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kern_event.c revision 1.39
      1 /*	$NetBSD: kern_event.c,v 1.39 2007/07/09 21:10:51 ad Exp $	*/
      2 
      3 /*-
      4  * Copyright (c) 1999,2000,2001 Jonathan Lemon <jlemon (at) FreeBSD.org>
      5  * All rights reserved.
      6  *
      7  * Redistribution and use in source and binary forms, with or without
      8  * modification, are permitted provided that the following conditions
      9  * are met:
     10  * 1. Redistributions of source code must retain the above copyright
     11  *    notice, this list of conditions and the following disclaimer.
     12  * 2. Redistributions in binary form must reproduce the above copyright
     13  *    notice, this list of conditions and the following disclaimer in the
     14  *    documentation and/or other materials provided with the distribution.
     15  *
     16  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
     17  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     18  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     19  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
     20  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     21  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     22  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     23  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     24  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     25  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     26  * SUCH DAMAGE.
     27  *
     28  * $FreeBSD: src/sys/kern/kern_event.c,v 1.27 2001/07/05 17:10:44 rwatson Exp $
     29  */
     30 
     31 #include <sys/cdefs.h>
     32 __KERNEL_RCSID(0, "$NetBSD: kern_event.c,v 1.39 2007/07/09 21:10:51 ad Exp $");
     33 
     34 #include <sys/param.h>
     35 #include <sys/systm.h>
     36 #include <sys/kernel.h>
     37 #include <sys/proc.h>
     38 #include <sys/malloc.h>
     39 #include <sys/unistd.h>
     40 #include <sys/file.h>
     41 #include <sys/fcntl.h>
     42 #include <sys/select.h>
     43 #include <sys/queue.h>
     44 #include <sys/event.h>
     45 #include <sys/eventvar.h>
     46 #include <sys/poll.h>
     47 #include <sys/pool.h>
     48 #include <sys/protosw.h>
     49 #include <sys/socket.h>
     50 #include <sys/socketvar.h>
     51 #include <sys/stat.h>
     52 #include <sys/uio.h>
     53 #include <sys/mount.h>
     54 #include <sys/filedesc.h>
     55 #include <sys/syscallargs.h>
     56 #include <sys/kauth.h>
     57 
     58 static void	kqueue_wakeup(struct kqueue *kq);
     59 
     60 static int	kqueue_scan(struct file *, size_t, struct kevent *,
     61     const struct timespec *, struct lwp *, register_t *,
     62     const struct kevent_ops *);
     63 static int	kqueue_read(struct file *fp, off_t *offset, struct uio *uio,
     64 		    kauth_cred_t cred, int flags);
     65 static int	kqueue_write(struct file *fp, off_t *offset, struct uio *uio,
     66 		    kauth_cred_t cred, int flags);
     67 static int	kqueue_ioctl(struct file *fp, u_long com, void *data,
     68 		    struct lwp *l);
     69 static int	kqueue_fcntl(struct file *fp, u_int com, void *data,
     70 		    struct lwp *l);
     71 static int	kqueue_poll(struct file *fp, int events, struct lwp *l);
     72 static int	kqueue_kqfilter(struct file *fp, struct knote *kn);
     73 static int	kqueue_stat(struct file *fp, struct stat *sp, struct lwp *l);
     74 static int	kqueue_close(struct file *fp, struct lwp *l);
     75 
     76 static const struct fileops kqueueops = {
     77 	kqueue_read, kqueue_write, kqueue_ioctl, kqueue_fcntl, kqueue_poll,
     78 	kqueue_stat, kqueue_close, kqueue_kqfilter
     79 };
     80 
     81 static void	knote_attach(struct knote *kn, struct filedesc *fdp);
     82 static void	knote_drop(struct knote *kn, struct lwp *l,
     83 		    struct filedesc *fdp);
     84 static void	knote_enqueue(struct knote *kn);
     85 static void	knote_dequeue(struct knote *kn);
     86 
     87 static void	filt_kqdetach(struct knote *kn);
     88 static int	filt_kqueue(struct knote *kn, long hint);
     89 static int	filt_procattach(struct knote *kn);
     90 static void	filt_procdetach(struct knote *kn);
     91 static int	filt_proc(struct knote *kn, long hint);
     92 static int	filt_fileattach(struct knote *kn);
     93 static void	filt_timerexpire(void *knx);
     94 static int	filt_timerattach(struct knote *kn);
     95 static void	filt_timerdetach(struct knote *kn);
     96 static int	filt_timer(struct knote *kn, long hint);
     97 
     98 static const struct filterops kqread_filtops =
     99 	{ 1, NULL, filt_kqdetach, filt_kqueue };
    100 static const struct filterops proc_filtops =
    101 	{ 0, filt_procattach, filt_procdetach, filt_proc };
    102 static const struct filterops file_filtops =
    103 	{ 1, filt_fileattach, NULL, NULL };
    104 static const struct filterops timer_filtops =
    105 	{ 0, filt_timerattach, filt_timerdetach, filt_timer };
    106 
    107 static POOL_INIT(kqueue_pool, sizeof(struct kqueue), 0, 0, 0, "kqueuepl", NULL,
    108     IPL_VM);
    109 static POOL_INIT(knote_pool, sizeof(struct knote), 0, 0, 0, "knotepl", NULL,
    110     IPL_VM);
    111 static int	kq_ncallouts = 0;
    112 static int	kq_calloutmax = (4 * 1024);
    113 
    114 MALLOC_DEFINE(M_KEVENT, "kevent", "kevents/knotes");
    115 
    116 #define	KNOTE_ACTIVATE(kn)						\
    117 do {									\
    118 	kn->kn_status |= KN_ACTIVE;					\
    119 	if ((kn->kn_status & (KN_QUEUED | KN_DISABLED)) == 0)		\
    120 		knote_enqueue(kn);					\
    121 } while(0)
    122 
    123 #define	KN_HASHSIZE		64		/* XXX should be tunable */
    124 #define	KN_HASH(val, mask)	(((val) ^ (val >> 8)) & (mask))
    125 
    126 extern const struct filterops sig_filtops;
    127 
    128 /*
    129  * Table for for all system-defined filters.
    130  * These should be listed in the numeric order of the EVFILT_* defines.
    131  * If filtops is NULL, the filter isn't implemented in NetBSD.
    132  * End of list is when name is NULL.
    133  */
    134 struct kfilter {
    135 	const char	 *name;		/* name of filter */
    136 	uint32_t	  filter;	/* id of filter */
    137 	const struct filterops *filtops;/* operations for filter */
    138 };
    139 
    140 		/* System defined filters */
    141 static const struct kfilter sys_kfilters[] = {
    142 	{ "EVFILT_READ",	EVFILT_READ,	&file_filtops },
    143 	{ "EVFILT_WRITE",	EVFILT_WRITE,	&file_filtops },
    144 	{ "EVFILT_AIO",		EVFILT_AIO,	NULL },
    145 	{ "EVFILT_VNODE",	EVFILT_VNODE,	&file_filtops },
    146 	{ "EVFILT_PROC",	EVFILT_PROC,	&proc_filtops },
    147 	{ "EVFILT_SIGNAL",	EVFILT_SIGNAL,	&sig_filtops },
    148 	{ "EVFILT_TIMER",	EVFILT_TIMER,	&timer_filtops },
    149 	{ NULL,			0,		NULL },	/* end of list */
    150 };
    151 
    152 		/* User defined kfilters */
    153 static struct kfilter	*user_kfilters;		/* array */
    154 static int		user_kfilterc;		/* current offset */
    155 static int		user_kfiltermaxc;	/* max size so far */
    156 
    157 /*
    158  * Find kfilter entry by name, or NULL if not found.
