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kern_event.c revision 1.142
      1  1.142   thorpej /*	$NetBSD: kern_event.c,v 1.142 2022/07/13 03:23:07 thorpej Exp $	*/
      2   1.49        ad 
      3   1.49        ad /*-
      4  1.129   thorpej  * Copyright (c) 2008, 2009, 2021 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  1.130   thorpej #ifdef _KERNEL_OPT
     62  1.129   thorpej #include "opt_ddb.h"
     63  1.130   thorpej #endif /* _KERNEL_OPT */
     64  1.129   thorpej 
     65   1.14  jdolecek #include <sys/cdefs.h>
     66  1.142   thorpej __KERNEL_RCSID(0, "$NetBSD: kern_event.c,v 1.142 2022/07/13 03:23:07 thorpej Exp $");
     67    1.1     lukem 
     68    1.1     lukem #include <sys/param.h>
     69    1.1     lukem #include <sys/systm.h>
     70    1.1     lukem #include <sys/kernel.h>
     71   1.86  christos #include <sys/wait.h>
     72    1.1     lukem #include <sys/proc.h>
     73    1.1     lukem #include <sys/file.h>
     74    1.3  jdolecek #include <sys/select.h>
     75    1.1     lukem #include <sys/queue.h>
     76    1.1     lukem #include <sys/event.h>
     77    1.1     lukem #include <sys/eventvar.h>
     78    1.1     lukem #include <sys/poll.h>
     79   1.49        ad #include <sys/kmem.h>
     80    1.1     lukem #include <sys/stat.h>
     81    1.3  jdolecek #include <sys/filedesc.h>
     82    1.3  jdolecek #include <sys/syscallargs.h>
     83   1.27      elad #include <sys/kauth.h>
     84   1.40        ad #include <sys/conf.h>
     85   1.49        ad #include <sys/atomic.h>
     86    1.1     lukem 
     87   1.49        ad static int	kqueue_scan(file_t *, size_t, struct kevent *,
     88   1.49        ad 			    const struct timespec *, register_t *,
     89   1.49        ad 			    const struct kevent_ops *, struct kevent *,
     90   1.49        ad 			    size_t);
     91   1.49        ad static int	kqueue_ioctl(file_t *, u_long, void *);
     92   1.49        ad static int	kqueue_fcntl(file_t *, u_int, void *);
     93   1.49        ad static int	kqueue_poll(file_t *, int);
     94   1.49        ad static int	kqueue_kqfilter(file_t *, struct knote *);
     95   1.49        ad static int	kqueue_stat(file_t *, struct stat *);
     96   1.49        ad static int	kqueue_close(file_t *);
     97  1.118  jdolecek static void	kqueue_restart(file_t *);
     98   1.49        ad static int	kqueue_register(struct kqueue *, struct kevent *);
     99   1.49        ad static void	kqueue_doclose(struct kqueue *, struct klist *, int);
    100   1.49        ad 
    101   1.49        ad static void	knote_detach(struct knote *, filedesc_t *fdp, bool);
    102   1.49        ad static void	knote_enqueue(struct knote *);
    103   1.49        ad static void	knote_activate(struct knote *);
    104  1.133   thorpej static void	knote_activate_locked(struct knote *);
    105  1.136   thorpej static void	knote_deactivate_locked(struct knote *);
    106   1.49        ad 
    107   1.49        ad static void	filt_kqdetach(struct knote *);
    108   1.49        ad static int	filt_kqueue(struct knote *, long hint);
    109   1.49        ad static int	filt_procattach(struct knote *);
    110   1.49        ad static void	filt_procdetach(struct knote *);
    111   1.49        ad static int	filt_proc(struct knote *, long hint);
    112   1.49        ad static int	filt_fileattach(struct knote *);
    113   1.49        ad static void	filt_timerexpire(void *x);
    114   1.49        ad static int	filt_timerattach(struct knote *);
    115   1.49        ad static void	filt_timerdetach(struct knote *);
    116   1.49        ad static int	filt_timer(struct knote *, long hint);
    117  1.136   thorpej static int	filt_timertouch(struct knote *, struct kevent *, long type);
    118  1.108  christos static int	filt_userattach(struct knote *);
    119  1.108  christos static void	filt_userdetach(struct knote *);
    120  1.108  christos static int	filt_user(struct knote *, long hint);
    121  1.135   thorpej static int	filt_usertouch(struct knote *, struct kevent *, long type);
    122    1.1     lukem 
    123   1.21  christos static const struct fileops kqueueops = {
    124  1.101  christos 	.fo_name = "kqueue",
    125   1.64        ad 	.fo_read = (void *)enxio,
    126   1.64        ad 	.fo_write = (void *)enxio,
    127   1.64        ad 	.fo_ioctl = kqueue_ioctl,
    128   1.64        ad 	.fo_fcntl = kqueue_fcntl,
    129   1.64        ad 	.fo_poll = kqueue_poll,
    130   1.64        ad 	.fo_stat = kqueue_stat,
    131   1.64        ad 	.fo_close = kqueue_close,
    132   1.64        ad 	.fo_kqfilter = kqueue_kqfilter,
    133  1.118  jdolecek 	.fo_restart = kqueue_restart,
    134    1.1     lukem };
    135    1.1     lukem 
    136   1.96      maya static const struct filterops kqread_filtops = {
    137  1.123   thorpej 	.f_flags = FILTEROP_ISFD | FILTEROP_MPSAFE,
    138   1.96      maya 	.f_attach = NULL,
    139   1.96      maya 	.f_detach = filt_kqdetach,
    140   1.96      maya 	.f_event = filt_kqueue,
    141   1.96      maya };
    142   1.96      maya 
    143   1.96      maya static const struct filterops proc_filtops = {
    144  1.129   thorpej 	.f_flags = FILTEROP_MPSAFE,
    145   1.96      maya 	.f_attach = filt_procattach,
    146   1.96      maya 	.f_detach = filt_procdetach,
    147   1.96      maya 	.f_event = filt_proc,
    148   1.96      maya };
    149   1.96      maya 
    150  1.122   thorpej /*
    151  1.122   thorpej  * file_filtops is not marked MPSAFE because it's going to call
    152  1.122   thorpej  * fileops::fo_kqfilter(), which might not be.  That function,
    153  1.122   thorpej  * however, will override the knote's filterops, and thus will
    154  1.122   thorpej  * inherit the MPSAFE-ness of the back-end at that time.
    155  1.122   thorpej  */
    156   1.96      maya static const struct filterops file_filtops = {
    157  1.121   thorpej 	.f_flags = FILTEROP_ISFD,
    158   1.96      maya 	.f_attach = filt_fileattach,
    159   1.96      maya 	.f_detach = NULL,
    160   1.96      maya 	.f_event = NULL,
    161   1.96      maya };
    162   1.96      maya 
    163   1.96      maya static const struct filterops timer_filtops = {
    164  1.125   thorpej 	.f_flags = FILTEROP_MPSAFE,
    165   1.96      maya 	.f_attach = filt_timerattach,
    166   1.96      maya 	.f_detach = filt_timerdetach,
    167   1.96      maya 	.f_event = filt_timer,
    168  1.136   thorpej 	.f_touch = filt_timertouch,
    169   1.96      maya };
    170    1.1     lukem 
    171  1.108  christos static const struct filterops user_filtops = {
    172  1.123   thorpej 	.f_flags = FILTEROP_MPSAFE,
    173  1.108  christos 	.f_attach = filt_userattach,
    174  1.108  christos 	.f_detach = filt_userdetach,
    175  1.108  christos 	.f_event = filt_user,
    176  1.108  christos 	.f_touch = filt_usertouch,
    177  1.108  christos };
    178  1.108  christos 
    179   1.49        ad static u_int	kq_ncallouts = 0;
    180    1.8  jdolecek static int	kq_calloutmax = (4 * 1024);
    181    1.7   thorpej 
    182    1.1     lukem #define	KN_HASHSIZE		64		/* XXX should be tunable */
    183    1.3  jdolecek #define	KN_HASH(val, mask)	(((val) ^ (val >> 8)) & (mask))
    184    1.1     lukem 
    185  1.124   thorpej extern const struct filterops fs_filtops;	/* vfs_syscalls.c */
    186  1.124   thorpej extern const struct filterops sig_filtops;	/* kern_sig.c */
    187    1.1     lukem 
    188    1.1     lukem /*
    189    1.1     lukem  * Table for for all system-defined filters.
    190    1.3  jdolecek  * These should be listed in the numeric order of the EVFILT_* defines.
    191    1.3  jdolecek  * If filtops is NULL, the filter isn't implemented in NetBSD.
    192    1.3  jdolecek  * End of list is when name is NULL.
    193   1.93  riastrad  *
    194   1.49        ad  * Note that 'refcnt' is meaningless for built-in filters.
    195    1.1     lukem  */
    196    1.3  jdolecek struct kfilter {
    197   1.49        ad 	const char	*name;		/* name of filter */
    198   1.49        ad 	uint32_t	filter;		/* id of filter */
    199   1.49        ad 	unsigned	refcnt;		/* reference count */
    200    1.3  jdolecek 	const struct filterops *filtops;/* operations for filter */
    201   1.49        ad 	size_t		namelen;	/* length of name string */
    202    1.3  jdolecek };
    203    1.3  jdolecek 
    204   1.49        ad /* System defined filters */
    205   1.49        ad static struct kfilter sys_kfilters[] = {
    206   1.49        ad 	{ "EVFILT_READ",	EVFILT_READ,	0, &file_filtops, 0 },
    207   1.49        ad 	{ "EVFILT_WRITE",	EVFILT_WRITE,	0, &file_filtops, 0, },
    208   1.49        ad 	{ "EVFILT_AIO",		EVFILT_AIO,	0, NULL, 0 },
    209   1.49        ad 	{ "EVFILT_VNODE",	EVFILT_VNODE,	0, &file_filtops, 0 },
    210   1.49        ad 	{ "EVFILT_PROC",	EVFILT_PROC,	0, &proc_filtops, 0 },
    211   1.49        ad 	{ "EVFILT_SIGNAL",	EVFILT_SIGNAL,	0, &sig_filtops, 0 },
    212   1.49        ad 	{ "EVFILT_TIMER",	EVFILT_TIMER,	0, &timer_filtops, 0 },
    213  1.102  christos 	{ "EVFILT_FS",		EVFILT_FS,	0, &fs_filtops, 0 },
    214  1.108  christos 	{ "EVFILT_USER",	EVFILT_USER,	0, &user_filtops, 0 },
    215  1.137   thorpej 	{ "EVFILT_EMPTY",	EVFILT_EMPTY,	0, &file_filtops, 0 },
    216   1.49        ad 	{ NULL,			0,		0, NULL, 0 },
    217    1.1     lukem };
    218    1.1     lukem 
    219   1.49        ad /* User defined kfilters */
    220    1.3  jdolecek static struct kfilter	*user_kfilters;		/* array */
    221    1.3  jdolecek static int		user_kfilterc;		/* current offset */
    222    1.3  jdolecek static int		user_kfiltermaxc;	/* max size so far */
    223   1.49        ad static size_t		user_kfiltersz;		/* size of allocated memory */
    224   1.49        ad 
    225   1.95  riastrad /*
    226   1.95  riastrad  * Global Locks.
    227   1.95  riastrad  *
    228   1.95  riastrad  * Lock order:
    229   1.95  riastrad  *
    230   1.95  riastrad  *	kqueue_filter_lock
    231   1.95  riastrad  *	-> kn_kq->kq_fdp->fd_lock
    232  1.125   thorpej  *	-> object lock (e.g., device driver lock, &c.)
    233   1.95  riastrad  *	-> kn_kq->kq_lock
    234   1.95  riastrad  *
    235   1.95  riastrad  * Locking rules:
    236   1.95  riastrad  *
    237   1.95  riastrad  *	f_attach: fdp->fd_lock, KERNEL_LOCK
    238   1.95  riastrad  *	f_detach: fdp->fd_lock, KERNEL_LOCK
    239   1.95  riastrad  *	f_event(!NOTE_SUBMIT) via kevent: fdp->fd_lock, _no_ object lock
    240   1.95  riastrad  *	f_event via knote: whatever caller guarantees
    241   1.95  riastrad  *		Typically,	f_event(NOTE_SUBMIT) via knote: object lock
    242   1.95  riastrad  *				f_event(!NOTE_SUBMIT) via knote: nothing,
    243   1.95  riastrad  *					acquires/releases object lock inside.
    244  1.129   thorpej  *
    245  1.129   thorpej  * Locking rules when detaching knotes:
    246  1.129   thorpej  *
    247  1.129   thorpej  * There are some situations where knote submission may require dropping
    248  1.129   thorpej  * locks (see knote_proc_fork()).  In order to support this, it's possible
    249  1.129   thorpej  * to mark a knote as being 'in-flux'.  Such a knote is guaranteed not to
    250  1.129   thorpej  * be detached while it remains in-flux.  Because it will not be detached,
    251  1.129   thorpej  * locks can be dropped so e.g. memory can be allocated, locks on other
    252  1.129   thorpej  * data structures can be acquired, etc.  During this time, any attempt to
    253  1.129   thorpej  * detach an in-flux knote must wait until the knote is no longer in-flux.
    254  1.129   thorpej  * When this happens, the knote is marked for death (KN_WILLDETACH) and the
    255  1.129   thorpej  * LWP who gets to finish the detach operation is recorded in the knote's
    256  1.129   thorpej  * 'udata' field (which is no longer required for its original purpose once
    257  1.129   thorpej  * a knote is so marked).  Code paths that lead to knote_detach() must ensure
    258  1.129   thorpej  * that their LWP is the one tasked with its final demise after waiting for
    259  1.129   thorpej  * the in-flux status of the knote to clear.  Note that once a knote is
    260  1.129   thorpej  * marked KN_WILLDETACH, no code paths may put it into an in-flux state.
    261  1.129   thorpej  *
    262  1.129   thorpej  * Once the special circumstances have been handled, the locks are re-
    263  1.129   thorpej  * acquired in the proper order (object lock -> kq_lock), the knote taken
    264  1.129   thorpej  * out of flux, and any waiters are notified.  Because waiters must have
    265  1.129   thorpej  * also dropped *their* locks in order to safely block, they must re-
    266  1.129   thorpej  * validate all of their assumptions; see knote_detach_quiesce().  See also
    267  1.129   thorpej  * the kqueue_register() (EV_ADD, EV_DELETE) and kqueue_scan() (EV_ONESHOT)
    268  1.129   thorpej  * cases.
    269  1.129   thorpej  *
    270  1.129   thorpej  * When kqueue_scan() encounters an in-flux knote, the situation is
    271  1.129   thorpej  * treated like another LWP's list marker.
    272  1.129   thorpej  *
    273  1.129   thorpej  * LISTEN WELL: It is important to not hold knotes in flux for an
    274  1.129   thorpej  * extended period of time! In-flux knotes effectively block any
    275  1.129   thorpej  * progress of the kqueue_scan() operation.  Any code paths that place
    276  1.129   thorpej  * knotes in-flux should be careful to not block for indefinite periods
    277  1.129   thorpej  * of time, such as for memory allocation (i.e. KM_NOSLEEP is OK, but
    278  1.129   thorpej  * KM_SLEEP is not).
    279   1.95  riastrad  */
    280   1.49        ad static krwlock_t	kqueue_filter_lock;	/* lock on filter lists */
    281   1.49        ad 
    282  1.129   thorpej #define	KQ_FLUX_WAIT(kq)	(void)cv_wait(&kq->kq_cv, &kq->kq_lock)
    283  1.129   thorpej #define	KQ_FLUX_WAKEUP(kq)	cv_broadcast(&kq->kq_cv)
    284  1.129   thorpej 
    285  1.129   thorpej static inline bool
    286  1.129   thorpej kn_in_flux(struct knote *kn)
    287  1.129   thorpej {
    288  1.129   thorpej 	KASSERT(mutex_owned(&kn->kn_kq->kq_lock));
    289  1.129   thorpej 	return kn->kn_influx != 0;
    290  1.129   thorpej }
    291  1.129   thorpej 
    292  1.129   thorpej static inline bool
    293  1.129   thorpej kn_enter_flux(struct knote *kn)
    294  1.129   thorpej {
    295  1.129   thorpej 	KASSERT(mutex_owned(&kn->kn_kq->kq_lock));
    296  1.129   thorpej 
    297  1.129   thorpej 	if (kn->kn_status & KN_WILLDETACH) {
    298  1.129   thorpej 		return false;
    299  1.129   thorpej 	}
    300  1.129   thorpej 
    301  1.129   thorpej 	KASSERT(kn->kn_influx < UINT_MAX);
    302  1.129   thorpej 	kn->kn_influx++;
    303  1.129   thorpej 
    304  1.129   thorpej 	return true;
    305  1.129   thorpej }
    306  1.129   thorpej 
    307  1.129   thorpej static inline bool
    308  1.129   thorpej kn_leave_flux(struct knote *kn)
    309  1.129   thorpej {
    310  1.129   thorpej 	KASSERT(mutex_owned(&kn->kn_kq->kq_lock));
    311  1.129   thorpej 	KASSERT(kn->kn_influx > 0);
    312  1.129   thorpej 	kn->kn_influx--;
    313  1.129   thorpej 	return kn->kn_influx == 0;
    314  1.129   thorpej }
    315  1.129   thorpej 
    316  1.129   thorpej static void
    317  1.129   thorpej kn_wait_flux(struct knote *kn, bool can_loop)
    318  1.129   thorpej {
    319  1.129   thorpej 	bool loop;
    320  1.129   thorpej 
    321  1.129   thorpej 	KASSERT(mutex_owned(&kn->kn_kq->kq_lock));
    322  1.129   thorpej 
    323  1.129   thorpej 	/*
    324  1.129   thorpej 	 * It may not be safe for us to touch the knote again after
    325  1.129   thorpej 	 * dropping the kq_lock.  The caller has let us know in
    326  1.129   thorpej 	 * 'can_loop'.
    327  1.129   thorpej 	 */
    328  1.129   thorpej 	for (loop = true; loop && kn->kn_influx != 0; loop = can_loop) {
    329  1.129   thorpej 		KQ_FLUX_WAIT(kn->kn_kq);
    330  1.129   thorpej 	}
    331  1.129   thorpej }
    332  1.129   thorpej 
    333  1.129   thorpej #define	KNOTE_WILLDETACH(kn)						\
    334  1.129   thorpej do {									\
    335  1.129   thorpej 	(kn)->kn_status |= KN_WILLDETACH;				\
    336  1.129   thorpej 	(kn)->kn_kevent.udata = curlwp;					\
    337  1.129   thorpej } while (/*CONSTCOND*/0)
    338  1.129   thorpej 
    339  1.129   thorpej /*
    340  1.129   thorpej  * Wait until the specified knote is in a quiescent state and
    341  1.129   thorpej  * safe to detach.  Returns true if we potentially blocked (and
    342  1.129   thorpej  * thus dropped our locks).
    343  1.129   thorpej  */
    344  1.129   thorpej static bool
    345  1.129   thorpej knote_detach_quiesce(struct knote *kn)
    346  1.129   thorpej {
    347  1.129   thorpej 	struct kqueue *kq = kn->kn_kq;
    348  1.129   thorpej 	filedesc_t *fdp = kq->kq_fdp;
    349  1.129   thorpej 
    350  1.129   thorpej 	KASSERT(mutex_owned(&fdp->fd_lock));
    351  1.129   thorpej 
    352  1.129   thorpej 	mutex_spin_enter(&kq->kq_lock);
    353  1.129   thorpej 	/*
    354  1.129   thorpej 	 * There are two cases where we might see KN_WILLDETACH here:
    355  1.129   thorpej 	 *
    356  1.129   thorpej 	 * 1. Someone else has already started detaching the knote but
    357  1.129   thorpej 	 *    had to wait for it to settle first.
    358  1.129   thorpej 	 *
    359  1.129   thorpej 	 * 2. We had to wait for it to settle, and had to come back
    360  1.129   thorpej 	 *    around after re-acquiring the locks.
    361  1.129   thorpej 	 *
    362  1.129   thorpej 	 * When KN_WILLDETACH is set, we also set the LWP that claimed
    363  1.129   thorpej 	 * the prize of finishing the detach in the 'udata' field of the
    364  1.129   thorpej 	 * knote (which will never be used again for its usual purpose
    365  1.129   thorpej 	 * once the note is in this state).  If it doesn't point to us,
    366  1.129   thorpej 	 * we must drop the locks and let them in to finish the job.
    367  1.129   thorpej 	 *
    368  1.129   thorpej 	 * Otherwise, once we have claimed the knote for ourselves, we
    369  1.129   thorpej 	 * can finish waiting for it to settle.  The is the only scenario
    370  1.129   thorpej 	 * where touching a detaching knote is safe after dropping the
    371  1.129   thorpej 	 * locks.
