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sys_select.c revision 1.34
      1  1.34   hannken /*	$NetBSD: sys_select.c,v 1.34 2011/08/06 11:04:25 hannken Exp $	*/
      2   1.1        ad 
      3   1.1        ad /*-
      4  1.22        ad  * Copyright (c) 2007, 2008, 2009, 2010 The NetBSD Foundation, Inc.
      5   1.1        ad  * All rights reserved.
      6   1.1        ad  *
      7   1.1        ad  * This code is derived from software contributed to The NetBSD Foundation
      8  1.23     rmind  * by Andrew Doran and Mindaugas Rasiukevicius.
      9   1.1        ad  *
     10   1.1        ad  * Redistribution and use in source and binary forms, with or without
     11   1.1        ad  * modification, are permitted provided that the following conditions
     12   1.1        ad  * are met:
     13   1.1        ad  * 1. Redistributions of source code must retain the above copyright
     14   1.1        ad  *    notice, this list of conditions and the following disclaimer.
     15   1.1        ad  * 2. Redistributions in binary form must reproduce the above copyright
     16   1.1        ad  *    notice, this list of conditions and the following disclaimer in the
     17   1.1        ad  *    documentation and/or other materials provided with the distribution.
     18   1.1        ad  *
     19   1.1        ad  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20   1.1        ad  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21   1.1        ad  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22   1.1        ad  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23   1.1        ad  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24   1.1        ad  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25   1.1        ad  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26   1.1        ad  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27   1.1        ad  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28   1.1        ad  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29   1.1        ad  * POSSIBILITY OF SUCH DAMAGE.
     30   1.1        ad  */
     31   1.1        ad 
     32   1.1        ad /*
     33   1.1        ad  * Copyright (c) 1982, 1986, 1989, 1993
     34   1.1        ad  *	The Regents of the University of California.  All rights reserved.
     35   1.1        ad  * (c) UNIX System Laboratories, Inc.
     36   1.1        ad  * All or some portions of this file are derived from material licensed
     37   1.1        ad  * to the University of California by American Telephone and Telegraph
     38   1.1        ad  * Co. or Unix System Laboratories, Inc. and are reproduced herein with
     39   1.1        ad  * the permission of UNIX System Laboratories, Inc.
     40   1.1        ad  *
     41   1.1        ad  * Redistribution and use in source and binary forms, with or without
     42   1.1        ad  * modification, are permitted provided that the following conditions
     43   1.1        ad  * are met:
     44   1.1        ad  * 1. Redistributions of source code must retain the above copyright
     45   1.1        ad  *    notice, this list of conditions and the following disclaimer.
     46   1.1        ad  * 2. Redistributions in binary form must reproduce the above copyright
     47   1.1        ad  *    notice, this list of conditions and the following disclaimer in the
     48   1.1        ad  *    documentation and/or other materials provided with the distribution.
     49   1.1        ad  * 3. Neither the name of the University nor the names of its contributors
     50   1.1        ad  *    may be used to endorse or promote products derived from this software
     51   1.1        ad  *    without specific prior written permission.
     52   1.1        ad  *
     53   1.1        ad  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     54   1.1        ad  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     55   1.1        ad  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     56   1.1        ad  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     57   1.1        ad  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     58   1.1        ad  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     59   1.1        ad  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     60   1.1        ad  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     61   1.1        ad  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     62   1.1        ad  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     63   1.1        ad  * SUCH DAMAGE.
     64   1.1        ad  *
     65   1.1        ad  *	@(#)sys_generic.c	8.9 (Berkeley) 2/14/95
     66   1.1        ad  */
     67   1.1        ad 
     68   1.1        ad /*
     69  1.21     rmind  * System calls of synchronous I/O multiplexing subsystem.
     70  1.21     rmind  *
     71  1.21     rmind  * Locking
     72  1.21     rmind  *
     73  1.22        ad  * Two locks are used: <object-lock> and selcluster_t::sc_lock.
     74  1.21     rmind  *
     75  1.21     rmind  * The <object-lock> might be a device driver or another subsystem, e.g.
     76  1.21     rmind  * socket or pipe.  This lock is not exported, and thus invisible to this
     77  1.21     rmind  * subsystem.  Mainly, synchronisation between selrecord() and selnotify()
     78  1.21     rmind  * routines depends on this lock, as it will be described in the comments.
     79  1.21     rmind  *
     80  1.21     rmind  * Lock order
     81  1.21     rmind  *
     82  1.21     rmind  *	<object-lock> ->
     83  1.22        ad  *		selcluster_t::sc_lock
     84   1.1        ad  */
     85   1.1        ad 
     86   1.1        ad #include <sys/cdefs.h>
     87  1.34   hannken __KERNEL_RCSID(0, "$NetBSD: sys_select.c,v 1.34 2011/08/06 11:04:25 hannken Exp $");
     88   1.1        ad 
     89   1.1        ad #include <sys/param.h>
     90   1.1        ad #include <sys/systm.h>
     91   1.1        ad #include <sys/filedesc.h>
     92   1.1        ad #include <sys/file.h>
     93   1.1        ad #include <sys/proc.h>
     94   1.1        ad #include <sys/socketvar.h>
     95   1.1        ad #include <sys/signalvar.h>
     96   1.1        ad #include <sys/uio.h>
     97   1.1        ad #include <sys/kernel.h>
     98  1.29     rmind #include <sys/lwp.h>
     99   1.1        ad #include <sys/poll.h>
    100   1.1        ad #include <sys/mount.h>
    101   1.1        ad #include <sys/syscallargs.h>
    102   1.1        ad #include <sys/cpu.h>
    103   1.1        ad #include <sys/atomic.h>
    104   1.1        ad #include <sys/socketvar.h>
    105   1.1        ad #include <sys/sleepq.h>
    106   1.1        ad 
    107   1.1        ad /* Flags for lwp::l_selflag. */
    108   1.1        ad #define	SEL_RESET	0	/* awoken, interrupted, or not yet polling */
    109   1.1        ad #define	SEL_SCANNING	1	/* polling descriptors */
    110  1.23     rmind #define	SEL_BLOCKING	2	/* blocking and waiting for event */
    111  1.23     rmind #define	SEL_EVENT	3	/* interrupted, events set directly */
    112  1.23     rmind 
    113  1.23     rmind /* Operations: either select() or poll(). */
    114  1.23     rmind #define	SELOP_SELECT	1
    115  1.23     rmind #define	SELOP_POLL	2
    116   1.1        ad 
    117  1.22        ad /*
    118  1.22        ad  * Per-cluster state for select()/poll().  For a system with fewer
    119  1.22        ad  * than 32 CPUs, this gives us per-CPU clusters.