    159  */
    160 static const struct kfilter *
    161 kfilter_byname_sys(const char *name)
    162 {
    163 	int i;
    164 
    165 	for (i = 0; sys_kfilters[i].name != NULL; i++) {
    166 		if (strcmp(name, sys_kfilters[i].name) == 0)
    167 			return (&sys_kfilters[i]);
    168 	}
    169 	return (NULL);
    170 }
    171 
    172 static struct kfilter *
    173 kfilter_byname_user(const char *name)
    174 {
    175 	int i;
    176 
    177 	/* user filter slots have a NULL name if previously deregistered */
    178 	for (i = 0; i < user_kfilterc ; i++) {
    179 		if (user_kfilters[i].name != NULL &&
    180 		    strcmp(name, user_kfilters[i].name) == 0)
    181 			return (&user_kfilters[i]);
    182 	}
    183 	return (NULL);
    184 }
    185 
    186 static const struct kfilter *
    187 kfilter_byname(const char *name)
    188 {
    189 	const struct kfilter *kfilter;
    190 
    191 	if ((kfilter = kfilter_byname_sys(name)) != NULL)
    192 		return (kfilter);
    193 
    194 	return (kfilter_byname_user(name));
    195 }
    196 
    197 /*
    198  * Find kfilter entry by filter id, or NULL if not found.
    199  * Assumes entries are indexed in filter id order, for speed.
    200  */
    201 static const struct kfilter *
    202 kfilter_byfilter(uint32_t filter)
    203 {
    204 	const struct kfilter *kfilter;
    205 
    206 	if (filter < EVFILT_SYSCOUNT)	/* it's a system filter */
    207 		kfilter = &sys_kfilters[filter];
    208 	else if (user_kfilters != NULL &&
    209 	    filter < EVFILT_SYSCOUNT + user_kfilterc)
    210 					/* it's a user filter */
    211 		kfilter = &user_kfilters[filter - EVFILT_SYSCOUNT];
    212 	else
    213 		return (NULL);		/* out of range */
    214 	KASSERT(kfilter->filter == filter);	/* sanity check! */
    215 	return (kfilter);
    216 }
    217 
    218 /*
    219  * Register a new kfilter. Stores the entry in user_kfilters.
    220  * Returns 0 if operation succeeded, or an appropriate errno(2) otherwise.
    221  * If retfilter != NULL, the new filterid is returned in it.
    222  */
    223 int
    224 kfilter_register(const char *name, const struct filterops *filtops,
    225     int *retfilter)
    226 {
    227 	struct kfilter *kfilter;
    228 	void *space;
    229 	int len;
    230 	int i;
    231 
    232 	if (name == NULL || name[0] == '\0' || filtops == NULL)
    233 		return (EINVAL);	/* invalid args */
    234 	if (kfilter_byname(name) != NULL)
    235 		return (EEXIST);	/* already exists */
    236 	if (user_kfilterc > 0xffffffff - EVFILT_SYSCOUNT)
    237 		return (EINVAL);	/* too many */
    238 
    239 	for (i = 0; i < user_kfilterc; i++) {
    240 		kfilter = &user_kfilters[i];
    241 		if (kfilter->name == NULL) {
    242 			/* Previously deregistered slot.  Reuse. */
    243 			goto reuse;
    244 		}
    245 	}
    246 
    247 	/* check if need to grow user_kfilters */
    248 	if (user_kfilterc + 1 > user_kfiltermaxc) {
    249 		/*
    250 		 * Grow in KFILTER_EXTENT chunks. Use malloc(9), because we
    251 		 * want to traverse user_kfilters as an array.
    252 		 */
    253 		user_kfiltermaxc += KFILTER_EXTENT;
    254 		kfilter = malloc(user_kfiltermaxc * sizeof(struct filter *),
    255 		    M_KEVENT, M_WAITOK);
    256 
    257 		/* copy existing user_kfilters */
    258 		if (user_kfilters != NULL)
    259 			memcpy((void *)kfilter, (void *)user_kfilters,
    260 			    user_kfilterc * sizeof(struct kfilter *));
    261 					/* zero new sections */
    262 		memset((char *)kfilter +
    263 		    user_kfilterc * sizeof(struct kfilter *), 0,
    264 		    (user_kfiltermaxc - user_kfilterc) *
    265 		    sizeof(struct kfilter *));
    266 					/* switch to new kfilter */
    267 		if (user_kfilters != NULL)
    268 			free(user_kfilters, M_KEVENT);
    269 		user_kfilters = kfilter;
    270 	}
    271 	/* Adding new slot */
    272 	kfilter = &user_kfilters[user_kfilterc++];
    273 reuse:
    274 	len = strlen(name) + 1;		/* copy name */
    275 	space = malloc(len, M_KEVENT, M_WAITOK);
    276 	memcpy(space, name, len);
    277 	kfilter->name = space;
    278 
    279 	kfilter->filter = (kfilter - user_kfilters) + EVFILT_SYSCOUNT;
    280 
    281 	len = sizeof(struct filterops);	/* copy filtops */
    282 	space = malloc(len, M_KEVENT, M_WAITOK);
    283 	memcpy(space, filtops, len);
    284 	kfilter->filtops = space;
    285 
    286 	if (retfilter != NULL)
    287 		*retfilter = kfilter->filter;
    288 	return (0);
    289 }
    290 
    291 /*
    292  * Unregister a kfilter previously registered with kfilter_register.
    293  * This retains the filter id, but clears the name and frees filtops (filter
    294  * operations), so that the number isn't reused during a boot.
    295  * Returns 0 if operation succeeded, or an appropriate errno(2) otherwise.
    296  */
    297 int
    298 kfilter_unregister(const char *name)
    299 {
    300 	struct kfilter *kfilter;
    301 
    302 	if (name == NULL || name[0] == '\0')
    303 		return (EINVAL);	/* invalid name */
    304 
    305 	if (kfilter_byname_sys(name) != NULL)
    306 		return (EINVAL);	/* can't detach system filters */
    307 
    308 	kfilter = kfilter_byname_user(name);
    309 	if (kfilter == NULL)		/* not found */
    310 		return (ENOENT);
    311 
    312 	/* XXXUNCONST Cast away const (but we know it's safe. */
    313 	free(__UNCONST(kfilter->name), M_KEVENT);
    314 	kfilter->name = NULL;	/* mark as `not implemented' */
    315 
    316 	if (kfilter->filtops != NULL) {
    317 		/* XXXUNCONST Cast away const (but we know it's safe. */
    318 		free(__UNCONST(kfilter->filtops), M_KEVENT);
    319 		kfilter->filtops = NULL; /* mark as `not implemented' */
    320 	}
    321 	return (0);
    322 }
    323 
    324 
    325 /*
    326  * Filter attach method for EVFILT_READ and EVFILT_WRITE on normal file
    327  * descriptors. Calls struct fileops kqfilter method for given file descriptor.
