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uipc_socket.c revision 1.207
      1  1.207  christos /*	$NetBSD: uipc_socket.c,v 1.207 2012/01/25 00:28:36 christos Exp $	*/
      2   1.64   thorpej 
      3   1.64   thorpej /*-
      4  1.188        ad  * Copyright (c) 2002, 2007, 2008, 2009 The NetBSD Foundation, Inc.
      5   1.64   thorpej  * All rights reserved.
      6   1.64   thorpej  *
      7   1.64   thorpej  * This code is derived from software contributed to The NetBSD Foundation
      8  1.188        ad  * by Jason R. Thorpe of Wasabi Systems, Inc, and by Andrew Doran.
      9   1.64   thorpej  *
     10   1.64   thorpej  * Redistribution and use in source and binary forms, with or without
     11   1.64   thorpej  * modification, are permitted provided that the following conditions
     12   1.64   thorpej  * are met:
     13   1.64   thorpej  * 1. Redistributions of source code must retain the above copyright
     14   1.64   thorpej  *    notice, this list of conditions and the following disclaimer.
     15   1.64   thorpej  * 2. Redistributions in binary form must reproduce the above copyright
     16   1.64   thorpej  *    notice, this list of conditions and the following disclaimer in the
     17   1.64   thorpej  *    documentation and/or other materials provided with the distribution.
     18   1.64   thorpej  *
     19   1.64   thorpej  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20   1.64   thorpej  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21   1.64   thorpej  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22   1.64   thorpej  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23   1.64   thorpej  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24   1.64   thorpej  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25   1.64   thorpej  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26   1.64   thorpej  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27   1.64   thorpej  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28   1.64   thorpej  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29   1.64   thorpej  * POSSIBILITY OF SUCH DAMAGE.
     30   1.64   thorpej  */
     31   1.16       cgd 
     32    1.1       cgd /*
     33  1.159        ad  * Copyright (c) 2004 The FreeBSD Foundation
     34  1.159        ad  * Copyright (c) 2004 Robert Watson
     35   1.15   mycroft  * Copyright (c) 1982, 1986, 1988, 1990, 1993
     36   1.15   mycroft  *	The Regents of the University of California.  All rights reserved.
     37    1.1       cgd  *
     38    1.1       cgd  * Redistribution and use in source and binary forms, with or without
     39    1.1       cgd  * modification, are permitted provided that the following conditions
     40    1.1       cgd  * are met:
     41    1.1       cgd  * 1. Redistributions of source code must retain the above copyright
     42    1.1       cgd  *    notice, this list of conditions and the following disclaimer.
     43    1.1       cgd  * 2. Redistributions in binary form must reproduce the above copyright
     44    1.1       cgd  *    notice, this list of conditions and the following disclaimer in the
     45    1.1       cgd  *    documentation and/or other materials provided with the distribution.
     46   1.85       agc  * 3. Neither the name of the University nor the names of its contributors
     47    1.1       cgd  *    may be used to endorse or promote products derived from this software
     48    1.1       cgd  *    without specific prior written permission.
     49    1.1       cgd  *
     50    1.1       cgd  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     51    1.1       cgd  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     52    1.1       cgd  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     53    1.1       cgd  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     54    1.1       cgd  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     55    1.1       cgd  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     56    1.1       cgd  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     57    1.1       cgd  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     58    1.1       cgd  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     59    1.1       cgd  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     60    1.1       cgd  * SUCH DAMAGE.
     61    1.1       cgd  *
     62   1.32      fvdl  *	@(#)uipc_socket.c	8.6 (Berkeley) 5/2/95
     63    1.1       cgd  */
     64   1.59     lukem 
     65   1.59     lukem #include <sys/cdefs.h>
     66  1.207  christos __KERNEL_RCSID(0, "$NetBSD: uipc_socket.c,v 1.207 2012/01/25 00:28:36 christos Exp $");
     67   1.64   thorpej 
     68  1.179  christos #include "opt_compat_netbsd.h"
     69   1.64   thorpej #include "opt_sock_counters.h"
     70   1.64   thorpej #include "opt_sosend_loan.h"
     71   1.81    martin #include "opt_mbuftrace.h"
     72   1.84     ragge #include "opt_somaxkva.h"
     73  1.167        ad #include "opt_multiprocessor.h"	/* XXX */
     74    1.1       cgd 
     75    1.9   mycroft #include <sys/param.h>
     76    1.9   mycroft #include <sys/systm.h>
     77    1.9   mycroft #include <sys/proc.h>
     78    1.9   mycroft #include <sys/file.h>
     79  1.142    dyoung #include <sys/filedesc.h>
     80  1.173    plunky #include <sys/kmem.h>
     81    1.9   mycroft #include <sys/mbuf.h>
     82    1.9   mycroft #include <sys/domain.h>
     83    1.9   mycroft #include <sys/kernel.h>
     84    1.9   mycroft #include <sys/protosw.h>
     85    1.9   mycroft #include <sys/socket.h>
     86    1.9   mycroft #include <sys/socketvar.h>
     87   1.21  christos #include <sys/signalvar.h>
     88    1.9   mycroft #include <sys/resourcevar.h>
     89  1.174     pooka #include <sys/uidinfo.h>
     90   1.72  jdolecek #include <sys/event.h>
     91   1.89  christos #include <sys/poll.h>
     92  1.118      elad #include <sys/kauth.h>
     93  1.136        ad #include <sys/mutex.h>
     94  1.136        ad #include <sys/condvar.h>
     95  1.205    bouyer #include <sys/kthread.h>
     96   1.37   thorpej 
     97  1.179  christos #ifdef COMPAT_50
     98  1.179  christos #include <compat/sys/time.h>
     99  1.184  christos #include <compat/sys/socket.h>
    100  1.179  christos #endif
    101  1.179  christos 
    102  1.202  uebayasi #include <uvm/uvm_extern.h>
    103  1.202  uebayasi #include <uvm/uvm_loan.h>
    104  1.202  uebayasi #include <uvm/uvm_page.h>
    105   1.64   thorpej 
    106   1.77   thorpej MALLOC_DEFINE(M_SOOPTS, "soopts", "socket options");
    107   1.77   thorpej MALLOC_DEFINE(M_SONAME, "soname", "socket name");
    108   1.37   thorpej 
    109  1.142    dyoung extern const struct fileops socketops;
    110  1.142    dyoung 
    111   1.54     lukem extern int	somaxconn;			/* patchable (XXX sysctl) */