    120  1.22        ad  */
    121  1.22        ad #define	SELCLUSTERS	32
    122  1.22        ad #define	SELCLUSTERMASK	(SELCLUSTERS - 1)
    123  1.22        ad 
    124  1.22        ad typedef struct selcluster {
    125  1.13        ad 	kmutex_t	*sc_lock;
    126   1.1        ad 	sleepq_t	sc_sleepq;
    127   1.1        ad 	int		sc_ncoll;
    128   1.1        ad 	uint32_t	sc_mask;
    129  1.22        ad } selcluster_t;
    130   1.1        ad 
    131  1.23     rmind static inline int	selscan(char *, const int, const size_t, register_t *);
    132  1.23     rmind static inline int	pollscan(struct pollfd *, const int, register_t *);
    133  1.19     rmind static void		selclear(void);
    134   1.1        ad 
    135  1.23     rmind static const int sel_flag[] = {
    136  1.23     rmind 	POLLRDNORM | POLLHUP | POLLERR,
    137  1.23     rmind 	POLLWRNORM | POLLHUP | POLLERR,
    138  1.23     rmind 	POLLRDBAND
    139  1.23     rmind };
    140  1.23     rmind 
    141   1.1        ad static syncobj_t select_sobj = {
    142   1.1        ad 	SOBJ_SLEEPQ_FIFO,
    143   1.1        ad 	sleepq_unsleep,
    144   1.1        ad 	sleepq_changepri,
    145   1.1        ad 	sleepq_lendpri,
    146   1.1        ad 	syncobj_noowner,
    147   1.1        ad };
    148   1.1        ad 
    149  1.23     rmind static selcluster_t	*selcluster[SELCLUSTERS] __read_mostly;
    150  1.22        ad 
    151   1.1        ad /*
    152   1.1        ad  * Select system call.
    153   1.1        ad  */
    154   1.1        ad int
    155  1.12  christos sys___pselect50(struct lwp *l, const struct sys___pselect50_args *uap,
    156  1.12  christos     register_t *retval)
    157   1.1        ad {
    158   1.1        ad 	/* {
    159   1.1        ad 		syscallarg(int)				nd;
    160   1.1        ad 		syscallarg(fd_set *)			in;
    161   1.1        ad 		syscallarg(fd_set *)			ou;
    162   1.1        ad 		syscallarg(fd_set *)			ex;
    163   1.1        ad 		syscallarg(const struct timespec *)	ts;
    164   1.1        ad 		syscallarg(sigset_t *)			mask;
    165   1.1        ad 	} */
    166  1.14  christos 	struct timespec	ats, *ts = NULL;
    167   1.1        ad 	sigset_t	amask, *mask = NULL;
    168   1.1        ad 	int		error;
    169   1.1        ad 
    170   1.1        ad 	if (SCARG(uap, ts)) {
    171   1.1        ad 		error = copyin(SCARG(uap, ts), &ats, sizeof(ats));
    172   1.1        ad 		if (error)
    173   1.1        ad 			return error;
    174  1.14  christos 		ts = &ats;
    175   1.1        ad 	}
    176   1.1        ad 	if (SCARG(uap, mask) != NULL) {
    177   1.1        ad 		error = copyin(SCARG(uap, mask), &amask, sizeof(amask));
    178   1.1        ad 		if (error)
    179   1.1        ad 			return error;
    180   1.1        ad 		mask = &amask;
    181   1.1        ad 	}
    182   1.1        ad 
    183  1.19     rmind 	return selcommon(retval, SCARG(uap, nd), SCARG(uap, in),
    184  1.14  christos 	    SCARG(uap, ou), SCARG(uap, ex), ts, mask);
    185   1.1        ad }
    186   1.1        ad 
    187   1.1        ad int
    188  1.12  christos sys___select50(struct lwp *l, const struct sys___select50_args *uap,
    189  1.12  christos     register_t *retval)
    190   1.1        ad {
    191   1.1        ad 	/* {
    192   1.1        ad 		syscallarg(int)			nd;
    193   1.1        ad 		syscallarg(fd_set *)		in;
    194   1.1        ad 		syscallarg(fd_set *)		ou;
    195   1.1        ad 		syscallarg(fd_set *)		ex;
    196   1.1        ad 		syscallarg(struct timeval *)	tv;
    197   1.1        ad 	} */
    198  1.14  christos 	struct timeval atv;
    199  1.14  christos 	struct timespec ats, *ts = NULL;
    200   1.1        ad 	int error;
    201   1.1        ad 
    202   1.1        ad 	if (SCARG(uap, tv)) {
    203  1.14  christos 		error = copyin(SCARG(uap, tv), (void *)&atv, sizeof(atv));
    204   1.1        ad 		if (error)
    205   1.1        ad 			return error;
    206  1.14  christos 		TIMEVAL_TO_TIMESPEC(&atv, &ats);
    207  1.14  christos 		ts = &ats;
    208   1.1        ad 	}
    209   1.1        ad 
    210  1.19     rmind 	return selcommon(retval, SCARG(uap, nd), SCARG(uap, in),
    211  1.14  christos 	    SCARG(uap, ou), SCARG(uap, ex), ts, NULL);
    212   1.1        ad }
    213   1.1        ad 
    214  1.17     rmind /*
    215  1.17     rmind  * sel_do_scan: common code to perform the scan on descriptors.
    216  1.17     rmind  */
    217  1.17     rmind static int
    218  1.23     rmind sel_do_scan(const int op, void *fds, const int nf, const size_t ni,
    219  1.23     rmind     struct timespec *ts, sigset_t *mask, register_t *retval)
    220   1.1        ad {
    221  1.17     rmind 	lwp_t		* const l = curlwp;
    222  1.22        ad 	selcluster_t	*sc;
    223  1.13        ad 	kmutex_t	*lock;
    224  1.17     rmind 	struct timespec	sleepts;
    225  1.17     rmind 	int		error, timo;
    226   1.1        ad 
    227   1.1        ad 	timo = 0;
    228  1.14  christos 	if (ts && inittimeleft(ts, &sleepts) == -1) {
    229  1.17     rmind 		return EINVAL;
    230   1.1        ad 	}
    231   1.1        ad 
    232  1.32  christos 	if (__predict_false(mask))
    233  1.31  christos 		sigsuspendsetup(l, mask);
    234   1.1        ad 
    235  1.22        ad 	sc = curcpu()->ci_data.cpu_selcluster;
    236  1.13        ad 	lock = sc->sc_lock;
    237  1.22        ad 	l->l_selcluster = sc;
    238  1.23     rmind 	if (op == SELOP_SELECT) {
    239  1.30     rmind 		l->l_selbits = fds;
    240  1.23     rmind 		l->l_selni = ni;
    241  1.23     rmind 	} else {
    242  1.23     rmind 		l->l_selbits = NULL;
    243  1.23     rmind 	}
    244  1.34   hannken 
    245   1.1        ad 	for (;;) {
    246  1.17     rmind 		int ncoll;
    247  1.17     rmind 
    248  1.34   hannken 		SLIST_INIT(&l->l_selwait);
    249  1.34   hannken 		l->l_selret = 0;
    250  1.34   hannken 
    251   1.1        ad 		/*
    252  1.17     rmind 		 * No need to lock.  If this is overwritten by another value
    253  1.17     rmind 		 * while scanning, we will retry below.  We only need to see
    254  1.17     rmind 		 * exact state from the descriptors that we are about to poll,
    255  1.17     rmind 		 * and lock activity resulting from fo_poll is enough to
    256  1.17     rmind 		 * provide an up to date value for new polling activity.