    328  */
    329 static int
    330 filt_fileattach(struct knote *kn)
    331 {
    332 	struct file *fp;
    333 
    334 	fp = kn->kn_fp;
    335 	return ((*fp->f_ops->fo_kqfilter)(fp, kn));
    336 }
    337 
    338 /*
    339  * Filter detach method for EVFILT_READ on kqueue descriptor.
    340  */
    341 static void
    342 filt_kqdetach(struct knote *kn)
    343 {
    344 	struct kqueue *kq;
    345 
    346 	kq = (struct kqueue *)kn->kn_fp->f_data;
    347 	SLIST_REMOVE(&kq->kq_sel.sel_klist, kn, knote, kn_selnext);
    348 }
    349 
    350 /*
    351  * Filter event method for EVFILT_READ on kqueue descriptor.
    352  */
    353 /*ARGSUSED*/
    354 static int
    355 filt_kqueue(struct knote *kn, long hint)
    356 {
    357 	struct kqueue *kq;
    358 
    359 	kq = (struct kqueue *)kn->kn_fp->f_data;
    360 	kn->kn_data = kq->kq_count;
    361 	return (kn->kn_data > 0);
    362 }
    363 
    364 /*
    365  * Filter attach method for EVFILT_PROC.
    366  */
    367 static int
    368 filt_procattach(struct knote *kn)
    369 {
    370 	struct proc *p, *curp;
    371 	struct lwp *curl;
    372 
    373 	curl = curlwp;
    374 	curp = curl->l_proc;
    375 
    376 	p = pfind(kn->kn_id);
    377 	if (p == NULL)
    378 		return (ESRCH);
    379 
    380 	/*
    381 	 * Fail if it's not owned by you, or the last exec gave us
    382 	 * setuid/setgid privs (unless you're root).
    383 	 */
    384 	if ((kauth_cred_getuid(p->p_cred) != kauth_cred_getuid(curl->l_cred) ||
    385 	    (p->p_flag & PK_SUGID)) && kauth_authorize_generic(curl->l_cred,
    386 	    KAUTH_GENERIC_ISSUSER, NULL) != 0)
    387 		return (EACCES);
    388 
    389 	kn->kn_ptr.p_proc = p;
    390 	kn->kn_flags |= EV_CLEAR;	/* automatically set */
    391 
    392 	/*
    393 	 * internal flag indicating registration done by kernel
    394 	 */
    395 	if (kn->kn_flags & EV_FLAG1) {
    396 		kn->kn_data = kn->kn_sdata;	/* ppid */
    397 		kn->kn_fflags = NOTE_CHILD;
    398 		kn->kn_flags &= ~EV_FLAG1;
    399 	}
    400 
    401 	/* XXXSMP lock the process? */
    402 	SLIST_INSERT_HEAD(&p->p_klist, kn, kn_selnext);
    403 
    404 	return (0);
    405 }
    406 
    407 /*
    408  * Filter detach method for EVFILT_PROC.
    409  *
    410  * The knote may be attached to a different process, which may exit,
    411  * leaving nothing for the knote to be attached to.  So when the process
    412  * exits, the knote is marked as DETACHED and also flagged as ONESHOT so
    413  * it will be deleted when read out.  However, as part of the knote deletion,
    414  * this routine is called, so a check is needed to avoid actually performing
    415  * a detach, because the original process might not exist any more.
    416  */
    417 static void
    418 filt_procdetach(struct knote *kn)
    419 {
    420 	struct proc *p;
    421 
    422 	if (kn->kn_status & KN_DETACHED)
    423 		return;
    424 
    425 	p = kn->kn_ptr.p_proc;
    426 
    427 	/* XXXSMP lock the process? */
    428 	SLIST_REMOVE(&p->p_klist, kn, knote, kn_selnext);
    429 }
    430 
    431 /*
    432  * Filter event method for EVFILT_PROC.
    433  */
    434 static int
    435 filt_proc(struct knote *kn, long hint)
    436 {
    437 	u_int event;
    438 
    439 	/*
    440 	 * mask off extra data
    441 	 */
    442 	event = (u_int)hint & NOTE_PCTRLMASK;
    443 
    444 	/*
    445 	 * if the user is interested in this event, record it.
    446 	 */
    447 	if (kn->kn_sfflags & event)
    448 		kn->kn_fflags |= event;
    449 
    450 	/*
    451 	 * process is gone, so flag the event as finished.
    452 	 */
    453 	if (event == NOTE_EXIT) {
    454 		/*
    455 		 * Detach the knote from watched process and mark
    456 		 * it as such. We can't leave this to kqueue_scan(),
    457 		 * since the process might not exist by then. And we
    458 		 * have to do this now, since psignal KNOTE() is called
    459 		 * also for zombies and we might end up reading freed
    460 		 * memory if the kevent would already be picked up
    461 		 * and knote g/c'ed.
    462 		 */
    463 		kn->kn_fop->f_detach(kn);
    464 		kn->kn_status |= KN_DETACHED;
    465 
    466 		/* Mark as ONESHOT, so that the knote it g/c'ed when read */
    467 		kn->kn_flags |= (EV_EOF | EV_ONESHOT);
    468 		return (1);
    469 	}
    470 
    471 	/*
    472 	 * process forked, and user wants to track the new process,
    473 	 * so attach a new knote to it, and immediately report an
    474 	 * event with the parent's pid.
    475 	 */
    476 	if ((event == NOTE_FORK) && (kn->kn_sfflags & NOTE_TRACK)) {
    477 		struct kevent kev;
    478 		int error;
    479 
    480 		/*
    481 		 * register knote with new process.