    112   1.54     lukem int		somaxconn = SOMAXCONN;
    113  1.160        ad kmutex_t	*softnet_lock;
    114   1.49  jonathan 
    115   1.64   thorpej #ifdef SOSEND_COUNTERS
    116   1.64   thorpej #include <sys/device.h>
    117   1.64   thorpej 
    118  1.113   thorpej static struct evcnt sosend_loan_big = EVCNT_INITIALIZER(EVCNT_TYPE_MISC,
    119   1.64   thorpej     NULL, "sosend", "loan big");
    120  1.113   thorpej static struct evcnt sosend_copy_big = EVCNT_INITIALIZER(EVCNT_TYPE_MISC,
    121   1.64   thorpej     NULL, "sosend", "copy big");
    122  1.113   thorpej static struct evcnt sosend_copy_small = EVCNT_INITIALIZER(EVCNT_TYPE_MISC,
    123   1.64   thorpej     NULL, "sosend", "copy small");
    124  1.113   thorpej static struct evcnt sosend_kvalimit = EVCNT_INITIALIZER(EVCNT_TYPE_MISC,
    125   1.64   thorpej     NULL, "sosend", "kva limit");
    126   1.64   thorpej 
    127   1.64   thorpej #define	SOSEND_COUNTER_INCR(ev)		(ev)->ev_count++
    128   1.64   thorpej 
    129  1.101      matt EVCNT_ATTACH_STATIC(sosend_loan_big);
    130  1.101      matt EVCNT_ATTACH_STATIC(sosend_copy_big);
    131  1.101      matt EVCNT_ATTACH_STATIC(sosend_copy_small);
    132  1.101      matt EVCNT_ATTACH_STATIC(sosend_kvalimit);
    133   1.64   thorpej #else
    134   1.64   thorpej 
    135   1.64   thorpej #define	SOSEND_COUNTER_INCR(ev)		/* nothing */
    136   1.64   thorpej 
    137   1.64   thorpej #endif /* SOSEND_COUNTERS */
    138   1.64   thorpej 
    139  1.119      yamt static struct callback_entry sokva_reclaimerentry;
    140    1.1       cgd 
    141  1.167        ad #if defined(SOSEND_NO_LOAN) || defined(MULTIPROCESSOR)
    142  1.121      yamt int sock_loan_thresh = -1;
    143   1.71   thorpej #else
    144  1.121      yamt int sock_loan_thresh = 4096;
    145   1.65   thorpej #endif
    146   1.64   thorpej 
    147  1.136        ad static kmutex_t so_pendfree_lock;
    148  1.205    bouyer static struct mbuf *so_pendfree = NULL;
    149   1.64   thorpej 
    150   1.84     ragge #ifndef SOMAXKVA
    151   1.84     ragge #define	SOMAXKVA (16 * 1024 * 1024)
    152   1.84     ragge #endif
    153   1.84     ragge int somaxkva = SOMAXKVA;
    154  1.113   thorpej static int socurkva;
    155  1.136        ad static kcondvar_t socurkva_cv;
    156   1.64   thorpej 
    157  1.191      elad static kauth_listener_t socket_listener;
    158  1.191      elad 
    159   1.64   thorpej #define	SOCK_LOAN_CHUNK		65536
    160   1.64   thorpej 
    161  1.205    bouyer static void sopendfree_thread(void *);
    162  1.205    bouyer static kcondvar_t pendfree_thread_cv;
    163  1.205    bouyer static lwp_t *sopendfree_lwp;
    164   1.93      yamt 
    165  1.178     pooka static void sysctl_kern_somaxkva_setup(void);
    166  1.178     pooka static struct sysctllog *socket_sysctllog;
    167  1.178     pooka 
    168  1.113   thorpej static vsize_t
    169  1.129      yamt sokvareserve(struct socket *so, vsize_t len)
    170   1.80      yamt {
    171   1.98  christos 	int error;
    172   1.80      yamt 
    173  1.136        ad 	mutex_enter(&so_pendfree_lock);
    174   1.80      yamt 	while (socurkva + len > somaxkva) {
    175   1.80      yamt 		SOSEND_COUNTER_INCR(&sosend_kvalimit);
    176  1.136        ad 		error = cv_wait_sig(&socurkva_cv, &so_pendfree_lock);
    177   1.98  christos 		if (error) {
    178   1.98  christos 			len = 0;
    179   1.98  christos 			break;
    180   1.98  christos 		}
    181   1.80      yamt 	}
    182   1.93      yamt 	socurkva += len;
    183  1.136        ad 	mutex_exit(&so_pendfree_lock);
    184   1.98  christos 	return len;
    185   1.95      yamt }
    186   1.95      yamt 
    187  1.113   thorpej static void
    188   1.95      yamt sokvaunreserve(vsize_t len)
    189   1.95      yamt {
    190   1.95      yamt 
    191  1.136        ad 	mutex_enter(&so_pendfree_lock);
    192   1.95      yamt 	socurkva -= len;
    193  1.136        ad 	cv_broadcast(&socurkva_cv);
    194  1.136        ad 	mutex_exit(&so_pendfree_lock);
    195   1.95      yamt }
    196   1.95      yamt 
    197   1.95      yamt /*
    198   1.95      yamt  * sokvaalloc: allocate kva for loan.
    199   1.95      yamt  */
    200   1.95      yamt 
    201   1.95      yamt vaddr_t
    202   1.95      yamt sokvaalloc(vsize_t len, struct socket *so)
    203   1.95      yamt {
    204   1.95      yamt 	vaddr_t lva;
    205   1.95      yamt 
    206   1.95      yamt 	/*
    207   1.95      yamt 	 * reserve kva.
    208   1.95      yamt 	 */
    209   1.95      yamt 
    210   1.98  christos 	if (sokvareserve(so, len) == 0)
    211   1.98  christos 		return 0;
    212   1.93      yamt 
    213   1.93      yamt 	/*
    214   1.93      yamt 	 * allocate kva.
    215   1.93      yamt 	 */
    216   1.80      yamt 
    217  1.109      yamt 	lva = uvm_km_alloc(kernel_map, len, 0, UVM_KMF_VAONLY | UVM_KMF_WAITVA);
    218   1.95      yamt 	if (lva == 0) {
    219   1.95      yamt 		sokvaunreserve(len);
    220   1.80      yamt 		return (0);
    221   1.95      yamt 	}
    222   1.80      yamt 
    223   1.80      yamt 	return lva;
    224   1.80      yamt }
    225   1.80      yamt 
    226   1.93      yamt /*
    227   1.93      yamt  * sokvafree: free kva for loan.
    228   1.93      yamt  */
    229   1.93      yamt 
    230   1.80      yamt void
    231   1.80      yamt sokvafree(vaddr_t sva, vsize_t len)
    232   1.80      yamt {
    233   1.93      yamt 
    234   1.93      yamt 	/*
    235   1.93      yamt 	 * free kva.
    236   1.93      yamt 	 */
    237   1.80      yamt 
    238  1.109      yamt 	uvm_km_free(kernel_map, sva, len, UVM_KMF_VAONLY);
    239   1.93      yamt 
    240   1.93      yamt 	/*
    241   1.93      yamt 	 * unreserve kva.
    242   1.93      yamt 	 */
    243   1.93      yamt 
    244   1.95      yamt 	sokvaunreserve(len);
    245   1.80      yamt }
    246   1.80      yamt 
    247   1.64   thorpej static void
    248  1.134  christos sodoloanfree(struct vm_page **pgs, void *buf, size_t size)
    249   1.64   thorpej {
    250  1.156      yamt 	vaddr_t sva, eva;
    251   1.64   thorpej 	vsize_t len;
    252  1.156      yamt 	int npgs;
    253  1.156      yamt 
    254  1.156      yamt 	KASSERT(pgs != NULL);
    255   1.64   thorpej 
    256   1.64   thorpej 	eva = round_page((vaddr_t) buf + size);
    257   1.64   thorpej 	sva = trunc_page((vaddr_t) buf);
    258   1.64   thorpej 	len = eva - sva;
    259   1.64   thorpej 	npgs = len >> PAGE_SHIFT;
    260   1.64   thorpej 
    261   1.64   thorpej 	pmap_kremove(sva, len);
    262   1.64   thorpej 	pmap_update(pmap_kernel());
    263   1.64   thorpej 	uvm_unloan(pgs, npgs, UVM_LOAN_TOPAGE);
    264   1.80      yamt 	sokvafree(sva, len);
    265   1.64   thorpej }
    266   1.64   thorpej 
    267   1.93      yamt /*
    268  1.205    bouyer  * sopendfree_thread: free mbufs on "pendfree" list.