    257   1.1        ad 		 */
    258  1.17     rmind 		l->l_selflag = SEL_SCANNING;
    259   1.1        ad 		ncoll = sc->sc_ncoll;
    260   1.1        ad 
    261  1.23     rmind 		if (op == SELOP_SELECT) {
    262  1.23     rmind 			error = selscan((char *)fds, nf, ni, retval);
    263  1.17     rmind 		} else {
    264  1.23     rmind 			error = pollscan((struct pollfd *)fds, nf, retval);
    265  1.17     rmind 		}
    266   1.1        ad 		if (error || *retval)
    267   1.1        ad 			break;
    268  1.14  christos 		if (ts && (timo = gettimeleft(ts, &sleepts)) <= 0)
    269   1.1        ad 			break;
    270  1.23     rmind 		/*
    271  1.23     rmind 		 * Acquire the lock and perform the (re)checks.  Note, if
    272  1.23     rmind 		 * collision has occured, then our state does not matter,
    273  1.23     rmind 		 * as we must perform re-scan.  Therefore, check it first.
    274  1.23     rmind 		 */
    275  1.23     rmind state_check:
    276  1.13        ad 		mutex_spin_enter(lock);
    277  1.23     rmind 		if (__predict_false(sc->sc_ncoll != ncoll)) {
    278  1.23     rmind 			/* Collision: perform re-scan. */
    279  1.23     rmind 			mutex_spin_exit(lock);
    280  1.34   hannken 			selclear();
    281  1.23     rmind 			continue;
    282  1.23     rmind 		}
    283  1.23     rmind 		if (__predict_true(l->l_selflag == SEL_EVENT)) {
    284  1.23     rmind 			/* Events occured, they are set directly. */
    285  1.23     rmind 			mutex_spin_exit(lock);
    286  1.23     rmind 			break;
    287  1.23     rmind 		}
    288  1.23     rmind 		if (__predict_true(l->l_selflag == SEL_RESET)) {
    289  1.23     rmind 			/* Events occured, but re-scan is requested. */
    290  1.13        ad 			mutex_spin_exit(lock);
    291  1.34   hannken 			selclear();
    292   1.1        ad 			continue;
    293   1.1        ad 		}
    294  1.23     rmind 		/* Nothing happen, therefore - sleep. */
    295   1.1        ad 		l->l_selflag = SEL_BLOCKING;
    296   1.7        ad 		l->l_kpriority = true;
    297  1.13        ad 		sleepq_enter(&sc->sc_sleepq, l, lock);
    298   1.1        ad 		sleepq_enqueue(&sc->sc_sleepq, sc, "select", &select_sobj);
    299   1.1        ad 		error = sleepq_block(timo, true);
    300  1.23     rmind 		if (error != 0) {
    301   1.1        ad 			break;
    302  1.23     rmind 		}
    303  1.23     rmind 		/* Awoken: need to check the state. */
    304  1.23     rmind 		goto state_check;
    305   1.1        ad 	}
    306   1.1        ad 	selclear();
    307   1.1        ad 
    308  1.34   hannken 	/* Add direct events if any. */
    309  1.34   hannken 	if (l->l_selflag == SEL_EVENT) {
    310  1.34   hannken 		KASSERT(l->l_selret != 0);
    311  1.34   hannken 		*retval += l->l_selret;
    312  1.34   hannken 	}
    313  1.34   hannken 
    314  1.33  christos 	if (__predict_false(mask))
    315  1.33  christos 		sigsuspendteardown(l);
    316  1.33  christos 
    317  1.20       dsl 	/* select and poll are not restarted after signals... */
    318  1.20       dsl 	if (error == ERESTART)
    319  1.20       dsl 		return EINTR;
    320  1.20       dsl 	if (error == EWOULDBLOCK)
    321  1.20       dsl 		return 0;
    322  1.17     rmind 	return error;
    323  1.17     rmind }
    324  1.17     rmind 
    325  1.17     rmind int
    326  1.19     rmind selcommon(register_t *retval, int nd, fd_set *u_in, fd_set *u_ou,
    327  1.19     rmind     fd_set *u_ex, struct timespec *ts, sigset_t *mask)
    328  1.17     rmind {
    329  1.17     rmind 	char		smallbits[howmany(FD_SETSIZE, NFDBITS) *
    330  1.17     rmind 			    sizeof(fd_mask) * 6];
    331  1.17     rmind 	char 		*bits;
    332  1.17     rmind 	int		error, nf;
    333  1.17     rmind 	size_t		ni;
    334  1.17     rmind 
    335  1.17     rmind 	if (nd < 0)
    336  1.17     rmind 		return (EINVAL);
    337  1.19     rmind 	nf = curlwp->l_fd->fd_dt->dt_nfiles;
    338  1.17     rmind 	if (nd > nf) {
    339  1.17     rmind 		/* forgiving; slightly wrong */
    340  1.17     rmind 		nd = nf;
    341  1.17     rmind 	}
    342  1.17     rmind 	ni = howmany(nd, NFDBITS) * sizeof(fd_mask);
    343  1.17     rmind 	if (ni * 6 > sizeof(smallbits)) {
    344  1.17     rmind 		bits = kmem_alloc(ni * 6, KM_SLEEP);
    345  1.17     rmind 		if (bits == NULL)
    346  1.17     rmind 			return ENOMEM;
    347  1.17     rmind 	} else
    348  1.17     rmind 		bits = smallbits;
