 1.1 lukem
1411 1.9 jdolecek if (tsp) { /* timeout supplied */
1412 1.63 christos ats = *tsp;
1413 1.62 christos if (inittimeleft(&ats, &sleepts) == -1) {
1414 1.49 ad *retval = maxevents;
1415 1.49 ad return EINVAL;
1416 1.1 lukem }
1417 1.62 christos timeout = tstohz(&ats);
1418 1.9 jdolecek if (timeout <= 0)
1419 1.29 kardel timeout = -1; /* do poll */
1420 1.1 lukem } else {
1421 1.9 jdolecek /* no timeout, wait forever */
1422 1.1 lukem timeout = 0;
1423 1.93 riastrad }
1424 1.1 lukem
1425 1.85 christos memset(&morker, 0, sizeof(morker));
1426 1.85 christos marker = &morker;
1427 1.49 ad marker->kn_status = KN_MARKER;
1428 1.49 ad mutex_spin_enter(&kq->kq_lock);
1429 1.3 jdolecek retry:
1430 1.49 ad kevp = kevbuf;
1431 1.1 lukem if (kq->kq_count == 0) {
1432 1.49 ad if (timeout >= 0) {
1433 1.49 ad error = cv_timedwait_sig(&kq->kq_cv,
1434 1.49 ad &kq->kq_lock, timeout);
1435 1.49 ad if (error == 0) {
1436 1.49 ad if (tsp == NULL || (timeout =
1437 1.62 christos gettimeleft(&ats, &sleepts)) > 0)
1438 1.49 ad goto retry;
1439 1.49 ad } else {
1440 1.49 ad /* don't restart after signals... */
1441 1.49 ad if (error == ERESTART)
1442 1.49 ad error = EINTR;
1443 1.49 ad if (error == EWOULDBLOCK)
1444 1.49 ad error = 0;
1445 1.49 ad }
1446 1.1 lukem }
1447 1.92 christos mutex_spin_exit(&kq->kq_lock);
1448 1.49 ad } else {
1449 1.49 ad /* mark end of knote list */
1450 1.49 ad TAILQ_INSERT_TAIL(&kq->kq_head, marker, kn_tqe);
1451 1.1 lukem
1452 1.92 christos /*
1453 1.92 christos * Acquire the fdp->fd_lock interlock to avoid races with
1454 1.92 christos * file creation/destruction from other threads.
1455 1.92 christos */
1456 1.92 christos mutex_spin_exit(&kq->kq_lock);
1457 1.92 christos mutex_enter(&fdp->fd_lock);
1458 1.92 christos mutex_spin_enter(&kq->kq_lock);
1459 1.92 christos
1460 1.49 ad while (count != 0) {
1461 1.49 ad kn = TAILQ_FIRST(&kq->kq_head); /* get next knote */
1462 1.51 yamt while ((kn->kn_status & KN_MARKER) != 0) {
1463 1.51 yamt if (kn == marker) {
1464 1.51 yamt /* it's our marker, stop */
1465 1.51 yamt TAILQ_REMOVE(&kq->kq_head, kn, kn_tqe);
1466 1.51 yamt if (count < maxevents || (tsp != NULL &&
1467 1.62 christos (timeout = gettimeleft(&ats,
1468 1.62 christos &sleepts)) <= 0))
1469 1.51 yamt goto done;
1470 1.92 christos mutex_exit(&fdp->fd_lock);
1471 1.51 yamt goto retry;
1472 1.51 yamt }
1473 1.49 ad /* someone else's marker. */
1474 1.49 ad kn = TAILQ_NEXT(kn, kn_tqe);
1475 1.49 ad }
1476 1.52 yamt kq_check(kq);
1477 1.85 christos kq->kq_count--;