    372  1.129   thorpej 	 */
    373  1.129   thorpej 	if ((kn->kn_status & KN_WILLDETACH) != 0 &&
    374  1.129   thorpej 	    kn->kn_kevent.udata != curlwp) {
    375  1.129   thorpej 		/*
    376  1.129   thorpej 		 * N.B. it is NOT safe for us to touch the knote again
    377  1.129   thorpej 		 * after dropping the locks here.  The caller must go
    378  1.129   thorpej 		 * back around and re-validate everything.  However, if
    379  1.129   thorpej 		 * the knote is in-flux, we want to block to minimize
    380  1.129   thorpej 		 * busy-looping.
    381  1.129   thorpej 		 */
    382  1.129   thorpej 		mutex_exit(&fdp->fd_lock);
    383  1.129   thorpej 		if (kn_in_flux(kn)) {
    384  1.129   thorpej 			kn_wait_flux(kn, false);
    385  1.129   thorpej 			mutex_spin_exit(&kq->kq_lock);
    386  1.129   thorpej 			return true;
    387  1.129   thorpej 		}
    388  1.129   thorpej 		mutex_spin_exit(&kq->kq_lock);
    389  1.129   thorpej 		preempt_point();
    390  1.129   thorpej 		return true;
    391  1.129   thorpej 	}
    392  1.129   thorpej 	/*
    393  1.129   thorpej 	 * If we get here, we know that we will be claiming the
    394  1.129   thorpej 	 * detach responsibilies, or that we already have and
    395  1.129   thorpej 	 * this is the second attempt after re-validation.
    396  1.129   thorpej 	 */
    397  1.129   thorpej 	KASSERT((kn->kn_status & KN_WILLDETACH) == 0 ||
    398  1.129   thorpej 		kn->kn_kevent.udata == curlwp);
    399  1.129   thorpej 	/*
    400  1.129   thorpej 	 * Similarly, if we get here, either we are just claiming it
    401  1.129   thorpej 	 * and may have to wait for it to settle, or if this is the
    402  1.129   thorpej 	 * second attempt after re-validation that no other code paths
    403  1.129   thorpej 	 * have put it in-flux.
    404  1.129   thorpej 	 */
    405  1.129   thorpej 	KASSERT((kn->kn_status & KN_WILLDETACH) == 0 ||
    406  1.129   thorpej 		kn_in_flux(kn) == false);
    407  1.129   thorpej 	KNOTE_WILLDETACH(kn);
    408  1.129   thorpej 	if (kn_in_flux(kn)) {
    409  1.129   thorpej 		mutex_exit(&fdp->fd_lock);
    410  1.129   thorpej 		kn_wait_flux(kn, true);
    411  1.129   thorpej 		/*
    412  1.129   thorpej 		 * It is safe for us to touch the knote again after
    413  1.129   thorpej 		 * dropping the locks, but the caller must still
    414  1.129   thorpej 		 * re-validate everything because other aspects of
    415  1.129   thorpej 		 * the environment may have changed while we blocked.
    416  1.129   thorpej 		 */
    417  1.129   thorpej 		KASSERT(kn_in_flux(kn) == false);
    418  1.129   thorpej 		mutex_spin_exit(&kq->kq_lock);
    419  1.129   thorpej 		return true;
    420  1.129   thorpej 	}
    421  1.129   thorpej 	mutex_spin_exit(&kq->kq_lock);
    422  1.129   thorpej 
    423  1.129   thorpej 	return false;
    424  1.129   thorpej }
    425  1.129   thorpej 
    426  1.142   thorpej static inline struct knote *
    427  1.142   thorpej knote_alloc(bool sleepok)
    428  1.142   thorpej {
    429  1.142   thorpej 	struct knote *kn;
    430  1.142   thorpej 
    431  1.142   thorpej 	kn = kmem_zalloc(sizeof(*kn), sleepok ? KM_SLEEP : KM_NOSLEEP);
    432  1.142   thorpej 
    433  1.142   thorpej 	return kn;
    434  1.142   thorpej }
    435  1.142   thorpej 
    436  1.142   thorpej static inline void
    437  1.142   thorpej knote_free(struct knote *kn)
    438  1.142   thorpej {
    439  1.142   thorpej 	kmem_free(kn, sizeof(*kn));
    440  1.142   thorpej }
    441  1.142   thorpej 
    442  1.122   thorpej static int
    443  1.122   thorpej filter_attach(struct knote *kn)
    444  1.122   thorpej {
    445  1.122   thorpej 	int rv;
    446  1.122   thorpej 
    447  1.122   thorpej 	KASSERT(kn->kn_fop != NULL);
    448  1.122   thorpej 	KASSERT(kn->kn_fop->f_attach != NULL);
    449  1.122   thorpej 
    450  1.122   thorpej 	/*
    451  1.122   thorpej 	 * N.B. that kn->kn_fop may change as the result of calling
    452  1.122   thorpej 	 * f_attach().
    453  1.122   thorpej 	 */
    454  1.122   thorpej 	if (kn->kn_fop->f_flags & FILTEROP_MPSAFE) {
    455  1.122   thorpej 		rv = kn->kn_fop->f_attach(kn);
    456  1.122   thorpej 	} else {
    457  1.122   thorpej 		KERNEL_LOCK(1, NULL);
    458  1.122   thorpej 		rv = kn->kn_fop->f_attach(kn);
    459  1.122   thorpej 		KERNEL_UNLOCK_ONE(NULL);
    460  1.122   thorpej 	}
    461  1.122   thorpej 
    462  1.122   thorpej 	return rv;
    463  1.122   thorpej }
    464  1.122   thorpej 
    465  1.122   thorpej static void
    466  1.122   thorpej filter_detach(struct knote *kn)
    467  1.122   thorpej {
    468  1.122   thorpej 	KASSERT(kn->kn_fop != NULL);
    469  1.122   thorpej 	KASSERT(kn->kn_fop->f_detach != NULL);
    470  1.122   thorpej 
    471  1.122   thorpej 	if (kn->kn_fop->f_flags & FILTEROP_MPSAFE) {
    472  1.122   thorpej 		kn->kn_fop->f_detach(kn);
    473  1.122   thorpej 	} else {
    474  1.122   thorpej 		KERNEL_LOCK(1, NULL);
    475  1.122   thorpej 		kn->kn_fop->f_detach(kn);
    476  1.122   thorpej 		KERNEL_UNLOCK_ONE(NULL);
    477  1.122   thorpej 	}
    478  1.122   thorpej }
    479  1.122   thorpej 
    480  1.122   thorpej static int
    481  1.122   thorpej filter_event(struct knote *kn, long hint)
    482  1.122   thorpej {
    483  1.122   thorpej 	int rv;
    484  1.122   thorpej 
    485  1.122   thorpej 	KASSERT(kn->kn_fop != NULL);
    486  1.122   thorpej 	KASSERT(kn->kn_fop->f_event != NULL);
    487  1.122   thorpej 
    488  1.122   thorpej 	if (kn->kn_fop->f_flags & FILTEROP_MPSAFE) {
    489  1.122   thorpej 		rv = kn->kn_fop->f_event(kn, hint);
    490  1.122   thorpej 	} else {
    491  1.122   thorpej 		KERNEL_LOCK(1, NULL);
    492  1.122   thorpej 		rv = kn->kn_fop->f_event(kn, hint);
    493  1.122   thorpej 		KERNEL_UNLOCK_ONE(NULL);
    494  1.122   thorpej 	}
    495  1.122   thorpej 
    496  1.122   thorpej 	return rv;
    497  1.122   thorpej }
    498  1.122   thorpej 
    499  1.135   thorpej static int
    500  1.122   thorpej filter_touch(struct knote *kn, struct kevent *kev, long type)
    501  1.122   thorpej {
    502  1.135   thorpej 	return kn->kn_fop->f_touch(kn, kev, type);
    503  1.122   thorpej }
    504  1.122   thorpej 
    505   1.66      elad static kauth_listener_t	kqueue_listener;
    506   1.66      elad 
    507   1.66      elad static int
    508   1.66      elad kqueue_listener_cb(kauth_cred_t cred, kauth_action_t action, void *cookie,
    509   1.66      elad     void *arg0, void *arg1, void *arg2, void *arg3)
    510   1.66      elad {
    511   1.66      elad 	struct proc *p;
    512   1.66      elad 	int result;
    513   1.66      elad 
    514   1.66      elad 	result = KAUTH_RESULT_DEFER;
    515   1.66      elad 	p = arg0;
    516   1.66      elad 
    517   1.66      elad 	if (action != KAUTH_PROCESS_KEVENT_FILTER)
    518   1.66      elad 		return result;
    519   1.66      elad 
    520   1.66      elad 	if ((kauth_cred_getuid(p->p_cred) != kauth_cred_getuid(cred) ||
    521   1.66      elad 	    ISSET(p->p_flag, PK_SUGID)))
    522   1.66      elad 		return result;
    523   1.66      elad 
    524   1.66      elad 	result = KAUTH_RESULT_ALLOW;
    525   1.66      elad 
    526   1.66      elad 	return result;
    527   1.66      elad }
    528   1.66      elad 
    529   1.49        ad /*
    530   1.49        ad  * Initialize the kqueue subsystem.
    531   1.49        ad  */
    532   1.49        ad void
    533   1.49        ad kqueue_init(void)
    534   1.49        ad {
    535   1.49        ad 
    536   1.49        ad 	rw_init(&kqueue_filter_lock);
    537   1.66      elad 
    538   1.66      elad 	kqueue_listener = kauth_listen_scope(KAUTH_SCOPE_PROCESS,
    539   1.66      elad 	    kqueue_listener_cb, NULL);
    540   1.49        ad }
    541    1.3  jdolecek 
    542    1.3  jdolecek /*
    543    1.3  jdolecek  * Find kfilter entry by name, or NULL if not found.
    544    1.3  jdolecek  */
    545   1.49        ad static struct kfilter *
    546    1.3  jdolecek kfilter_byname_sys(const char *name)
    547    1.3  jdolecek {
    548    1.3  jdolecek 	int i;
    549    1.3  jdolecek 
    550   1.49        ad 	KASSERT(rw_lock_held(&kqueue_filter_lock));
    551   1.49        ad 
    552    1.3  jdolecek 	for (i = 0; sys_kfilters[i].name != NULL; i++) {
    553    1.3  jdolecek 		if (strcmp(name, sys_kfilters[i].name) == 0)
    554   1.49        ad 			return &sys_kfilters[i];
    555    1.3  jdolecek 	}
    556   1.49        ad 	return NULL;
    557    1.3  jdolecek }
    558    1.3  jdolecek 
    559    1.3  jdolecek static struct kfilter *
    560    1.3  jdolecek kfilter_byname_user(const char *name)
    561    1.3  jdolecek {
    562    1.3  jdolecek 	int i;
    563    1.3  jdolecek 
    564   1.49        ad 	KASSERT(rw_lock_held(&kqueue_filter_lock));
    565   1.49        ad 
    566   1.31     seanb 	/* user filter slots have a NULL name if previously deregistered */
    567   1.31     seanb 	for (i = 0; i < user_kfilterc ; i++) {
    568   1.31     seanb 		if (user_kfilters[i].name != NULL &&
    569    1.3  jdolecek 		    strcmp(name, user_kfilters[i].name) == 0)
    570   1.49        ad 			return &user_kfilters[i];
    571    1.3  jdolecek 	}
    572   1.49        ad 	return NULL;
    573    1.3  jdolecek }
    574    1.3  jdolecek 
    575   1.49        ad static struct kfilter *
    576    1.3  jdolecek kfilter_byname(const char *name)
    577    1.3  jdolecek {
    578   1.49        ad 	struct kfilter *kfilter;
    579   1.49        ad 
    580   1.49        ad 	KASSERT(rw_lock_held(&kqueue_filter_lock));
    581    1.3  jdolecek 
    582    1.3  jdolecek 	if ((kfilter = kfilter_byname_sys(name)) != NULL)
    583   1.49        ad 		return kfilter;
    584    1.3  jdolecek 
    585   1.49        ad 	return kfilter_byname_user(name);
    586    1.3  jdolecek }
    587    1.3  jdolecek 
    588    1.3  jdolecek /*
    589    1.3  jdolecek  * Find kfilter entry by filter id, or NULL if not found.
    590    1.3  jdolecek  * Assumes entries are indexed in filter id order, for speed.
    591    1.3  jdolecek  */
    592   1.49        ad static struct kfilter *
    593    1.3  jdolecek kfilter_byfilter(uint32_t filter)
    594    1.3  jdolecek {
    595   1.49        ad 	struct kfilter *kfilter;
    596   1.49        ad 
    597   1.49        ad 	KASSERT(rw_lock_held(&kqueue_filter_lock));
    598    1.3  jdolecek 
    599    1.3  jdolecek 	if (filter < EVFILT_SYSCOUNT)	/* it's a system filter */
    600    1.3  jdolecek 		kfilter = &sys_kfilters[filter];
    601    1.3  jdolecek 	else if (user_kfilters != NULL &&
    602    1.3  jdolecek 	    filter < EVFILT_SYSCOUNT + user_kfilterc)
    603    1.3  jdolecek 					/* it's a user filter */
    604    1.3  jdolecek 		kfilter = &user_kfilters[filter - EVFILT_SYSCOUNT];
    605    1.3  jdolecek 	else
    606    1.3  jdolecek 		return (NULL);		/* out of range */
    607    1.3  jdolecek 	KASSERT(kfilter->filter == filter);	/* sanity check! */
    608    1.3  jdolecek 	return (kfilter);
    609    1.3  jdolecek }
    610    1.3  jdolecek 
    611    1.3  jdolecek /*
    612    1.3  jdolecek  * Register a new kfilter. Stores the entry in user_kfilters.
    613    1.3  jdolecek  * Returns 0 if operation succeeded, or an appropriate errno(2) otherwise.
    614    1.3  jdolecek  * If retfilter != NULL, the new filterid is returned in it.
    615    1.3  jdolecek  */
    616    1.3  jdolecek int
    617    1.3  jdolecek kfilter_register(const char *name, const struct filterops *filtops,
    618   1.49        ad 		 int *retfilter)
    619    1.1     lukem {
    620    1.3  jdolecek 	struct kfilter *kfilter;
    621   1.49        ad 	size_t len;
    622   1.31     seanb 	int i;
    623    1.3  jdolecek 
    624    1.3  jdolecek 	if (name == NULL || name[0] == '\0' || filtops == NULL)
    625    1.3  jdolecek 		return (EINVAL);	/* invalid args */
    626   1.49        ad 
    627   1.49        ad 	rw_enter(&kqueue_filter_lock, RW_WRITER);
    628   1.49        ad 	if (kfilter_byname(name) != NULL) {
    629   1.49        ad 		rw_exit(&kqueue_filter_lock);
    630    1.3  jdolecek 		return (EEXIST);	/* already exists */
    631   1.49        ad 	}
    632   1.49        ad 	if (user_kfilterc > 0xffffffff - EVFILT_SYSCOUNT) {
    633   1.49        ad 		rw_exit(&kqueue_filter_lock);
    634    1.3  jdolecek 		return (EINVAL);	/* too many */
    635   1.49        ad 	}
    636    1.3  jdolecek 
    637   1.31     seanb 	for (i = 0; i < user_kfilterc; i++) {
    638   1.31     seanb 		kfilter = &user_kfilters[i];
    639   1.31     seanb 		if (kfilter->name == NULL) {
    640   1.31     seanb 			/* Previously deregistered slot.  Reuse. */
    641   1.31     seanb 			goto reuse;
    642   1.31     seanb 		}
    643   1.31     seanb 	}
    644   1.31     seanb 
    645    1.3  jdolecek 	/* check if need to grow user_kfilters */
    646    1.3  jdolecek 	if (user_kfilterc + 1 > user_kfiltermaxc) {
    647   1.49        ad 		/* Grow in KFILTER_EXTENT chunks. */
    648    1.3  jdolecek 		user_kfiltermaxc += KFILTER_EXTENT;
    649   1.69       dsl 		len = user_kfiltermaxc * sizeof(*kfilter);
    650   1.49        ad 		kfilter = kmem_alloc(len, KM_SLEEP);
    651   1.49        ad 		memset((char *)kfilter + user_kfiltersz, 0, len - user_kfiltersz);
    652   1.49        ad 		if (user_kfilters != NULL) {
    653   1.49        ad 			memcpy(kfilter, user_kfilters, user_kfiltersz);
    654   1.49        ad 			kmem_free(user_kfilters, user_kfiltersz);
    655   1.49        ad 		}
    656   1.49        ad 		user_kfiltersz = len;
    657    1.3  jdolecek 		user_kfilters = kfilter;
    658    1.3  jdolecek 	}
    659   1.31     seanb 	/* Adding new slot */
    660   1.31     seanb 	kfilter = &user_kfilters[user_kfilterc++];
    661   1.31     seanb reuse:
    662   1.97  christos 	kfilter->name = kmem_strdupsize(name, &kfilter->namelen, KM_SLEEP);
    663    1.3  jdolecek 
    664   1.31     seanb 	kfilter->filter = (kfilter - user_kfilters) + EVFILT_SYSCOUNT;
    665    1.3  jdolecek 
    666   1.49        ad 	kfilter->filtops = kmem_alloc(sizeof(*filtops), KM_SLEEP);
    667   1.49        ad 	memcpy(__UNCONST(kfilter->filtops), filtops, sizeof(*filtops));
    668    1.3  jdolecek 
    669    1.3  jdolecek 	if (retfilter != NULL)
    670   1.31     seanb 		*retfilter = kfilter->filter;
    671   1.49        ad 	rw_exit(&kqueue_filter_lock);
    672   1.49        ad 
    673    1.3  jdolecek 	return (0);
    674    1.1     lukem }
    675    1.1     lukem 
    676    1.3  jdolecek /*
    677    1.3  jdolecek  * Unregister a kfilter previously registered with kfilter_register.
    678    1.3  jdolecek  * This retains the filter id, but clears the name and frees filtops (filter
    679    1.3  jdolecek  * operations), so that the number isn't reused during a boot.
    680    1.3  jdolecek  * Returns 0 if operation succeeded, or an appropriate errno(2) otherwise.
    681    1.3  jdolecek  */
    682    1.3  jdolecek int
    683    1.3  jdolecek kfilter_unregister(const char *name)
    684    1.1     lukem {
    685    1.3  jdolecek 	struct kfilter *kfilter;
    686    1.3  jdolecek 
    687    1.3  jdolecek 	if (name == NULL || name[0] == '\0')
    688    1.3  jdolecek 		return (EINVAL);	/* invalid name */
    689    1.3  jdolecek 
    690   1.49        ad 	rw_enter(&kqueue_filter_lock, RW_WRITER);
    691   1.49        ad 	if (kfilter_byname_sys(name) != NULL) {
    692   1.49        ad 		rw_exit(&kqueue_filter_lock);
    693    1.3  jdolecek 		return (EINVAL);	/* can't detach system filters */
    694   1.49        ad 	}
    695    1.1     lukem 
    696    1.3  jdolecek 	kfilter = kfilter_byname_user(name);
    697   1.49        ad 	if (kfilter == NULL) {
    698   1.49        ad 		rw_exit(&kqueue_filter_lock);
    699    1.3  jdolecek 		return (ENOENT);
    700   1.49        ad 	}
    701   1.49        ad 	if (kfilter->refcnt != 0) {
    702   1.49        ad 		rw_exit(&kqueue_filter_lock);
    703   1.49        ad 		return (EBUSY);
    704   1.49        ad 	}
    705    1.1     lukem 
    706   1.49        ad 	/* Cast away const (but we know it's safe. */
    707   1.49        ad 	kmem_free(__UNCONST(kfilter->name), kfilter->namelen);
    708   1.31     seanb 	kfilter->name = NULL;	/* mark as `not implemented' */
    709   1.31     seanb 
    710    1.3  jdolecek 	if (kfilter->filtops != NULL) {
    711   1.49        ad 		/* Cast away const (but we know it's safe. */
    712   1.49        ad 		kmem_free(__UNCONST(kfilter->filtops),
    713   1.49        ad 		    sizeof(*kfilter->filtops));
    714    1.3  jdolecek 		kfilter->filtops = NULL; /* mark as `not implemented' */
    715    1.3  jdolecek 	}
    716   1.49        ad 	rw_exit(&kqueue_filter_lock);
    717   1.49        ad 
    718    1.1     lukem 	return (0);
    719    1.1     lukem }
    720    1.1     lukem 
    721    1.3  jdolecek 
    722    1.3  jdolecek /*
    723    1.3  jdolecek  * Filter attach method for EVFILT_READ and EVFILT_WRITE on normal file
    724   1.49        ad  * descriptors. Calls fileops kqfilter method for given file descriptor.
    725    1.3  jdolecek  */
    726    1.3  jdolecek static int
    727    1.3  jdolecek filt_fileattach(struct knote *kn)
    728    1.3  jdolecek {
    729   1.49        ad 	file_t *fp;
    730   1.49        ad 
    731   1.49        ad 	fp = kn->kn_obj;
    732    1.3  jdolecek 
    733   1.49        ad 	return (*fp->f_ops->fo_kqfilter)(fp, kn);
    734    1.3  jdolecek }
    735    1.3  jdolecek 
    736    1.3  jdolecek /*
    737    1.3  jdolecek  * Filter detach method for EVFILT_READ on kqueue descriptor.