    482 		 */
    483 		kev.ident = hint & NOTE_PDATAMASK;	/* pid */
    484 		kev.filter = kn->kn_filter;
    485 		kev.flags = kn->kn_flags | EV_ADD | EV_ENABLE | EV_FLAG1;
    486 		kev.fflags = kn->kn_sfflags;
    487 		kev.data = kn->kn_id;			/* parent */
    488 		kev.udata = kn->kn_kevent.udata;	/* preserve udata */
    489 		error = kqueue_register(kn->kn_kq, &kev, NULL);
    490 		if (error)
    491 			kn->kn_fflags |= NOTE_TRACKERR;
    492 	}
    493 
    494 	return (kn->kn_fflags != 0);
    495 }
    496 
    497 static void
    498 filt_timerexpire(void *knx)
    499 {
    500 	struct knote *kn = knx;
    501 	int tticks;
    502 
    503 	kn->kn_data++;
    504 	KNOTE_ACTIVATE(kn);
    505 
    506 	if ((kn->kn_flags & EV_ONESHOT) == 0) {
    507 		tticks = mstohz(kn->kn_sdata);
    508 		callout_schedule((callout_t *)kn->kn_hook, tticks);
    509 	}
    510 }
    511 
    512 /*
    513  * data contains amount of time to sleep, in milliseconds
    514  */
    515 static int
    516 filt_timerattach(struct knote *kn)
    517 {
    518 	callout_t *calloutp;
    519 	int tticks;
    520 
    521 	if (kq_ncallouts >= kq_calloutmax)
    522 		return (ENOMEM);
    523 	kq_ncallouts++;
    524 
    525 	tticks = mstohz(kn->kn_sdata);
    526 
    527 	/* if the supplied value is under our resolution, use 1 tick */
    528 	if (tticks == 0) {
    529 		if (kn->kn_sdata == 0)
    530 			return (EINVAL);
    531 		tticks = 1;
    532 	}
    533 
    534 	kn->kn_flags |= EV_CLEAR;		/* automatically set */
    535 	MALLOC(calloutp, callout_t *, sizeof(*calloutp),
    536 	    M_KEVENT, 0);
    537 	callout_init(calloutp, 0);
    538 	callout_reset(calloutp, tticks, filt_timerexpire, kn);
    539 	kn->kn_hook = calloutp;
    540 
    541 	return (0);
    542 }
    543 
    544 static void
    545 filt_timerdetach(struct knote *kn)
    546 {
    547 	callout_t *calloutp;
    548 
    549 	calloutp = (callout_t *)kn->kn_hook;
    550 	callout_stop(calloutp);
    551 	callout_destroy(calloutp);
    552 	FREE(calloutp, M_KEVENT);
    553 	kq_ncallouts--;
    554 }
    555 
    556 static int
    557 filt_timer(struct knote *kn, long hint)
    558 {
    559 	return (kn->kn_data != 0);
    560 }
    561 
    562 /*
    563  * filt_seltrue:
    564  *
    565  *	This filter "event" routine simulates seltrue().
    566  */
    567 int
    568 filt_seltrue(struct knote *kn, long hint)
    569 {
    570 
    571 	/*
    572 	 * We don't know how much data can be read/written,
    573 	 * but we know that it *can* be.  This is about as
    574 	 * good as select/poll does as well.
    575 	 */
    576 	kn->kn_data = 0;
    577 	return (1);
    578 }
    579 
    580 /*
    581  * This provides full kqfilter entry for device switch tables, which
    582  * has same effect as filter using filt_seltrue() as filter method.
    583  */
    584 static void
    585 filt_seltruedetach(struct knote *kn)
    586 {
    587 	/* Nothing to do */
    588 }
    589 
    590 static const struct filterops seltrue_filtops =
    591 	{ 1, NULL, filt_seltruedetach, filt_seltrue };
    592 
    593 int
    594 seltrue_kqfilter(dev_t dev, struct knote *kn)
    595 {
    596 	switch (kn->kn_filter) {
    597 	case EVFILT_READ:
    598 	case EVFILT_WRITE:
    599 		kn->kn_fop = &seltrue_filtops;
    600 		break;
    601 	default:
    602 		return (1);
    603 	}
    604 
    605 	/* Nothing more to do */
    606 	return (0);
    607 }
    608 
    609 /*
    610  * kqueue(2) system call.
    611  */
    612 int
    613 sys_kqueue(struct lwp *l, void *v, register_t *retval)
    614 {
    615 	struct filedesc	*fdp;
    616 	struct kqueue	*kq;
    617 	struct file	*fp;
    618 	int		fd, error;
    619 
    620 	fdp = l->l_proc->p_fd;
    621 	error = falloc(l, &fp, &fd);	/* setup a new file descriptor */
    622 	if (error)
    623 		return (error);
    624 	fp->f_flag = FREAD | FWRITE;
    625 	fp->f_type = DTYPE_KQUEUE;
    626 	fp->f_ops = &kqueueops;
    627 	kq = pool_get(&kqueue_pool, PR_WAITOK);
    628 	memset((char *)kq, 0, sizeof(struct kqueue));
    629 	simple_lock_init(&kq->kq_lock);
    630 	TAILQ_INIT(&kq->kq_head);
    631 	fp->f_data = (void *)kq;	/* store the kqueue with the fp */
    632 	*retval = fd;
    633 	if (fdp->fd_knlistsize < 0)
    634 		fdp->fd_knlistsize = 0;	/* this process has a kq */
    635 	kq->kq_fdp = fdp;
    636 	FILE_SET_MATURE(fp);
    637 	FILE_UNUSE(fp, l);		/* falloc() does FILE_USE() */
    638 	return (error);
    639 }
    640 
    641 /*
    642  * kevent(2) system call.
    643  */
    644 static int
    645 kevent_fetch_changes(void *private, const struct kevent *changelist,
    646     struct kevent *changes, size_t index, int n)
    647 {
    648 	return copyin(changelist + index, changes, n * sizeof(*changes));
    649 }
    650 
    651 static int
    652 kevent_put_events(void *private, struct kevent *events,
    653     struct kevent *eventlist, size_t index, int n)
    654 {
    655 	return copyout(events, eventlist + index, n * sizeof(*events));
    656 }
    657 
    658 static const struct kevent_ops kevent_native_ops = {
    659 	keo_private: NULL,
    660 	keo_fetch_timeout: copyin,
    661 	keo_fetch_changes: kevent_fetch_changes,
    662 	keo_put_events: kevent_put_events,
    663 };
    664 
    665 int
    666 sys_kevent(struct lwp *l, void *v, register_t *retval)
    667 {
    668 	struct sys_kevent_args /* {
    669 		syscallarg(int) fd;
    670 		syscallarg(const struct kevent *) changelist;
    671 		syscallarg(size_t) nchanges;
    672 		syscallarg(struct kevent *) eventlist;
    673 		syscallarg(size_t) nevents;
    674 		syscallarg(const struct timespec *) timeout;
    675 	} */ *uap = v;
    676 
    677 	return kevent1(l, retval, SCARG(uap, fd), SCARG(uap, changelist),
    678 	    SCARG(uap, nchanges), SCARG(uap, eventlist), SCARG(uap, nevents),
    679 	    SCARG(uap, timeout), &kevent_native_ops);
    680 }
    681 
    682 int
    683 kevent1(struct lwp *l, register_t *retval, int fd,
    684     const struct kevent *changelist, size_t nchanges, struct kevent *eventlist,
    685     size_t nevents, const struct timespec *timeout,
    686     const struct kevent_ops *keops)
    687 {
    688 	struct kevent	*kevp;
    689 	struct kqueue	*kq;
    690 	struct file	*fp;
    691 	struct timespec	ts;
    692 	struct proc	*p;
    693 	size_t		i, n, ichange;
    694 	int		nerrors, error;
    695 
    696 	p = l->l_proc;