1478 1.49 ad TAILQ_REMOVE(&kq->kq_head, kn, kn_tqe);
1479 1.1 lukem kn->kn_status &= ~KN_QUEUED;
1480 1.85 christos kn->kn_status |= KN_BUSY;
1481 1.52 yamt kq_check(kq);
1482 1.49 ad if (kn->kn_status & KN_DISABLED) {
1483 1.85 christos kn->kn_status &= ~KN_BUSY;
1484 1.49 ad /* don't want disabled events */
1485 1.49 ad continue;
1486 1.49 ad }
1487 1.49 ad if ((kn->kn_flags & EV_ONESHOT) == 0) {
1488 1.49 ad mutex_spin_exit(&kq->kq_lock);
1489 1.85 christos KASSERT(kn->kn_fop != NULL);
1490 1.84 christos KASSERT(kn->kn_fop->f_event != NULL);
1491 1.49 ad KERNEL_LOCK(1, NULL); /* XXXSMP */
1492 1.92 christos KASSERT(mutex_owned(&fdp->fd_lock));
1493 1.49 ad rv = (*kn->kn_fop->f_event)(kn, 0);
1494 1.49 ad KERNEL_UNLOCK_ONE(NULL); /* XXXSMP */
1495 1.53 ad mutex_spin_enter(&kq->kq_lock);
1496 1.53 ad /* Re-poll if note was re-enqueued. */
1497 1.85 christos if ((kn->kn_status & KN_QUEUED) != 0) {
1498 1.85 christos kn->kn_status &= ~KN_BUSY;
1499 1.53 ad continue;
1500 1.85 christos }
1501 1.49 ad if (rv == 0) {
1502 1.49 ad /*
1503 1.49 ad * non-ONESHOT event that hasn't
1504 1.49 ad * triggered again, so de-queue.
1505 1.49 ad */
1506 1.85 christos kn->kn_status &= ~(KN_ACTIVE|KN_BUSY);
1507 1.49 ad continue;
1508 1.49 ad }
1509 1.49 ad }
1510 1.108 christos KASSERT(kn->kn_fop != NULL);
1511 1.108 christos touch = (!kn->kn_fop->f_isfd &&
1512 1.108 christos kn->kn_fop->f_touch != NULL);
1513 1.53 ad /* XXXAD should be got from f_event if !oneshot. */
1514 1.108 christos if (touch) {
1515 1.108 christos mutex_spin_exit(&kq->kq_lock);
1516 1.108 christos KERNEL_LOCK(1, NULL); /* XXXSMP */
1517 1.108 christos (*kn->kn_fop->f_touch)(kn, kevp, EVENT_PROCESS);
1518 1.108 christos KERNEL_UNLOCK_ONE(NULL); /* XXXSMP */
1519 1.108 christos mutex_spin_enter(&kq->kq_lock);
1520 1.108 christos } else {
1521 1.108 christos *kevp = kn->kn_kevent;
1522 1.108 christos }
1523 1.108 christos kevp++;
1524 1.49 ad nkev++;
1525 1.49 ad if (kn->kn_flags & EV_ONESHOT) {
1526 1.49 ad /* delete ONESHOT events after retrieval */
1527 1.92 christos kn->kn_status &= ~KN_BUSY;
1528 1.49 ad mutex_spin_exit(&kq->kq_lock);
1529 1.92 christos knote_detach(kn, fdp, true);
1530 1.49 ad mutex_enter(&fdp->fd_lock);
1531 1.49 ad mutex_spin_enter(&kq->kq_lock);
1532 1.49 ad } else if (kn->kn_flags & EV_CLEAR) {
1533 1.49 ad /* clear state after retrieval */
1534 1.49 ad kn->kn_data = 0;
1535 1.49 ad kn->kn_fflags = 0;
1536 1.108 christos /*
1537 1.108 christos * Manually clear knotes who weren't
1538 1.108 christos * 'touch'ed.