    738    1.3  jdolecek  */
    739    1.1     lukem static void
    740    1.1     lukem filt_kqdetach(struct knote *kn)
    741    1.1     lukem {
    742    1.3  jdolecek 	struct kqueue *kq;
    743    1.1     lukem 
    744   1.82      matt 	kq = ((file_t *)kn->kn_obj)->f_kqueue;
    745   1.49        ad 
    746   1.49        ad 	mutex_spin_enter(&kq->kq_lock);
    747  1.109   thorpej 	selremove_knote(&kq->kq_sel, kn);
    748   1.49        ad 	mutex_spin_exit(&kq->kq_lock);
    749    1.1     lukem }
    750    1.1     lukem 
    751    1.3  jdolecek /*
    752    1.3  jdolecek  * Filter event method for EVFILT_READ on kqueue descriptor.
    753    1.3  jdolecek  */
    754    1.1     lukem /*ARGSUSED*/
    755    1.1     lukem static int
    756   1.33      yamt filt_kqueue(struct knote *kn, long hint)
    757    1.1     lukem {
    758    1.3  jdolecek 	struct kqueue *kq;
    759   1.49        ad 	int rv;
    760   1.49        ad 
    761   1.82      matt 	kq = ((file_t *)kn->kn_obj)->f_kqueue;
    762    1.1     lukem 
    763   1.49        ad 	if (hint != NOTE_SUBMIT)
    764   1.49        ad 		mutex_spin_enter(&kq->kq_lock);
    765  1.118  jdolecek 	kn->kn_data = KQ_COUNT(kq);
    766   1.49        ad 	rv = (kn->kn_data > 0);
    767   1.49        ad 	if (hint != NOTE_SUBMIT)
    768   1.49        ad 		mutex_spin_exit(&kq->kq_lock);
    769   1.49        ad 
    770   1.49        ad 	return rv;
    771    1.1     lukem }
    772    1.1     lukem 
    773    1.3  jdolecek /*
    774    1.3  jdolecek  * Filter attach method for EVFILT_PROC.
    775    1.3  jdolecek  */
    776    1.1     lukem static int
    777    1.1     lukem filt_procattach(struct knote *kn)
    778    1.1     lukem {
    779   1.78     pooka 	struct proc *p;
    780    1.1     lukem 
    781  1.107        ad 	mutex_enter(&proc_lock);
    782  1.129   thorpej 	p = proc_find(kn->kn_id);
    783   1.49        ad 	if (p == NULL) {
    784  1.107        ad 		mutex_exit(&proc_lock);
    785   1.49        ad 		return ESRCH;
    786   1.49        ad 	}
    787    1.3  jdolecek 
    788    1.3  jdolecek 	/*
    789    1.3  jdolecek 	 * Fail if it's not owned by you, or the last exec gave us
    790    1.3  jdolecek 	 * setuid/setgid privs (unless you're root).
    791    1.3  jdolecek 	 */
    792   1.57        ad 	mutex_enter(p->p_lock);
    793  1.107        ad 	mutex_exit(&proc_lock);
    794  1.129   thorpej 	if (kauth_authorize_process(curlwp->l_cred,
    795  1.119  christos 	    KAUTH_PROCESS_KEVENT_FILTER, p, NULL, NULL, NULL) != 0) {
    796   1.57        ad 	    	mutex_exit(p->p_lock);
    797   1.49        ad 		return EACCES;
    798   1.49        ad 	}
    799    1.1     lukem 
    800   1.49        ad 	kn->kn_obj = p;
    801    1.3  jdolecek 	kn->kn_flags |= EV_CLEAR;	/* automatically set */
    802    1.1     lukem 
    803    1.1     lukem 	/*
    804  1.129   thorpej 	 * NOTE_CHILD is only ever generated internally; don't let it
    805  1.129   thorpej 	 * leak in from user-space.  See knote_proc_fork_track().
    806    1.1     lukem 	 */
    807  1.129   thorpej 	kn->kn_sfflags &= ~NOTE_CHILD;
    808  1.129   thorpej 
    809  1.140   thorpej 	klist_insert(&p->p_klist, kn);
    810   1.57        ad     	mutex_exit(p->p_lock);
    811    1.1     lukem 
    812   1.49        ad 	return 0;
    813    1.1     lukem }
    814    1.1     lukem 
    815    1.1     lukem /*
    816    1.3  jdolecek  * Filter detach method for EVFILT_PROC.
    817    1.3  jdolecek  *
    818    1.1     lukem  * The knote may be attached to a different process, which may exit,
    819    1.1     lukem  * leaving nothing for the knote to be attached to.  So when the process
    820    1.1     lukem  * exits, the knote is marked as DETACHED and also flagged as ONESHOT so
    821    1.1     lukem  * it will be deleted when read out.  However, as part of the knote deletion,
    822    1.1     lukem  * this routine is called, so a check is needed to avoid actually performing
    823    1.3  jdolecek  * a detach, because the original process might not exist any more.
    824    1.1     lukem  */
    825    1.1     lukem static void
    826    1.1     lukem filt_procdetach(struct knote *kn)
    827    1.1     lukem {
    828  1.129   thorpej 	struct kqueue *kq = kn->kn_kq;
    829    1.3  jdolecek 	struct proc *p;
    830    1.1     lukem 
    831  1.129   thorpej 	/*
    832  1.129   thorpej 	 * We have to synchronize with knote_proc_exit(), but we
    833  1.129   thorpej 	 * are forced to acquire the locks in the wrong order here
    834  1.129   thorpej 	 * because we can't be sure kn->kn_obj is valid unless
    835  1.129   thorpej 	 * KN_DETACHED is not set.
    836  1.129   thorpej 	 */
    837  1.129   thorpej  again:
    838  1.129   thorpej 	mutex_spin_enter(&kq->kq_lock);
    839  1.129   thorpej 	if ((kn->kn_status & KN_DETACHED) == 0) {
    840  1.129   thorpej 		p = kn->kn_obj;
    841  1.129   thorpej 		if (!mutex_tryenter(p->p_lock)) {
    842  1.129   thorpej 			mutex_spin_exit(&kq->kq_lock);
    843  1.129   thorpej 			preempt_point();
    844  1.129   thorpej 			goto again;
    845  1.129   thorpej 		}
    846  1.129   thorpej 		kn->kn_status |= KN_DETACHED;
    847  1.140   thorpej 		klist_remove(&p->p_klist, kn);
    848  1.129   thorpej 		mutex_exit(p->p_lock);
    849  1.129   thorpej 	}
    850  1.129   thorpej 	mutex_spin_exit(&kq->kq_lock);
    851    1.1     lukem }
    852    1.1     lukem 
    853    1.3  jdolecek /*
    854    1.3  jdolecek  * Filter event method for EVFILT_PROC.
    855  1.129   thorpej  *
    856  1.129   thorpej  * Due to some of the complexities of process locking, we have special
    857  1.129   thorpej  * entry points for delivering knote submissions.  filt_proc() is used
    858  1.129   thorpej  * only to check for activation from kqueue_register() and kqueue_scan().
    859    1.3  jdolecek  */
    860    1.1     lukem static int
    861    1.1     lukem filt_proc(struct knote *kn, long hint)
    862    1.1     lukem {
    863  1.129   thorpej 	struct kqueue *kq = kn->kn_kq;
    864  1.129   thorpej 	uint32_t fflags;
    865  1.129   thorpej 
    866  1.129   thorpej 	/*
    867  1.129   thorpej 	 * Because we share the same klist with signal knotes, just
    868  1.129   thorpej 	 * ensure that we're not being invoked for the proc-related
    869  1.129   thorpej 	 * submissions.
    870  1.129   thorpej 	 */
    871  1.129   thorpej 	KASSERT((hint & (NOTE_EXEC | NOTE_EXIT | NOTE_FORK)) == 0);
    872  1.129   thorpej 
    873  1.129   thorpej 	mutex_spin_enter(&kq->kq_lock);
    874  1.129   thorpej 	fflags = kn->kn_fflags;
    875  1.129   thorpej 	mutex_spin_exit(&kq->kq_lock);
    876    1.1     lukem 
    877  1.129   thorpej 	return fflags != 0;
    878  1.129   thorpej }
    879    1.1     lukem 
    880  1.129   thorpej void
    881  1.129   thorpej knote_proc_exec(struct proc *p)
    882  1.129   thorpej {
    883  1.129   thorpej 	struct knote *kn, *tmpkn;
    884  1.129   thorpej 	struct kqueue *kq;
    885  1.129   thorpej 	uint32_t fflags;
    886    1.1     lukem 
    887  1.129   thorpej 	mutex_enter(p->p_lock);
    888   1.83  christos 
    889  1.129   thorpej 	SLIST_FOREACH_SAFE(kn, &p->p_klist, kn_selnext, tmpkn) {
    890  1.129   thorpej 		/* N.B. EVFILT_SIGNAL knotes are on this same list. */
    891  1.129   thorpej 		if (kn->kn_fop == &sig_filtops) {
    892  1.129   thorpej 			continue;
    893  1.129   thorpej 		}
    894  1.129   thorpej 		KASSERT(kn->kn_fop == &proc_filtops);
    895   1.49        ad 
    896  1.129   thorpej 		kq = kn->kn_kq;
    897   1.49        ad 		mutex_spin_enter(&kq->kq_lock);
    898  1.129   thorpej 		fflags = (kn->kn_fflags |= (kn->kn_sfflags & NOTE_EXEC));
    899  1.129   thorpej 		if (fflags) {
    900  1.133   thorpej 			knote_activate_locked(kn);
    901  1.129   thorpej 		}
    902  1.133   thorpej 		mutex_spin_exit(&kq->kq_lock);
    903  1.129   thorpej 	}
    904  1.129   thorpej 
    905  1.129   thorpej 	mutex_exit(p->p_lock);
    906  1.129   thorpej }
    907  1.129   thorpej 
    908  1.129   thorpej static int __noinline
    909  1.129   thorpej knote_proc_fork_track(struct proc *p1, struct proc *p2, struct knote *okn)
    910  1.129   thorpej {
    911  1.129   thorpej 	struct kqueue *kq = okn->kn_kq;
    912  1.129   thorpej 
    913  1.129   thorpej 	KASSERT(mutex_owned(&kq->kq_lock));
    914  1.129   thorpej 	KASSERT(mutex_owned(p1->p_lock));
    915  1.129   thorpej 
    916  1.129   thorpej 	/*
    917  1.129   thorpej 	 * We're going to put this knote into flux while we drop
    918  1.129   thorpej 	 * the locks and create and attach a new knote to track the
    919  1.129   thorpej 	 * child.  If we are not able to enter flux, then this knote
    920  1.129   thorpej 	 * is about to go away, so skip the notification.
    921  1.129   thorpej 	 */
    922  1.129   thorpej 	if (!kn_enter_flux(okn)) {
    923  1.129   thorpej 		return 0;
    924  1.129   thorpej 	}
    925  1.129   thorpej 
    926  1.129   thorpej 	mutex_spin_exit(&kq->kq_lock);
    927  1.129   thorpej 	mutex_exit(p1->p_lock);
    928   1.49        ad 
    929  1.129   thorpej 	/*
    930  1.129   thorpej 	 * We actually have to register *two* new knotes:
    931  1.129   thorpej 	 *
    932  1.129   thorpej 	 * ==> One for the NOTE_CHILD notification.  This is a forced
    933  1.129   thorpej 	 *     ONESHOT note.
    934  1.129   thorpej 	 *
    935  1.129   thorpej 	 * ==> One to actually track the child process as it subsequently
    936  1.129   thorpej 	 *     forks, execs, and, ultimately, exits.
    937  1.129   thorpej 	 *
    938  1.129   thorpej 	 * If we only register a single knote, then it's possible for
    939  1.129   thorpej 	 * for the NOTE_CHILD and NOTE_EXIT to be collapsed into a single
    940  1.129   thorpej 	 * notification if the child exits before the tracking process
    941  1.129   thorpej 	 * has received the NOTE_CHILD notification, which applications
    942  1.129   thorpej 	 * aren't expecting (the event's 'data' field would be clobbered,
    943  1.141    andvar 	 * for example).
    944  1.129   thorpej 	 *
    945  1.129   thorpej 	 * To do this, what we have here is an **extremely** stripped-down
    946  1.129   thorpej 	 * version of kqueue_register() that has the following properties:
    947  1.129   thorpej 	 *
    948  1.129   thorpej 	 * ==> Does not block to allocate memory.  If we are unable
    949  1.129   thorpej 	 *     to allocate memory, we return ENOMEM.
    950  1.129   thorpej 	 *
    951  1.129   thorpej 	 * ==> Does not search for existing knotes; we know there
    952  1.129   thorpej 	 *     are not any because this is a new process that isn't
    953  1.129   thorpej 	 *     even visible to other processes yet.
    954  1.129   thorpej 	 *
    955  1.129   thorpej 	 * ==> Assumes that the knhash for our kq's descriptor table
    956  1.129   thorpej 	 *     already exists (after all, we're already tracking
    957  1.129   thorpej 	 *     processes with knotes if we got here).
    958  1.129   thorpej 	 *
    959  1.129   thorpej 	 * ==> Directly attaches the new tracking knote to the child
    960  1.129   thorpej 	 *     process.
    961  1.129   thorpej 	 *
    962  1.129   thorpej 	 * The whole point is to do the minimum amount of work while the
    963  1.129   thorpej 	 * knote is held in-flux, and to avoid doing extra work in general
    964  1.129   thorpej 	 * (we already have the new child process; why bother looking it
    965  1.129   thorpej 	 * up again?).
    966  1.129   thorpej 	 */
    967  1.129   thorpej 	filedesc_t *fdp = kq->kq_fdp;
    968  1.129   thorpej 	struct knote *knchild, *kntrack;
    969  1.129   thorpej 	int error = 0;
    970  1.129   thorpej 
    971  1.142   thorpej 	knchild = knote_alloc(false);
    972  1.142   thorpej 	kntrack = knote_alloc(false);
    973  1.129   thorpej 	if (__predict_false(knchild == NULL || kntrack == NULL)) {
    974  1.129   thorpej 		error = ENOMEM;
    975  1.129   thorpej 		goto out;
    976  1.129   thorpej 	}
    977  1.129   thorpej 
    978  1.129   thorpej 	kntrack->kn_obj = p2;
    979  1.129   thorpej 	kntrack->kn_id = p2->p_pid;
    980  1.129   thorpej 	kntrack->kn_kq = kq;
    981  1.129   thorpej 	kntrack->kn_fop = okn->kn_fop;
    982  1.129   thorpej 	kntrack->kn_kfilter = okn->kn_kfilter;
    983  1.129   thorpej 	kntrack->kn_sfflags = okn->kn_sfflags;
    984  1.129   thorpej 	kntrack->kn_sdata = p1->p_pid;
    985  1.129   thorpej 
    986  1.129   thorpej 	kntrack->kn_kevent.ident = p2->p_pid;
    987  1.129   thorpej 	kntrack->kn_kevent.filter = okn->kn_filter;
    988  1.129   thorpej 	kntrack->kn_kevent.flags =
    989  1.129   thorpej 	    okn->kn_flags | EV_ADD | EV_ENABLE | EV_CLEAR;
    990  1.129   thorpej 	kntrack->kn_kevent.fflags = 0;
    991  1.129   thorpej 	kntrack->kn_kevent.data = 0;
    992  1.129   thorpej 	kntrack->kn_kevent.udata = okn->kn_kevent.udata; /* preserve udata */
    993  1.129   thorpej 
    994  1.129   thorpej 	/*
    995  1.129   thorpej 	 * The child note does not need to be attached to the
    996  1.129   thorpej 	 * new proc's klist at all.
    997  1.129   thorpej 	 */
    998  1.129   thorpej 	*knchild = *kntrack;
    999  1.129   thorpej 	knchild->kn_status = KN_DETACHED;
   1000  1.129   thorpej 	knchild->kn_sfflags = 0;
   1001  1.129   thorpej 	knchild->kn_kevent.flags |= EV_ONESHOT;
   1002  1.129   thorpej 	knchild->kn_kevent.fflags = NOTE_CHILD;
   1003  1.129   thorpej 	knchild->kn_kevent.data = p1->p_pid;		 /* parent */
   1004  1.129   thorpej 
   1005  1.129   thorpej 	mutex_enter(&fdp->fd_lock);
   1006  1.129   thorpej 
   1007  1.129   thorpej 	/*
   1008  1.129   thorpej 	 * We need to check to see if the kq is closing, and skip
   1009  1.129   thorpej 	 * attaching the knote if so.  Normally, this isn't necessary
   1010  1.129   thorpej 	 * when coming in the front door because the file descriptor
   1011  1.129   thorpej 	 * layer will synchronize this.
   1012  1.129   thorpej 	 *
   1013  1.129   thorpej 	 * It's safe to test KQ_CLOSING without taking the kq_lock
   1014  1.129   thorpej 	 * here because that flag is only ever set when the fd_lock
   1015  1.129   thorpej 	 * is also held.
   1016  1.129   thorpej 	 */
   1017  1.129   thorpej 	if (__predict_false(kq->kq_count & KQ_CLOSING)) {
   1018  1.129   thorpej 		mutex_exit(&fdp->fd_lock);
   1019  1.129   thorpej 		goto out;
   1020    1.1     lukem 	}
   1021    1.1     lukem 
   1022  1.129   thorpej 	/*
   1023  1.129   thorpej 	 * We do the "insert into FD table" and "attach to klist" steps
   1024  1.129   thorpej 	 * in the opposite order of kqueue_register() here to avoid
   1025  1.129   thorpej 	 * having to take p2->p_lock twice.  But this is OK because we
   1026  1.129   thorpej 	 * hold fd_lock across the entire operation.
   1027  1.129   thorpej 	 */
   1028  1.129   thorpej 
   1029  1.129   thorpej 	mutex_enter(p2->p_lock);
   1030  1.129   thorpej 	error = kauth_authorize_process(curlwp->l_cred,
   1031  1.129   thorpej 	    KAUTH_PROCESS_KEVENT_FILTER, p2, NULL, NULL, NULL);
   1032  1.129   thorpej 	if (__predict_false(error != 0)) {
   1033  1.129   thorpej 		mutex_exit(p2->p_lock);
   1034  1.129   thorpej 		mutex_exit(&fdp->fd_lock);
   1035  1.129   thorpej 		error = EACCES;
   1036  1.129   thorpej 		goto out;
   1037  1.129   thorpej 	}
   1038  1.140   thorpej 	klist_insert(&p2->p_klist, kntrack);
   1039  1.129   thorpej 	mutex_exit(p2->p_lock);
   1040  1.129   thorpej 
   1041  1.129   thorpej 	KASSERT(fdp->fd_knhashmask != 0);
   1042  1.129   thorpej 	KASSERT(fdp->fd_knhash != NULL);
   1043  1.129   thorpej 	struct klist *list = &fdp->fd_knhash[KN_HASH(kntrack->kn_id,
   1044  1.129   thorpej 	    fdp->fd_knhashmask)];
   1045  1.129   thorpej 	SLIST_INSERT_HEAD(list, kntrack, kn_link);
   1046  1.129   thorpej 	SLIST_INSERT_HEAD(list, knchild, kn_link);
   1047  1.129   thorpej 
   1048  1.129   thorpej 	/* This adds references for knchild *and* kntrack. */
   1049  1.129   thorpej 	atomic_add_int(&kntrack->kn_kfilter->refcnt, 2);
   1050  1.129   thorpej 
   1051  1.129   thorpej 	knote_activate(knchild);
   1052  1.129   thorpej 
   1053  1.129   thorpej 	kntrack = NULL;
   1054  1.129   thorpej 	knchild = NULL;
   1055  1.129   thorpej 
   1056  1.129   thorpej 	mutex_exit(&fdp->fd_lock);
   1057  1.129   thorpej 
   1058  1.129   thorpej  out:
   1059  1.129   thorpej 	if (__predict_false(knchild != NULL)) {
   1060  1.142   thorpej 		knote_free(knchild);
   1061  1.129   thorpej 	}
   1062  1.129   thorpej 	if (__predict_false(kntrack != NULL)) {
   1063  1.142   thorpej 		knote_free(kntrack);
   1064  1.129   thorpej 	}
   1065  1.129   thorpej 	mutex_enter(p1->p_lock);
   1066   1.49        ad 	mutex_spin_enter(&kq->kq_lock);
   1067  1.129   thorpej 
   1068  1.129   thorpej 	if (kn_leave_flux(okn)) {
   1069  1.129   thorpej 		KQ_FLUX_WAKEUP(kq);
   1070  1.129   thorpej 	}
   1071  1.129   thorpej 
   1072  1.129   thorpej 	return error;
   1073  1.129   thorpej }
   1074  1.129   thorpej 
   1075  1.129   thorpej void
   1076  1.129   thorpej knote_proc_fork(struct proc *p1, struct proc *p2)
   1077  1.129   thorpej {
   1078  1.129   thorpej 	struct knote *kn;
   1079  1.129   thorpej 	struct kqueue *kq;
   1080  1.129   thorpej 	uint32_t fflags;
   1081  1.129   thorpej 
   1082  1.129   thorpej 	mutex_enter(p1->p_lock);
   1083  1.129   thorpej 
   1084  1.129   thorpej 	/*
   1085  1.129   thorpej 	 * N.B. We DO NOT use SLIST_FOREACH_SAFE() here because we
   1086  1.129   thorpej 	 * don't want to pre-fetch the next knote; in the event we
   1087  1.129   thorpej 	 * have to drop p_lock, we will have put the knote in-flux,
   1088  1.129   thorpej 	 * meaning that no one will be able to detach it until we
   1089  1.129   thorpej 	 * have taken the knote out of flux.  However, that does
   1090  1.129   thorpej 	 * NOT stop someone else from detaching the next note in the
   1091  1.129   thorpej 	 * list while we have it unlocked.  Thus, we want to fetch
   1092  1.129   thorpej 	 * the next note in the list only after we have re-acquired
   1093  1.129   thorpej 	 * the lock, and using SLIST_FOREACH() will satisfy that.