    269  1.136        ad  * unlock and relock so_pendfree_lock when freeing mbufs.
    270   1.93      yamt  */
    271   1.93      yamt 
    272  1.205    bouyer static void
    273  1.205    bouyer sopendfree_thread(void *v)
    274   1.93      yamt {
    275  1.137        ad 	struct mbuf *m, *next;
    276  1.205    bouyer 	size_t rv;
    277   1.93      yamt 
    278  1.205    bouyer 	mutex_enter(&so_pendfree_lock);
    279   1.64   thorpej 
    280  1.205    bouyer 	for (;;) {
    281  1.205    bouyer 		rv = 0;
    282  1.205    bouyer 		while (so_pendfree != NULL) {
    283  1.205    bouyer 			m = so_pendfree;
    284  1.205    bouyer 			so_pendfree = NULL;
    285  1.205    bouyer 			mutex_exit(&so_pendfree_lock);
    286  1.205    bouyer 
    287  1.205    bouyer 			for (; m != NULL; m = next) {
    288  1.205    bouyer 				next = m->m_next;
    289  1.205    bouyer 				KASSERT((~m->m_flags & (M_EXT|M_EXT_PAGES)) == 0);
    290  1.205    bouyer 				KASSERT(m->m_ext.ext_refcnt == 0);
    291  1.205    bouyer 
    292  1.205    bouyer 				rv += m->m_ext.ext_size;
    293  1.205    bouyer 				sodoloanfree(m->m_ext.ext_pgs, m->m_ext.ext_buf,
    294  1.205    bouyer 				    m->m_ext.ext_size);
    295  1.205    bouyer 				pool_cache_put(mb_cache, m);
    296  1.205    bouyer 			}
    297   1.93      yamt 
    298  1.205    bouyer 			mutex_enter(&so_pendfree_lock);
    299   1.93      yamt 		}
    300  1.205    bouyer 		if (rv)
    301  1.205    bouyer 			cv_broadcast(&socurkva_cv);
    302  1.205    bouyer 		cv_wait(&pendfree_thread_cv, &so_pendfree_lock);
    303   1.64   thorpej 	}
    304  1.205    bouyer 	panic("sopendfree_thread");
    305  1.205    bouyer 	/* NOTREACHED */
    306   1.64   thorpej }
    307   1.64   thorpej 
    308   1.80      yamt void
    309  1.134  christos soloanfree(struct mbuf *m, void *buf, size_t size, void *arg)
    310   1.64   thorpej {
    311   1.64   thorpej 
    312  1.156      yamt 	KASSERT(m != NULL);
    313   1.64   thorpej 
    314   1.93      yamt 	/*
    315   1.93      yamt 	 * postpone freeing mbuf.
    316   1.93      yamt 	 *
    317   1.93      yamt 	 * we can't do it in interrupt context
    318   1.93      yamt 	 * because we need to put kva back to kernel_map.
    319   1.93      yamt 	 */
    320   1.93      yamt 
    321  1.136        ad 	mutex_enter(&so_pendfree_lock);
    322   1.92      yamt 	m->m_next = so_pendfree;
    323   1.92      yamt 	so_pendfree = m;
    324  1.205    bouyer 	cv_signal(&pendfree_thread_cv);
    325  1.136        ad 	mutex_exit(&so_pendfree_lock);
    326   1.64   thorpej }
    327   1.64   thorpej 
    328   1.64   thorpej static long
    329   1.64   thorpej sosend_loan(struct socket *so, struct uio *uio, struct mbuf *m, long space)
    330   1.64   thorpej {
    331   1.64   thorpej 	struct iovec *iov = uio->uio_iov;
    332   1.64   thorpej 	vaddr_t sva, eva;
    333   1.64   thorpej 	vsize_t len;
    334  1.156      yamt 	vaddr_t lva;
    335  1.156      yamt 	int npgs, error;
    336  1.156      yamt 	vaddr_t va;
    337  1.156      yamt 	int i;
    338   1.64   thorpej 
    339  1.116      yamt 	if (VMSPACE_IS_KERNEL_P(uio->uio_vmspace))
    340   1.64   thorpej 		return (0);
    341   1.64   thorpej 
    342   1.64   thorpej 	if (iov->iov_len < (size_t) space)
    343   1.64   thorpej 		space = iov->iov_len;
    344   1.64   thorpej 	if (space > SOCK_LOAN_CHUNK)
    345   1.64   thorpej 		space = SOCK_LOAN_CHUNK;
    346   1.64   thorpej 
    347   1.64   thorpej 	eva = round_page((vaddr_t) iov->iov_base + space);
    348   1.64   thorpej 	sva = trunc_page((vaddr_t) iov->iov_base);
    349   1.64   thorpej 	len = eva - sva;
    350   1.64   thorpej 	npgs = len >> PAGE_SHIFT;
    351   1.64   thorpej 
    352   1.79   thorpej 	KASSERT(npgs <= M_EXT_MAXPAGES);
    353   1.79   thorpej 
    354   1.80      yamt 	lva = sokvaalloc(len, so);
    355   1.64   thorpej 	if (lva == 0)
    356   1.80      yamt 		return 0;
    357   1.64   thorpej 
    358  1.116      yamt 	error = uvm_loan(&uio->uio_vmspace->vm_map, sva, len,
    359   1.79   thorpej 	    m->m_ext.ext_pgs, UVM_LOAN_TOPAGE);
    360   1.64   thorpej 	if (error) {
    361   1.80      yamt 		sokvafree(lva, len);
    362   1.64   thorpej 		return (0);
    363   1.64   thorpej 	}
    364   1.64   thorpej 
    365   1.64   thorpej 	for (i = 0, va = lva; i < npgs; i++, va += PAGE_SIZE)
    366   1.79   thorpej 		pmap_kenter_pa(va, VM_PAGE_TO_PHYS(m->m_ext.ext_pgs[i]),
    367  1.194    cegger 		    VM_PROT_READ, 0);
    368   1.64   thorpej 	pmap_update(pmap_kernel());
    369   1.64   thorpej 
    370   1.64   thorpej 	lva += (vaddr_t) iov->iov_base & PAGE_MASK;
    371   1.64   thorpej 
    372  1.134  christos 	MEXTADD(m, (void *) lva, space, M_MBUF, soloanfree, so);
    373   1.79   thorpej 	m->m_flags |= M_EXT_PAGES | M_EXT_ROMAP;
    374   1.64   thorpej 
    375   1.64   thorpej 	uio->uio_resid -= space;
    376   1.64   thorpej 	/* uio_offset not updated, not set/used for write(2) */
    377  1.134  christos 	uio->uio_iov->iov_base = (char *)uio->uio_iov->iov_base + space;
    378   1.64   thorpej 	uio->uio_iov->iov_len -= space;
    379   1.64   thorpej 	if (uio->uio_iov->iov_len == 0) {
    380   1.64   thorpej 		uio->uio_iov++;
    381   1.64   thorpej 		uio->uio_iovcnt--;
    382   1.64   thorpej 	}
    383   1.64   thorpej 
    384   1.64   thorpej 	return (space);
    385   1.64   thorpej }
    386   1.64   thorpej 
    387  1.119      yamt static int