1539 1.108 christos */
1540 1.108 christos if (touch == 0) {
1541 1.108 christos kn->kn_data = 0;
1542 1.108 christos kn->kn_fflags = 0;
1543 1.108 christos }
1544 1.85 christos kn->kn_status &= ~(KN_QUEUED|KN_ACTIVE|KN_BUSY);
1545 1.84 christos } else if (kn->kn_flags & EV_DISPATCH) {
1546 1.84 christos kn->kn_status |= KN_DISABLED;
1547 1.85 christos kn->kn_status &= ~(KN_QUEUED|KN_ACTIVE|KN_BUSY);
1548 1.49 ad } else {
1549 1.49 ad /* add event back on list */
1550 1.52 yamt kq_check(kq);
1551 1.85 christos kn->kn_status |= KN_QUEUED;
1552 1.85 christos kn->kn_status &= ~KN_BUSY;
1553 1.49 ad TAILQ_INSERT_TAIL(&kq->kq_head, kn, kn_tqe);
1554 1.49 ad kq->kq_count++;
1555 1.52 yamt kq_check(kq);
1556 1.49 ad }
1557 1.49 ad if (nkev == kevcnt) {
1558 1.49 ad /* do copyouts in kevcnt chunks */
1559 1.49 ad mutex_spin_exit(&kq->kq_lock);
1560 1.92 christos mutex_exit(&fdp->fd_lock);
1561 1.50 yamt error = (*keops->keo_put_events)
1562 1.50 yamt (keops->keo_private,
1563 1.49 ad kevbuf, ulistp, nevents, nkev);
1564 1.92 christos mutex_enter(&fdp->fd_lock);
1565 1.49 ad mutex_spin_enter(&kq->kq_lock);
1566 1.49 ad nevents += nkev;
1567 1.49 ad nkev = 0;
1568 1.49 ad kevp = kevbuf;
1569 1.49 ad }
1570 1.49 ad count--;
1571 1.49 ad if (error != 0 || count == 0) {
1572 1.49 ad /* remove marker */
1573 1.49 ad TAILQ_REMOVE(&kq->kq_head, marker, kn_tqe);
1574 1.1 lukem break;
1575 1.49 ad }
1576 1.1 lukem }
1577 1.92 christos done:
1578 1.92 christos mutex_spin_exit(&kq->kq_lock);
1579 1.92 christos mutex_exit(&fdp->fd_lock);
1580 1.1 lukem }
1581 1.49 ad if (nkev != 0) {
1582 1.3 jdolecek /* copyout remaining events */
1583 1.24 cube error = (*keops->keo_put_events)(keops->keo_private,
1584 1.49 ad kevbuf, ulistp, nevents, nkev);
1585 1.49 ad }
1586 1.3 jdolecek *retval = maxevents - count;
1587 1.3 jdolecek
1588 1.49 ad return error;
1589 1.1 lukem }
1590 1.1 lukem
1591 1.1 lukem /*
1592 1.49 ad * fileops ioctl method for a kqueue descriptor.
1593 1.3 jdolecek *
1594 1.3 jdolecek * Two ioctls are currently supported. They both use struct kfilter_mapping:
1595 1.3 jdolecek * KFILTER_BYNAME find name for filter, and return result in
1596 1.3 jdolecek * name, which is of size len.
1597 1.3 jdolecek * KFILTER_BYFILTER find filter for name. len is ignored.
1598 1.3 jdolecek */
1599 1.1 lukem /*ARGSUSED*/
1600 1.1 lukem static int
1601 1.49 ad kqueue_ioctl(file_t *fp, u_long com, void *data)
1602 1.1 lukem {
1603 1.3 jdolecek struct kfilter_mapping *km;
1604 1.3 jdolecek const struct kfilter *kfilter;
1605 1.3 jdolecek char *name;
1606 1.3 jdolecek int error;
1607 1.3 jdolecek
1608 1.49 ad km = data;
1609 1.3 jdolecek error = 0;
1610 1.49 ad name = kmem_alloc(KFILTER_MAXNAME, KM_SLEEP);