   1094  1.129   thorpej 	 */
   1095  1.129   thorpej 	SLIST_FOREACH(kn, &p1->p_klist, kn_selnext) {
   1096  1.129   thorpej 		/* N.B. EVFILT_SIGNAL knotes are on this same list. */
   1097  1.129   thorpej 		if (kn->kn_fop == &sig_filtops) {
   1098  1.129   thorpej 			continue;
   1099  1.129   thorpej 		}
   1100  1.129   thorpej 		KASSERT(kn->kn_fop == &proc_filtops);
   1101  1.129   thorpej 
   1102  1.129   thorpej 		kq = kn->kn_kq;
   1103  1.129   thorpej 		mutex_spin_enter(&kq->kq_lock);
   1104  1.129   thorpej 		kn->kn_fflags |= (kn->kn_sfflags & NOTE_FORK);
   1105  1.129   thorpej 		if (__predict_false(kn->kn_sfflags & NOTE_TRACK)) {
   1106  1.129   thorpej 			/*
   1107  1.129   thorpej 			 * This will drop kq_lock and p_lock and
   1108  1.129   thorpej 			 * re-acquire them before it returns.
   1109  1.129   thorpej 			 */
   1110  1.129   thorpej 			if (knote_proc_fork_track(p1, p2, kn)) {
   1111  1.129   thorpej 				kn->kn_fflags |= NOTE_TRACKERR;
   1112  1.129   thorpej 			}
   1113  1.129   thorpej 			KASSERT(mutex_owned(p1->p_lock));
   1114  1.129   thorpej 			KASSERT(mutex_owned(&kq->kq_lock));
   1115  1.129   thorpej 		}
   1116  1.129   thorpej 		fflags = kn->kn_fflags;
   1117  1.129   thorpej 		if (fflags) {
   1118  1.133   thorpej 			knote_activate_locked(kn);
   1119  1.129   thorpej 		}
   1120  1.133   thorpej 		mutex_spin_exit(&kq->kq_lock);
   1121  1.129   thorpej 	}
   1122  1.129   thorpej 
   1123  1.129   thorpej 	mutex_exit(p1->p_lock);
   1124  1.129   thorpej }
   1125  1.129   thorpej 
   1126  1.129   thorpej void
   1127  1.129   thorpej knote_proc_exit(struct proc *p)
   1128  1.129   thorpej {
   1129  1.129   thorpej 	struct knote *kn;
   1130  1.129   thorpej 	struct kqueue *kq;
   1131  1.129   thorpej 
   1132  1.129   thorpej 	KASSERT(mutex_owned(p->p_lock));
   1133  1.129   thorpej 
   1134  1.129   thorpej 	while (!SLIST_EMPTY(&p->p_klist)) {
   1135  1.129   thorpej 		kn = SLIST_FIRST(&p->p_klist);
   1136  1.129   thorpej 		kq = kn->kn_kq;
   1137  1.129   thorpej 
   1138  1.129   thorpej 		KASSERT(kn->kn_obj == p);
   1139  1.129   thorpej 
   1140  1.129   thorpej 		mutex_spin_enter(&kq->kq_lock);
   1141  1.129   thorpej 		kn->kn_data = P_WAITSTATUS(p);
   1142  1.129   thorpej 		/*
   1143  1.129   thorpej 		 * Mark as ONESHOT, so that the knote is g/c'ed
   1144  1.129   thorpej 		 * when read.
   1145  1.129   thorpej 		 */
   1146  1.129   thorpej 		kn->kn_flags |= (EV_EOF | EV_ONESHOT);
   1147  1.129   thorpej 		kn->kn_fflags |= kn->kn_sfflags & NOTE_EXIT;
   1148  1.129   thorpej 
   1149    1.1     lukem 		/*
   1150  1.129   thorpej 		 * Detach the knote from the process and mark it as such.
   1151  1.129   thorpej 		 * N.B. EVFILT_SIGNAL are also on p_klist, but by the
   1152  1.129   thorpej 		 * time we get here, all open file descriptors for this
   1153  1.129   thorpej 		 * process have been released, meaning that signal knotes
   1154  1.129   thorpej 		 * will have already been detached.
   1155  1.129   thorpej 		 *
   1156  1.129   thorpej 		 * We need to synchronize this with filt_procdetach().
   1157    1.1     lukem 		 */
   1158  1.129   thorpej 		KASSERT(kn->kn_fop == &proc_filtops);
   1159  1.129   thorpej 		if ((kn->kn_status & KN_DETACHED) == 0) {
   1160  1.129   thorpej 			kn->kn_status |= KN_DETACHED;
   1161  1.129   thorpej 			SLIST_REMOVE_HEAD(&p->p_klist, kn_selnext);
   1162  1.129   thorpej 		}
   1163  1.129   thorpej 
   1164  1.129   thorpej 		/*
   1165  1.129   thorpej 		 * Always activate the knote for NOTE_EXIT regardless
   1166  1.129   thorpej 		 * of whether or not the listener cares about it.
   1167  1.129   thorpej 		 * This matches historical behavior.
   1168  1.129   thorpej 		 */
   1169  1.133   thorpej 		knote_activate_locked(kn);
   1170  1.133   thorpej 		mutex_spin_exit(&kq->kq_lock);
   1171    1.1     lukem 	}
   1172    1.8  jdolecek }
   1173    1.8  jdolecek 
   1174  1.133   thorpej #define	FILT_TIMER_NOSCHED	((uintptr_t)-1)
   1175  1.133   thorpej 
   1176    1.8  jdolecek static int
   1177  1.134   thorpej filt_timercompute(struct kevent *kev, uintptr_t *tticksp)
   1178    1.8  jdolecek {
   1179  1.132   thorpej 	struct timespec ts;
   1180  1.134   thorpej 	uintptr_t tticks;
   1181  1.132   thorpej 
   1182  1.134   thorpej 	if (kev->fflags & ~(NOTE_TIMER_UNITMASK | NOTE_ABSTIME)) {
   1183  1.132   thorpej 		return EINVAL;
   1184  1.132   thorpej 	}
   1185  1.132   thorpej 
   1186  1.132   thorpej 	/*
   1187  1.132   thorpej 	 * Convert the event 'data' to a timespec, then convert the
   1188  1.132   thorpej 	 * timespec to callout ticks.
   1189  1.132   thorpej 	 */
   1190  1.134   thorpej 	switch (kev->fflags & NOTE_TIMER_UNITMASK) {
   1191  1.132   thorpej 	case NOTE_SECONDS:
   1192  1.134   thorpej 		ts.tv_sec = kev->data;
   1193  1.132   thorpej 		ts.tv_nsec = 0;
   1194  1.132   thorpej 		break;
   1195  1.132   thorpej 
   1196  1.132   thorpej 	case NOTE_MSECONDS:		/* == historical value 0 */
   1197  1.134   thorpej 		ts.tv_sec = kev->data / 1000;
   1198  1.134   thorpej 		ts.tv_nsec = (kev->data % 1000) * 1000000;
   1199  1.132   thorpej 		break;
   1200  1.132   thorpej 
   1201  1.132   thorpej 	case NOTE_USECONDS:
   1202  1.134   thorpej 		ts.tv_sec = kev->data / 1000000;
   1203  1.134   thorpej 		ts.tv_nsec = (kev->data % 1000000) * 1000;
   1204  1.132   thorpej 		break;
   1205  1.132   thorpej 
   1206  1.132   thorpej 	case NOTE_NSECONDS:
   1207  1.134   thorpej 		ts.tv_sec = kev->data / 1000000000;
   1208  1.134   thorpej 		ts.tv_nsec = kev->data % 1000000000;
   1209  1.132   thorpej 		break;
   1210  1.132   thorpej 
   1211  1.132   thorpej 	default:
   1212  1.132   thorpej 		return EINVAL;
   1213  1.132   thorpej 	}
   1214  1.132   thorpej 
   1215  1.134   thorpej 	if (kev->fflags & NOTE_ABSTIME) {
   1216  1.132   thorpej 		struct timespec deadline = ts;
   1217  1.132   thorpej 
   1218  1.132   thorpej 		/*
   1219  1.132   thorpej 		 * Get current time.
   1220  1.132   thorpej 		 *
   1221  1.132   thorpej 		 * XXX This is CLOCK_REALTIME.  There is no way to
   1222  1.132   thorpej 		 * XXX specify CLOCK_MONOTONIC.
   1223  1.132   thorpej 		 */
   1224  1.132   thorpej 		nanotime(&ts);
   1225    1.8  jdolecek 
   1226  1.134   thorpej 		/* Absolute timers do not repeat. */
   1227  1.134   thorpej 		kev->data = FILT_TIMER_NOSCHED;
   1228  1.134   thorpej 
   1229  1.132   thorpej 		/* If we're past the deadline, then the event will fire. */
   1230  1.132   thorpej 		if (timespeccmp(&deadline, &ts, <=)) {
   1231  1.134   thorpej 			tticks = FILT_TIMER_NOSCHED;
   1232  1.134   thorpej 			goto out;
   1233  1.132   thorpej 		}
   1234  1.132   thorpej 
   1235  1.132   thorpej 		/* Calculate how much time is left. */
   1236  1.132   thorpej 		timespecsub(&deadline, &ts, &ts);
   1237  1.132   thorpej 	} else {
   1238  1.132   thorpej 		/* EV_CLEAR automatically set for relative timers. */
   1239  1.134   thorpej 		kev->flags |= EV_CLEAR;
   1240  1.132   thorpej 	}
   1241  1.132   thorpej 
   1242  1.132   thorpej 	tticks = tstohz(&ts);
   1243    1.8  jdolecek 
   1244    1.8  jdolecek 	/* if the supplied value is under our resolution, use 1 tick */
   1245    1.8  jdolecek 	if (tticks == 0) {
   1246  1.134   thorpej 		if (kev->data == 0)
   1247   1.49        ad 			return EINVAL;
   1248    1.8  jdolecek 		tticks = 1;
   1249  1.134   thorpej 	} else if (tticks > INT_MAX) {
   1250  1.134   thorpej 		return EINVAL;
   1251    1.8  jdolecek 	}
   1252    1.8  jdolecek 
   1253  1.134   thorpej 	if ((kev->flags & EV_ONESHOT) != 0) {
   1254  1.132   thorpej 		/* Timer does not repeat. */
   1255  1.134   thorpej 		kev->data = FILT_TIMER_NOSCHED;
   1256  1.132   thorpej 	} else {
   1257  1.133   thorpej 		KASSERT((uintptr_t)tticks != FILT_TIMER_NOSCHED);
   1258  1.134   thorpej 		kev->data = tticks;
   1259  1.134   thorpej 	}
   1260  1.134   thorpej 
   1261  1.134   thorpej  out:
   1262  1.134   thorpej 	*tticksp = tticks;
   1263  1.134   thorpej 
   1264  1.134   thorpej 	return 0;
   1265  1.134   thorpej }
   1266  1.134   thorpej 
   1267  1.134   thorpej static void
   1268  1.134   thorpej filt_timerexpire(void *knx)
   1269  1.134   thorpej {
   1270  1.134   thorpej 	struct knote *kn = knx;
   1271  1.134   thorpej 	struct kqueue *kq = kn->kn_kq;
   1272  1.134   thorpej 
   1273  1.134   thorpej 	mutex_spin_enter(&kq->kq_lock);
   1274  1.134   thorpej 	kn->kn_data++;
   1275  1.134   thorpej 	knote_activate_locked(kn);
   1276  1.134   thorpej 	if (kn->kn_sdata != FILT_TIMER_NOSCHED) {
   1277  1.134   thorpej 		KASSERT(kn->kn_sdata > 0 && kn->kn_sdata <= INT_MAX);
   1278  1.134   thorpej 		callout_schedule((callout_t *)kn->kn_hook,
   1279  1.134   thorpej 		    (int)kn->kn_sdata);
   1280  1.134   thorpej 	}
   1281  1.134   thorpej 	mutex_spin_exit(&kq->kq_lock);
   1282  1.134   thorpej }
   1283  1.134   thorpej 
   1284  1.136   thorpej static inline void
   1285  1.136   thorpej filt_timerstart(struct knote *kn, uintptr_t tticks)
   1286  1.136   thorpej {
   1287  1.136   thorpej 	callout_t *calloutp = kn->kn_hook;
   1288  1.136   thorpej 
   1289  1.136   thorpej 	KASSERT(mutex_owned(&kn->kn_kq->kq_lock));
   1290  1.136   thorpej 	KASSERT(!callout_pending(calloutp));
   1291  1.136   thorpej 
   1292  1.136   thorpej 	if (__predict_false(tticks == FILT_TIMER_NOSCHED)) {
   1293  1.136   thorpej 		kn->kn_data = 1;
   1294  1.136   thorpej 	} else {
   1295  1.136   thorpej 		KASSERT(tticks <= INT_MAX);
   1296  1.136   thorpej 		callout_reset(calloutp, (int)tticks, filt_timerexpire, kn);
   1297  1.136   thorpej 	}
   1298  1.136   thorpej }
   1299  1.136   thorpej 
   1300  1.134   thorpej static int
   1301  1.134   thorpej filt_timerattach(struct knote *kn)
   1302  1.134   thorpej {
   1303  1.134   thorpej 	callout_t *calloutp;
   1304  1.134   thorpej 	struct kqueue *kq;
   1305  1.134   thorpej 	uintptr_t tticks;
   1306  1.134   thorpej 	int error;
   1307  1.134   thorpej 
   1308  1.134   thorpej 	struct kevent kev = {
   1309  1.134   thorpej 		.flags = kn->kn_flags,
   1310  1.134   thorpej 		.fflags = kn->kn_sfflags,
   1311  1.134   thorpej 		.data = kn->kn_sdata,
   1312  1.134   thorpej 	};
   1313  1.134   thorpej 
   1314  1.134   thorpej 	error = filt_timercompute(&kev, &tticks);
   1315  1.134   thorpej 	if (error) {
   1316  1.134   thorpej 		return error;
   1317  1.132   thorpej 	}
   1318  1.132   thorpej 
   1319   1.49        ad 	if (atomic_inc_uint_nv(&kq_ncallouts) >= kq_calloutmax ||
   1320   1.49        ad 	    (calloutp = kmem_alloc(sizeof(*calloutp), KM_NOSLEEP)) == NULL) {
   1321   1.49        ad 		atomic_dec_uint(&kq_ncallouts);
   1322   1.49        ad 		return ENOMEM;
   1323   1.49        ad 	}
   1324   1.54        ad 	callout_init(calloutp, CALLOUT_MPSAFE);
   1325   1.49        ad 
   1326   1.49        ad 	kq = kn->kn_kq;
   1327   1.49        ad 	mutex_spin_enter(&kq->kq_lock);
   1328  1.134   thorpej 
   1329  1.134   thorpej 	kn->kn_sdata = kev.data;
   1330  1.134   thorpej 	kn->kn_flags = kev.flags;
   1331  1.134   thorpej 	KASSERT(kn->kn_sfflags == kev.fflags);
   1332   1.49        ad 	kn->kn_hook = calloutp;
   1333  1.134   thorpej 
   1334  1.136   thorpej 	filt_timerstart(kn, tticks);
   1335  1.134   thorpej 
   1336   1.49        ad 	mutex_spin_exit(&kq->kq_lock);
   1337   1.49        ad 
   1338    1.8  jdolecek 	return (0);
   1339    1.8  jdolecek }
   1340    1.8  jdolecek 
   1341    1.8  jdolecek static void
   1342    1.8  jdolecek filt_timerdetach(struct knote *kn)
   1343    1.8  jdolecek {
   1344   1.39        ad 	callout_t *calloutp;
   1345  1.103  christos 	struct kqueue *kq = kn->kn_kq;
   1346  1.103  christos 
   1347  1.133   thorpej 	/* prevent rescheduling when we expire */
   1348  1.103  christos 	mutex_spin_enter(&kq->kq_lock);
   1349  1.133   thorpej 	kn->kn_sdata = FILT_TIMER_NOSCHED;
   1350  1.103  christos 	mutex_spin_exit(&kq->kq_lock);
   1351    1.8  jdolecek 
   1352   1.39        ad 	calloutp = (callout_t *)kn->kn_hook;
   1353  1.125   thorpej 
   1354  1.125   thorpej 	/*
   1355  1.125   thorpej 	 * Attempt to stop the callout.  This will block if it's
   1356  1.125   thorpej 	 * already running.
   1357  1.125   thorpej 	 */
   1358   1.55        ad 	callout_halt(calloutp, NULL);
   1359  1.125   thorpej 
   1360   1.39        ad 	callout_destroy(calloutp);
   1361   1.49        ad 	kmem_free(calloutp, sizeof(*calloutp));
   1362   1.49        ad 	atomic_dec_uint(&kq_ncallouts);
   1363    1.8  jdolecek }
   1364    1.8  jdolecek 
   1365    1.8  jdolecek static int
   1366  1.136   thorpej filt_timertouch(struct knote *kn, struct kevent *kev, long type)
   1367  1.136   thorpej {
   1368  1.136   thorpej 	struct kqueue *kq = kn->kn_kq;
   1369  1.136   thorpej 	callout_t *calloutp;
   1370  1.136   thorpej 	uintptr_t tticks;
   1371  1.136   thorpej 	int error;
   1372  1.136   thorpej 
   1373  1.136   thorpej 	KASSERT(mutex_owned(&kq->kq_lock));
   1374  1.136   thorpej 
   1375  1.136   thorpej 	switch (type) {
   1376  1.136   thorpej 	case EVENT_REGISTER:
   1377  1.136   thorpej 		/* Only relevant for EV_ADD. */
   1378  1.136   thorpej 		if ((kev->flags & EV_ADD) == 0) {
   1379  1.136   thorpej 			return 0;
   1380  1.136   thorpej 		}
   1381  1.136   thorpej 
   1382  1.136   thorpej 		/*
   1383  1.136   thorpej 		 * Stop the timer, under the assumption that if
   1384  1.136   thorpej 		 * an application is re-configuring the timer,
   1385  1.136   thorpej 		 * they no longer care about the old one.  We
   1386  1.136   thorpej 		 * can safely drop the kq_lock while we wait
   1387  1.136   thorpej 		 * because fdp->fd_lock will be held throughout,
   1388  1.136   thorpej 		 * ensuring that no one can sneak in with an
   1389  1.136   thorpej 		 * EV_DELETE or close the kq.
   1390  1.136   thorpej 		 */
   1391  1.136   thorpej 		KASSERT(mutex_owned(&kq->kq_fdp->fd_lock));
   1392  1.136   thorpej 
   1393  1.136   thorpej 		calloutp = kn->kn_hook;
   1394  1.136   thorpej 		callout_halt(calloutp, &kq->kq_lock);
   1395  1.136   thorpej 		KASSERT(mutex_owned(&kq->kq_lock));
   1396  1.136   thorpej 		knote_deactivate_locked(kn);
   1397  1.136   thorpej 		kn->kn_data = 0;
   1398  1.136   thorpej 
   1399  1.136   thorpej 		error = filt_timercompute(kev, &tticks);
   1400  1.136   thorpej 		if (error) {
   1401  1.136   thorpej 			return error;
   1402  1.136   thorpej 		}
   1403  1.136   thorpej 		kn->kn_sdata = kev->data;
   1404  1.136   thorpej 		kn->kn_flags = kev->flags;
   1405  1.136   thorpej 		kn->kn_sfflags = kev->fflags;
   1406  1.136   thorpej 		filt_timerstart(kn, tticks);
   1407  1.136   thorpej 		break;
   1408  1.136   thorpej 
   1409  1.136   thorpej 	case EVENT_PROCESS:
   1410  1.136   thorpej 		*kev = kn->kn_kevent;
   1411  1.136   thorpej 		break;
   1412  1.136   thorpej 
   1413  1.136   thorpej 	default:
   1414  1.136   thorpej 		panic("%s: invalid type (%ld)", __func__, type);
   1415  1.136   thorpej 	}
   1416  1.136   thorpej 
   1417  1.136   thorpej 	return 0;
   1418  1.136   thorpej }
   1419  1.136   thorpej 
   1420  1.136   thorpej static int
   1421   1.33      yamt filt_timer(struct knote *kn, long hint)
   1422    1.8  jdolecek {
   1423  1.133   thorpej 	struct kqueue *kq = kn->kn_kq;
   1424   1.49        ad 	int rv;
   1425   1.49        ad 
   1426  1.133   thorpej 	mutex_spin_enter(&kq->kq_lock);
   1427   1.49        ad 	rv = (kn->kn_data != 0);
   1428  1.133   thorpej 	mutex_spin_exit(&kq->kq_lock);
   1429   1.49        ad 
   1430   1.49        ad 	return rv;
   1431    1.1     lukem }
   1432    1.1     lukem 
   1433  1.108  christos static int
   1434  1.108  christos filt_userattach(struct knote *kn)
   1435  1.108  christos {
   1436  1.108  christos 	struct kqueue *kq = kn->kn_kq;
   1437  1.108  christos 
   1438  1.108  christos 	/*
   1439  1.108  christos 	 * EVFILT_USER knotes are not attached to anything in the kernel.