    388  1.129      yamt sokva_reclaim_callback(struct callback_entry *ce, void *obj, void *arg)
    389  1.119      yamt {
    390  1.119      yamt 
    391  1.119      yamt 	KASSERT(ce == &sokva_reclaimerentry);
    392  1.119      yamt 	KASSERT(obj == NULL);
    393  1.119      yamt 
    394  1.119      yamt 	if (!vm_map_starved_p(kernel_map)) {
    395  1.119      yamt 		return CALLBACK_CHAIN_ABORT;
    396  1.119      yamt 	}
    397  1.119      yamt 	return CALLBACK_CHAIN_CONTINUE;
    398  1.119      yamt }
    399  1.119      yamt 
    400  1.142    dyoung struct mbuf *
    401  1.147    dyoung getsombuf(struct socket *so, int type)
    402  1.142    dyoung {
    403  1.142    dyoung 	struct mbuf *m;
    404  1.142    dyoung 
    405  1.147    dyoung 	m = m_get(M_WAIT, type);
    406  1.142    dyoung 	MCLAIM(m, so->so_mowner);
    407  1.142    dyoung 	return m;
    408  1.142    dyoung }
    409  1.142    dyoung 
    410  1.191      elad static int
    411  1.191      elad socket_listener_cb(kauth_cred_t cred, kauth_action_t action, void *cookie,
    412  1.191      elad     void *arg0, void *arg1, void *arg2, void *arg3)
    413  1.191      elad {
    414  1.191      elad 	int result;
    415  1.191      elad 	enum kauth_network_req req;
    416  1.191      elad 
    417  1.191      elad 	result = KAUTH_RESULT_DEFER;
    418  1.191      elad 	req = (enum kauth_network_req)arg0;
    419  1.191      elad 
    420  1.193      elad 	if ((action != KAUTH_NETWORK_SOCKET) &&
    421  1.193      elad 	    (action != KAUTH_NETWORK_BIND))
    422  1.191      elad 		return result;
    423  1.191      elad 
    424  1.191      elad 	switch (req) {
    425  1.193      elad 	case KAUTH_REQ_NETWORK_BIND_PORT:
    426  1.193      elad 		result = KAUTH_RESULT_ALLOW;
    427  1.193      elad 		break;
    428  1.193      elad 
    429  1.191      elad 	case KAUTH_REQ_NETWORK_SOCKET_DROP: {
    430  1.191      elad 		/* Normal users can only drop their own connections. */
    431  1.191      elad 		struct socket *so = (struct socket *)arg1;
    432  1.191      elad 
    433  1.199      elad 		if (proc_uidmatch(cred, so->so_cred))
    434  1.191      elad 			result = KAUTH_RESULT_ALLOW;
    435  1.191      elad 
    436  1.191      elad 		break;
    437  1.191      elad 		}
    438  1.191      elad 
    439  1.191      elad 	case KAUTH_REQ_NETWORK_SOCKET_OPEN:
    440  1.191      elad 		/* We allow "raw" routing/bluetooth sockets to anyone. */
    441  1.203      matt 		if ((u_long)arg1 == PF_ROUTE || (u_long)arg1 == PF_OROUTE
    442  1.203      matt 		    || (u_long)arg1 == PF_BLUETOOTH) {
    443  1.191      elad 			result = KAUTH_RESULT_ALLOW;
    444  1.203      matt 		} else {
    445  1.191      elad 			/* Privileged, let secmodel handle this. */
    446  1.191      elad 			if ((u_long)arg2 == SOCK_RAW)
    447  1.191      elad 				break;
    448  1.191      elad 		}
    449  1.191      elad 
    450  1.191      elad 		result = KAUTH_RESULT_ALLOW;
    451  1.191      elad 
    452  1.191      elad 		break;
    453  1.191      elad 
    454  1.192      elad 	case KAUTH_REQ_NETWORK_SOCKET_CANSEE:
    455  1.192      elad 		result = KAUTH_RESULT_ALLOW;
    456  1.192      elad 
    457  1.192      elad 		break;
    458  1.192      elad 
    459  1.191      elad 	default:
    460  1.191      elad 		break;
    461  1.191      elad 	}
    462  1.191      elad 
    463  1.191      elad 	return result;
    464  1.191      elad }
    465  1.191      elad 
    466  1.119      yamt void
    467  1.119      yamt soinit(void)
    468  1.119      yamt {
    469  1.119      yamt 
    470  1.178     pooka 	sysctl_kern_somaxkva_setup();
    471  1.178     pooka 
    472  1.148        ad 	mutex_init(&so_pendfree_lock, MUTEX_DEFAULT, IPL_VM);
    473  1.160        ad 	softnet_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
    474  1.136        ad 	cv_init(&socurkva_cv, "sokva");
    475  1.205    bouyer 	cv_init(&pendfree_thread_cv, "sopendfr");
    476  1.166        ad 	soinit2();
    477  1.136        ad 
    478  1.119      yamt 	/* Set the initial adjusted socket buffer size. */
    479  1.119      yamt 	if (sb_max_set(sb_max))
    480  1.119      yamt 		panic("bad initial sb_max value: %lu", sb_max);
    481  1.119      yamt 
    482  1.119      yamt 	callback_register(&vm_map_to_kernel(kernel_map)->vmk_reclaim_callback,
    483  1.119      yamt 	    &sokva_reclaimerentry, NULL, sokva_reclaim_callback);
    484  1.191      elad 
    485  1.191      elad 	socket_listener = kauth_listen_scope(KAUTH_SCOPE_NETWORK,
    486  1.191      elad 	    socket_listener_cb, NULL);
    487  1.119      yamt }
    488  1.119      yamt 
    489  1.205    bouyer void
    490  1.205    bouyer soinit1(void)
    491  1.205    bouyer {
    492  1.205    bouyer 	int error = kthread_create(PRI_NONE, KTHREAD_MPSAFE, NULL,
    493  1.205    bouyer 	    sopendfree_thread, NULL, &sopendfree_lwp, "sopendfree");
    494  1.205    bouyer 	if (error)
    495  1.205    bouyer 		panic("soinit1 %d", error);
    496  1.205    bouyer }
    497  1.205    bouyer 
    498    1.1       cgd /*
    499    1.1       cgd  * Socket operation routines.
    500    1.1       cgd  * These routines are called by the routines in
    501    1.1       cgd  * sys_socket.c or from a system process, and
    502    1.1       cgd  * implement the semantics of socket operations by
    503    1.1       cgd  * switching out to the protocol specific routines.