1611 1.3 jdolecek
1612 1.3 jdolecek switch (com) {
1613 1.3 jdolecek case KFILTER_BYFILTER: /* convert filter -> name */
1614 1.49 ad rw_enter(&kqueue_filter_lock, RW_READER);
1615 1.3 jdolecek kfilter = kfilter_byfilter(km->filter);
1616 1.49 ad if (kfilter != NULL) {
1617 1.49 ad strlcpy(name, kfilter->name, KFILTER_MAXNAME);
1618 1.49 ad rw_exit(&kqueue_filter_lock);
1619 1.49 ad error = copyoutstr(name, km->name, km->len, NULL);
1620 1.49 ad } else {
1621 1.49 ad rw_exit(&kqueue_filter_lock);
1622 1.3 jdolecek error = ENOENT;
1623 1.49 ad }
1624 1.3 jdolecek break;
1625 1.3 jdolecek
1626 1.3 jdolecek case KFILTER_BYNAME: /* convert name -> filter */
1627 1.3 jdolecek error = copyinstr(km->name, name, KFILTER_MAXNAME, NULL);
1628 1.3 jdolecek if (error) {
1629 1.3 jdolecek break;
1630 1.3 jdolecek }
1631 1.49 ad rw_enter(&kqueue_filter_lock, RW_READER);
1632 1.3 jdolecek kfilter = kfilter_byname(name);
1633 1.3 jdolecek if (kfilter != NULL)
1634 1.3 jdolecek km->filter = kfilter->filter;
1635 1.3 jdolecek else
1636 1.3 jdolecek error = ENOENT;
1637 1.49 ad rw_exit(&kqueue_filter_lock);
1638 1.3 jdolecek break;
1639 1.3 jdolecek
1640 1.3 jdolecek default:
1641 1.3 jdolecek error = ENOTTY;
1642 1.49 ad break;
1643 1.3 jdolecek
1644 1.3 jdolecek }
1645 1.49 ad kmem_free(name, KFILTER_MAXNAME);
1646 1.3 jdolecek return (error);
1647 1.3 jdolecek }
1648 1.3 jdolecek
1649 1.3 jdolecek /*
1650 1.49 ad * fileops fcntl method for a kqueue descriptor.
1651 1.3 jdolecek */
1652 1.3 jdolecek static int
1653 1.49 ad kqueue_fcntl(file_t *fp, u_int com, void *data)
1654 1.3 jdolecek {
1655 1.3 jdolecek
1656 1.1 lukem return (ENOTTY);
1657 1.1 lukem }
1658 1.1 lukem
1659 1.3 jdolecek /*
1660 1.49 ad * fileops poll method for a kqueue descriptor.
1661 1.3 jdolecek * Determine if kqueue has events pending.
1662 1.3 jdolecek */
1663 1.1 lukem static int
1664 1.49 ad kqueue_poll(file_t *fp, int events)
1665 1.1 lukem {
1666 1.3 jdolecek struct kqueue *kq;
1667 1.3 jdolecek int revents;
1668 1.3 jdolecek
1669 1.82 matt kq = fp->f_kqueue;
1670 1.49 ad
1671 1.3 jdolecek revents = 0;
1672 1.3 jdolecek if (events & (POLLIN | POLLRDNORM)) {
1673 1.49 ad mutex_spin_enter(&kq->kq_lock);
1674 1.49 ad if (kq->kq_count != 0) {
1675 1.3 jdolecek revents |= events & (POLLIN | POLLRDNORM);
1676 1.1 lukem } else {
1677 1.49 ad selrecord(curlwp, &kq->kq_sel);
1678 1.1 lukem }
1679 1.52 yamt kq_check(kq);
1680 1.49 ad mutex_spin_exit(&kq->kq_lock);
1681 1.1 lukem }
1682 1.49 ad
1683 1.49 ad return revents;
1684 1.1 lukem }
1685 1.1 lukem
1686 1.3 jdolecek /*
1687 1.49 ad * fileops stat method for a kqueue descriptor.
1688 1.3 jdolecek * Returns dummy info, with st_size being number of events pending.