   1440  1.108  christos 	 */
   1441  1.108  christos 	mutex_spin_enter(&kq->kq_lock);
   1442  1.108  christos 	kn->kn_hook = NULL;
   1443  1.108  christos 	if (kn->kn_fflags & NOTE_TRIGGER)
   1444  1.108  christos 		kn->kn_hookid = 1;
   1445  1.108  christos 	else
   1446  1.108  christos 		kn->kn_hookid = 0;
   1447  1.108  christos 	mutex_spin_exit(&kq->kq_lock);
   1448  1.108  christos 	return (0);
   1449  1.108  christos }
   1450  1.108  christos 
   1451  1.108  christos static void
   1452  1.108  christos filt_userdetach(struct knote *kn)
   1453  1.108  christos {
   1454  1.108  christos 
   1455  1.108  christos 	/*
   1456  1.108  christos 	 * EVFILT_USER knotes are not attached to anything in the kernel.
   1457  1.108  christos 	 */
   1458  1.108  christos }
   1459  1.108  christos 
   1460  1.108  christos static int
   1461  1.108  christos filt_user(struct knote *kn, long hint)
   1462  1.108  christos {
   1463  1.108  christos 	struct kqueue *kq = kn->kn_kq;
   1464  1.108  christos 	int hookid;
   1465  1.108  christos 
   1466  1.108  christos 	mutex_spin_enter(&kq->kq_lock);
   1467  1.108  christos 	hookid = kn->kn_hookid;
   1468  1.108  christos 	mutex_spin_exit(&kq->kq_lock);
   1469  1.108  christos 
   1470  1.108  christos 	return hookid;
   1471  1.108  christos }
   1472  1.108  christos 
   1473  1.135   thorpej static int
   1474  1.108  christos filt_usertouch(struct knote *kn, struct kevent *kev, long type)
   1475  1.108  christos {
   1476  1.108  christos 	int ffctrl;
   1477  1.108  christos 
   1478  1.117     skrll 	KASSERT(mutex_owned(&kn->kn_kq->kq_lock));
   1479  1.116  jdolecek 
   1480  1.108  christos 	switch (type) {
   1481  1.108  christos 	case EVENT_REGISTER:
   1482  1.108  christos 		if (kev->fflags & NOTE_TRIGGER)
   1483  1.108  christos 			kn->kn_hookid = 1;
   1484  1.108  christos 
   1485  1.108  christos 		ffctrl = kev->fflags & NOTE_FFCTRLMASK;
   1486  1.108  christos 		kev->fflags &= NOTE_FFLAGSMASK;
   1487  1.108  christos 		switch (ffctrl) {
   1488  1.108  christos 		case NOTE_FFNOP:
   1489  1.108  christos 			break;
   1490  1.108  christos 
   1491  1.108  christos 		case NOTE_FFAND:
   1492  1.108  christos 			kn->kn_sfflags &= kev->fflags;
   1493  1.108  christos 			break;
   1494  1.108  christos 
   1495  1.108  christos 		case NOTE_FFOR:
   1496  1.108  christos 			kn->kn_sfflags |= kev->fflags;
   1497  1.108  christos 			break;
   1498  1.108  christos 
   1499  1.108  christos 		case NOTE_FFCOPY:
   1500  1.108  christos 			kn->kn_sfflags = kev->fflags;
   1501  1.108  christos 			break;
   1502  1.108  christos 
   1503  1.108  christos 		default:
   1504  1.108  christos 			/* XXX Return error? */
   1505  1.108  christos 			break;
   1506  1.108  christos 		}
   1507  1.108  christos 		kn->kn_sdata = kev->data;
   1508  1.108  christos 		if (kev->flags & EV_CLEAR) {
   1509  1.108  christos 			kn->kn_hookid = 0;
   1510  1.108  christos 			kn->kn_data = 0;
   1511  1.108  christos 			kn->kn_fflags = 0;
   1512  1.108  christos 		}
   1513  1.108  christos 		break;
   1514  1.108  christos 
   1515  1.108  christos 	case EVENT_PROCESS:
   1516  1.108  christos 		*kev = kn->kn_kevent;
   1517  1.108  christos 		kev->fflags = kn->kn_sfflags;
   1518  1.108  christos 		kev->data = kn->kn_sdata;
   1519  1.108  christos 		if (kn->kn_flags & EV_CLEAR) {
   1520  1.108  christos 			kn->kn_hookid = 0;
   1521  1.108  christos 			kn->kn_data = 0;
   1522  1.108  christos 			kn->kn_fflags = 0;
   1523  1.108  christos 		}
   1524  1.108  christos 		break;
   1525  1.108  christos 
   1526  1.108  christos 	default:
   1527  1.108  christos 		panic("filt_usertouch() - invalid type (%ld)", type);
   1528  1.108  christos 		break;
   1529  1.108  christos 	}
   1530  1.135   thorpej 
   1531  1.135   thorpej 	return 0;
   1532  1.108  christos }
   1533  1.108  christos 
   1534  1.102  christos /*
   1535    1.3  jdolecek  * filt_seltrue:
   1536    1.3  jdolecek  *
   1537    1.3  jdolecek  *	This filter "event" routine simulates seltrue().
   1538    1.3  jdolecek  */
   1539    1.1     lukem int
   1540   1.33      yamt filt_seltrue(struct knote *kn, long hint)
   1541    1.1     lukem {
   1542    1.1     lukem 
   1543    1.3  jdolecek 	/*
   1544    1.3  jdolecek 	 * We don't know how much data can be read/written,
   1545    1.3  jdolecek 	 * but we know that it *can* be.  This is about as
   1546    1.3  jdolecek 	 * good as select/poll does as well.
   1547    1.3  jdolecek 	 */
   1548    1.3  jdolecek 	kn->kn_data = 0;
   1549    1.3  jdolecek 	return (1);
   1550    1.3  jdolecek }
   1551    1.3  jdolecek 
   1552    1.3  jdolecek /*
   1553    1.3  jdolecek  * This provides full kqfilter entry for device switch tables, which
   1554    1.3  jdolecek  * has same effect as filter using filt_seltrue() as filter method.
   1555    1.3  jdolecek  */
   1556    1.3  jdolecek static void
   1557   1.33      yamt filt_seltruedetach(struct knote *kn)
   1558    1.3  jdolecek {
   1559    1.3  jdolecek 	/* Nothing to do */
   1560    1.3  jdolecek }
   1561    1.3  jdolecek 
   1562   1.96      maya const struct filterops seltrue_filtops = {
   1563  1.123   thorpej 	.f_flags = FILTEROP_ISFD | FILTEROP_MPSAFE,
   1564   1.96      maya 	.f_attach = NULL,
   1565   1.96      maya 	.f_detach = filt_seltruedetach,
   1566   1.96      maya 	.f_event = filt_seltrue,
   1567   1.96      maya };
   1568    1.3  jdolecek 
   1569    1.3  jdolecek int
   1570   1.33      yamt seltrue_kqfilter(dev_t dev, struct knote *kn)
   1571    1.3  jdolecek {
   1572    1.3  jdolecek 	switch (kn->kn_filter) {
   1573    1.3  jdolecek 	case EVFILT_READ:
   1574    1.3  jdolecek 	case EVFILT_WRITE:
   1575    1.3  jdolecek 		kn->kn_fop = &seltrue_filtops;
   1576    1.3  jdolecek 		break;
   1577    1.3  jdolecek 	default:
   1578   1.43     pooka 		return (EINVAL);
   1579    1.3  jdolecek 	}
   1580    1.3  jdolecek 
   1581    1.3  jdolecek 	/* Nothing more to do */
   1582    1.3  jdolecek 	return (0);
   1583    1.3  jdolecek }
   1584    1.3  jdolecek 
   1585    1.3  jdolecek /*
   1586    1.3  jdolecek  * kqueue(2) system call.
   1587    1.3  jdolecek  */
   1588   1.72  christos static int
   1589   1.72  christos kqueue1(struct lwp *l, int flags, register_t *retval)
   1590    1.3  jdolecek {
   1591   1.49        ad 	struct kqueue *kq;
   1592   1.49        ad 	file_t *fp;
   1593   1.49        ad 	int fd, error;
   1594    1.3  jdolecek 
   1595   1.49        ad 	if ((error = fd_allocfile(&fp, &fd)) != 0)
   1596   1.49        ad 		return error;
   1597   1.75  christos 	fp->f_flag = FREAD | FWRITE | (flags & (FNONBLOCK|FNOSIGPIPE));
   1598    1.1     lukem 	fp->f_type = DTYPE_KQUEUE;
   1599    1.1     lukem 	fp->f_ops = &kqueueops;
   1600   1.49        ad 	kq = kmem_zalloc(sizeof(*kq), KM_SLEEP);
   1601   1.49        ad 	mutex_init(&kq->kq_lock, MUTEX_DEFAULT, IPL_SCHED);
   1602   1.49        ad 	cv_init(&kq->kq_cv, "kqueue");
   1603   1.49        ad 	selinit(&kq->kq_sel);
   1604    1.1     lukem 	TAILQ_INIT(&kq->kq_head);
   1605   1.82      matt 	fp->f_kqueue = kq;
   1606    1.3  jdolecek 	*retval = fd;
   1607   1.49        ad 	kq->kq_fdp = curlwp->l_fd;
   1608   1.72  christos 	fd_set_exclose(l, fd, (flags & O_CLOEXEC) != 0);
   1609   1.49        ad 	fd_affix(curproc, fp, fd);
   1610   1.49        ad 	return error;
   1611    1.1     lukem }
   1612    1.1     lukem 
   1613    1.3  jdolecek /*
   1614   1.72  christos  * kqueue(2) system call.
   1615   1.72  christos  */
   1616   1.72  christos int
   1617   1.72  christos sys_kqueue(struct lwp *l, const void *v, register_t *retval)
   1618   1.72  christos {
   1619   1.72  christos 	return kqueue1(l, 0, retval);
   1620   1.72  christos }
   1621   1.72  christos 
   1622   1.72  christos int
   1623   1.72  christos sys_kqueue1(struct lwp *l, const struct sys_kqueue1_args *uap,
   1624   1.72  christos     register_t *retval)
   1625   1.72  christos {
   1626   1.72  christos 	/* {
   1627   1.72  christos 		syscallarg(int) flags;
   1628   1.72  christos 	} */
   1629   1.72  christos 	return kqueue1(l, SCARG(uap, flags), retval);
   1630   1.72  christos }
   1631   1.72  christos 
   1632   1.72  christos /*
   1633    1.3  jdolecek  * kevent(2) system call.
   1634    1.3  jdolecek  */
   1635   1.61  christos int
   1636   1.81      matt kevent_fetch_changes(void *ctx, const struct kevent *changelist,
   1637   1.61  christos     struct kevent *changes, size_t index, int n)
   1638   1.24      cube {
   1639   1.49        ad 
   1640   1.24      cube 	return copyin(changelist + index, changes, n * sizeof(*changes));
   1641   1.24      cube }
   1642   1.24      cube 
   1643   1.61  christos int
   1644   1.81      matt kevent_put_events(void *ctx, struct kevent *events,
   1645   1.61  christos     struct kevent *eventlist, size_t index, int n)
   1646   1.24      cube {
   1647   1.49        ad 
   1648   1.24      cube 	return copyout(events, eventlist + index, n * sizeof(*events));
   1649   1.24      cube }
   1650   1.24      cube 
   1651   1.24      cube static const struct kevent_ops kevent_native_ops = {
   1652   1.60  gmcgarry 	.keo_private = NULL,
   1653   1.60  gmcgarry 	.keo_fetch_timeout = copyin,
   1654   1.60  gmcgarry 	.keo_fetch_changes = kevent_fetch_changes,
   1655   1.60  gmcgarry 	.keo_put_events = kevent_put_events,
   1656   1.24      cube };
   1657   1.24      cube 
   1658    1.1     lukem int
   1659   1.61  christos sys___kevent50(struct lwp *l, const struct sys___kevent50_args *uap,
   1660   1.61  christos     register_t *retval)
   1661    1.1     lukem {
   1662   1.44       dsl 	/* {
   1663    1.3  jdolecek 		syscallarg(int) fd;
   1664    1.3  jdolecek 		syscallarg(const struct kevent *) changelist;
   1665    1.3  jdolecek 		syscallarg(size_t) nchanges;
   1666    1.3  jdolecek 		syscallarg(struct kevent *) eventlist;
   1667    1.3  jdolecek 		syscallarg(size_t) nevents;
   1668    1.3  jdolecek 		syscallarg(const struct timespec *) timeout;
   1669   1.44       dsl 	} */
   1670   1.24      cube 
   1671   1.49        ad 	return kevent1(retval, SCARG(uap, fd), SCARG(uap, changelist),
   1672   1.24      cube 	    SCARG(uap, nchanges), SCARG(uap, eventlist), SCARG(uap, nevents),
   1673   1.24      cube 	    SCARG(uap, timeout), &kevent_native_ops);
   1674   1.24      cube }
   1675   1.24      cube 
   1676   1.24      cube int
   1677   1.49        ad kevent1(register_t *retval, int fd,
   1678   1.49        ad 	const struct kevent *changelist, size_t nchanges,
   1679   1.49        ad 	struct kevent *eventlist, size_t nevents,
   1680   1.49        ad 	const struct timespec *timeout,
   1681   1.49        ad 	const struct kevent_ops *keops)
   1682   1.24      cube {
   1683   1.49        ad 	struct kevent *kevp;
   1684   1.49        ad 	struct kqueue *kq;
   1685    1.3  jdolecek 	struct timespec	ts;
   1686   1.49        ad 	size_t i, n, ichange;
   1687   1.49        ad 	int nerrors, error;
   1688   1.80      maxv 	struct kevent kevbuf[KQ_NEVENTS];	/* approx 300 bytes on 64-bit */
   1689   1.49        ad 	file_t *fp;
   1690    1.3  jdolecek 
   1691    1.3  jdolecek 	/* check that we're dealing with a kq */
   1692   1.49        ad 	fp = fd_getfile(fd);
   1693   1.10        pk 	if (fp == NULL)
   1694    1.1     lukem 		return (EBADF);
   1695   1.10        pk 
   1696   1.10        pk 	if (fp->f_type != DTYPE_KQUEUE) {
   1697   1.49        ad 		fd_putfile(fd);
   1698   1.10        pk 		return (EBADF);
   1699   1.10        pk 	}
   1700    1.1     lukem 
   1701   1.24      cube 	if (timeout != NULL) {
   1702   1.24      cube 		error = (*keops->keo_fetch_timeout)(timeout, &ts, sizeof(ts));
   1703    1.1     lukem 		if (error)
   1704    1.1     lukem 			goto done;
   1705   1.24      cube 		timeout = &ts;
   1706    1.1     lukem 	}
   1707    1.1     lukem 
   1708   1.82      matt 	kq = fp->f_kqueue;
   1709    1.1     lukem 	nerrors = 0;
   1710   1.24      cube 	ichange = 0;
   1711    1.1     lukem 
   1712    1.3  jdolecek 	/* traverse list of events to register */
   1713   1.24      cube 	while (nchanges > 0) {
   1714   1.49        ad 		n = MIN(nchanges, __arraycount(kevbuf));
   1715   1.24      cube 		error = (*keops->keo_fetch_changes)(keops->keo_private,
   1716   1.49        ad 		    changelist, kevbuf, ichange, n);
   1717    1.1     lukem 		if (error)
   1718    1.1     lukem 			goto done;
   1719    1.1     lukem 		for (i = 0; i < n; i++) {
   1720   1.49        ad 			kevp = &kevbuf[i];
   1721    1.1     lukem 			kevp->flags &= ~EV_SYSFLAGS;
   1722    1.3  jdolecek 			/* register each knote */
   1723   1.49        ad 			error = kqueue_register(kq, kevp);
   1724   1.89   abhinav 			if (!error && !(kevp->flags & EV_RECEIPT))
   1725   1.89   abhinav 				continue;
   1726   1.89   abhinav 			if (nevents == 0)
   1727   1.89   abhinav 				goto done;
   1728   1.89   abhinav 			kevp->flags = EV_ERROR;
   1729   1.89   abhinav 			kevp->data = error;
   1730   1.89   abhinav 			error = (*keops->keo_put_events)
   1731   1.89   abhinav 				(keops->keo_private, kevp,
   1732   1.89   abhinav 				 eventlist, nerrors, 1);
   1733   1.89   abhinav 			if (error)
   1734   1.89   abhinav 				goto done;
   1735   1.89   abhinav 			nevents--;
   1736   1.89   abhinav 			nerrors++;
   1737    1.1     lukem 		}
   1738   1.24      cube 		nchanges -= n;	/* update the results */
   1739   1.24      cube 		ichange += n;
   1740    1.1     lukem 	}
   1741    1.1     lukem 	if (nerrors) {
   1742    1.3  jdolecek 		*retval = nerrors;
   1743    1.1     lukem 		error = 0;
   1744    1.1     lukem 		goto done;
   1745    1.1     lukem 	}
   1746    1.1     lukem 
   1747    1.3  jdolecek 	/* actually scan through the events */
   1748   1.49        ad 	error = kqueue_scan(fp, nevents, eventlist, timeout, retval, keops,
   1749   1.49        ad 	    kevbuf, __arraycount(kevbuf));
   1750    1.3  jdolecek  done:
   1751   1.49        ad 	fd_putfile(fd);
   1752    1.1     lukem 	return (error);
   1753    1.1     lukem }
   1754    1.1     lukem 
   1755    1.3  jdolecek /*
   1756    1.3  jdolecek  * Register a given kevent kev onto the kqueue
   1757    1.3  jdolecek  */
   1758   1.49        ad static int
   1759   1.49        ad kqueue_register(struct kqueue *kq, struct kevent *kev)
   1760    1.1     lukem {
   1761   1.49        ad 	struct kfilter *kfilter;
   1762   1.49        ad 	filedesc_t *fdp;
   1763   1.49        ad 	file_t *fp;
   1764   1.49        ad 	fdfile_t *ff;
   1765   1.49        ad 	struct knote *kn, *newkn;
   1766   1.49        ad 	struct klist *list;
   1767   1.49        ad 	int error, fd, rv;
   1768    1.3  jdolecek 
   1769    1.3  jdolecek 	fdp = kq->kq_fdp;
   1770    1.3  jdolecek 	fp = NULL;
   1771    1.3  jdolecek 	kn = NULL;
   1772    1.3  jdolecek 	error = 0;
   1773   1.49        ad 	fd = 0;
   1774   1.49        ad 
   1775  1.142   thorpej 	newkn = knote_alloc(true);
   1776   1.49        ad 
   1777   1.49        ad 	rw_enter(&kqueue_filter_lock, RW_READER);
   1778    1.3  jdolecek 	kfilter = kfilter_byfilter(kev->filter);
   1779    1.3  jdolecek 	if (kfilter == NULL || kfilter->filtops == NULL) {
   1780    1.3  jdolecek 		/* filter not found nor implemented */
   1781   1.49        ad 		rw_exit(&kqueue_filter_lock);
   1782  1.142   thorpej 		knote_free(newkn);
   1783    1.1     lukem 		return (EINVAL);
   1784    1.1     lukem 	}
   1785    1.1     lukem 
   1786    1.3  jdolecek 	/* search if knote already exists */
   1787  1.121   thorpej 	if (kfilter->filtops->f_flags & FILTEROP_ISFD) {
   1788    1.3  jdolecek 		/* monitoring a file descriptor */
   1789   1.87  christos 		/* validate descriptor */
   1790   1.88  christos 		if (kev->ident > INT_MAX
   1791   1.88  christos 		    || (fp = fd_getfile(fd = kev->ident)) == NULL) {
   1792   1.49        ad 			rw_exit(&kqueue_filter_lock);
   1793  1.142   thorpej 			knote_free(newkn);
   1794   1.49        ad 			return EBADF;
   1795   1.49        ad 		}
   1796   1.74     rmind 		mutex_enter(&fdp->fd_lock);
   1797   1.65        ad 		ff = fdp->fd_dt->dt_ff[fd];
   1798   1.98  christos 		if (ff->ff_refcnt & FR_CLOSING) {
   1799   1.98  christos 			error = EBADF;
   1800   1.98  christos 			goto doneunlock;
   1801   1.98  christos 		}
   1802   1.49        ad 		if (fd <= fdp->fd_lastkqfile) {
   1803   1.49        ad 			SLIST_FOREACH(kn, &ff->ff_knlist, kn_link) {
   1804    1.1     lukem 				if (kq == kn->kn_kq &&
   1805    1.1     lukem 				    kev->filter == kn->kn_filter)
   1806    1.1     lukem 					break;
   1807   1.49        ad 			}
   1808    1.1     lukem 		}
   1809    1.1     lukem 	} else {
   1810    1.3  jdolecek 		/*
   1811    1.3  jdolecek 		 * not monitoring a file descriptor, so
   1812    1.3  jdolecek 		 * lookup knotes in internal hash table
   1813    1.3  jdolecek 		 */
   1814   1.74     rmind 		mutex_enter(&fdp->fd_lock);
   1815    1.1     lukem 		if (fdp->fd_knhashmask != 0) {
   1816    1.1     lukem 			list = &fdp->fd_knhash[
   1817    1.1     lukem 			    KN_HASH((u_long)kev->ident, fdp->fd_knhashmask)];
   1818   1.49        ad 			SLIST_FOREACH(kn, list, kn_link) {
   1819    1.1     lukem 				if (kev->ident == kn->kn_id &&
   1820    1.1     lukem 				    kq == kn->kn_kq &&
   1821    1.1     lukem 				    kev->filter == kn->kn_filter)
   1822    1.1     lukem 					break;
   1823   1.49        ad 			}
   1824    1.1     lukem 		}
   1825    1.1     lukem 	}
   1826    1.1     lukem 
   1827  1.129   thorpej 	/* It's safe to test KQ_CLOSING while holding only the fd_lock. */
   1828  1.129   thorpej 	KASSERT(mutex_owned(&fdp->fd_lock));
   1829  1.129   thorpej 	KASSERT((kq->kq_count & KQ_CLOSING) == 0);
   1830  1.129   thorpej 
   1831    1.1     lukem 	/*
   1832    1.1     lukem 	 * kn now contains the matching knote, or NULL if no match
   1833    1.1     lukem 	 */
   1834  1.108  christos 	if (kn == NULL) {
   1835  1.108  christos 		if (kev->flags & EV_ADD) {
   1836    1.3  jdolecek 			/* create new knote */
   1837   1.49        ad 			kn = newkn;
   1838   1.49        ad 			newkn = NULL;
   1839   1.49        ad 			kn->kn_obj = fp;
   1840   1.79  christos 			kn->kn_id = kev->ident;
   1841    1.1     lukem 			kn->kn_kq = kq;
   1842    1.3  jdolecek 			kn->kn_fop = kfilter->filtops;
   1843   1.49        ad 			kn->kn_kfilter = kfilter;
   1844   1.49        ad 			kn->kn_sfflags = kev->fflags;
   1845   1.49        ad 			kn->kn_sdata = kev->data;
   1846   1.49        ad 			kev->fflags = 0;
   1847   1.49        ad 			kev->data = 0;
   1848   1.49        ad 			kn->kn_kevent = *kev;
   1849    1.1     lukem 
   1850   1.85  christos 			KASSERT(kn->kn_fop != NULL);
   1851    1.1     lukem 			/*
   1852    1.1     lukem 			 * apply reference count to knote structure, and
   1853    1.1     lukem 			 * do not release it at the end of this routine.