    349  1.17     rmind 
    350  1.17     rmind #define	getbits(name, x)						\
    351  1.17     rmind 	if (u_ ## name) {						\
    352  1.17     rmind 		error = copyin(u_ ## name, bits + ni * x, ni);		\
    353  1.17     rmind 		if (error)						\
    354  1.20       dsl 			goto fail;					\
    355  1.17     rmind 	} else								\
    356  1.17     rmind 		memset(bits + ni * x, 0, ni);
    357  1.17     rmind 	getbits(in, 0);
    358  1.17     rmind 	getbits(ou, 1);
    359  1.17     rmind 	getbits(ex, 2);
    360  1.17     rmind #undef	getbits
    361   1.1        ad 
    362  1.23     rmind 	error = sel_do_scan(SELOP_SELECT, bits, nd, ni, ts, mask, retval);
    363   1.1        ad 	if (error == 0 && u_in != NULL)
    364   1.1        ad 		error = copyout(bits + ni * 3, u_in, ni);
    365   1.1        ad 	if (error == 0 && u_ou != NULL)
    366   1.1        ad 		error = copyout(bits + ni * 4, u_ou, ni);
    367   1.1        ad 	if (error == 0 && u_ex != NULL)
    368   1.1        ad 		error = copyout(bits + ni * 5, u_ex, ni);
    369  1.20       dsl  fail:
    370   1.1        ad 	if (bits != smallbits)
    371   1.1        ad 		kmem_free(bits, ni * 6);
    372   1.1        ad 	return (error);
    373   1.1        ad }
    374   1.1        ad 
    375  1.19     rmind static inline int
    376  1.23     rmind selscan(char *bits, const int nfd, const size_t ni, register_t *retval)
    377   1.1        ad {
    378  1.17     rmind 	fd_mask *ibitp, *obitp;
    379  1.23     rmind 	int msk, i, j, fd, n;
    380   1.1        ad 	file_t *fp;
    381  1.34   hannken 	kmutex_t *lock;
    382   1.1        ad 
    383  1.34   hannken 	lock = curlwp->l_selcluster->sc_lock;
    384  1.17     rmind 	ibitp = (fd_mask *)(bits + ni * 0);
    385  1.17     rmind 	obitp = (fd_mask *)(bits + ni * 3);
    386   1.1        ad 	n = 0;
    387  1.17     rmind 
    388  1.34   hannken 	memset(obitp, 0, ni * 3);
    389   1.1        ad 	for (msk = 0; msk < 3; msk++) {
    390   1.1        ad 		for (i = 0; i < nfd; i += NFDBITS) {
    391  1.23     rmind 			fd_mask ibits, obits;
    392  1.23     rmind 
    393   1.1        ad 			ibits = *ibitp++;
    394   1.1        ad 			obits = 0;
    395   1.1        ad 			while ((j = ffs(ibits)) && (fd = i + --j) < nfd) {
    396   1.1        ad 				ibits &= ~(1 << j);
    397   1.1        ad 				if ((fp = fd_getfile(fd)) == NULL)
    398   1.1        ad 					return (EBADF);
    399  1.23     rmind 				/*
    400  1.23     rmind 				 * Setup an argument to selrecord(), which is
    401  1.23     rmind 				 * a file descriptor number.
    402  1.23     rmind 				 */
    403  1.23     rmind 				curlwp->l_selrec = fd;
    404  1.23     rmind 				if ((*fp->f_ops->fo_poll)(fp, sel_flag[msk])) {
    405   1.1        ad 					obits |= (1 << j);
    406   1.1        ad 					n++;
    407   1.1        ad 				}
    408   1.1        ad 				fd_putfile(fd);
    409   1.1        ad 			}
    410  1.34   hannken 			if (obits != 0) {
    411  1.34   hannken 				mutex_spin_enter(lock);
    412  1.34   hannken 				*obitp |= obits;
    413  1.34   hannken 				mutex_spin_exit(lock);
    414  1.34   hannken 			}
    415  1.34   hannken 			obitp++;
    416   1.1        ad 		}
    417   1.1        ad 	}
    418   1.1        ad 	*retval = n;
    419   1.1        ad 	return (0);
    420   1.1        ad }
    421   1.1        ad 
    422   1.1        ad /*
    423   1.1        ad  * Poll system call.
    424   1.1        ad  */
    425   1.1        ad int
    426   1.1        ad sys_poll(struct lwp *l, const struct sys_poll_args *uap, register_t *retval)
    427   1.1        ad {
    428   1.1        ad 	/* {
    429   1.1        ad 		syscallarg(struct pollfd *)	fds;
    430   1.1        ad 		syscallarg(u_int)		nfds;
    431   1.1        ad 		syscallarg(int)			timeout;
    432   1.1        ad 	} */
    433  1.14  christos 	struct timespec	ats, *ts = NULL;
    434   1.1        ad 
    435   1.1        ad 	if (SCARG(uap, timeout) != INFTIM) {
    436  1.14  christos 		ats.tv_sec = SCARG(uap, timeout) / 1000;
    437  1.14  christos 		ats.tv_nsec = (SCARG(uap, timeout) % 1000) * 1000000;
    438  1.14  christos 		ts = &ats;
    439   1.1        ad 	}
    440   1.1        ad 
    441  1.19     rmind 	return pollcommon(retval, SCARG(uap, fds), SCARG(uap, nfds), ts, NULL);
    442   1.1        ad }
    443   1.1        ad 
    444   1.1        ad /*
    445   1.1        ad  * Poll system call.