    504    1.1       cgd  */
    505    1.1       cgd /*ARGSUSED*/
    506    1.3    andrew int
    507  1.160        ad socreate(int dom, struct socket **aso, int type, int proto, struct lwp *l,
    508  1.160        ad 	 struct socket *lockso)
    509    1.1       cgd {
    510   1.99      matt 	const struct protosw	*prp;
    511   1.54     lukem 	struct socket	*so;
    512  1.115      yamt 	uid_t		uid;
    513  1.160        ad 	int		error;
    514  1.160        ad 	kmutex_t	*lock;
    515    1.1       cgd 
    516  1.132      elad 	error = kauth_authorize_network(l->l_cred, KAUTH_NETWORK_SOCKET,
    517  1.132      elad 	    KAUTH_REQ_NETWORK_SOCKET_OPEN, KAUTH_ARG(dom), KAUTH_ARG(type),
    518  1.132      elad 	    KAUTH_ARG(proto));
    519  1.140    dyoung 	if (error != 0)
    520  1.140    dyoung 		return error;
    521  1.127      elad 
    522    1.1       cgd 	if (proto)
    523    1.1       cgd 		prp = pffindproto(dom, proto, type);
    524    1.1       cgd 	else
    525    1.1       cgd 		prp = pffindtype(dom, type);
    526  1.140    dyoung 	if (prp == NULL) {
    527  1.120  ginsbach 		/* no support for domain */
    528  1.120  ginsbach 		if (pffinddomain(dom) == 0)
    529  1.140    dyoung 			return EAFNOSUPPORT;
    530  1.120  ginsbach 		/* no support for socket type */
    531  1.120  ginsbach 		if (proto == 0 && type != 0)
    532  1.140    dyoung 			return EPROTOTYPE;
    533  1.140    dyoung 		return EPROTONOSUPPORT;
    534  1.120  ginsbach 	}
    535  1.140    dyoung 	if (prp->pr_usrreq == NULL)
    536  1.140    dyoung 		return EPROTONOSUPPORT;
    537    1.1       cgd 	if (prp->pr_type != type)
    538  1.140    dyoung 		return EPROTOTYPE;
    539  1.160        ad 
    540  1.160        ad 	so = soget(true);
    541    1.1       cgd 	so->so_type = type;
    542    1.1       cgd 	so->so_proto = prp;
    543   1.33      matt 	so->so_send = sosend;
    544   1.33      matt 	so->so_receive = soreceive;
    545   1.78      matt #ifdef MBUFTRACE
    546   1.78      matt 	so->so_rcv.sb_mowner = &prp->pr_domain->dom_mowner;
    547   1.78      matt 	so->so_snd.sb_mowner = &prp->pr_domain->dom_mowner;
    548   1.78      matt 	so->so_mowner = &prp->pr_domain->dom_mowner;
    549   1.78      matt #endif
    550  1.138     rmind 	uid = kauth_cred_geteuid(l->l_cred);
    551  1.115      yamt 	so->so_uidinfo = uid_find(uid);
    552  1.168      yamt 	so->so_cpid = l->l_proc->p_pid;
    553  1.160        ad 	if (lockso != NULL) {
    554  1.160        ad 		/* Caller wants us to share a lock. */
    555  1.160        ad 		lock = lockso->so_lock;
    556  1.160        ad 		so->so_lock = lock;
    557  1.160        ad 		mutex_obj_hold(lock);
    558  1.160        ad 		mutex_enter(lock);
    559  1.160        ad 	} else {
    560  1.160        ad 		/* Lock assigned and taken during PRU_ATTACH. */
    561  1.160        ad 	}
    562  1.140    dyoung 	error = (*prp->pr_usrreq)(so, PRU_ATTACH, NULL,
    563  1.140    dyoung 	    (struct mbuf *)(long)proto, NULL, l);
    564  1.160        ad 	KASSERT(solocked(so));
    565  1.140    dyoung 	if (error != 0) {
    566    1.1       cgd 		so->so_state |= SS_NOFDREF;
    567    1.1       cgd 		sofree(so);
    568  1.140    dyoung 		return error;
    569    1.1       cgd 	}
    570  1.198      elad 	so->so_cred = kauth_cred_dup(l->l_cred);
    571  1.160        ad 	sounlock(so);
    572    1.1       cgd 	*aso = so;
    573  1.140    dyoung 	return 0;
    574    1.1       cgd }
    575    1.1       cgd 
    576  1.142    dyoung /* On success, write file descriptor to fdout and return zero.  On
    577  1.142    dyoung  * failure, return non-zero; *fdout will be undefined.
    578  1.142    dyoung  */
    579  1.142    dyoung int
    580  1.142    dyoung fsocreate(int domain, struct socket **sop, int type, int protocol,
    581  1.142    dyoung     struct lwp *l, int *fdout)
    582  1.142    dyoung {
    583  1.142    dyoung 	struct socket	*so;
    584  1.142    dyoung 	struct file	*fp;
    585  1.142    dyoung 	int		fd, error;
    586  1.204  christos 	int		flags = type & SOCK_FLAGS_MASK;
    587  1.142    dyoung 
    588  1.204  christos 	type &= ~SOCK_FLAGS_MASK;
    589  1.155        ad 	if ((error = fd_allocfile(&fp, &fd)) != 0)
    590  1.204  christos 		return error;
    591  1.204  christos 	fd_set_exclose(l, fd, (flags & SOCK_CLOEXEC) != 0);
    592  1.207  christos 	fp->f_flag = FREAD|FWRITE|((flags & SOCK_NONBLOCK) ? FNONBLOCK : 0)|
    593  1.207  christos 	    ((flags & SOCK_NOSIGPIPE) ? FNOSIGPIPE : 0);
    594  1.142    dyoung 	fp->f_type = DTYPE_SOCKET;
    595  1.142    dyoung 	fp->f_ops = &socketops;
    596  1.160        ad 	error = socreate(domain, &so, type, protocol, l, NULL);
    597  1.142    dyoung 	if (error != 0) {
    598  1.155        ad 		fd_abort(curproc, fp, fd);
    599  1.142    dyoung 	} else {
    600  1.142    dyoung 		if (sop != NULL)
    601  1.142    dyoung 			*sop = so;
    602  1.142    dyoung 		fp->f_data = so;
    603  1.155        ad 		fd_affix(curproc, fp, fd);
    604  1.142    dyoung 		*fdout = fd;
    605  1.142    dyoung 	}
    606  1.142    dyoung 	return error;
    607  1.142    dyoung }
    608  1.142    dyoung 
    609    1.3    andrew int
    610  1.190    dyoung sofamily(const struct socket *so)
    611  1.190    dyoung {
    612  1.190    dyoung 	const struct protosw *pr;
    613  1.190    dyoung 	const struct domain *dom;
    614  1.190    dyoung 
    615  1.190    dyoung 	if ((pr = so->so_proto) == NULL)
    616  1.190    dyoung 		return AF_UNSPEC;
    617  1.190    dyoung 	if ((dom = pr->pr_domain) == NULL)
    618  1.190    dyoung 		return AF_UNSPEC;
    619  1.190    dyoung 	return dom->dom_family;
    620  1.190    dyoung }
    621  1.190    dyoung 
    622  1.190    dyoung int
    623  1.114  christos sobind(struct socket *so, struct mbuf *nam, struct lwp *l)
    624    1.1       cgd {
    625  1.160        ad 	int	error;
    626    1.1       cgd 
    627  1.160        ad 	solock(so);
    628  1.140    dyoung 	error = (*so->so_proto->pr_usrreq)(so, PRU_BIND, NULL, nam, NULL, l);
    629  1.160        ad 	sounlock(so);
    630  1.140    dyoung 	return error;
    631    1.1       cgd }
    632    1.1       cgd 
    633    1.3    andrew int
    634  1.150      elad solisten(struct socket *so, int backlog, struct lwp *l)
    635    1.1       cgd {
    636  1.160        ad 	int	error;
    637    1.1       cgd 
    638  1.160        ad 	solock(so);
    639  1.158        ad 	if ((so->so_state & (SS_ISCONNECTED | SS_ISCONNECTING |
    640  1.163        ad 	    SS_ISDISCONNECTING)) != 0) {
    641  1.163        ad 	    	sounlock(so);
    642  1.158        ad 		return (EOPNOTSUPP);
    643  1.163        ad 	}
    644  1.140    dyoung 	error = (*so->so_proto->pr_usrreq)(so, PRU_LISTEN, NULL,
    645  1.150      elad 	    NULL, NULL, l);
    646  1.140    dyoung 	if (error != 0) {
    647  1.160        ad 		sounlock(so);
    648  1.140    dyoung 		return error;
    649    1.1       cgd 	}
    650   1.63      matt 	if (TAILQ_EMPTY(&so->so_q))
    651    1.1       cgd 		so->so_options |= SO_ACCEPTCONN;
    652    1.1       cgd 	if (backlog < 0)
    653    1.1       cgd 		backlog = 0;
    654   1.49  jonathan 	so->so_qlimit = min(backlog, somaxconn);
    655  1.160        ad 	sounlock(so);
    656  1.140    dyoung 	return 0;
    657    1.1       cgd }
    658    1.1       cgd 
    659   1.21  christos void
    660   1.54     lukem sofree(struct socket *so)
    661    1.1       cgd {
    662  1.161        ad 	u_int refs;
    663    1.1       cgd 
    664  1.160        ad 	KASSERT(solocked(so));
    665  1.160        ad 
    666  1.160        ad 	if (so->so_pcb || (so->so_state & SS_NOFDREF) == 0) {
    667  1.160        ad 		sounlock(so);
    668    1.1       cgd 		return;
    669  1.160        ad 	}
    670   1.43   mycroft 	if (so->so_head) {
    671   1.43   mycroft 		/*
    672   1.43   mycroft 		 * We must not decommission a socket that's on the accept(2)
    673   1.43   mycroft 		 * queue.  If we do, then accept(2) may hang after select(2)
    674   1.43   mycroft 		 * indicated that the listening socket was ready.