   1854    1.1     lukem 			 */
   1855    1.1     lukem 			fp = NULL;
   1856    1.1     lukem 
   1857  1.121   thorpej 			if (!(kn->kn_fop->f_flags & FILTEROP_ISFD)) {
   1858   1.49        ad 				/*
   1859   1.49        ad 				 * If knote is not on an fd, store on
   1860   1.49        ad 				 * internal hash table.
   1861   1.49        ad 				 */
   1862   1.49        ad 				if (fdp->fd_knhashmask == 0) {
   1863   1.49        ad 					/* XXXAD can block with fd_lock held */
   1864   1.49        ad 					fdp->fd_knhash = hashinit(KN_HASHSIZE,
   1865   1.59        ad 					    HASH_LIST, true,
   1866   1.49        ad 					    &fdp->fd_knhashmask);
   1867   1.49        ad 				}
   1868   1.49        ad 				list = &fdp->fd_knhash[KN_HASH(kn->kn_id,
   1869   1.49        ad 				    fdp->fd_knhashmask)];
   1870   1.49        ad 			} else {
   1871   1.49        ad 				/* Otherwise, knote is on an fd. */
   1872   1.49        ad 				list = (struct klist *)
   1873   1.65        ad 				    &fdp->fd_dt->dt_ff[kn->kn_id]->ff_knlist;
   1874   1.49        ad 				if ((int)kn->kn_id > fdp->fd_lastkqfile)
   1875   1.49        ad 					fdp->fd_lastkqfile = kn->kn_id;
   1876   1.49        ad 			}
   1877   1.49        ad 			SLIST_INSERT_HEAD(list, kn, kn_link);
   1878    1.1     lukem 
   1879  1.122   thorpej 			/*
   1880  1.122   thorpej 			 * N.B. kn->kn_fop may change as the result
   1881  1.122   thorpej 			 * of filter_attach()!
   1882  1.122   thorpej 			 */
   1883  1.122   thorpej 			error = filter_attach(kn);
   1884   1.49        ad 			if (error != 0) {
   1885  1.100  christos #ifdef DEBUG
   1886  1.105  christos 				struct proc *p = curlwp->l_proc;
   1887  1.101  christos 				const file_t *ft = kn->kn_obj;
   1888  1.105  christos 				printf("%s: %s[%d]: event type %d not "
   1889  1.105  christos 				    "supported for file type %d/%s "
   1890  1.105  christos 				    "(error %d)\n", __func__,
   1891  1.105  christos 				    p->p_comm, p->p_pid,
   1892  1.101  christos 				    kn->kn_filter, ft ? ft->f_type : -1,
   1893  1.101  christos 				    ft ? ft->f_ops->fo_name : "?", error);
   1894  1.100  christos #endif
   1895  1.100  christos 
   1896  1.129   thorpej 				/*
   1897  1.129   thorpej 				 * N.B. no need to check for this note to
   1898  1.129   thorpej 				 * be in-flux, since it was never visible
   1899  1.129   thorpej 				 * to the monitored object.
   1900  1.129   thorpej 				 *
   1901  1.129   thorpej 				 * knote_detach() drops fdp->fd_lock
   1902  1.129   thorpej 				 */
   1903  1.129   thorpej 				mutex_enter(&kq->kq_lock);
   1904  1.129   thorpej 				KNOTE_WILLDETACH(kn);
   1905  1.129   thorpej 				KASSERT(kn_in_flux(kn) == false);
   1906  1.129   thorpej 				mutex_exit(&kq->kq_lock);
   1907   1.49        ad 				knote_detach(kn, fdp, false);
   1908    1.1     lukem 				goto done;
   1909    1.1     lukem 			}
   1910   1.49        ad 			atomic_inc_uint(&kfilter->refcnt);
   1911  1.108  christos 			goto done_ev_add;
   1912    1.1     lukem 		} else {
   1913  1.108  christos 			/* No matching knote and the EV_ADD flag is not set. */
   1914  1.108  christos 			error = ENOENT;
   1915  1.108  christos 			goto doneunlock;
   1916    1.1     lukem 		}
   1917  1.108  christos 	}
   1918  1.108  christos 
   1919  1.108  christos 	if (kev->flags & EV_DELETE) {
   1920  1.129   thorpej 		/*
   1921  1.129   thorpej 		 * Let the world know that this knote is about to go
   1922  1.129   thorpej 		 * away, and wait for it to settle if it's currently
   1923  1.129   thorpej 		 * in-flux.
   1924  1.129   thorpej 		 */
   1925  1.129   thorpej 		mutex_spin_enter(&kq->kq_lock);
   1926  1.129   thorpej 		if (kn->kn_status & KN_WILLDETACH) {
   1927  1.129   thorpej 			/*
   1928  1.129   thorpej 			 * This knote is already on its way out,
   1929  1.129   thorpej 			 * so just be done.
   1930  1.129   thorpej 			 */
   1931  1.129   thorpej 			mutex_spin_exit(&kq->kq_lock);
   1932  1.129   thorpej 			goto doneunlock;
   1933  1.129   thorpej 		}
   1934  1.129   thorpej 		KNOTE_WILLDETACH(kn);
   1935  1.129   thorpej 		if (kn_in_flux(kn)) {
   1936  1.129   thorpej 			mutex_exit(&fdp->fd_lock);
   1937  1.129   thorpej 			/*
   1938  1.129   thorpej 			 * It's safe for us to conclusively wait for
   1939  1.129   thorpej 			 * this knote to settle because we know we'll
   1940  1.129   thorpej 			 * be completing the detach.
   1941  1.129   thorpej 			 */
   1942  1.129   thorpej 			kn_wait_flux(kn, true);
   1943  1.129   thorpej 			KASSERT(kn_in_flux(kn) == false);
   1944  1.129   thorpej 			mutex_spin_exit(&kq->kq_lock);
   1945  1.129   thorpej 			mutex_enter(&fdp->fd_lock);
   1946  1.129   thorpej 		} else {
   1947  1.129   thorpej 			mutex_spin_exit(&kq->kq_lock);
   1948  1.129   thorpej 		}
   1949  1.129   thorpej 
   1950  1.108  christos 		/* knote_detach() drops fdp->fd_lock */
   1951  1.108  christos 		knote_detach(kn, fdp, true);
   1952  1.108  christos 		goto done;
   1953  1.108  christos 	}
   1954  1.108  christos 
   1955  1.108  christos 	/*
   1956  1.108  christos 	 * The user may change some filter values after the
   1957  1.108  christos 	 * initial EV_ADD, but doing so will not reset any
   1958  1.108  christos 	 * filter which have already been triggered.
   1959  1.108  christos 	 */
   1960  1.108  christos 	kn->kn_kevent.udata = kev->udata;
   1961  1.108  christos 	KASSERT(kn->kn_fop != NULL);
   1962  1.121   thorpej 	if (!(kn->kn_fop->f_flags & FILTEROP_ISFD) &&
   1963  1.121   thorpej 	    kn->kn_fop->f_touch != NULL) {
   1964  1.116  jdolecek 		mutex_spin_enter(&kq->kq_lock);
   1965  1.135   thorpej 		error = filter_touch(kn, kev, EVENT_REGISTER);
   1966  1.116  jdolecek 		mutex_spin_exit(&kq->kq_lock);
   1967  1.135   thorpej 		if (__predict_false(error != 0)) {
   1968  1.135   thorpej 			/* Never a new knote (which would consume newkn). */
   1969  1.135   thorpej 			KASSERT(newkn != NULL);
   1970  1.135   thorpej 			goto doneunlock;
   1971  1.135   thorpej 		}
   1972   1.49        ad 	} else {
   1973  1.108  christos 		kn->kn_sfflags = kev->fflags;
   1974  1.108  christos 		kn->kn_sdata = kev->data;
   1975    1.1     lukem 	}
   1976    1.1     lukem 
   1977  1.108  christos 	/*
   1978  1.108  christos 	 * We can get here if we are trying to attach
   1979  1.108  christos 	 * an event to a file descriptor that does not
   1980  1.108  christos 	 * support events, and the attach routine is
   1981  1.108  christos 	 * broken and does not return an error.
   1982  1.108  christos 	 */
   1983  1.135   thorpej  done_ev_add:
   1984  1.122   thorpej 	rv = filter_event(kn, 0);
   1985  1.108  christos 	if (rv)
   1986  1.108  christos 		knote_activate(kn);
   1987  1.108  christos 
   1988    1.3  jdolecek 	/* disable knote */
   1989   1.49        ad 	if ((kev->flags & EV_DISABLE)) {
   1990   1.49        ad 		mutex_spin_enter(&kq->kq_lock);
   1991   1.49        ad 		if ((kn->kn_status & KN_DISABLED) == 0)
   1992   1.49        ad 			kn->kn_status |= KN_DISABLED;
   1993   1.49        ad 		mutex_spin_exit(&kq->kq_lock);
   1994    1.1     lukem 	}
   1995    1.1     lukem 
   1996    1.3  jdolecek 	/* enable knote */
   1997   1.49        ad 	if ((kev->flags & EV_ENABLE)) {
   1998   1.49        ad 		knote_enqueue(kn);
   1999    1.1     lukem 	}
   2000  1.135   thorpej  doneunlock:
   2001   1.49        ad 	mutex_exit(&fdp->fd_lock);
   2002    1.3  jdolecek  done:
   2003   1.49        ad 	rw_exit(&kqueue_filter_lock);
   2004   1.49        ad 	if (newkn != NULL)
   2005  1.142   thorpej 		knote_free(newkn);
   2006    1.1     lukem 	if (fp != NULL)
   2007   1.49        ad 		fd_putfile(fd);
   2008    1.1     lukem 	return (error);
   2009    1.1     lukem }
   2010    1.1     lukem 
   2011   1.94  christos #define KN_FMT(buf, kn) \
   2012   1.94  christos     (snprintb((buf), sizeof(buf), __KN_FLAG_BITS, (kn)->kn_status), buf)
   2013   1.94  christos 
   2014  1.129   thorpej #if defined(DDB)
   2015  1.129   thorpej void
   2016  1.129   thorpej kqueue_printit(struct kqueue *kq, bool full, void (*pr)(const char *, ...))
   2017  1.129   thorpej {
   2018  1.129   thorpej 	const struct knote *kn;
   2019  1.129   thorpej 	u_int count;
   2020  1.129   thorpej 	int nmarker;
   2021  1.129   thorpej 	char buf[128];
   2022  1.129   thorpej 
   2023  1.129   thorpej 	count = 0;
   2024  1.129   thorpej 	nmarker = 0;
   2025  1.129   thorpej 
   2026  1.129   thorpej 	(*pr)("kqueue %p (restart=%d count=%u):\n", kq,
   2027  1.129   thorpej 	    !!(kq->kq_count & KQ_RESTART), KQ_COUNT(kq));
   2028  1.129   thorpej 	(*pr)("  Queued knotes:\n");
   2029  1.129   thorpej 	TAILQ_FOREACH(kn, &kq->kq_head, kn_tqe) {
   2030  1.129   thorpej 		if (kn->kn_status & KN_MARKER) {
   2031  1.129   thorpej 			nmarker++;
   2032  1.129   thorpej 		} else {
   2033  1.129   thorpej 			count++;
   2034  1.129   thorpej 		}
   2035  1.129   thorpej 		(*pr)("    knote %p: kq=%p status=%s\n",
   2036  1.129   thorpej 		    kn, kn->kn_kq, KN_FMT(buf, kn));
   2037  1.129   thorpej 		(*pr)("      id=0x%lx (%lu) filter=%d\n",
   2038  1.129   thorpej 		    (u_long)kn->kn_id, (u_long)kn->kn_id, kn->kn_filter);
   2039  1.129   thorpej 		if (kn->kn_kq != kq) {
   2040  1.129   thorpej 			(*pr)("      !!! kn->kn_kq != kq\n");
   2041  1.129   thorpej 		}
   2042  1.129   thorpej 	}
   2043  1.129   thorpej 	if (count != KQ_COUNT(kq)) {
   2044  1.129   thorpej 		(*pr)("  !!! count(%u) != KQ_COUNT(%u)\n",
   2045  1.129   thorpej 		    count, KQ_COUNT(kq));
   2046  1.129   thorpej 	}
   2047  1.129   thorpej }
   2048  1.129   thorpej #endif /* DDB */
   2049  1.129   thorpej 
   2050  1.129   thorpej #if defined(DEBUG)
   2051   1.52      yamt static void
   2052   1.94  christos kqueue_check(const char *func, size_t line, const struct kqueue *kq)
   2053   1.52      yamt {
   2054   1.52      yamt 	const struct knote *kn;
   2055  1.118  jdolecek 	u_int count;
   2056   1.52      yamt 	int nmarker;
   2057   1.94  christos 	char buf[128];
   2058   1.52      yamt 
   2059   1.52      yamt 	KASSERT(mutex_owned(&kq->kq_lock));
   2060   1.52      yamt 
   2061   1.52      yamt 	count = 0;
   2062   1.52      yamt 	nmarker = 0;
   2063   1.52      yamt 	TAILQ_FOREACH(kn, &kq->kq_head, kn_tqe) {
   2064   1.52      yamt 		if ((kn->kn_status & (KN_MARKER | KN_QUEUED)) == 0) {
   2065   1.94  christos 			panic("%s,%zu: kq=%p kn=%p !(MARKER|QUEUED) %s",
   2066   1.94  christos 			    func, line, kq, kn, KN_FMT(buf, kn));
   2067   1.52      yamt 		}
   2068   1.52      yamt 		if ((kn->kn_status & KN_MARKER) == 0) {
   2069   1.52      yamt 			if (kn->kn_kq != kq) {
   2070   1.94  christos 				panic("%s,%zu: kq=%p kn(%p) != kn->kq(%p): %s",
   2071   1.94  christos 				    func, line, kq, kn, kn->kn_kq,
   2072   1.94  christos 				    KN_FMT(buf, kn));
   2073   1.52      yamt 			}
   2074   1.52      yamt 			if ((kn->kn_status & KN_ACTIVE) == 0) {
   2075   1.94  christos 				panic("%s,%zu: kq=%p kn=%p: !ACTIVE %s",
   2076   1.94  christos 				    func, line, kq, kn, KN_FMT(buf, kn));
   2077   1.52      yamt 			}
   2078   1.52      yamt 			count++;
   2079  1.118  jdolecek 			if (count > KQ_COUNT(kq)) {
   2080  1.129   thorpej 				panic("%s,%zu: kq=%p kq->kq_count(%u) != "
   2081  1.112  jdolecek 				    "count(%d), nmarker=%d",
   2082  1.118  jdolecek 		    		    func, line, kq, KQ_COUNT(kq), count,
   2083  1.112  jdolecek 				    nmarker);
   2084   1.52      yamt 			}
   2085   1.52      yamt 		} else {
   2086   1.52      yamt 			nmarker++;
   2087   1.52      yamt 		}
   2088   1.52      yamt 	}
   2089   1.52      yamt }
   2090   1.94  christos #define kq_check(a) kqueue_check(__func__, __LINE__, (a))
   2091   1.52      yamt #else /* defined(DEBUG) */
   2092   1.52      yamt #define	kq_check(a)	/* nothing */
   2093   1.52      yamt #endif /* defined(DEBUG) */
   2094   1.52      yamt 
   2095  1.118  jdolecek static void
   2096  1.118  jdolecek kqueue_restart(file_t *fp)
   2097  1.118  jdolecek {
   2098  1.118  jdolecek 	struct kqueue *kq = fp->f_kqueue;
   2099  1.118  jdolecek 	KASSERT(kq != NULL);
   2100  1.118  jdolecek 
   2101  1.118  jdolecek 	mutex_spin_enter(&kq->kq_lock);
   2102  1.118  jdolecek 	kq->kq_count |= KQ_RESTART;
   2103  1.118  jdolecek 	cv_broadcast(&kq->kq_cv);
   2104  1.118  jdolecek 	mutex_spin_exit(&kq->kq_lock);
   2105  1.118  jdolecek }
   2106  1.118  jdolecek 
   2107    1.3  jdolecek /*
   2108    1.3  jdolecek  * Scan through the list of events on fp (for a maximum of maxevents),
   2109    1.3  jdolecek  * returning the results in to ulistp. Timeout is determined by tsp; if
   2110    1.3  jdolecek  * NULL, wait indefinitely, if 0 valued, perform a poll, otherwise wait
   2111    1.3  jdolecek  * as appropriate.