    446   1.1        ad  */
    447   1.1        ad int
    448  1.12  christos sys___pollts50(struct lwp *l, const struct sys___pollts50_args *uap,
    449  1.12  christos     register_t *retval)
    450   1.1        ad {
    451   1.1        ad 	/* {
    452   1.1        ad 		syscallarg(struct pollfd *)		fds;
    453   1.1        ad 		syscallarg(u_int)			nfds;
    454   1.1        ad 		syscallarg(const struct timespec *)	ts;
    455   1.1        ad 		syscallarg(const sigset_t *)		mask;
    456   1.1        ad 	} */
    457  1.14  christos 	struct timespec	ats, *ts = NULL;
    458   1.1        ad 	sigset_t	amask, *mask = NULL;
    459   1.1        ad 	int		error;
    460   1.1        ad 
    461   1.1        ad 	if (SCARG(uap, ts)) {
    462   1.1        ad 		error = copyin(SCARG(uap, ts), &ats, sizeof(ats));
    463   1.1        ad 		if (error)
    464   1.1        ad 			return error;
    465  1.14  christos 		ts = &ats;
    466   1.1        ad 	}
    467   1.1        ad 	if (SCARG(uap, mask)) {
    468   1.1        ad 		error = copyin(SCARG(uap, mask), &amask, sizeof(amask));
    469   1.1        ad 		if (error)
    470   1.1        ad 			return error;
    471   1.1        ad 		mask = &amask;
    472   1.1        ad 	}
    473   1.1        ad 
    474  1.19     rmind 	return pollcommon(retval, SCARG(uap, fds), SCARG(uap, nfds), ts, mask);
    475   1.1        ad }
    476   1.1        ad 
    477   1.1        ad int
    478  1.19     rmind pollcommon(register_t *retval, struct pollfd *u_fds, u_int nfds,
    479  1.14  christos     struct timespec *ts, sigset_t *mask)
    480   1.1        ad {
    481  1.11      yamt 	struct pollfd	smallfds[32];
    482  1.11      yamt 	struct pollfd	*fds;
    483  1.17     rmind 	int		error;
    484  1.20       dsl 	size_t		ni;
    485   1.1        ad 
    486  1.20       dsl 	if (nfds > 1000 + curlwp->l_fd->fd_dt->dt_nfiles) {
    487  1.20       dsl 		/*
    488  1.20       dsl 		 * Either the user passed in a very sparse 'fds' or junk!
    489  1.20       dsl 		 * The kmem_alloc() call below would be bad news.
    490  1.20       dsl 		 * We could process the 'fds' array in chunks, but that
    491  1.20       dsl 		 * is a lot of code that isn't normally useful.
    492  1.20       dsl 		 * (Or just move the copyin/out into pollscan().)
    493  1.20       dsl 		 * Historically the code silently truncated 'fds' to
    494  1.20       dsl 		 * dt_nfiles entries - but that does cause issues.
    495  1.20       dsl 		 */
    496  1.20       dsl 		return EINVAL;
    497   1.1        ad 	}
    498   1.1        ad 	ni = nfds * sizeof(struct pollfd);
    499  1.11      yamt 	if (ni > sizeof(smallfds)) {
    500  1.11      yamt 		fds = kmem_alloc(ni, KM_SLEEP);
    501  1.11      yamt 		if (fds == NULL)
    502   1.9     rmind 			return ENOMEM;
    503   1.9     rmind 	} else
    504  1.11      yamt 		fds = smallfds;
    505   1.1        ad 
    506  1.11      yamt 	error = copyin(u_fds, fds, ni);
    507   1.1        ad 	if (error)
    508  1.20       dsl 		goto fail;
    509   1.1        ad 
    510  1.23     rmind 	error = sel_do_scan(SELOP_POLL, fds, nfds, ni, ts, mask, retval);
    511   1.1        ad 	if (error == 0)
    512  1.11      yamt 		error = copyout(fds, u_fds, ni);
    513  1.20       dsl  fail:
    514  1.11      yamt 	if (fds != smallfds)
    515  1.11      yamt 		kmem_free(fds, ni);
    516   1.1        ad 	return (error);
    517   1.1        ad }
    518   1.1        ad 
    519  1.19     rmind static inline int
    520  1.23     rmind pollscan(struct pollfd *fds, const int nfd, register_t *retval)
    521   1.1        ad {
    522   1.1        ad 	file_t *fp;
    523  1.34   hannken 	int i, n = 0, revents;
    524   1.1        ad 
    525   1.1        ad 	for (i = 0; i < nfd; i++, fds++) {
    526  1.34   hannken 		fds->revents = 0;
    527   1.1        ad 		if (fds->fd < 0) {
    528  1.34   hannken 			revents = 0;
    529   1.1        ad 		} else if ((fp = fd_getfile(fds->fd)) == NULL) {
    530  1.34   hannken 			revents = POLLNVAL;
    531   1.1        ad 		} else {
    532  1.23     rmind 			/*
    533  1.23     rmind 			 * Perform poll: registers select request or returns
    534  1.23     rmind 			 * the events which are set.  Setup an argument for
    535  1.23     rmind 			 * selrecord(), which is a pointer to struct pollfd.
    536  1.23     rmind 			 */
    537  1.23     rmind 			curlwp->l_selrec = (uintptr_t)fds;
    538  1.34   hannken 			revents = (*fp->f_ops->fo_poll)(fp,
    539   1.1        ad 			    fds->events | POLLERR | POLLHUP);
    540   1.1        ad 			fd_putfile(fds->fd);
    541   1.1        ad 		}
    542  1.34   hannken 		if (revents) {
    543  1.34   hannken 			fds->revents = revents;
    544  1.34   hannken 			n++;
    545  1.34   hannken 		}
    546   1.1        ad 	}
    547   1.1        ad 	*retval = n;
    548   1.1        ad 	return (0);
    549   1.1        ad }
    550   1.1        ad 
    551   1.1        ad int
    552   1.1        ad seltrue(dev_t dev, int events, lwp_t *l)
    553   1.1        ad {
    554   1.1        ad 
    555   1.1        ad 	return (events & (POLLIN | POLLOUT | POLLRDNORM | POLLWRNORM));
    556   1.1        ad }
    557   1.1        ad 
    558   1.1        ad /*
    559   1.1        ad  * Record a select request.  Concurrency issues:
    560   1.1        ad  *
    561   1.1        ad  * The caller holds the same lock across calls to selrecord() and
    562   1.4      yamt  * selnotify(), so we don't need to consider a concurrent wakeup
    563   1.1        ad  * while in this routine.
    564   1.1        ad  *
    565   1.1        ad  * The only activity we need to guard against is selclear(), called by
    566  1.17     rmind  * another thread that is exiting sel_do_scan().
    567   1.1        ad  * `sel_lwp' can only become non-NULL while the caller's lock is held,
    568   1.1        ad  * so it cannot become non-NULL due to a change made by another thread
    569   1.1        ad  * while we are in this routine.  It can only become _NULL_ due to a
    570   1.1        ad  * call to selclear().
    571   1.1        ad  *
    572   1.1        ad  * If it is non-NULL and != selector there is the potential for
    573   1.1        ad  * selclear() to be called by another thread.  If either of those
    574   1.1        ad  * conditions are true, we're not interested in touching the `named
    575   1.1        ad  * waiter' part of the selinfo record because we need to record a
    576   1.1        ad  * collision.  Hence there is no need for additional locking in this
    577   1.1        ad  * routine.