1689 1.3 jdolecek */
1690 1.1 lukem static int
1691 1.49 ad kqueue_stat(file_t *fp, struct stat *st)
1692 1.1 lukem {
1693 1.49 ad struct kqueue *kq;
1694 1.49 ad
1695 1.82 matt kq = fp->f_kqueue;
1696 1.1 lukem
1697 1.49 ad memset(st, 0, sizeof(*st));
1698 1.1 lukem st->st_size = kq->kq_count;
1699 1.1 lukem st->st_blksize = sizeof(struct kevent);
1700 1.1 lukem st->st_mode = S_IFIFO;
1701 1.49 ad
1702 1.49 ad return 0;
1703 1.49 ad }
1704 1.49 ad
1705 1.49 ad static void
1706 1.49 ad kqueue_doclose(struct kqueue *kq, struct klist *list, int fd)
1707 1.49 ad {
1708 1.49 ad struct knote *kn;
1709 1.49 ad filedesc_t *fdp;
1710 1.49 ad
1711 1.49 ad fdp = kq->kq_fdp;
1712 1.49 ad
1713 1.49 ad KASSERT(mutex_owned(&fdp->fd_lock));
1714 1.49 ad
1715 1.49 ad for (kn = SLIST_FIRST(list); kn != NULL;) {
1716 1.49 ad if (kq != kn->kn_kq) {
1717 1.49 ad kn = SLIST_NEXT(kn, kn_link);
1718 1.49 ad continue;
1719 1.49 ad }
1720 1.49 ad knote_detach(kn, fdp, true);
1721 1.49 ad mutex_enter(&fdp->fd_lock);
1722 1.49 ad kn = SLIST_FIRST(list);
1723 1.49 ad }
1724 1.1 lukem }
1725 1.1 lukem
1726 1.49 ad
1727 1.3 jdolecek /*
1728 1.49 ad * fileops close method for a kqueue descriptor.
1729 1.3 jdolecek */
1730 1.1 lukem static int
1731 1.49 ad kqueue_close(file_t *fp)
1732 1.1 lukem {
1733 1.49 ad struct kqueue *kq;
1734 1.49 ad filedesc_t *fdp;
1735 1.49 ad fdfile_t *ff;
1736 1.49 ad int i;
1737 1.49 ad
1738 1.82 matt kq = fp->f_kqueue;
1739 1.82 matt fp->f_kqueue = NULL;
1740 1.79 christos fp->f_type = 0;
1741 1.49 ad fdp = curlwp->l_fd;
1742 1.1 lukem
1743 1.49 ad mutex_enter(&fdp->fd_lock);
1744 1.49 ad for (i = 0; i <= fdp->fd_lastkqfile; i++) {
1745 1.65 ad if ((ff = fdp->fd_dt->dt_ff[i]) == NULL)
1746 1.49 ad continue;
1747 1.49 ad kqueue_doclose(kq, (struct klist *)&ff->ff_knlist, i);
1748 1.1 lukem }
1749 1.1 lukem if (fdp->fd_knhashmask != 0) {
1750 1.1 lukem for (i = 0; i < fdp->fd_knhashmask + 1; i++) {
1751 1.49 ad kqueue_doclose(kq, &fdp->fd_knhash[i], -1);
1752 1.1 lukem }
1753 1.1 lukem }
1754 1.49 ad mutex_exit(&fdp->fd_lock);
1755 1.49 ad
1756 1.49 ad KASSERT(kq->kq_count == 0);
1757 1.49 ad mutex_destroy(&kq->kq_lock);
1758 1.49 ad cv_destroy(&kq->kq_cv);
1759 1.48 rmind seldestroy(&kq->kq_sel);
1760 1.49 ad kmem_free(kq, sizeof(*kq));
1761 1.1 lukem
1762 1.1 lukem return (0);
1763 1.1 lukem }
1764 1.1 lukem
1765 1.3 jdolecek /*
1766 1.3 jdolecek * struct fileops kqfilter method for a kqueue descriptor.
1767 1.3 jdolecek * Event triggered when monitored kqueue changes.
1768 1.3 jdolecek */
1769 1.3 jdolecek static int
1770 1.49 ad kqueue_kqfilter(file_t *fp, struct knote *kn)
1771 1.3 jdolecek {
1772 1.3 jdolecek struct kqueue *kq;
1773 1.49 ad
1774 1.82 matt kq = ((file_t *)kn->kn_obj)->f_kqueue;
1775 1.49 ad
1776 1.49 ad KASSERT(fp == kn->kn_obj);
1777 1.3 jdolecek
1778 1.3 jdolecek if (kn->kn_filter != EVFILT_READ)
1779 1.49 ad return 1;
1780 1.49 ad
1781 1.3 jdolecek kn->kn_fop = &kqread_filtops;
1782 1.49 ad mutex_enter(&kq->kq_lock);
1783 1.5 christos SLIST_INSERT_HEAD(&kq->kq_sel.sel_klist, kn, kn_selnext);
1784 1.49 ad mutex_exit(&kq->kq_lock);
1785 1.49 ad
1786 1.49 ad return 0;
1787 1.3 jdolecek }
1788 1.3 jdolecek
1789 1.3 jdolecek
1790 1.3 jdolecek /*
1791 1.49 ad * Walk down a list of knotes, activating them if their event has
1792 1.49 ad * triggered. The caller's object lock (e.g. device driver lock)
1793 1.49 ad * must be held.