    675   1.43   mycroft 		 */
    676  1.160        ad 		if (!soqremque(so, 0)) {
    677  1.160        ad 			sounlock(so);
    678   1.43   mycroft 			return;
    679  1.160        ad 		}
    680   1.43   mycroft 	}
    681   1.98  christos 	if (so->so_rcv.sb_hiwat)
    682  1.110  christos 		(void)chgsbsize(so->so_uidinfo, &so->so_rcv.sb_hiwat, 0,
    683   1.98  christos 		    RLIM_INFINITY);
    684   1.98  christos 	if (so->so_snd.sb_hiwat)
    685  1.110  christos 		(void)chgsbsize(so->so_uidinfo, &so->so_snd.sb_hiwat, 0,
    686   1.98  christos 		    RLIM_INFINITY);
    687   1.98  christos 	sbrelease(&so->so_snd, so);
    688  1.160        ad 	KASSERT(!cv_has_waiters(&so->so_cv));
    689  1.160        ad 	KASSERT(!cv_has_waiters(&so->so_rcv.sb_cv));
    690  1.160        ad 	KASSERT(!cv_has_waiters(&so->so_snd.sb_cv));
    691    1.1       cgd 	sorflush(so);
    692  1.161        ad 	refs = so->so_aborting;	/* XXX */
    693  1.177        ad 	/* Remove acccept filter if one is present. */
    694  1.170       tls 	if (so->so_accf != NULL)
    695  1.177        ad 		(void)accept_filt_clear(so);
    696  1.160        ad 	sounlock(so);
    697  1.161        ad 	if (refs == 0)		/* XXX */
    698  1.161        ad 		soput(so);
    699    1.1       cgd }
    700    1.1       cgd 
    701    1.1       cgd /*
    702    1.1       cgd  * Close a socket on last file table reference removal.
    703    1.1       cgd  * Initiate disconnect if connected.
    704    1.1       cgd  * Free socket when disconnect complete.
    705    1.1       cgd  */
    706    1.3    andrew int
    707   1.54     lukem soclose(struct socket *so)
    708    1.1       cgd {
    709   1.54     lukem 	struct socket	*so2;
    710  1.160        ad 	int		error;
    711  1.160        ad 	int		error2;
    712    1.1       cgd 
    713   1.54     lukem 	error = 0;
    714  1.160        ad 	solock(so);
    715    1.1       cgd 	if (so->so_options & SO_ACCEPTCONN) {
    716  1.172        ad 		for (;;) {
    717  1.172        ad 			if ((so2 = TAILQ_FIRST(&so->so_q0)) != 0) {
    718  1.160        ad 				KASSERT(solocked2(so, so2));
    719  1.160        ad 				(void) soqremque(so2, 0);
    720  1.160        ad 				/* soabort drops the lock. */
    721  1.160        ad 				(void) soabort(so2);
    722  1.160        ad 				solock(so);
    723  1.172        ad 				continue;
    724  1.160        ad 			}
    725  1.172        ad 			if ((so2 = TAILQ_FIRST(&so->so_q)) != 0) {
    726  1.160        ad 				KASSERT(solocked2(so, so2));
    727  1.160        ad 				(void) soqremque(so2, 1);
    728  1.160        ad 				/* soabort drops the lock. */
    729  1.160        ad 				(void) soabort(so2);
    730  1.160        ad 				solock(so);
    731  1.172        ad 				continue;
    732  1.160        ad 			}
    733  1.172        ad 			break;
    734  1.172        ad 		}
    735    1.1       cgd 	}
    736    1.1       cgd 	if (so->so_pcb == 0)
    737    1.1       cgd 		goto discard;
    738    1.1       cgd 	if (so->so_state & SS_ISCONNECTED) {
    739    1.1       cgd 		if ((so->so_state & SS_ISDISCONNECTING) == 0) {
    740    1.1       cgd 			error = sodisconnect(so);
    741    1.1       cgd 			if (error)
    742    1.1       cgd 				goto drop;
    743    1.1       cgd 		}
    744    1.1       cgd 		if (so->so_options & SO_LINGER) {
    745  1.206  christos 			if ((so->so_state & (SS_ISDISCONNECTING|SS_NBIO)) ==
    746  1.206  christos 			    (SS_ISDISCONNECTING|SS_NBIO))
    747    1.1       cgd 				goto drop;
    748   1.21  christos 			while (so->so_state & SS_ISCONNECTED) {
    749  1.185      yamt 				error = sowait(so, true, so->so_linger * hz);
    750   1.21  christos 				if (error)
    751    1.1       cgd 					break;
    752   1.21  christos 			}
    753    1.1       cgd 		}
    754    1.1       cgd 	}
    755   1.54     lukem  drop:
    756    1.1       cgd 	if (so->so_pcb) {
    757  1.160        ad 		error2 = (*so->so_proto->pr_usrreq)(so, PRU_DETACH,
    758  1.140    dyoung 		    NULL, NULL, NULL, NULL);
    759    1.1       cgd 		if (error == 0)
    760    1.1       cgd 			error = error2;
    761    1.1       cgd 	}
    762   1.54     lukem  discard:
    763    1.1       cgd 	if (so->so_state & SS_NOFDREF)
    764    1.1       cgd 		panic("soclose: NOFDREF");
    765  1.198      elad 	kauth_cred_free(so->so_cred);
    766    1.1       cgd 	so->so_state |= SS_NOFDREF;
    767    1.1       cgd 	sofree(so);
    768    1.1       cgd 	return (error);
    769    1.1       cgd }
    770    1.1       cgd 
    771    1.1       cgd /*
    772  1.160        ad  * Must be called with the socket locked..  Will return with it unlocked.