    578   1.1        ad  */
    579   1.1        ad void
    580   1.1        ad selrecord(lwp_t *selector, struct selinfo *sip)
    581   1.1        ad {
    582  1.22        ad 	selcluster_t *sc;
    583   1.1        ad 	lwp_t *other;
    584   1.1        ad 
    585   1.1        ad 	KASSERT(selector == curlwp);
    586   1.1        ad 
    587  1.22        ad 	sc = selector->l_selcluster;
    588   1.1        ad 	other = sip->sel_lwp;
    589   1.1        ad 
    590   1.1        ad 	if (other == selector) {
    591  1.23     rmind 		/* 1. We (selector) already claimed to be the first LWP. */
    592  1.22        ad 		KASSERT(sip->sel_cluster = sc);
    593   1.1        ad 	} else if (other == NULL) {
    594   1.1        ad 		/*
    595  1.23     rmind 		 * 2. No first LWP, therefore we (selector) are the first.
    596  1.23     rmind 		 *
    597  1.23     rmind 		 * There may be unnamed waiters (collisions).  Issue a memory
    598  1.23     rmind 		 * barrier to ensure that we access sel_lwp (above) before
    599  1.23     rmind 		 * other fields - this guards against a call to selclear().
    600   1.1        ad 		 */
    601   1.1        ad 		membar_enter();
    602   1.1        ad 		sip->sel_lwp = selector;
    603   1.1        ad 		SLIST_INSERT_HEAD(&selector->l_selwait, sip, sel_chain);
    604  1.23     rmind 		/* Copy the argument, which is for selnotify(). */
    605  1.23     rmind 		sip->sel_fdinfo = selector->l_selrec;
    606  1.22        ad 		/* Replace selinfo's lock with the chosen cluster's lock. */
    607  1.22        ad 		sip->sel_cluster = sc;
    608   1.1        ad 	} else {
    609  1.23     rmind 		/* 3. Multiple waiters: record a collision. */
    610   1.1        ad 		sip->sel_collision |= sc->sc_mask;
    611  1.22        ad 		KASSERT(sip->sel_cluster != NULL);
    612   1.1        ad 	}
    613   1.1        ad }
    614   1.1        ad 
    615   1.1        ad /*
    616  1.23     rmind  * sel_setevents: a helper function for selnotify(), to set the events
    617  1.23     rmind  * for LWP sleeping in selcommon() or pollcommon().
    618  1.23     rmind  */
    619  1.30     rmind static inline bool
    620  1.23     rmind sel_setevents(lwp_t *l, struct selinfo *sip, const int events)
    621  1.23     rmind {
    622  1.23     rmind 	const int oflag = l->l_selflag;
    623  1.30     rmind 	int ret = 0;
    624  1.23     rmind 
    625  1.23     rmind 	/*
    626  1.23     rmind 	 * If we require re-scan or it was required by somebody else,
    627  1.23     rmind 	 * then just (re)set SEL_RESET and return.
    628  1.23     rmind 	 */
    629  1.23     rmind 	if (__predict_false(events == 0 || oflag == SEL_RESET)) {
    630  1.23     rmind 		l->l_selflag = SEL_RESET;
    631  1.30     rmind 		return true;
    632  1.23     rmind 	}
    633  1.23     rmind 	/*
    634  1.23     rmind 	 * Direct set.  Note: select state of LWP is locked.  First,
    635  1.23     rmind 	 * determine whether it is selcommon() or pollcommon().
    636  1.23     rmind 	 */
    637  1.23     rmind 	if (l->l_selbits != NULL) {
    638  1.30     rmind 		const size_t ni = l->l_selni;
    639  1.23     rmind 		fd_mask *fds = (fd_mask *)l->l_selbits;
    640  1.30     rmind 		fd_mask *ofds = (fd_mask *)((char *)fds + ni * 3);
    641  1.30     rmind 		const int fd = sip->sel_fdinfo, fbit = 1 << (fd & __NFDMASK);
    642  1.25     rmind 		const int idx = fd >> __NFDSHIFT;
    643  1.23     rmind 		int n;
    644  1.23     rmind 
    645  1.23     rmind 		for (n = 0; n < 3; n++) {
    646  1.34   hannken 			if ((fds[idx] & fbit) != 0 &&
    647  1.34   hannken 			    (ofds[idx] & fbit) == 0 &&
    648  1.34   hannken 			    (sel_flag[n] & events)) {
    649  1.30     rmind 				ofds[idx] |= fbit;
    650  1.30     rmind 				ret++;
    651  1.23     rmind 			}
    652  1.23     rmind 			fds = (fd_mask *)((char *)fds + ni);
    653  1.30     rmind 			ofds = (fd_mask *)((char *)ofds + ni);
    654  1.23     rmind 		}
    655  1.23     rmind 	} else {
    656  1.23     rmind 		struct pollfd *pfd = (void *)sip->sel_fdinfo;
    657  1.30     rmind 		int revents = events & (pfd->events | POLLERR | POLLHUP);
    658  1.30     rmind 
    659  1.30     rmind 		if (revents) {
    660  1.34   hannken 			if (pfd->revents == 0)
    661  1.34   hannken 				ret = 1;
    662  1.30     rmind 			pfd->revents |= revents;
    663  1.30     rmind 		}
    664  1.30     rmind 	}
    665  1.30     rmind 	/* Check whether there are any events to return. */
    666  1.30     rmind 	if (!ret) {
    667  1.30     rmind 		return false;
    668  1.23     rmind 	}
    669  1.23     rmind 	/* Indicate direct set and note the event (cluster lock is held). */
    670  1.23     rmind 	l->l_selflag = SEL_EVENT;
    671  1.30     rmind 	l->l_selret += ret;
    672  1.30     rmind 	return true;
    673  1.23     rmind }
    674  1.23     rmind 
    675  1.23     rmind /*
    676   1.1        ad  * Do a wakeup when a selectable event occurs.  Concurrency issues:
    677   1.1        ad  *
    678   1.1        ad  * As per selrecord(), the caller's object lock is held.  If there
    679  1.22        ad  * is a named waiter, we must acquire the associated selcluster's lock
    680   1.1        ad  * in order to synchronize with selclear() and pollers going to sleep
    681  1.17     rmind  * in sel_do_scan().
    682   1.1        ad  *
    683  1.22        ad  * sip->sel_cluser cannot change at this point, as it is only changed
    684   1.1        ad  * in selrecord(), and concurrent calls to selrecord() are locked
    685   1.1        ad  * out by the caller.