1794 1.1 lukem */
1795 1.1 lukem void
1796 1.1 lukem knote(struct klist *list, long hint)
1797 1.1 lukem {
1798 1.71 drochner struct knote *kn, *tmpkn;
1799 1.1 lukem
1800 1.71 drochner SLIST_FOREACH_SAFE(kn, list, kn_selnext, tmpkn) {
1801 1.85 christos KASSERT(kn->kn_fop != NULL);
1802 1.84 christos KASSERT(kn->kn_fop->f_event != NULL);
1803 1.49 ad if ((*kn->kn_fop->f_event)(kn, hint))
1804 1.49 ad knote_activate(kn);
1805 1.49 ad }
1806 1.1 lukem }
1807 1.1 lukem
1808 1.1 lukem /*
1809 1.49 ad * Remove all knotes referencing a specified fd
1810 1.1 lukem */
1811 1.1 lukem void
1812 1.49 ad knote_fdclose(int fd)
1813 1.1 lukem {
1814 1.49 ad struct klist *list;
1815 1.1 lukem struct knote *kn;
1816 1.49 ad filedesc_t *fdp;
1817 1.1 lukem
1818 1.49 ad fdp = curlwp->l_fd;
1819 1.106 riastrad mutex_enter(&fdp->fd_lock);
1820 1.65 ad list = (struct klist *)&fdp->fd_dt->dt_ff[fd]->ff_knlist;
1821 1.1 lukem while ((kn = SLIST_FIRST(list)) != NULL) {
1822 1.49 ad knote_detach(kn, fdp, true);
1823 1.49 ad mutex_enter(&fdp->fd_lock);
1824 1.1 lukem }
1825 1.49 ad mutex_exit(&fdp->fd_lock);
1826 1.1 lukem }
1827 1.1 lukem
1828 1.1 lukem /*
1829 1.49 ad * Drop knote. Called with fdp->fd_lock held, and will drop before
1830 1.49 ad * returning.
1831 1.3 jdolecek */
1832 1.1 lukem static void
1833 1.49 ad knote_detach(struct knote *kn, filedesc_t *fdp, bool dofop)
1834 1.1 lukem {
1835 1.49 ad struct klist *list;
1836 1.53 ad struct kqueue *kq;
1837 1.53 ad
1838 1.53 ad kq = kn->kn_kq;
1839 1.1 lukem
1840 1.49 ad KASSERT((kn->kn_status & KN_MARKER) == 0);
1841 1.49 ad KASSERT(mutex_owned(&fdp->fd_lock));
1842 1.3 jdolecek
1843 1.85 christos KASSERT(kn->kn_fop != NULL);
1844 1.53 ad /* Remove from monitored object. */
1845 1.49 ad if (dofop) {
1846 1.85 christos KASSERT(kn->kn_fop->f_detach != NULL);
1847 1.49 ad KERNEL_LOCK(1, NULL); /* XXXSMP */
1848 1.49 ad (*kn->kn_fop->f_detach)(kn);
1849 1.49 ad KERNEL_UNLOCK_ONE(NULL); /* XXXSMP */
1850 1.1 lukem }
1851 1.3 jdolecek
1852 1.53 ad /* Remove from descriptor table. */
1853 1.1 lukem if (kn->kn_fop->f_isfd)
1854 1.65 ad list = (struct klist *)&fdp->fd_dt->dt_ff[kn->kn_id]->ff_knlist;
1855 1.1 lukem else
1856 1.1 lukem list = &fdp->fd_knhash[KN_HASH(kn->kn_id, fdp->fd_knhashmask)];
1857 1.1 lukem
1858 1.1 lukem SLIST_REMOVE(list, kn, knote, kn_link);
1859 1.53 ad
1860 1.53 ad /* Remove from kqueue. */
1861 1.85 christos again:
1862 1.53 ad mutex_spin_enter(&kq->kq_lock);