    773    1.1       cgd  */
    774    1.3    andrew int
    775   1.54     lukem soabort(struct socket *so)
    776    1.1       cgd {
    777  1.161        ad 	u_int refs;
    778  1.139      yamt 	int error;
    779  1.160        ad 
    780  1.160        ad 	KASSERT(solocked(so));
    781  1.160        ad 	KASSERT(so->so_head == NULL);
    782    1.1       cgd 
    783  1.161        ad 	so->so_aborting++;		/* XXX */
    784  1.140    dyoung 	error = (*so->so_proto->pr_usrreq)(so, PRU_ABORT, NULL,
    785  1.140    dyoung 	    NULL, NULL, NULL);
    786  1.161        ad 	refs = --so->so_aborting;	/* XXX */
    787  1.164  drochner 	if (error || (refs == 0)) {
    788  1.139      yamt 		sofree(so);
    789  1.160        ad 	} else {
    790  1.160        ad 		sounlock(so);
    791  1.139      yamt 	}
    792  1.139      yamt 	return error;
    793    1.1       cgd }
    794    1.1       cgd 
    795    1.3    andrew int
    796   1.54     lukem soaccept(struct socket *so, struct mbuf *nam)
    797    1.1       cgd {
    798  1.160        ad 	int	error;
    799  1.160        ad 
    800  1.160        ad 	KASSERT(solocked(so));
    801    1.1       cgd 
    802   1.54     lukem 	error = 0;
    803    1.1       cgd 	if ((so->so_state & SS_NOFDREF) == 0)
    804    1.1       cgd 		panic("soaccept: !NOFDREF");
    805    1.1       cgd 	so->so_state &= ~SS_NOFDREF;
    806   1.55   thorpej 	if ((so->so_state & SS_ISDISCONNECTED) == 0 ||
    807   1.55   thorpej 	    (so->so_proto->pr_flags & PR_ABRTACPTDIS) == 0)
    808   1.41   mycroft 		error = (*so->so_proto->pr_usrreq)(so, PRU_ACCEPT,
    809  1.140    dyoung 		    NULL, nam, NULL, NULL);
    810   1.41   mycroft 	else
    811   1.53    itojun 		error = ECONNABORTED;
    812   1.52    itojun 
    813    1.1       cgd 	return (error);
    814    1.1       cgd }
    815    1.1       cgd 
    816    1.3    andrew int
    817  1.114  christos soconnect(struct socket *so, struct mbuf *nam, struct lwp *l)
    818    1.1       cgd {
    819  1.160        ad 	int		error;
    820  1.160        ad 
    821  1.160        ad 	KASSERT(solocked(so));
    822    1.1       cgd 
    823    1.1       cgd 	if (so->so_options & SO_ACCEPTCONN)
    824    1.1       cgd 		return (EOPNOTSUPP);
    825    1.1       cgd 	/*
    826    1.1       cgd 	 * If protocol is connection-based, can only connect once.
    827    1.1       cgd 	 * Otherwise, if connected, try to disconnect first.
    828    1.1       cgd 	 * This allows user to disconnect by connecting to, e.g.,
    829    1.1       cgd 	 * a null address.
    830    1.1       cgd 	 */
    831    1.1       cgd 	if (so->so_state & (SS_ISCONNECTED|SS_ISCONNECTING) &&
    832    1.1       cgd 	    ((so->so_proto->pr_flags & PR_CONNREQUIRED) ||
    833    1.1       cgd 	    (error = sodisconnect(so))))
    834    1.1       cgd 		error = EISCONN;
    835    1.1       cgd 	else
    836    1.1       cgd 		error = (*so->so_proto->pr_usrreq)(so, PRU_CONNECT,
    837  1.140    dyoung 		    NULL, nam, NULL, l);
    838    1.1       cgd 	return (error);
    839    1.1       cgd }
    840    1.1       cgd 
    841    1.3    andrew int
    842   1.54     lukem soconnect2(struct socket *so1, struct socket *so2)
    843    1.1       cgd {
    844  1.160        ad 	int	error;
    845  1.160        ad 
    846  1.160        ad 	KASSERT(solocked2(so1, so2));
    847    1.1       cgd 
    848   1.22   mycroft 	error = (*so1->so_proto->pr_usrreq)(so1, PRU_CONNECT2,
    849  1.140    dyoung 	    NULL, (struct mbuf *)so2, NULL, NULL);
    850    1.1       cgd 	return (error);
    851    1.1       cgd }
    852    1.1       cgd 
    853    1.3    andrew int
    854   1.54     lukem sodisconnect(struct socket *so)
    855    1.1       cgd {
    856  1.160        ad 	int	error;
    857  1.160        ad 
    858  1.160        ad 	KASSERT(solocked(so));
    859    1.1       cgd 
    860    1.1       cgd 	if ((so->so_state & SS_ISCONNECTED) == 0) {
    861    1.1       cgd 		error = ENOTCONN;
    862  1.160        ad 	} else if (so->so_state & SS_ISDISCONNECTING) {
    863    1.1       cgd 		error = EALREADY;
    864  1.160        ad 	} else {
    865  1.160        ad 		error = (*so->so_proto->pr_usrreq)(so, PRU_DISCONNECT,
    866  1.160        ad 		    NULL, NULL, NULL, NULL);
    867    1.1       cgd 	}
    868    1.1       cgd 	return (error);
    869    1.1       cgd }
    870    1.1       cgd 
    871   1.15   mycroft #define	SBLOCKWAIT(f)	(((f) & MSG_DONTWAIT) ? M_NOWAIT : M_WAITOK)
    872    1.1       cgd /*
    873    1.1       cgd  * Send on a socket.
    874    1.1       cgd  * If send must go all at once and message is larger than
    875    1.1       cgd  * send buffering, then hard error.
    876    1.1       cgd  * Lock against other senders.
    877    1.1       cgd  * If must go all at once and not enough room now, then
    878    1.1       cgd  * inform user that this would block and do nothing.
    879    1.1       cgd  * Otherwise, if nonblocking, send as much as possible.
    880    1.1       cgd  * The data to be sent is described by "uio" if nonzero,
    881    1.1       cgd  * otherwise by the mbuf chain "top" (which must be null
    882    1.1       cgd  * if uio is not).  Data provided in mbuf chain must be small
    883    1.1       cgd  * enough to send all at once.
    884    1.1       cgd  *
    885    1.1       cgd  * Returns nonzero on error, timeout or signal; callers
    886    1.1       cgd  * must check for short counts if EINTR/ERESTART are returned.
    887    1.1       cgd  * Data and control buffers are freed on return.
    888    1.1       cgd  */
    889    1.3    andrew int
    890   1.54     lukem sosend(struct socket *so, struct mbuf *addr, struct uio *uio, struct mbuf *top,
    891  1.114  christos 	struct mbuf *control, int flags, struct lwp *l)
    892    1.1       cgd {
    893   1.54     lukem 	struct mbuf	**mp, *m;
    894  1.114  christos 	struct proc	*p;
    895   1.58  jdolecek 	long		space, len, resid, clen, mlen;
    896   1.58  jdolecek 	int		error, s, dontroute, atomic;
    897  1.196       dsl 	short		wakeup_state = 0;
    898   1.54     lukem 
    899  1.114  christos 	p = l->l_proc;
    900  1.160        ad 	clen = 0;
    901   1.64   thorpej 
    902  1.160        ad 	/*
    903  1.160        ad 	 * solock() provides atomicity of access.  splsoftnet() prevents
    904  1.160        ad 	 * protocol processing soft interrupts from interrupting us and
    905  1.160        ad 	 * blocking (expensive).