    686   1.1        ad  */
    687   1.1        ad void
    688   1.1        ad selnotify(struct selinfo *sip, int events, long knhint)
    689   1.1        ad {
    690  1.22        ad 	selcluster_t *sc;
    691   1.1        ad 	uint32_t mask;
    692  1.16     rmind 	int index, oflag;
    693   1.1        ad 	lwp_t *l;
    694  1.13        ad 	kmutex_t *lock;
    695   1.1        ad 
    696   1.1        ad 	KNOTE(&sip->sel_klist, knhint);
    697   1.1        ad 
    698   1.1        ad 	if (sip->sel_lwp != NULL) {
    699   1.1        ad 		/* One named LWP is waiting. */
    700  1.22        ad 		sc = sip->sel_cluster;
    701  1.13        ad 		lock = sc->sc_lock;
    702  1.13        ad 		mutex_spin_enter(lock);
    703   1.1        ad 		/* Still there? */
    704   1.1        ad 		if (sip->sel_lwp != NULL) {
    705  1.23     rmind 			/*
    706  1.23     rmind 			 * Set the events for our LWP and indicate that.
    707  1.23     rmind 			 * Otherwise, request for a full re-scan.
    708  1.23     rmind 			 */
    709   1.1        ad 			l = sip->sel_lwp;
    710  1.23     rmind 			oflag = l->l_selflag;
    711  1.28     rmind #ifndef NO_DIRECT_SELECT
    712  1.30     rmind 			if (!sel_setevents(l, sip, events)) {
    713  1.30     rmind 				/* No events to return. */
    714  1.30     rmind 				mutex_spin_exit(lock);
    715  1.30     rmind 				return;
    716  1.30     rmind 			}
    717  1.26     rmind #else
    718  1.26     rmind 			l->l_selflag = SEL_RESET;
    719  1.26     rmind #endif
    720   1.1        ad 			/*
    721   1.1        ad 			 * If thread is sleeping, wake it up.  If it's not
    722   1.1        ad 			 * yet asleep, it will notice the change in state
    723   1.1        ad 			 * and will re-poll the descriptors.
    724   1.1        ad 			 */
    725  1.13        ad 			if (oflag == SEL_BLOCKING && l->l_mutex == lock) {
    726   1.1        ad 				KASSERT(l->l_wchan == sc);
    727  1.16     rmind 				sleepq_unsleep(l, false);
    728   1.1        ad 			}
    729   1.1        ad 		}
    730  1.13        ad 		mutex_spin_exit(lock);
    731   1.1        ad 	}
    732   1.1        ad 
    733   1.1        ad 	if ((mask = sip->sel_collision) != 0) {
    734   1.1        ad 		/*
    735   1.1        ad 		 * There was a collision (multiple waiters): we must
    736   1.1        ad 		 * inform all potentially interested waiters.
    737   1.1        ad 		 */
    738   1.1        ad 		sip->sel_collision = 0;
    739   1.3        ad 		do {
    740   1.1        ad 			index = ffs(mask) - 1;
    741   1.1        ad 			mask &= ~(1 << index);
    742  1.22        ad 			sc = selcluster[index];
    743  1.13        ad 			lock = sc->sc_lock;
    744  1.13        ad 			mutex_spin_enter(lock);
    745   1.1        ad 			sc->sc_ncoll++;
    746  1.13        ad 			sleepq_wake(&sc->sc_sleepq, sc, (u_int)-1, lock);
    747   1.3        ad 		} while (__predict_false(mask != 0));
    748   1.1        ad 	}
    749   1.1        ad }
    750   1.1        ad 
    751   1.1        ad /*
    752   1.1        ad  * Remove an LWP from all objects that it is waiting for.  Concurrency
    753   1.1        ad  * issues:
    754   1.1        ad  *
    755   1.1        ad  * The object owner's (e.g. device driver) lock is not held here.  Calls
    756   1.1        ad  * can be made to selrecord() and we do not synchronize against those
    757   1.1        ad  * directly using locks.  However, we use `sel_lwp' to lock out changes.
    758   1.1        ad  * Before clearing it we must use memory barriers to ensure that we can
    759   1.1        ad  * safely traverse the list of selinfo records.
    760   1.1        ad  */
    761   1.1        ad static void
    762   1.1        ad selclear(void)
    763   1.1        ad {
    764   1.1        ad 	struct selinfo *sip, *next;
    765  1.22        ad 	selcluster_t *sc;
    766   1.1        ad 	lwp_t *l;
    767  1.13        ad 	kmutex_t *lock;
    768   1.1        ad 
    769   1.1        ad 	l = curlwp;
    770  1.22        ad 	sc = l->l_selcluster;
    771  1.13        ad 	lock = sc->sc_lock;
    772   1.1        ad 
    773  1.13        ad 	mutex_spin_enter(lock);
    774   1.1        ad 	for (sip = SLIST_FIRST(&l->l_selwait); sip != NULL; sip = next) {
    775   1.1        ad 		KASSERT(sip->sel_lwp == l);
    776  1.22        ad 		KASSERT(sip->sel_cluster == l->l_selcluster);
    777  1.22        ad 
    778   1.1        ad 		/*
    779   1.1        ad 		 * Read link to next selinfo record, if any.
    780   1.1        ad 		 * It's no longer safe to touch `sip' after clearing
    781   1.1        ad 		 * `sel_lwp', so ensure that the read of `sel_chain'
    782   1.1        ad 		 * completes before the clearing of sel_lwp becomes
    783   1.1        ad 		 * globally visible.
    784   1.1        ad 		 */
    785   1.1        ad 		next = SLIST_NEXT(sip, sel_chain);
    786   1.1        ad 		membar_exit();
    787   1.1        ad 		/* Release the record for another named waiter to use. */
    788   1.1        ad 		sip->sel_lwp = NULL;
    789   1.1        ad 	}
    790  1.13        ad 	mutex_spin_exit(lock);
    791   1.1        ad }
    792   1.1        ad 
    793   1.1        ad /*
    794   1.1        ad  * Initialize the select/poll system calls.  Called once for each
    795   1.1        ad  * CPU in the system, as they are attached.
    796   1.1        ad  */
    797   1.1        ad void
    798   1.1        ad selsysinit(struct cpu_info *ci)
    799   1.1        ad {
    800  1.22        ad 	selcluster_t *sc;
    801  1.22        ad 	u_int index;
    802   1.1        ad 
    803  1.22        ad 	/* If already a cluster in place for this bit, re-use. */
    804  1.22        ad 	index = cpu_index(ci) & SELCLUSTERMASK;
    805  1.22        ad 	sc = selcluster[index];
    806  1.22        ad 	if (sc == NULL) {
    807  1.22        ad 		sc = kmem_alloc(roundup2(sizeof(selcluster_t),
    808  1.22        ad 		    coherency_unit) + coherency_unit, KM_SLEEP);
    809  1.22        ad 		sc = (void *)roundup2((uintptr_t)sc, coherency_unit);
    810  1.22        ad 		sc->sc_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_SCHED);
    811  1.22        ad 		sleepq_init(&sc->sc_sleepq);
    812  1.22        ad 		sc->sc_ncoll = 0;
    813  1.22        ad 		sc->sc_mask = (1 << index);
    814  1.22        ad 		selcluster[index] = sc;
    815  1.22        ad 	}
    816  1.22        ad 	ci->ci_data.cpu_selcluster = sc;
    817   1.1        ad }
    818   1.1        ad 
    819   1.1        ad /*
    820   1.1        ad  * Initialize a selinfo record.