   2112    1.3  jdolecek  */
   2113    1.1     lukem static int
   2114   1.49        ad kqueue_scan(file_t *fp, size_t maxevents, struct kevent *ulistp,
   2115   1.49        ad 	    const struct timespec *tsp, register_t *retval,
   2116   1.49        ad 	    const struct kevent_ops *keops, struct kevent *kevbuf,
   2117   1.49        ad 	    size_t kevcnt)
   2118    1.1     lukem {
   2119    1.3  jdolecek 	struct kqueue	*kq;
   2120    1.3  jdolecek 	struct kevent	*kevp;
   2121   1.62  christos 	struct timespec	ats, sleepts;
   2122   1.85  christos 	struct knote	*kn, *marker, morker;
   2123   1.24      cube 	size_t		count, nkev, nevents;
   2124  1.111  jdolecek 	int		timeout, error, touch, rv, influx;
   2125   1.49        ad 	filedesc_t	*fdp;
   2126    1.1     lukem 
   2127   1.49        ad 	fdp = curlwp->l_fd;
   2128   1.82      matt 	kq = fp->f_kqueue;
   2129    1.1     lukem 	count = maxevents;
   2130   1.24      cube 	nkev = nevents = error = 0;
   2131   1.49        ad 	if (count == 0) {
   2132   1.49        ad 		*retval = 0;
   2133   1.49        ad 		return 0;
   2134   1.49        ad 	}
   2135    1.1     lukem 
   2136    1.9  jdolecek 	if (tsp) {				/* timeout supplied */
   2137   1.63  christos 		ats = *tsp;
   2138   1.62  christos 		if (inittimeleft(&ats, &sleepts) == -1) {
   2139   1.49        ad 			*retval = maxevents;
   2140   1.49        ad 			return EINVAL;
   2141    1.1     lukem 		}
   2142   1.62  christos 		timeout = tstohz(&ats);
   2143    1.9  jdolecek 		if (timeout <= 0)
   2144   1.29    kardel 			timeout = -1;           /* do poll */
   2145    1.1     lukem 	} else {
   2146    1.9  jdolecek 		/* no timeout, wait forever */
   2147    1.1     lukem 		timeout = 0;
   2148   1.93  riastrad 	}
   2149    1.1     lukem 
   2150   1.85  christos 	memset(&morker, 0, sizeof(morker));
   2151   1.85  christos 	marker = &morker;
   2152  1.129   thorpej 	marker->kn_kq = kq;
   2153   1.49        ad 	marker->kn_status = KN_MARKER;
   2154   1.49        ad 	mutex_spin_enter(&kq->kq_lock);
   2155    1.3  jdolecek  retry:
   2156   1.49        ad 	kevp = kevbuf;
   2157  1.118  jdolecek 	if (KQ_COUNT(kq) == 0) {
   2158   1.49        ad 		if (timeout >= 0) {
   2159   1.49        ad 			error = cv_timedwait_sig(&kq->kq_cv,
   2160   1.49        ad 			    &kq->kq_lock, timeout);
   2161   1.49        ad 			if (error == 0) {
   2162  1.118  jdolecek 				if (KQ_COUNT(kq) == 0 &&
   2163  1.118  jdolecek 				    (kq->kq_count & KQ_RESTART)) {
   2164  1.118  jdolecek 					/* return to clear file reference */
   2165  1.118  jdolecek 					error = ERESTART;
   2166  1.118  jdolecek 				} else if (tsp == NULL || (timeout =
   2167  1.118  jdolecek 				    gettimeleft(&ats, &sleepts)) > 0) {
   2168   1.49        ad 					goto retry;
   2169  1.118  jdolecek 				}
   2170   1.49        ad 			} else {
   2171   1.49        ad 				/* don't restart after signals... */
   2172   1.49        ad 				if (error == ERESTART)
   2173   1.49        ad 					error = EINTR;
   2174   1.49        ad 				if (error == EWOULDBLOCK)
   2175   1.49        ad 					error = 0;
   2176   1.49        ad 			}
   2177    1.1     lukem 		}
   2178   1.92  christos 		mutex_spin_exit(&kq->kq_lock);
   2179  1.110  jdolecek 		goto done;
   2180  1.110  jdolecek 	}
   2181  1.110  jdolecek 
   2182  1.110  jdolecek 	/* mark end of knote list */
   2183  1.110  jdolecek 	TAILQ_INSERT_TAIL(&kq->kq_head, marker, kn_tqe);
   2184  1.111  jdolecek 	influx = 0;
   2185    1.1     lukem 
   2186  1.110  jdolecek 	/*
   2187  1.110  jdolecek 	 * Acquire the fdp->fd_lock interlock to avoid races with
   2188  1.110  jdolecek 	 * file creation/destruction from other threads.
   2189  1.110  jdolecek 	 */
   2190  1.129   thorpej 	mutex_spin_exit(&kq->kq_lock);
   2191  1.111  jdolecek relock:
   2192  1.110  jdolecek 	mutex_enter(&fdp->fd_lock);
   2193  1.110  jdolecek 	mutex_spin_enter(&kq->kq_lock);
   2194   1.92  christos 
   2195  1.110  jdolecek 	while (count != 0) {
   2196  1.129   thorpej 		/*
   2197  1.129   thorpej 		 * Get next knote.  We are guaranteed this will never
   2198  1.129   thorpej 		 * be NULL because of the marker we inserted above.
   2199  1.129   thorpej 		 */
   2200  1.129   thorpej 		kn = TAILQ_FIRST(&kq->kq_head);
   2201  1.111  jdolecek 
   2202  1.129   thorpej 		bool kn_is_other_marker =
   2203  1.129   thorpej 		    (kn->kn_status & KN_MARKER) != 0 && kn != marker;
   2204  1.129   thorpej 		bool kn_is_detaching = (kn->kn_status & KN_WILLDETACH) != 0;
   2205  1.129   thorpej 		bool kn_is_in_flux = kn_in_flux(kn);
   2206  1.129   thorpej 
   2207  1.129   thorpej 		/*
   2208  1.129   thorpej 		 * If we found a marker that's not ours, or this knote
   2209  1.129   thorpej 		 * is in a state of flux, then wait for everything to
   2210  1.129   thorpej 		 * settle down and go around again.
   2211  1.129   thorpej 		 */
   2212  1.129   thorpej 		if (kn_is_other_marker || kn_is_detaching || kn_is_in_flux) {
   2213  1.111  jdolecek 			if (influx) {
   2214  1.111  jdolecek 				influx = 0;
   2215  1.111  jdolecek 				KQ_FLUX_WAKEUP(kq);
   2216  1.111  jdolecek 			}
   2217  1.111  jdolecek 			mutex_exit(&fdp->fd_lock);
   2218  1.129   thorpej 			if (kn_is_other_marker || kn_is_in_flux) {
   2219  1.129   thorpej 				KQ_FLUX_WAIT(kq);
   2220  1.129   thorpej 				mutex_spin_exit(&kq->kq_lock);
   2221  1.129   thorpej 			} else {
   2222  1.129   thorpej 				/*
   2223  1.129   thorpej 				 * Detaching but not in-flux?  Someone is
   2224  1.129   thorpej 				 * actively trying to finish the job; just
   2225  1.129   thorpej 				 * go around and try again.
   2226  1.129   thorpej 				 */
   2227  1.129   thorpej 				KASSERT(kn_is_detaching);
   2228  1.129   thorpej 				mutex_spin_exit(&kq->kq_lock);
   2229  1.129   thorpej 				preempt_point();
   2230  1.129   thorpej 			}
   2231  1.111  jdolecek 			goto relock;
   2232  1.111  jdolecek 		}
   2233  1.111  jdolecek 
   2234  1.111  jdolecek 		TAILQ_REMOVE(&kq->kq_head, kn, kn_tqe);
   2235  1.111  jdolecek 		if (kn == marker) {
   2236  1.111  jdolecek 			/* it's our marker, stop */
   2237  1.111  jdolecek 			KQ_FLUX_WAKEUP(kq);
   2238  1.111  jdolecek 			if (count == maxevents) {
   2239  1.110  jdolecek 				mutex_exit(&fdp->fd_lock);
   2240  1.110  jdolecek 				goto retry;
   2241   1.49        ad 			}
   2242  1.111  jdolecek 			break;
   2243  1.110  jdolecek 		}
   2244  1.111  jdolecek 		KASSERT((kn->kn_status & KN_BUSY) == 0);
   2245  1.111  jdolecek 
   2246  1.110  jdolecek 		kq_check(kq);
   2247  1.115  jdolecek 		kn->kn_status &= ~KN_QUEUED;
   2248  1.110  jdolecek 		kn->kn_status |= KN_BUSY;
   2249  1.110  jdolecek 		kq_check(kq);
   2250  1.110  jdolecek 		if (kn->kn_status & KN_DISABLED) {
   2251  1.115  jdolecek 			kn->kn_status &= ~KN_BUSY;
   2252  1.111  jdolecek 			kq->kq_count--;
   2253  1.110  jdolecek 			/* don't want disabled events */
   2254  1.110  jdolecek 			continue;
   2255  1.110  jdolecek 		}
   2256  1.110  jdolecek 		if ((kn->kn_flags & EV_ONESHOT) == 0) {
   2257  1.110  jdolecek 			mutex_spin_exit(&kq->kq_lock);
   2258  1.110  jdolecek 			KASSERT(mutex_owned(&fdp->fd_lock));
   2259  1.122   thorpej 			rv = filter_event(kn, 0);
   2260  1.110  jdolecek 			mutex_spin_enter(&kq->kq_lock);
   2261  1.115  jdolecek 			/* Re-poll if note was re-enqueued. */
   2262  1.115  jdolecek 			if ((kn->kn_status & KN_QUEUED) != 0) {
   2263  1.115  jdolecek 				kn->kn_status &= ~KN_BUSY;
   2264  1.115  jdolecek 				/* Re-enqueue raised kq_count, lower it again */
   2265  1.115  jdolecek 				kq->kq_count--;
   2266  1.115  jdolecek 				influx = 1;
   2267  1.115  jdolecek 				continue;
   2268  1.115  jdolecek 			}
   2269  1.110  jdolecek 			if (rv == 0) {
   2270  1.110  jdolecek 				/*
   2271  1.129   thorpej 				 * non-ONESHOT event that hasn't triggered
   2272  1.129   thorpej 				 * again, so it will remain de-queued.
   2273  1.110  jdolecek 				 */
   2274  1.115  jdolecek 				kn->kn_status &= ~(KN_ACTIVE|KN_BUSY);
   2275  1.111  jdolecek 				kq->kq_count--;
   2276  1.111  jdolecek 				influx = 1;
   2277  1.110  jdolecek 				continue;
   2278   1.49        ad 			}
   2279  1.129   thorpej 		} else {
   2280  1.129   thorpej 			/*
   2281  1.138   thorpej 			 * Must NOT drop kq_lock until we can do
   2282  1.138   thorpej 			 * the KNOTE_WILLDETACH() below.
   2283  1.129   thorpej 			 */
   2284  1.110  jdolecek 		}
   2285  1.110  jdolecek 		KASSERT(kn->kn_fop != NULL);
   2286  1.121   thorpej 		touch = (!(kn->kn_fop->f_flags & FILTEROP_ISFD) &&
   2287  1.110  jdolecek 				kn->kn_fop->f_touch != NULL);
   2288  1.110  jdolecek 		/* XXXAD should be got from f_event if !oneshot. */
   2289  1.138   thorpej 		KASSERT((kn->kn_status & KN_WILLDETACH) == 0);
   2290  1.110  jdolecek 		if (touch) {
   2291  1.135   thorpej 			(void)filter_touch(kn, kevp, EVENT_PROCESS);
   2292  1.110  jdolecek 		} else {
   2293  1.110  jdolecek 			*kevp = kn->kn_kevent;
   2294  1.110  jdolecek 		}
   2295  1.110  jdolecek 		kevp++;
   2296  1.110  jdolecek 		nkev++;
   2297  1.111  jdolecek 		influx = 1;
   2298  1.110  jdolecek 		if (kn->kn_flags & EV_ONESHOT) {
   2299  1.110  jdolecek 			/* delete ONESHOT events after retrieval */
   2300  1.138   thorpej 			KNOTE_WILLDETACH(kn);
   2301  1.115  jdolecek 			kn->kn_status &= ~KN_BUSY;
   2302  1.111  jdolecek 			kq->kq_count--;
   2303  1.129   thorpej 			KASSERT(kn_in_flux(kn) == false);
   2304  1.129   thorpej 			KASSERT((kn->kn_status & KN_WILLDETACH) != 0 &&
   2305  1.129   thorpej 				kn->kn_kevent.udata == curlwp);
   2306  1.110  jdolecek 			mutex_spin_exit(&kq->kq_lock);
   2307  1.110  jdolecek 			knote_detach(kn, fdp, true);
   2308  1.110  jdolecek 			mutex_enter(&fdp->fd_lock);
   2309  1.110  jdolecek 			mutex_spin_enter(&kq->kq_lock);
   2310  1.110  jdolecek 		} else if (kn->kn_flags & EV_CLEAR) {
   2311  1.110  jdolecek 			/* clear state after retrieval */
   2312  1.110  jdolecek 			kn->kn_data = 0;
   2313  1.110  jdolecek 			kn->kn_fflags = 0;
   2314  1.110  jdolecek 			/*
   2315  1.110  jdolecek 			 * Manually clear knotes who weren't
   2316  1.110  jdolecek 			 * 'touch'ed.
   2317  1.110  jdolecek 			 */
   2318  1.110  jdolecek 			if (touch == 0) {
   2319   1.49        ad 				kn->kn_data = 0;
   2320   1.49        ad 				kn->kn_fflags = 0;
   2321   1.49        ad 			}
   2322  1.115  jdolecek 			kn->kn_status &= ~(KN_ACTIVE|KN_BUSY);
   2323  1.111  jdolecek 			kq->kq_count--;
   2324  1.110  jdolecek 		} else if (kn->kn_flags & EV_DISPATCH) {
   2325  1.110  jdolecek 			kn->kn_status |= KN_DISABLED;
   2326  1.115  jdolecek 			kn->kn_status &= ~(KN_ACTIVE|KN_BUSY);
   2327  1.111  jdolecek 			kq->kq_count--;
   2328  1.110  jdolecek 		} else {
   2329  1.110  jdolecek 			/* add event back on list */
   2330  1.110  jdolecek 			kq_check(kq);
   2331  1.115  jdolecek 			kn->kn_status |= KN_QUEUED;
   2332  1.110  jdolecek 			kn->kn_status &= ~KN_BUSY;
   2333  1.110  jdolecek 			TAILQ_INSERT_TAIL(&kq->kq_head, kn, kn_tqe);
   2334  1.110  jdolecek 			kq_check(kq);
   2335  1.110  jdolecek 		}
   2336  1.111  jdolecek 
   2337  1.110  jdolecek 		if (nkev == kevcnt) {
   2338  1.110  jdolecek 			/* do copyouts in kevcnt chunks */
   2339  1.111  jdolecek 			influx = 0;
   2340  1.111  jdolecek 			KQ_FLUX_WAKEUP(kq);
   2341  1.110  jdolecek 			mutex_spin_exit(&kq->kq_lock);
   2342  1.110  jdolecek 			mutex_exit(&fdp->fd_lock);
   2343  1.110  jdolecek 			error = (*keops->keo_put_events)
   2344  1.110  jdolecek 			    (keops->keo_private,
   2345  1.110  jdolecek 			    kevbuf, ulistp, nevents, nkev);
   2346  1.110  jdolecek 			mutex_enter(&fdp->fd_lock);
   2347  1.110  jdolecek 			mutex_spin_enter(&kq->kq_lock);
   2348  1.110  jdolecek 			nevents += nkev;
   2349  1.110  jdolecek 			nkev = 0;
   2350  1.110  jdolecek 			kevp = kevbuf;
   2351  1.110  jdolecek 		}
   2352  1.110  jdolecek 		count--;
   2353  1.110  jdolecek 		if (error != 0 || count == 0) {
   2354  1.110  jdolecek 			/* remove marker */
   2355  1.110  jdolecek 			TAILQ_REMOVE(&kq->kq_head, marker, kn_tqe);
   2356  1.110  jdolecek 			break;
   2357    1.1     lukem 		}
   2358    1.1     lukem 	}
   2359  1.111  jdolecek 	KQ_FLUX_WAKEUP(kq);
   2360  1.110  jdolecek 	mutex_spin_exit(&kq->kq_lock);
   2361  1.110  jdolecek 	mutex_exit(&fdp->fd_lock);
   2362  1.110  jdolecek 
   2363  1.110  jdolecek done:
   2364   1.49        ad 	if (nkev != 0) {
   2365    1.3  jdolecek 		/* copyout remaining events */
   2366   1.24      cube 		error = (*keops->keo_put_events)(keops->keo_private,
   2367   1.49        ad 		    kevbuf, ulistp, nevents, nkev);
   2368   1.49        ad 	}
   2369    1.3  jdolecek 	*retval = maxevents - count;
   2370    1.3  jdolecek 
   2371   1.49        ad 	return error;
   2372    1.1     lukem }
   2373    1.1     lukem 
   2374    1.1     lukem /*
   2375   1.49        ad  * fileops ioctl method for a kqueue descriptor.
   2376    1.3  jdolecek  *
   2377    1.3  jdolecek  * Two ioctls are currently supported. They both use struct kfilter_mapping:
   2378    1.3  jdolecek  *	KFILTER_BYNAME		find name for filter, and return result in
   2379    1.3  jdolecek  *				name, which is of size len.
   2380    1.3  jdolecek  *	KFILTER_BYFILTER	find filter for name. len is ignored.
   2381    1.3  jdolecek  */
   2382    1.1     lukem /*ARGSUSED*/
   2383    1.1     lukem static int
   2384   1.49        ad kqueue_ioctl(file_t *fp, u_long com, void *data)
   2385    1.1     lukem {
   2386    1.3  jdolecek 	struct kfilter_mapping	*km;
   2387    1.3  jdolecek 	const struct kfilter	*kfilter;
   2388    1.3  jdolecek 	char			*name;
   2389    1.3  jdolecek 	int			error;
   2390    1.3  jdolecek 
   2391   1.49        ad 	km = data;
   2392    1.3  jdolecek 	error = 0;
   2393   1.49        ad 	name = kmem_alloc(KFILTER_MAXNAME, KM_SLEEP);
   2394    1.3  jdolecek 
   2395    1.3  jdolecek 	switch (com) {
   2396    1.3  jdolecek 	case KFILTER_BYFILTER:	/* convert filter -> name */
   2397   1.49        ad 		rw_enter(&kqueue_filter_lock, RW_READER);
   2398    1.3  jdolecek 		kfilter = kfilter_byfilter(km->filter);
   2399   1.49        ad 		if (kfilter != NULL) {
   2400   1.49        ad 			strlcpy(name, kfilter->name, KFILTER_MAXNAME);
   2401   1.49        ad 			rw_exit(&kqueue_filter_lock);
   2402   1.49        ad 			error = copyoutstr(name, km->name, km->len, NULL);
   2403   1.49        ad 		} else {
   2404   1.49        ad 			rw_exit(&kqueue_filter_lock);
   2405    1.3  jdolecek 			error = ENOENT;
   2406   1.49        ad 		}
   2407    1.3  jdolecek 		break;
   2408    1.3  jdolecek 
   2409    1.3  jdolecek 	case KFILTER_BYNAME:	/* convert name -> filter */
   2410    1.3  jdolecek 		error = copyinstr(km->name, name, KFILTER_MAXNAME, NULL);
   2411    1.3  jdolecek 		if (error) {
   2412    1.3  jdolecek 			break;
   2413    1.3  jdolecek 		}
   2414   1.49        ad 		rw_enter(&kqueue_filter_lock, RW_READER);
   2415    1.3  jdolecek 		kfilter = kfilter_byname(name);
   2416    1.3  jdolecek 		if (kfilter != NULL)
   2417    1.3  jdolecek 			km->filter = kfilter->filter;
   2418    1.3  jdolecek 		else
   2419    1.3  jdolecek 			error = ENOENT;
   2420   1.49        ad 		rw_exit(&kqueue_filter_lock);
   2421    1.3  jdolecek 		break;
   2422    1.3  jdolecek 
   2423    1.3  jdolecek 	default:
   2424    1.3  jdolecek 		error = ENOTTY;
   2425   1.49        ad 		break;
   2426    1.3  jdolecek 
   2427    1.3  jdolecek 	}
   2428   1.49        ad 	kmem_free(name, KFILTER_MAXNAME);
   2429    1.3  jdolecek 	return (error);
   2430    1.3  jdolecek }
   2431    1.3  jdolecek 
   2432    1.3  jdolecek /*
   2433   1.49        ad  * fileops fcntl method for a kqueue descriptor.
   2434    1.3  jdolecek  */
   2435    1.3  jdolecek static int
   2436   1.49        ad kqueue_fcntl(file_t *fp, u_int com, void *data)
   2437    1.3  jdolecek {
   2438    1.3  jdolecek 
   2439    1.1     lukem 	return (ENOTTY);
   2440    1.1     lukem }
   2441    1.1     lukem 
   2442    1.3  jdolecek /*
   2443   1.49        ad  * fileops poll method for a kqueue descriptor.
   2444    1.3  jdolecek  * Determine if kqueue has events pending.
   2445    1.3  jdolecek  */
   2446    1.1     lukem static int
   2447   1.49        ad kqueue_poll(file_t *fp, int events)
   2448    1.1     lukem {
   2449    1.3  jdolecek 	struct kqueue	*kq;
   2450    1.3  jdolecek 	int		revents;
   2451    1.3  jdolecek 
   2452   1.82      matt 	kq = fp->f_kqueue;
   2453   1.49        ad 
   2454    1.3  jdolecek 	revents = 0;
   2455    1.3  jdolecek 	if (events & (POLLIN | POLLRDNORM)) {
   2456   1.49        ad 		mutex_spin_enter(&kq->kq_lock);
   2457  1.118  jdolecek 		if (KQ_COUNT(kq) != 0) {
   2458    1.3  jdolecek 			revents |= events & (POLLIN | POLLRDNORM);
   2459    1.1     lukem 		} else {
   2460   1.49        ad 			selrecord(curlwp, &kq->kq_sel);
   2461    1.1     lukem 		}
   2462   1.52      yamt 		kq_check(kq);
   2463   1.49        ad 		mutex_spin_exit(&kq->kq_lock);
   2464    1.1     lukem 	}
   2465   1.49        ad 
   2466   1.49        ad 	return revents;
   2467    1.1     lukem }
   2468    1.1     lukem 
   2469    1.3  jdolecek /*
   2470   1.49        ad  * fileops stat method for a kqueue descriptor.