    697 	/* check that we're dealing with a kq */
    698 	fp = fd_getfile(p->p_fd, fd);
    699 	if (fp == NULL)
    700 		return (EBADF);
    701 
    702 	if (fp->f_type != DTYPE_KQUEUE) {
    703 		simple_unlock(&fp->f_slock);
    704 		return (EBADF);
    705 	}
    706 
    707 	FILE_USE(fp);
    708 
    709 	if (timeout != NULL) {
    710 		error = (*keops->keo_fetch_timeout)(timeout, &ts, sizeof(ts));
    711 		if (error)
    712 			goto done;
    713 		timeout = &ts;
    714 	}
    715 
    716 	kq = (struct kqueue *)fp->f_data;
    717 	nerrors = 0;
    718 	ichange = 0;
    719 
    720 	/* traverse list of events to register */
    721 	while (nchanges > 0) {
    722 		/* copyin a maximum of KQ_EVENTS at each pass */
    723 		n = MIN(nchanges, KQ_NEVENTS);
    724 		error = (*keops->keo_fetch_changes)(keops->keo_private,
    725 		    changelist, kq->kq_kev, ichange, n);
    726 		if (error)
    727 			goto done;
    728 		for (i = 0; i < n; i++) {
    729 			kevp = &kq->kq_kev[i];
    730 			kevp->flags &= ~EV_SYSFLAGS;
    731 			/* register each knote */
    732 			error = kqueue_register(kq, kevp, l);
    733 			if (error) {
    734 				if (nevents != 0) {
    735 					kevp->flags = EV_ERROR;
    736 					kevp->data = error;
    737 					error = (*keops->keo_put_events)
    738 					    (keops->keo_private, kevp,
    739 					    eventlist, nerrors, 1);
    740 					if (error)
    741 						goto done;
    742 					nevents--;
    743 					nerrors++;
    744 				} else {
    745 					goto done;
    746 				}
    747 			}
    748 		}
    749 		nchanges -= n;	/* update the results */
    750 		ichange += n;
    751 	}
    752 	if (nerrors) {
    753 		*retval = nerrors;
    754 		error = 0;
    755 		goto done;
    756 	}
    757 
    758 	/* actually scan through the events */
    759 	error = kqueue_scan(fp, nevents, eventlist, timeout, l, retval, keops);
    760  done:
    761 	FILE_UNUSE(fp, l);
    762 	return (error);
    763 }
    764 
    765 /*
    766  * Register a given kevent kev onto the kqueue
    767  */
    768 int
    769 kqueue_register(struct kqueue *kq, struct kevent *kev, struct lwp *l)
    770 {
    771 	const struct kfilter *kfilter;
    772 	struct filedesc	*fdp;
    773 	struct file	*fp;
    774 	struct knote	*kn;
    775 	int		s, error;
    776 
    777 	fdp = kq->kq_fdp;
    778 	fp = NULL;
    779 	kn = NULL;
    780 	error = 0;
    781 	kfilter = kfilter_byfilter(kev->filter);
    782 	if (kfilter == NULL || kfilter->filtops == NULL) {
    783 		/* filter not found nor implemented */
    784 		return (EINVAL);
    785 	}
    786 
    787 	/* search if knote already exists */
    788 	if (kfilter->filtops->f_isfd) {
    789 		/* monitoring a file descriptor */
    790 		if ((fp = fd_getfile(fdp, kev->ident)) == NULL)
    791 			return (EBADF);	/* validate descriptor */
    792 		FILE_USE(fp);
    793 
    794 		if (kev->ident < fdp->fd_knlistsize) {
    795 			SLIST_FOREACH(kn, &fdp->fd_knlist[kev->ident], kn_link)
    796 				if (kq == kn->kn_kq &&
    797 				    kev->filter == kn->kn_filter)
    798 					break;
    799 		}
    800 	} else {
    801 		/*
    802 		 * not monitoring a file descriptor, so
    803 		 * lookup knotes in internal hash table
    804 		 */
    805 		if (fdp->fd_knhashmask != 0) {
    806 			struct klist *list;
    807 
    808 			list = &fdp->fd_knhash[
    809 			    KN_HASH((u_long)kev->ident, fdp->fd_knhashmask)];
    810 			SLIST_FOREACH(kn, list, kn_link)
    811 				if (kev->ident == kn->kn_id &&
    812 				    kq == kn->kn_kq &&
    813 				    kev->filter == kn->kn_filter)
    814 					break;
    815 		}
    816 	}
    817 
    818 	if (kn == NULL && ((kev->flags & EV_ADD) == 0)) {
    819 		error = ENOENT;		/* filter not found */
    820 		goto done;
    821 	}
    822 
    823 	/*
    824 	 * kn now contains the matching knote, or NULL if no match
    825 	 */
    826 	if (kev->flags & EV_ADD) {
    827 		/* add knote */
    828 
    829 		if (kn == NULL) {
    830 			/* create new knote */
    831 			kn = pool_get(&knote_pool, PR_WAITOK);
    832 			if (kn == NULL) {
    833 				error = ENOMEM;
    834 				goto done;
    835 			}
    836 			kn->kn_fp = fp;
    837 			kn->kn_kq = kq;
    838 			kn->kn_fop = kfilter->filtops;
    839 
    840 			/*
    841 			 * apply reference count to knote structure, and
    842 			 * do not release it at the end of this routine.
    843 			 */
    844 			fp = NULL;
    845 
    846 			kn->kn_sfflags = kev->fflags;
    847 			kn->kn_sdata = kev->data;
    848 			kev->fflags = 0;
    849 			kev->data = 0;
    850 			kn->kn_kevent = *kev;
    851 
    852 			knote_attach(kn, fdp);
    853 			if ((error = kfilter->filtops->f_attach(kn)) != 0) {
    854 				knote_drop(kn, l, fdp);
    855 				goto done;
    856 			}
    857 		} else {
    858 			/* modify existing knote */
    859 
    860 			/*
    861 			 * The user may change some filter values after the
    862 			 * initial EV_ADD, but doing so will not reset any
    863 			 * filter which have already been triggered.
    864 			 */
    865 			kn->kn_sfflags = kev->fflags;
    866 			kn->kn_sdata = kev->data;
    867 			kn->kn_kevent.udata = kev->udata;
    868 		}
    869 
    870 		s = splsched();
    871 		if (kn->kn_fop->f_event(kn, 0))
    872 			KNOTE_ACTIVATE(kn);
    873 		splx(s);
    874 
    875 	} else if (kev->flags & EV_DELETE) {	/* delete knote */
    876 		kn->kn_fop->f_detach(kn);
    877 		knote_drop(kn, l, fdp);
    878 		goto done;
    879 	}
    880 
    881 	/* disable knote */
    882 	if ((kev->flags & EV_DISABLE) &&
    883 	    ((kn->kn_status & KN_DISABLED) == 0)) {
    884 		s = splsched();
    885 		kn->kn_status |= KN_DISABLED;
    886 		splx(s);
    887 	}
    888 
    889 	/* enable knote */
    890 	if ((kev->flags & EV_ENABLE) && (kn->kn_status & KN_DISABLED)) {
    891 		s = splsched();
    892 		kn->kn_status &= ~KN_DISABLED;
    893 		if ((kn->kn_status & KN_ACTIVE) &&
    894 		    ((kn->kn_status & KN_QUEUED) == 0))
    895 			knote_enqueue(kn);
    896 		splx(s);
    897 	}
    898 
    899  done:
    900 	if (fp != NULL)
    901 		FILE_UNUSE(fp, l);
    902 	return (error);
    903 }
    904 
    905 /*
    906  * Scan through the list of events on fp (for a maximum of maxevents),
    907  * returning the results in to ulistp. Timeout is determined by tsp; if
    908  * NULL, wait indefinitely, if 0 valued, perform a poll, otherwise wait
    909  * as appropriate.