    821   1.1        ad  */
    822   1.1        ad void
    823   1.1        ad selinit(struct selinfo *sip)
    824   1.1        ad {
    825   1.1        ad 
    826   1.1        ad 	memset(sip, 0, sizeof(*sip));
    827   1.1        ad }
    828   1.1        ad 
    829   1.1        ad /*
    830   1.1        ad  * Destroy a selinfo record.  The owning object must not gain new
    831   1.1        ad  * references while this is in progress: all activity on the record
    832   1.1        ad  * must be stopped.
    833   1.1        ad  *
    834   1.1        ad  * Concurrency issues: we only need guard against a call to selclear()
    835  1.17     rmind  * by a thread exiting sel_do_scan().  The caller has prevented further
    836  1.17     rmind  * references being made to the selinfo record via selrecord(), and it
    837  1.23     rmind  * will not call selnotify() again.
    838   1.1        ad  */
    839   1.1        ad void
    840   1.1        ad seldestroy(struct selinfo *sip)
    841   1.1        ad {
    842  1.22        ad 	selcluster_t *sc;
    843  1.13        ad 	kmutex_t *lock;
    844   1.1        ad 	lwp_t *l;
    845   1.1        ad 
    846   1.1        ad 	if (sip->sel_lwp == NULL)
    847   1.1        ad 		return;
    848   1.1        ad 
    849   1.1        ad 	/*
    850  1.22        ad 	 * Lock out selclear().  The selcluster pointer can't change while
    851   1.1        ad 	 * we are here since it is only ever changed in selrecord(),
    852   1.1        ad 	 * and that will not be entered again for this record because
    853   1.1        ad 	 * it is dying.
    854   1.1        ad 	 */
    855  1.22        ad 	KASSERT(sip->sel_cluster != NULL);
    856  1.22        ad 	sc = sip->sel_cluster;
    857  1.13        ad 	lock = sc->sc_lock;
    858  1.13        ad 	mutex_spin_enter(lock);
    859   1.1        ad 	if ((l = sip->sel_lwp) != NULL) {
    860   1.1        ad 		/*
    861   1.1        ad 		 * This should rarely happen, so although SLIST_REMOVE()
    862   1.1        ad 		 * is slow, using it here is not a problem.
    863   1.1        ad 		 */
    864  1.22        ad 		KASSERT(l->l_selcluster == sc);
    865   1.1        ad 		SLIST_REMOVE(&l->l_selwait, sip, selinfo, sel_chain);
    866   1.1        ad 		sip->sel_lwp = NULL;
    867   1.1        ad 	}
    868  1.13        ad 	mutex_spin_exit(lock);
    869   1.1        ad }
    870   1.1        ad 
    871   1.1        ad int
    872  1.14  christos pollsock(struct socket *so, const struct timespec *tsp, int events)
    873   1.1        ad {
    874   1.1        ad 	int		ncoll, error, timo;
    875  1.14  christos 	struct timespec	sleepts, ts;
    876  1.22        ad 	selcluster_t	*sc;
    877   1.1        ad 	lwp_t		*l;
    878  1.13        ad 	kmutex_t	*lock;
    879   1.1        ad 
    880   1.1        ad 	timo = 0;
    881  1.14  christos 	if (tsp != NULL) {
    882  1.14  christos 		ts = *tsp;
    883  1.14  christos 		if (inittimeleft(&ts, &sleepts) == -1)
    884   1.1        ad 			return EINVAL;
    885   1.1        ad 	}
    886   1.1        ad 
    887   1.1        ad 	l = curlwp;
    888  1.22        ad 	sc = curcpu()->ci_data.cpu_selcluster;
    889  1.13        ad 	lock = sc->sc_lock;
    890  1.22        ad 	l->l_selcluster = sc;
    891   1.1        ad 	SLIST_INIT(&l->l_selwait);
    892   1.1        ad 	error = 0;
    893   1.1        ad 	for (;;) {
    894   1.1        ad 		/*
    895   1.1        ad 		 * No need to lock.  If this is overwritten by another
    896   1.1        ad 		 * value while scanning, we will retry below.  We only
    897   1.1        ad 		 * need to see exact state from the descriptors that
    898   1.1        ad 		 * we are about to poll, and lock activity resulting
    899   1.1        ad 		 * from fo_poll is enough to provide an up to date value
    900   1.1        ad 		 * for new polling activity.
    901   1.1        ad 		 */
    902   1.1        ad 		ncoll = sc->sc_ncoll;
    903   1.1        ad 		l->l_selflag = SEL_SCANNING;
    904   1.1        ad 		if (sopoll(so, events) != 0)
    905   1.1        ad 			break;
    906  1.14  christos 		if (tsp && (timo = gettimeleft(&ts, &sleepts)) <= 0)
    907   1.1        ad 			break;
    908  1.13        ad 		mutex_spin_enter(lock);
    909   1.1        ad 		if (l->l_selflag != SEL_SCANNING || sc->sc_ncoll != ncoll) {
    910  1.13        ad 			mutex_spin_exit(lock);
    911   1.1        ad 			continue;
    912   1.1        ad 		}
    913   1.1        ad 		l->l_selflag = SEL_BLOCKING;
    914  1.13        ad 		sleepq_enter(&sc->sc_sleepq, l, lock);
    915   1.1        ad 		sleepq_enqueue(&sc->sc_sleepq, sc, "pollsock", &select_sobj);
    916   1.1        ad 		error = sleepq_block(timo, true);
    917   1.1        ad 		if (error != 0)
    918   1.1        ad 			break;
    919   1.1        ad 	}
    920   1.1        ad 	selclear();
    921   1.1        ad 	/* poll is not restarted after signals... */
    922   1.1        ad 	if (error == ERESTART)
    923   1.1        ad 		error = EINTR;
    924   1.1        ad 	if (error == EWOULDBLOCK)
    925   1.1        ad 		error = 0;
    926   1.1        ad 	return (error);
    927   1.1        ad }
    928