   2471    1.3  jdolecek  * Returns dummy info, with st_size being number of events pending.
   2472    1.3  jdolecek  */
   2473    1.1     lukem static int
   2474   1.49        ad kqueue_stat(file_t *fp, struct stat *st)
   2475    1.1     lukem {
   2476   1.49        ad 	struct kqueue *kq;
   2477   1.49        ad 
   2478   1.82      matt 	kq = fp->f_kqueue;
   2479    1.1     lukem 
   2480   1.49        ad 	memset(st, 0, sizeof(*st));
   2481  1.118  jdolecek 	st->st_size = KQ_COUNT(kq);
   2482    1.1     lukem 	st->st_blksize = sizeof(struct kevent);
   2483  1.128   thorpej 	st->st_mode = S_IFIFO | S_IRUSR | S_IWUSR;
   2484  1.128   thorpej 	st->st_blocks = 1;
   2485  1.128   thorpej 	st->st_uid = kauth_cred_geteuid(fp->f_cred);
   2486  1.128   thorpej 	st->st_gid = kauth_cred_getegid(fp->f_cred);
   2487   1.49        ad 
   2488   1.49        ad 	return 0;
   2489   1.49        ad }
   2490   1.49        ad 
   2491   1.49        ad static void
   2492   1.49        ad kqueue_doclose(struct kqueue *kq, struct klist *list, int fd)
   2493   1.49        ad {
   2494   1.49        ad 	struct knote *kn;
   2495   1.49        ad 	filedesc_t *fdp;
   2496   1.49        ad 
   2497   1.49        ad 	fdp = kq->kq_fdp;
   2498   1.49        ad 
   2499   1.49        ad 	KASSERT(mutex_owned(&fdp->fd_lock));
   2500   1.49        ad 
   2501  1.129   thorpej  again:
   2502   1.49        ad 	for (kn = SLIST_FIRST(list); kn != NULL;) {
   2503   1.49        ad 		if (kq != kn->kn_kq) {
   2504   1.49        ad 			kn = SLIST_NEXT(kn, kn_link);
   2505   1.49        ad 			continue;
   2506   1.49        ad 		}
   2507  1.129   thorpej 		if (knote_detach_quiesce(kn)) {
   2508  1.129   thorpej 			mutex_enter(&fdp->fd_lock);
   2509  1.129   thorpej 			goto again;
   2510  1.129   thorpej 		}
   2511   1.49        ad 		knote_detach(kn, fdp, true);
   2512   1.49        ad 		mutex_enter(&fdp->fd_lock);
   2513   1.49        ad 		kn = SLIST_FIRST(list);
   2514   1.49        ad 	}
   2515    1.1     lukem }
   2516    1.1     lukem 
   2517    1.3  jdolecek /*
   2518   1.49        ad  * fileops close method for a kqueue descriptor.
   2519    1.3  jdolecek  */
   2520    1.1     lukem static int
   2521   1.49        ad kqueue_close(file_t *fp)
   2522    1.1     lukem {
   2523   1.49        ad 	struct kqueue *kq;
   2524   1.49        ad 	filedesc_t *fdp;
   2525   1.49        ad 	fdfile_t *ff;
   2526   1.49        ad 	int i;
   2527   1.49        ad 
   2528   1.82      matt 	kq = fp->f_kqueue;
   2529   1.82      matt 	fp->f_kqueue = NULL;
   2530   1.79  christos 	fp->f_type = 0;
   2531   1.49        ad 	fdp = curlwp->l_fd;
   2532    1.1     lukem 
   2533  1.129   thorpej 	KASSERT(kq->kq_fdp == fdp);
   2534  1.129   thorpej 
   2535   1.49        ad 	mutex_enter(&fdp->fd_lock);
   2536  1.129   thorpej 
   2537  1.129   thorpej 	/*
   2538  1.129   thorpej 	 * We're doing to drop the fd_lock multiple times while
   2539  1.129   thorpej 	 * we detach knotes.  During this time, attempts to register
   2540  1.129   thorpej 	 * knotes via the back door (e.g. knote_proc_fork_track())
   2541  1.129   thorpej 	 * need to fail, lest they sneak in to attach a knote after
   2542  1.129   thorpej 	 * we've already drained the list it's destined for.
   2543  1.129   thorpej 	 *
   2544  1.139   msaitoh 	 * We must acquire kq_lock here to set KQ_CLOSING (to serialize
   2545  1.129   thorpej 	 * with other code paths that modify kq_count without holding
   2546  1.129   thorpej 	 * the fd_lock), but once this bit is set, it's only safe to
   2547  1.129   thorpej 	 * test it while holding the fd_lock, and holding kq_lock while
   2548  1.129   thorpej 	 * doing so is not necessary.
   2549  1.129   thorpej 	 */
   2550  1.129   thorpej 	mutex_enter(&kq->kq_lock);
   2551  1.129   thorpej 	kq->kq_count |= KQ_CLOSING;
   2552  1.129   thorpej 	mutex_exit(&kq->kq_lock);
   2553  1.129   thorpej 
   2554   1.49        ad 	for (i = 0; i <= fdp->fd_lastkqfile; i++) {
   2555   1.65        ad 		if ((ff = fdp->fd_dt->dt_ff[i]) == NULL)
   2556   1.49        ad 			continue;
   2557   1.49        ad 		kqueue_doclose(kq, (struct klist *)&ff->ff_knlist, i);
   2558    1.1     lukem 	}
   2559    1.1     lukem 	if (fdp->fd_knhashmask != 0) {
   2560    1.1     lukem 		for (i = 0; i < fdp->fd_knhashmask + 1; i++) {
   2561   1.49        ad 			kqueue_doclose(kq, &fdp->fd_knhash[i], -1);
   2562    1.1     lukem 		}
   2563    1.1     lukem 	}
   2564  1.129   thorpej 
   2565   1.49        ad 	mutex_exit(&fdp->fd_lock);
   2566   1.49        ad 
   2567  1.129   thorpej #if defined(DEBUG)
   2568  1.129   thorpej 	mutex_enter(&kq->kq_lock);
   2569  1.129   thorpej 	kq_check(kq);
   2570  1.129   thorpej 	mutex_exit(&kq->kq_lock);
   2571  1.129   thorpej #endif /* DEBUG */
   2572  1.129   thorpej 	KASSERT(TAILQ_EMPTY(&kq->kq_head));
   2573  1.118  jdolecek 	KASSERT(KQ_COUNT(kq) == 0);
   2574   1.49        ad 	mutex_destroy(&kq->kq_lock);
   2575   1.49        ad 	cv_destroy(&kq->kq_cv);
   2576   1.48     rmind 	seldestroy(&kq->kq_sel);
   2577   1.49        ad 	kmem_free(kq, sizeof(*kq));
   2578    1.1     lukem 
   2579    1.1     lukem 	return (0);
   2580    1.1     lukem }
   2581    1.1     lukem 
   2582    1.3  jdolecek /*
   2583    1.3  jdolecek  * struct fileops kqfilter method for a kqueue descriptor.
   2584    1.3  jdolecek  * Event triggered when monitored kqueue changes.
   2585    1.3  jdolecek  */
   2586    1.3  jdolecek static int
   2587   1.49        ad kqueue_kqfilter(file_t *fp, struct knote *kn)
   2588    1.3  jdolecek {
   2589    1.3  jdolecek 	struct kqueue *kq;
   2590   1.49        ad 
   2591   1.82      matt 	kq = ((file_t *)kn->kn_obj)->f_kqueue;
   2592   1.49        ad 
   2593   1.49        ad 	KASSERT(fp == kn->kn_obj);
   2594    1.3  jdolecek 
   2595    1.3  jdolecek 	if (kn->kn_filter != EVFILT_READ)
   2596  1.126   thorpej 		return EINVAL;
   2597   1.49        ad 
   2598    1.3  jdolecek 	kn->kn_fop = &kqread_filtops;
   2599   1.49        ad 	mutex_enter(&kq->kq_lock);
   2600  1.109   thorpej 	selrecord_knote(&kq->kq_sel, kn);
   2601   1.49        ad 	mutex_exit(&kq->kq_lock);
   2602   1.49        ad 
   2603   1.49        ad 	return 0;
   2604    1.3  jdolecek }
   2605    1.3  jdolecek 
   2606    1.3  jdolecek 
   2607    1.3  jdolecek /*
   2608   1.49        ad  * Walk down a list of knotes, activating them if their event has
   2609   1.49        ad  * triggered.  The caller's object lock (e.g. device driver lock)
   2610   1.49        ad  * must be held.
   2611    1.1     lukem  */
   2612    1.1     lukem void
   2613    1.1     lukem knote(struct klist *list, long hint)
   2614    1.1     lukem {
   2615   1.71  drochner 	struct knote *kn, *tmpkn;
   2616    1.1     lukem 
   2617   1.71  drochner 	SLIST_FOREACH_SAFE(kn, list, kn_selnext, tmpkn) {
   2618  1.127   thorpej 		if (filter_event(kn, hint)) {
   2619   1.49        ad 			knote_activate(kn);
   2620  1.127   thorpej 		}
   2621   1.49        ad 	}
   2622    1.1     lukem }
   2623    1.1     lukem 
   2624    1.1     lukem /*
   2625   1.49        ad  * Remove all knotes referencing a specified fd
   2626    1.1     lukem  */
   2627    1.1     lukem void
   2628   1.49        ad knote_fdclose(int fd)
   2629    1.1     lukem {
   2630   1.49        ad 	struct klist *list;
   2631    1.1     lukem 	struct knote *kn;
   2632   1.49        ad 	filedesc_t *fdp;
   2633    1.1     lukem 
   2634  1.129   thorpej  again:
   2635   1.49        ad 	fdp = curlwp->l_fd;
   2636  1.106  riastrad 	mutex_enter(&fdp->fd_lock);
   2637   1.65        ad 	list = (struct klist *)&fdp->fd_dt->dt_ff[fd]->ff_knlist;
   2638    1.1     lukem 	while ((kn = SLIST_FIRST(list)) != NULL) {
   2639  1.129   thorpej 		if (knote_detach_quiesce(kn)) {
   2640  1.129   thorpej 			goto again;
   2641  1.129   thorpej 		}
   2642   1.49        ad 		knote_detach(kn, fdp, true);
   2643   1.49        ad 		mutex_enter(&fdp->fd_lock);
   2644    1.1     lukem 	}
   2645   1.49        ad 	mutex_exit(&fdp->fd_lock);
   2646    1.1     lukem }
   2647    1.1     lukem 
   2648    1.1     lukem /*
   2649   1.49        ad  * Drop knote.  Called with fdp->fd_lock held, and will drop before
   2650   1.49        ad  * returning.
   2651    1.3  jdolecek  */
   2652    1.1     lukem static void
   2653   1.49        ad knote_detach(struct knote *kn, filedesc_t *fdp, bool dofop)
   2654    1.1     lukem {
   2655   1.49        ad 	struct klist *list;
   2656   1.53        ad 	struct kqueue *kq;
   2657   1.53        ad 
   2658   1.53        ad 	kq = kn->kn_kq;
   2659    1.1     lukem 
   2660   1.49        ad 	KASSERT((kn->kn_status & KN_MARKER) == 0);
   2661  1.129   thorpej 	KASSERT((kn->kn_status & KN_WILLDETACH) != 0);
   2662  1.129   thorpej 	KASSERT(kn->kn_fop != NULL);
   2663   1.49        ad 	KASSERT(mutex_owned(&fdp->fd_lock));
   2664    1.3  jdolecek 
   2665   1.53        ad 	/* Remove from monitored object. */
   2666   1.49        ad 	if (dofop) {
   2667  1.122   thorpej 		filter_detach(kn);
   2668    1.1     lukem 	}
   2669    1.3  jdolecek 
   2670   1.53        ad 	/* Remove from descriptor table. */
   2671  1.121   thorpej 	if (kn->kn_fop->f_flags & FILTEROP_ISFD)
   2672   1.65        ad 		list = (struct klist *)&fdp->fd_dt->dt_ff[kn->kn_id]->ff_knlist;
   2673    1.1     lukem 	else
   2674    1.1     lukem 		list = &fdp->fd_knhash[KN_HASH(kn->kn_id, fdp->fd_knhashmask)];
   2675    1.1     lukem 
   2676    1.1     lukem 	SLIST_REMOVE(list, kn, knote, kn_link);
   2677   1.53        ad 
   2678   1.53        ad 	/* Remove from kqueue. */
   2679   1.85  christos again:
   2680   1.53        ad 	mutex_spin_enter(&kq->kq_lock);
   2681  1.129   thorpej 	KASSERT(kn_in_flux(kn) == false);
   2682   1.53        ad 	if ((kn->kn_status & KN_QUEUED) != 0) {
   2683   1.53        ad 		kq_check(kq);
   2684  1.129   thorpej 		KASSERT(KQ_COUNT(kq) != 0);
   2685   1.85  christos 		kq->kq_count--;
   2686   1.53        ad 		TAILQ_REMOVE(&kq->kq_head, kn, kn_tqe);
   2687   1.53        ad 		kn->kn_status &= ~KN_QUEUED;
   2688   1.53        ad 		kq_check(kq);
   2689   1.85  christos 	} else if (kn->kn_status & KN_BUSY) {
   2690   1.85  christos 		mutex_spin_exit(&kq->kq_lock);
   2691   1.85  christos 		goto again;
   2692   1.53        ad 	}
   2693   1.53        ad 	mutex_spin_exit(&kq->kq_lock);
   2694   1.53        ad 
   2695   1.49        ad 	mutex_exit(&fdp->fd_lock);
   2696  1.121   thorpej 	if (kn->kn_fop->f_flags & FILTEROP_ISFD)
   2697   1.49        ad 		fd_putfile(kn->kn_id);
   2698   1.49        ad 	atomic_dec_uint(&kn->kn_kfilter->refcnt);
   2699  1.142   thorpej 	knote_free(kn);
   2700    1.1     lukem }
   2701    1.1     lukem 
   2702    1.3  jdolecek /*
   2703    1.3  jdolecek  * Queue new event for knote.
   2704    1.3  jdolecek  */
   2705    1.1     lukem static void
   2706    1.1     lukem knote_enqueue(struct knote *kn)
   2707    1.1     lukem {
   2708   1.49        ad 	struct kqueue *kq;
   2709   1.49        ad 
   2710   1.49        ad 	KASSERT((kn->kn_status & KN_MARKER) == 0);
   2711    1.1     lukem 
   2712    1.3  jdolecek 	kq = kn->kn_kq;
   2713    1.1     lukem 
   2714   1.49        ad 	mutex_spin_enter(&kq->kq_lock);
   2715  1.129   thorpej 	if (__predict_false(kn->kn_status & KN_WILLDETACH)) {
   2716  1.129   thorpej 		/* Don't bother enqueueing a dying knote. */
   2717  1.129   thorpej 		goto out;
   2718  1.129   thorpej 	}
   2719   1.49        ad 	if ((kn->kn_status & KN_DISABLED) != 0) {
   2720   1.49        ad 		kn->kn_status &= ~KN_DISABLED;
   2721   1.49        ad 	}
   2722   1.49        ad 	if ((kn->kn_status & (KN_ACTIVE | KN_QUEUED)) == KN_ACTIVE) {
   2723   1.52      yamt 		kq_check(kq);
   2724   1.85  christos 		kn->kn_status |= KN_QUEUED;
   2725   1.49        ad 		TAILQ_INSERT_TAIL(&kq->kq_head, kn, kn_tqe);
   2726  1.129   thorpej 		KASSERT(KQ_COUNT(kq) < KQ_MAXCOUNT);
   2727   1.49        ad 		kq->kq_count++;
   2728   1.52      yamt 		kq_check(kq);
   2729   1.49        ad 		cv_broadcast(&kq->kq_cv);
   2730   1.49        ad 		selnotify(&kq->kq_sel, 0, NOTE_SUBMIT);
   2731   1.49        ad 	}
   2732  1.129   thorpej  out:
   2733   1.49        ad 	mutex_spin_exit(&kq->kq_lock);
   2734    1.1     lukem }
   2735   1.49        ad /*
   2736   1.49        ad  * Queue new event for knote.
   2737   1.49        ad  */
   2738   1.49        ad static void
   2739  1.133   thorpej knote_activate_locked(struct knote *kn)
   2740   1.49        ad {
   2741   1.49        ad 	struct kqueue *kq;
   2742   1.49        ad 
   2743   1.49        ad 	KASSERT((kn->kn_status & KN_MARKER) == 0);
   2744    1.1     lukem 
   2745    1.3  jdolecek 	kq = kn->kn_kq;
   2746   1.12        pk 
   2747  1.129   thorpej 	if (__predict_false(kn->kn_status & KN_WILLDETACH)) {
   2748  1.129   thorpej 		/* Don't bother enqueueing a dying knote. */
   2749  1.133   thorpej 		return;
   2750  1.129   thorpej 	}
   2751   1.49        ad 	kn->kn_status |= KN_ACTIVE;
   2752   1.49        ad 	if ((kn->kn_status & (KN_QUEUED | KN_DISABLED)) == 0) {
   2753   1.52      yamt 		kq_check(kq);
   2754   1.85  christos 		kn->kn_status |= KN_QUEUED;
   2755   1.49        ad 		TAILQ_INSERT_TAIL(&kq->kq_head, kn, kn_tqe);
   2756  1.129   thorpej 		KASSERT(KQ_COUNT(kq) < KQ_MAXCOUNT);
   2757   1.49        ad 		kq->kq_count++;
   2758   1.52      yamt 		kq_check(kq);
   2759   1.49        ad 		cv_broadcast(&kq->kq_cv);
   2760   1.49        ad 		selnotify(&kq->kq_sel, 0, NOTE_SUBMIT);
   2761   1.49        ad 	}
   2762  1.133   thorpej }
   2763  1.133   thorpej 
   2764  1.133   thorpej static void
   2765  1.133   thorpej knote_activate(struct knote *kn)
   2766  1.133   thorpej {
   2767  1.133   thorpej 	struct kqueue *kq = kn->kn_kq;
   2768  1.133   thorpej 
   2769  1.133   thorpej 	mutex_spin_enter(&kq->kq_lock);
   2770  1.133   thorpej 	knote_activate_locked(kn);
   2771   1.49        ad 	mutex_spin_exit(&kq->kq_lock);
   2772    1.1     lukem }
   2773  1.131   thorpej 
   2774  1.136   thorpej static void
   2775  1.136   thorpej knote_deactivate_locked(struct knote *kn)
   2776  1.136   thorpej {
   2777  1.136   thorpej 	struct kqueue *kq = kn->kn_kq;
   2778  1.136   thorpej 
   2779  1.136   thorpej 	if (kn->kn_status & KN_QUEUED) {
   2780  1.136   thorpej 		kq_check(kq);
   2781  1.136   thorpej 		kn->kn_status &= ~KN_QUEUED;
   2782  1.136   thorpej 		TAILQ_REMOVE(&kq->kq_head, kn, kn_tqe);
   2783  1.136   thorpej 		KASSERT(KQ_COUNT(kq) > 0);
   2784  1.136   thorpej 		kq->kq_count--;
   2785  1.136   thorpej 		kq_check(kq);
   2786  1.136   thorpej 	}
   2787  1.136   thorpej 	kn->kn_status &= ~KN_ACTIVE;
   2788  1.136   thorpej }
   2789  1.136   thorpej 
   2790  1.131   thorpej /*
   2791  1.131   thorpej  * Set EV_EOF on the specified knote.  Also allows additional
   2792  1.131   thorpej  * EV_* flags to be set (e.g. EV_ONESHOT).
   2793  1.131   thorpej  */
   2794  1.131   thorpej void
   2795  1.131   thorpej knote_set_eof(struct knote *kn, uint32_t flags)
   2796  1.131   thorpej {
   2797  1.131   thorpej 	struct kqueue *kq = kn->kn_kq;
   2798  1.131   thorpej 
   2799  1.131   thorpej 	mutex_spin_enter(&kq->kq_lock);
   2800  1.131   thorpej 	kn->kn_flags |= EV_EOF | flags;
   2801  1.131   thorpej 	mutex_spin_exit(&kq->kq_lock);
   2802  1.131   thorpej }
   2803  1.131   thorpej 
   2804  1.131   thorpej /*
   2805  1.131   thorpej  * Clear EV_EOF on the specified knote.
   2806  1.131   thorpej  */
   2807  1.131   thorpej void
   2808  1.131   thorpej knote_clear_eof(struct knote *kn)
   2809  1.131   thorpej {
   2810  1.131   thorpej 	struct kqueue *kq = kn->kn_kq;
   2811  1.131   thorpej 
   2812  1.131   thorpej 	mutex_spin_enter(&kq->kq_lock);
   2813  1.131   thorpej 	kn->kn_flags &= ~EV_EOF;
   2814  1.131   thorpej 	mutex_spin_exit(&kq->kq_lock);
   2815  1.131   thorpej }
   2816