1863 1.53 ad if ((kn->kn_status & KN_QUEUED) != 0) {
1864 1.53 ad kq_check(kq);
1865 1.85 christos kq->kq_count--;
1866 1.53 ad TAILQ_REMOVE(&kq->kq_head, kn, kn_tqe);
1867 1.53 ad kn->kn_status &= ~KN_QUEUED;
1868 1.53 ad kq_check(kq);
1869 1.85 christos } else if (kn->kn_status & KN_BUSY) {
1870 1.85 christos mutex_spin_exit(&kq->kq_lock);
1871 1.85 christos goto again;
1872 1.53 ad }
1873 1.53 ad mutex_spin_exit(&kq->kq_lock);
1874 1.53 ad
1875 1.49 ad mutex_exit(&fdp->fd_lock);
1876 1.93 riastrad if (kn->kn_fop->f_isfd)
1877 1.49 ad fd_putfile(kn->kn_id);
1878 1.49 ad atomic_dec_uint(&kn->kn_kfilter->refcnt);
1879 1.49 ad kmem_free(kn, sizeof(*kn));
1880 1.1 lukem }
1881 1.1 lukem
1882 1.3 jdolecek /*
1883 1.3 jdolecek * Queue new event for knote.
1884 1.3 jdolecek */
1885 1.1 lukem static void
1886 1.1 lukem knote_enqueue(struct knote *kn)
1887 1.1 lukem {
1888 1.49 ad struct kqueue *kq;
1889 1.49 ad
1890 1.49 ad KASSERT((kn->kn_status & KN_MARKER) == 0);
1891 1.1 lukem
1892 1.3 jdolecek kq = kn->kn_kq;
1893 1.1 lukem
1894 1.49 ad mutex_spin_enter(&kq->kq_lock);
1895 1.49 ad if ((kn->kn_status & KN_DISABLED) != 0) {
1896 1.49 ad kn->kn_status &= ~KN_DISABLED;
1897 1.49 ad }
1898 1.49 ad if ((kn->kn_status & (KN_ACTIVE | KN_QUEUED)) == KN_ACTIVE) {
1899 1.52 yamt kq_check(kq);
1900 1.85 christos kn->kn_status |= KN_QUEUED;
1901 1.49 ad TAILQ_INSERT_TAIL(&kq->kq_head, kn, kn_tqe);
1902 1.49 ad kq->kq_count++;
1903 1.52 yamt kq_check(kq);
1904 1.49 ad cv_broadcast(&kq->kq_cv);
1905 1.49 ad selnotify(&kq->kq_sel, 0, NOTE_SUBMIT);
1906 1.49 ad }
1907 1.49 ad mutex_spin_exit(&kq->kq_lock);
1908 1.1 lukem }
1909 1.49 ad /*
1910 1.49 ad * Queue new event for knote.
1911 1.49 ad */
1912 1.49 ad static void
1913 1.49 ad knote_activate(struct knote *kn)
1914 1.49 ad {
1915 1.49 ad struct kqueue *kq;
1916 1.49 ad
1917 1.49 ad KASSERT((kn->kn_status & KN_MARKER) == 0);
1918 1.1 lukem
1919 1.3 jdolecek kq = kn->kn_kq;
1920 1.12 pk
1921 1.49 ad mutex_spin_enter(&kq->kq_lock);
1922 1.49 ad kn->kn_status |= KN_ACTIVE;
1923 1.49 ad if ((kn->kn_status & (KN_QUEUED | KN_DISABLED)) == 0) {
1924 1.52 yamt kq_check(kq);
1925 1.85 christos kn->kn_status |= KN_QUEUED;
1926 1.49 ad TAILQ_INSERT_TAIL(&kq->kq_head, kn, kn_tqe);
1927 1.49 ad kq->kq_count++;
1928 1.52 yamt kq_check(kq);
1929 1.49 ad cv_broadcast(&kq->kq_cv);
1930 1.49 ad selnotify(&kq->kq_sel, 0, NOTE_SUBMIT);
1931 1.49 ad }
1932 1.49 ad mutex_spin_exit(&kq->kq_lock);
1933 1.1 lukem }
1934