    910  */
    911 static int
    912 kqueue_scan(struct file *fp, size_t maxevents, struct kevent *ulistp,
    913     const struct timespec *tsp, struct lwp *l, register_t *retval,
    914     const struct kevent_ops *keops)
    915 {
    916 	struct proc	*p = l->l_proc;
    917 	struct kqueue	*kq;
    918 	struct kevent	*kevp;
    919 	struct timeval	atv, sleeptv;
    920 	struct knote	*kn, *marker=NULL;
    921 	size_t		count, nkev, nevents;
    922 	int		s, timeout, error;
    923 
    924 	kq = (struct kqueue *)fp->f_data;
    925 	count = maxevents;
    926 	nkev = nevents = error = 0;
    927 	if (count == 0)
    928 		goto done;
    929 
    930 	if (tsp) {				/* timeout supplied */
    931 		TIMESPEC_TO_TIMEVAL(&atv, tsp);
    932 		if (inittimeleft(&atv, &sleeptv) == -1) {
    933 			error = EINVAL;
    934 			goto done;
    935 		}
    936 		timeout = tvtohz(&atv);
    937 		if (timeout <= 0)
    938 			timeout = -1;           /* do poll */
    939 	} else {
    940 		/* no timeout, wait forever */
    941 		timeout = 0;
    942 	}
    943 
    944 	MALLOC(marker, struct knote *, sizeof(*marker), M_KEVENT, M_WAITOK);
    945 	memset(marker, 0, sizeof(*marker));
    946 
    947 	goto start;
    948 
    949  retry:
    950 	if (tsp && (timeout = gettimeleft(&atv, &sleeptv)) <= 0) {
    951 		goto done;
    952 	}
    953 
    954  start:
    955 	kevp = kq->kq_kev;
    956 	s = splsched();
    957 	simple_lock(&kq->kq_lock);
    958 	if (kq->kq_count == 0) {
    959 		if (timeout < 0) {
    960 			error = EWOULDBLOCK;
    961 			simple_unlock(&kq->kq_lock);
    962 		} else {
    963 			kq->kq_state |= KQ_SLEEP;
    964 			error = ltsleep(kq, PSOCK | PCATCH | PNORELOCK,
    965 					"kqread", timeout, &kq->kq_lock);
    966 		}
    967 		splx(s);
    968 		if (error == 0)
    969 			goto retry;
    970 		/* don't restart after signals... */
    971 		if (error == ERESTART)
    972 			error = EINTR;
    973 		else if (error == EWOULDBLOCK)
    974 			error = 0;
    975 		goto done;
    976 	}
    977 
    978 	/* mark end of knote list */
    979 	TAILQ_INSERT_TAIL(&kq->kq_head, marker, kn_tqe);
    980 	simple_unlock(&kq->kq_lock);
    981 
    982 	while (count) {				/* while user wants data ... */
    983 		simple_lock(&kq->kq_lock);
    984 		kn = TAILQ_FIRST(&kq->kq_head);	/* get next knote */
    985 		TAILQ_REMOVE(&kq->kq_head, kn, kn_tqe);
    986 		if (kn == marker) {		/* if it's our marker, stop */
    987 			/* What if it's some else's marker? */
    988 			simple_unlock(&kq->kq_lock);
    989 			splx(s);
    990 			if (count == maxevents)
    991 				goto retry;
    992 			goto done;
    993 		}
    994 		kq->kq_count--;
    995 		simple_unlock(&kq->kq_lock);
    996 
    997 		if (kn->kn_status & KN_DISABLED) {
    998 			/* don't want disabled events */
    999 			kn->kn_status &= ~KN_QUEUED;
   1000 			continue;
   1001 		}
   1002 		if ((kn->kn_flags & EV_ONESHOT) == 0 &&
   1003 		    kn->kn_fop->f_event(kn, 0) == 0) {
   1004 			/*
   1005 			 * non-ONESHOT event that hasn't
   1006 			 * triggered again, so de-queue.
   1007 			 */
   1008 			kn->kn_status &= ~(KN_QUEUED | KN_ACTIVE);
   1009 			continue;
   1010 		}
   1011 		*kevp = kn->kn_kevent;
   1012 		kevp++;
   1013 		nkev++;
   1014 		if (kn->kn_flags & EV_ONESHOT) {
   1015 			/* delete ONESHOT events after retrieval */
   1016 			kn->kn_status &= ~KN_QUEUED;
   1017 			splx(s);
   1018 			kn->kn_fop->f_detach(kn);
   1019 			knote_drop(kn, l, p->p_fd);
   1020 			s = splsched();
   1021 		} else if (kn->kn_flags & EV_CLEAR) {
   1022 			/* clear state after retrieval */
   1023 			kn->kn_data = 0;
   1024 			kn->kn_fflags = 0;
   1025 			kn->kn_status &= ~(KN_QUEUED | KN_ACTIVE);
   1026 		} else {
   1027 			/* add event back on list */
   1028 			simple_lock(&kq->kq_lock);
   1029 			TAILQ_INSERT_TAIL(&kq->kq_head, kn, kn_tqe);
   1030 			kq->kq_count++;
   1031 			simple_unlock(&kq->kq_lock);
   1032 		}
   1033 		count--;
   1034 		if (nkev == KQ_NEVENTS) {
   1035 			/* do copyouts in KQ_NEVENTS chunks */
   1036 			splx(s);
   1037 			error = (*keops->keo_put_events)(keops->keo_private,
   1038 			    &kq->kq_kev[0], ulistp, nevents, nkev);
   1039 			nevents += nkev;
   1040 			nkev = 0;
   1041 			kevp = kq->kq_kev;
   1042 			s = splsched();
   1043 			if (error)
   1044 				break;
   1045 		}
   1046 	}
   1047 
   1048 	/* remove marker */
   1049 	simple_lock(&kq->kq_lock);
   1050 	TAILQ_REMOVE(&kq->kq_head, marker, kn_tqe);
   1051 	simple_unlock(&kq->kq_lock);
   1052 	splx(s);
   1053  done:
   1054 	if (marker)
   1055 		FREE(marker, M_KEVENT);
   1056 
   1057 	if (nkev != 0)
   1058 		/* copyout remaining events */
   1059 		error = (*keops->keo_put_events)(keops->keo_private,
   1060 		    &kq->kq_kev[0], ulistp, nevents, nkev);
   1061 	*retval = maxevents - count;
   1062 
   1063 	return (error);
   1064 }
   1065 
   1066 /*
   1067  * struct fileops read method for a kqueue descriptor.
   1068  * Not implemented.
   1069  * XXX: This could be expanded to call kqueue_scan, if desired.
   1070  */
   1071 /*ARGSUSED*/
   1072 static int
   1073 kqueue_read(struct file *fp, off_t *offset, struct uio *uio, kauth_cred_t cred,
   1074     int flags)
   1075 {
   1076 
   1077 	return (ENXIO);
   1078 }
   1079 
   1080 /*
   1081  * struct fileops write method for a kqueue descriptor.
   1082  * Not implemented.
   1083  */
   1084 /*ARGSUSED*/
   1085 static int
   1086 kqueue_write(struct file *fp, off_t *offset, struct uio *uio, kauth_cred_t cred,
   1087     int flags)
   1088 {
   1089 
   1090 	return (ENXIO);
   1091 }
   1092 
   1093 /*
   1094  * struct fileops ioctl method for a kqueue descriptor.
   1095  *
   1096  * Two ioctls are currently supported. They both use struct kfilter_mapping:
   1097  *	KFILTER_BYNAME		find name for filter, and return result in
   1098  *				name, which is of size len.
   1099  *	KFILTER_BYFILTER	find filter for name. len is ignored.
   1100  */
   1101 /*ARGSUSED*/
   1102 static int
   1103 kqueue_ioctl(struct file *fp, u_long com, void *data, struct lwp *l)
   1104 {
   1105 	struct kfilter_mapping	*km;
   1106 	const struct kfilter	*kfilter;
   1107 	char			*name;
   1108 	int			error;
   1109 
   1110 	km = (struct kfilter_mapping *)data;
   1111 	error = 0;
   1112 
   1113 	switch (com) {
   1114 	case KFILTER_BYFILTER:	/* convert filter -> name */
   1115 		kfilter = kfilter_byfilter(km->filter);
   1116 		if (kfilter != NULL)
   1117 			error = copyoutstr(kfilter->name, km->name, km->len,
   1118 			    NULL);
   1119 		else
   1120 			error = ENOENT;
   1121 		break;
   1122 
   1123 	case KFILTER_BYNAME:	/* convert name -> filter */
   1124 		MALLOC(name, char *, KFILTER_MAXNAME, M_KEVENT, M_WAITOK);
   1125 		error = copyinstr(km->name, name, KFILTER_MAXNAME, NULL);
   1126 		if (error) {
   1127 			FREE(name, M_KEVENT);
   1128 			break;
   1129 		}
   1130 		kfilter = kfilter_byname(name);
   1131 		if (kfilter != NULL)
   1132 			km->filter = kfilter->filter;
   1133 		else
   1134 			error = ENOENT;
   1135 		FREE(name, M_KEVENT);
   1136 		break;
   1137 
   1138 	default:
   1139 		error = ENOTTY;
   1140 
   1141 	}
   1142 	return (error);
   1143 }
   1144 
   1145 /*
   1146  * struct fileops fcntl method for a kqueue descriptor.
   1147  * Not implemented.
   1148  */
   1149 /*ARGSUSED*/
   1150 static int
   1151 kqueue_fcntl(struct file *fp, u_int com, void *data, struct lwp *l)
   1152 {
   1153 
   1154 	return (ENOTTY);
   1155 }
   1156 
   1157 /*
   1158  * struct fileops poll method for a kqueue descriptor.
   1159  * Determine if kqueue has events pending.
   1160  */
   1161 static int
   1162 kqueue_poll(struct file *fp, int events, struct lwp *l)
   1163 {
   1164 	struct kqueue	*kq;
   1165 	int		revents;
   1166 
   1167 	kq = (struct kqueue *)fp->f_data;
   1168 	revents = 0;
   1169 	if (events & (POLLIN | POLLRDNORM)) {
   1170 		if (kq->kq_count) {
   1171 			revents |= events & (POLLIN | POLLRDNORM);
   1172 		} else {
   1173 			selrecord(l, &kq->kq_sel);
   1174 		}
   1175 	}
   1176 	return (revents);
   1177 }
   1178 
   1179 /*
   1180  * struct fileops stat method for a kqueue descriptor.
   1181  * Returns dummy info, with st_size being number of events pending.
   1182  */
   1183 static int
   1184 kqueue_stat(struct file *fp, struct stat *st, struct lwp *l)
   1185 {
   1186 	struct kqueue	*kq;
   1187 
   1188 	kq = (struct kqueue *)fp->f_data;
   1189 	memset((void *)st, 0, sizeof(*st));
   1190 	st->st_size = kq->kq_count;
   1191 	st->st_blksize = sizeof(struct kevent);
   1192 	st->st_mode = S_IFIFO;
   1193 	return (0);
   1194 }
   1195 
   1196 /*
   1197  * struct fileops close method for a kqueue descriptor.
   1198  * Cleans up kqueue.
   1199  */
   1200 static int
   1201 kqueue_close(struct file *fp, struct lwp *l)
   1202 {
   1203 	struct proc	*p = l->l_proc;
   1204 	struct kqueue	*kq;
   1205 	struct filedesc	*fdp;
   1206 	struct knote	**knp, *kn, *kn0;
   1207 	int		i;
   1208 
   1209 	kq = (struct kqueue *)fp->f_data;
   1210 	fdp = p->p_fd;
   1211 	for (i = 0; i < fdp->fd_knlistsize; i++) {
   1212 		knp = &SLIST_FIRST(&fdp->fd_knlist[i]);
   1213 		kn = *knp;
   1214 		while (kn != NULL) {
   1215 			kn0 = SLIST_NEXT(kn, kn_link);
   1216 			if (kq == kn->kn_kq) {
   1217 				kn->kn_fop->f_detach(kn);
   1218 				FILE_UNUSE(kn->kn_fp, l);
   1219 				pool_put(&knote_pool, kn);
   1220 				*knp = kn0;
   1221 			} else {
   1222 				knp = &SLIST_NEXT(kn, kn_link);
   1223 			}
   1224 			kn = kn0;
   1225 		}
   1226 	}
   1227 	if (fdp->fd_knhashmask != 0) {
   1228 		for (i = 0; i < fdp->fd_knhashmask + 1; i++) {
   1229 			knp = &SLIST_FIRST(&fdp->fd_knhash[i]);
   1230 			kn = *knp;
   1231 			while (kn != NULL) {
   1232 				kn0 = SLIST_NEXT(kn, kn_link);
   1233 				if (kq == kn->kn_kq) {
   1234 					kn->kn_fop->f_detach(kn);
   1235 					/* XXX non-fd release of kn->kn_ptr */
   1236 					pool_put(&knote_pool, kn);
   1237 					*knp = kn0;
   1238 				} else {
   1239 					knp = &SLIST_NEXT(kn, kn_link);
   1240 				}
   1241 				kn = kn0;
   1242 			}
   1243 		}
   1244 	}
   1245 	pool_put(&kqueue_pool, kq);
   1246 	fp->f_data = NULL;
   1247 
   1248 	return (0);
   1249 }
   1250 
   1251 /*
   1252  * wakeup a kqueue
   1253  */
   1254 static void
   1255 kqueue_wakeup(struct kqueue *kq)
   1256 {
   1257 	int s;
   1258 
   1259 	s = splsched();
   1260 	simple_lock(&kq->kq_lock);
   1261 	if (kq->kq_state & KQ_SLEEP) {		/* if currently sleeping ...  */
   1262 		kq->kq_state &= ~KQ_SLEEP;
   1263 		wakeup(kq);			/* ... wakeup */
   1264 	}
   1265 
   1266 	/* Notify select/poll and kevent. */
   1267 	selnotify(&kq->kq_sel, 0);
   1268 	simple_unlock(&kq->kq_lock);
   1269 	splx(s);
   1270 }
   1271 
   1272 /*
   1273  * struct fileops kqfilter method for a kqueue descriptor.
   1274  * Event triggered when monitored kqueue changes.
   1275  */
   1276 /*ARGSUSED*/
   1277 static int
   1278 kqueue_kqfilter(struct file *fp, struct knote *kn)
   1279 {
   1280 	struct kqueue *kq;
   1281 
   1282 	KASSERT(fp == kn->kn_fp);
   1283 	kq = (struct kqueue *)kn->kn_fp->f_data;
   1284 	if (kn->kn_filter != EVFILT_READ)
   1285 		return (1);
   1286 	kn->kn_fop = &kqread_filtops;
   1287 	SLIST_INSERT_HEAD(&kq->kq_sel.sel_klist, kn, kn_selnext);
   1288 	return (0);
   1289 }
   1290 
   1291 
   1292 /*
   1293  * Walk down a list of knotes, activating them if their event has triggered.
   1294  */
   1295 void
   1296 knote(struct klist *list, long hint)
   1297 {
   1298 	struct knote *kn;
   1299 
   1300 	SLIST_FOREACH(kn, list, kn_selnext)
   1301 		if (kn->kn_fop->f_event(kn, hint))
   1302 			KNOTE_ACTIVATE(kn);
   1303 }
   1304 
   1305 /*
   1306  * Remove all knotes from a specified klist
   1307  */
   1308 void
   1309 knote_remove(struct lwp *l, struct klist *list)
   1310 {
   1311 	struct knote *kn;
   1312 
   1313 	while ((kn = SLIST_FIRST(list)) != NULL) {
   1314 		kn->kn_fop->f_detach(kn);
   1315 		knote_drop(kn, l, l->l_proc->p_fd);
   1316 	}
   1317 }
   1318 
   1319 /*
   1320  * Remove all knotes referencing a specified fd
   1321  */
   1322 void
   1323 knote_fdclose(struct lwp *l, int fd)
   1324 {
   1325 	struct filedesc	*fdp;
   1326 	struct klist	*list;
   1327 
   1328 	fdp = l->l_proc->p_fd;
   1329 	list = &fdp->fd_knlist[fd];
   1330 	knote_remove(l, list);
   1331 }
   1332 
   1333 /*
   1334  * Attach a new knote to a file descriptor
   1335  */
   1336 static void
   1337 knote_attach(struct knote *kn, struct filedesc *fdp)
   1338 {
   1339 	struct klist	*list;
   1340 	int		size;
   1341 
   1342 	if (! kn->kn_fop->f_isfd) {
   1343 		/* if knote is not on an fd, store on internal hash table */
   1344 		if (fdp->fd_knhashmask == 0)
   1345 			fdp->fd_knhash = hashinit(KN_HASHSIZE, HASH_LIST,
   1346 			    M_KEVENT, M_WAITOK, &fdp->fd_knhashmask);
   1347 		list = &fdp->fd_knhash[KN_HASH(kn->kn_id, fdp->fd_knhashmask)];
   1348 		goto done;
   1349 	}
   1350 
   1351 	/*
   1352 	 * otherwise, knote is on an fd.
   1353 	 * knotes are stored in fd_knlist indexed by kn->kn_id.
   1354 	 */
   1355 	if (fdp->fd_knlistsize <= kn->kn_id) {
   1356 		/* expand list, it's too small */
   1357 		size = fdp->fd_knlistsize;
   1358 		while (size <= kn->kn_id) {
   1359 			/* grow in KQ_EXTENT chunks */
   1360 			size += KQ_EXTENT;
   1361 		}
   1362 		list = malloc(size * sizeof(struct klist *), M_KEVENT,M_WAITOK);
   1363 		if (fdp->fd_knlist) {
   1364 			/* copy existing knlist */
   1365 			memcpy((void *)list, (void *)fdp->fd_knlist,
   1366 			    fdp->fd_knlistsize * sizeof(struct klist *));
   1367 		}
   1368 		/*
   1369 		 * Zero new memory. Stylistically, SLIST_INIT() should be
   1370 		 * used here, but that does same thing as the memset() anyway.
   1371 		 */
   1372 		memset(&list[fdp->fd_knlistsize], 0,
   1373 		    (size - fdp->fd_knlistsize) * sizeof(struct klist *));
   1374 
   1375 		/* switch to new knlist */
   1376 		if (fdp->fd_knlist != NULL)
   1377 			free(fdp->fd_knlist, M_KEVENT);
   1378 		fdp->fd_knlistsize = size;
   1379 		fdp->fd_knlist = list;
   1380 	}
   1381 
   1382 	/* get list head for this fd */
   1383 	list = &fdp->fd_knlist[kn->kn_id];
   1384  done:
   1385 	/* add new knote */
   1386 	SLIST_INSERT_HEAD(list, kn, kn_link);
   1387 	kn->kn_status = 0;
   1388 }
   1389 
   1390 /*
   1391  * Drop knote.
   1392  * Should be called at spl == 0, since we don't want to hold spl
   1393  * while calling FILE_UNUSE and free.
   1394  */
   1395 static void
   1396 knote_drop(struct knote *kn, struct lwp *l, struct filedesc *fdp)
   1397 {
   1398 	struct klist	*list;
   1399 
   1400 	if (kn->kn_fop->f_isfd)
   1401 		list = &fdp->fd_knlist[kn->kn_id];
   1402 	else
   1403 		list = &fdp->fd_knhash[KN_HASH(kn->kn_id, fdp->fd_knhashmask)];
   1404 
   1405 	SLIST_REMOVE(list, kn, knote, kn_link);
   1406 	if (kn->kn_status & KN_QUEUED)
   1407 		knote_dequeue(kn);
   1408 	if (kn->kn_fop->f_isfd)
   1409 		FILE_UNUSE(kn->kn_fp, l);
   1410 	pool_put(&knote_pool, kn);
   1411 }
   1412 
   1413 
   1414 /*
   1415  * Queue new event for knote.
   1416  */
   1417 static void
   1418 knote_enqueue(struct knote *kn)
   1419 {
   1420 	struct kqueue	*kq;
   1421 	int		s;
   1422 
   1423 	kq = kn->kn_kq;
   1424 	KASSERT((kn->kn_status & KN_QUEUED) == 0);
   1425 
   1426 	s = splsched();
   1427 	simple_lock(&kq->kq_lock);
   1428 	TAILQ_INSERT_TAIL(&kq->kq_head, kn, kn_tqe);
   1429 	kn->kn_status |= KN_QUEUED;
   1430 	kq->kq_count++;
   1431 	simple_unlock(&kq->kq_lock);
   1432 	splx(s);
   1433 	kqueue_wakeup(kq);
   1434 }
   1435 
   1436 /*
   1437  * Dequeue event for knote.
   1438  */
   1439 static void
   1440 knote_dequeue(struct knote *kn)
   1441 {
   1442 	struct kqueue	*kq;
   1443 	int		s;
   1444 
   1445 	KASSERT(kn->kn_status & KN_QUEUED);
   1446 	kq = kn->kn_kq;
   1447 
   1448 	s = splsched();
   1449 	simple_lock(&kq->kq_lock);
   1450 	TAILQ_REMOVE(&kq->kq_head, kn, kn_tqe);
   1451 	kn->kn_status &= ~KN_QUEUED;
   1452 	kq->kq_count--;
   1453 	simple_unlock(&kq->kq_lock);
   1454 	splx(s);
   1455 }
   1456