    906  1.160        ad 	 */
    907  1.160        ad 	s = splsoftnet();
    908  1.160        ad 	solock(so);
    909   1.54     lukem 	atomic = sosendallatonce(so) || top;
    910    1.1       cgd 	if (uio)
    911    1.1       cgd 		resid = uio->uio_resid;
    912    1.1       cgd 	else
    913    1.1       cgd 		resid = top->m_pkthdr.len;
    914    1.7       cgd 	/*
    915    1.7       cgd 	 * In theory resid should be unsigned.
    916    1.7       cgd 	 * However, space must be signed, as it might be less than 0
    917    1.7       cgd 	 * if we over-committed, and we must use a signed comparison
    918    1.7       cgd 	 * of space and resid.  On the other hand, a negative resid
    919    1.7       cgd 	 * causes us to loop sending 0-length segments to the protocol.
    920    1.7       cgd 	 */
    921   1.29   mycroft 	if (resid < 0) {
    922   1.29   mycroft 		error = EINVAL;
    923   1.29   mycroft 		goto out;
    924   1.29   mycroft 	}
    925    1.1       cgd 	dontroute =
    926    1.1       cgd 	    (flags & MSG_DONTROUTE) && (so->so_options & SO_DONTROUTE) == 0 &&
    927    1.1       cgd 	    (so->so_proto->pr_flags & PR_ATOMIC);
    928  1.165  christos 	l->l_ru.ru_msgsnd++;
    929    1.1       cgd 	if (control)
    930    1.1       cgd 		clen = control->m_len;
    931   1.54     lukem  restart:
    932   1.21  christos 	if ((error = sblock(&so->so_snd, SBLOCKWAIT(flags))) != 0)
    933    1.1       cgd 		goto out;
    934    1.1       cgd 	do {
    935  1.160        ad 		if (so->so_state & SS_CANTSENDMORE) {
    936  1.160        ad 			error = EPIPE;
    937  1.160        ad 			goto release;
    938  1.160        ad 		}
    939   1.48   thorpej 		if (so->so_error) {
    940   1.48   thorpej 			error = so->so_error;
    941   1.48   thorpej 			so->so_error = 0;
    942   1.48   thorpej 			goto release;
    943   1.48   thorpej 		}
    944    1.1       cgd 		if ((so->so_state & SS_ISCONNECTED) == 0) {
    945    1.1       cgd 			if (so->so_proto->pr_flags & PR_CONNREQUIRED) {
    946    1.1       cgd 				if ((so->so_state & SS_ISCONFIRMING) == 0 &&
    947  1.160        ad 				    !(resid == 0 && clen != 0)) {
    948  1.160        ad 					error = ENOTCONN;
    949  1.160        ad 					goto release;
    950  1.160        ad 				}
    951  1.160        ad 			} else if (addr == 0) {
    952  1.160        ad 				error = EDESTADDRREQ;
    953  1.160        ad 				goto release;
    954  1.160        ad 			}
    955    1.1       cgd 		}
    956    1.1       cgd 		space = sbspace(&so->so_snd);
    957    1.1       cgd 		if (flags & MSG_OOB)
    958    1.1       cgd 			space += 1024;
    959   1.21  christos 		if ((atomic && resid > so->so_snd.sb_hiwat) ||
    960  1.160        ad 		    clen > so->so_snd.sb_hiwat) {
    961  1.160        ad 			error = EMSGSIZE;
    962  1.160        ad 			goto release;
    963  1.160        ad 		}
    964   1.96   mycroft 		if (space < resid + clen &&
    965    1.1       cgd 		    (atomic || space < so->so_snd.sb_lowat || space < clen)) {
    966  1.206  christos 			if ((so->so_state & SS_NBIO) || (flags & MSG_NBIO)) {
    967  1.160        ad 				error = EWOULDBLOCK;
    968  1.160        ad 				goto release;
    969  1.160        ad 			}
    970    1.1       cgd 			sbunlock(&so->so_snd);
    971  1.196       dsl 			if (wakeup_state & SS_RESTARTSYS) {
    972  1.196       dsl 				error = ERESTART;
    973  1.196       dsl 				goto out;
    974  1.196       dsl 			}
    975    1.1       cgd 			error = sbwait(&so->so_snd);
    976    1.1       cgd 			if (error)
    977    1.1       cgd 				goto out;
    978  1.196       dsl 			wakeup_state = so->so_state;
    979    1.1       cgd 			goto restart;
    980    1.1       cgd 		}
    981  1.196       dsl 		wakeup_state = 0;
    982    1.1       cgd 		mp = &top;
    983    1.1       cgd 		space -= clen;
    984    1.1       cgd 		do {
    985   1.45        tv 			if (uio == NULL) {
    986   1.45        tv 				/*
    987   1.45        tv 				 * Data is prepackaged in "top".
    988   1.45        tv 				 */
    989   1.45        tv 				resid = 0;
    990   1.45        tv 				if (flags & MSG_EOR)
    991   1.45        tv 					top->m_flags |= M_EOR;
    992   1.45        tv 			} else do {
    993  1.160        ad 				sounlock(so);
    994  1.160        ad 				splx(s);
    995  1.144    dyoung 				if (top == NULL) {
    996   1.78      matt 					m = m_gethdr(M_WAIT, MT_DATA);
    997   1.45        tv 					mlen = MHLEN;
    998   1.45        tv 					m->m_pkthdr.len = 0;
    999  1.140    dyoung 					m->m_pkthdr.rcvif = NULL;
   1000   1.45        tv 				} else {
   1001   1.78      matt 					m = m_get(M_WAIT, MT_DATA);
   1002   1.45        tv 					mlen = MLEN;
   1003   1.45        tv 				}
   1004   1.78      matt 				MCLAIM(m, so->so_snd.sb_mowner);
   1005  1.121      yamt 				if (sock_loan_thresh >= 0 &&
   1006  1.121      yamt 				    uio->uio_iov->iov_len >= sock_loan_thresh &&
   1007  1.121      yamt 				    space >= sock_loan_thresh &&
   1008   1.64   thorpej 				    (len = sosend_loan(so, uio, m,
   1009   1.64   thorpej 						       space)) != 0) {
   1010   1.64   thorpej 					SOSEND_COUNTER_INCR(&sosend_loan_big);
   1011   1.64   thorpej 					space -= len;
   1012   1.64   thorpej 					goto have_data;
   1013   1.64   thorpej 				}
   1014   1.45        tv 				if (resid >= MINCLSIZE && space >= MCLBYTES) {
   1015   1.64   thorpej 					SOSEND_COUNTER_INCR(&sosend_copy_big);
   1016  1.201       oki 					m_clget(m, M_DONTWAIT);
   1017   1.45        tv 					if ((m->m_flags & M_EXT) == 0)
   1018   1.45        tv 						goto nopages;
   1019   1.45        tv 					mlen = MCLBYTES;
   1020   1.45        tv 					if (atomic && top == 0) {
   1021   1.58  jdolecek 						len = lmin(MCLBYTES - max_hdr,
   1022   1.54     lukem 						    resid);
   1023   1.45        tv 						m->m_data += max_hdr;
   1024   1.45        tv 					} else
   1025   1.58  jdolecek 						len = lmin(MCLBYTES, resid);
   1026   1.45        tv 					space -= len;
   1027   1.45        tv 				} else {
   1028   1.64   thorpej  nopages:
   1029   1.64   thorpej 					SOSEND_COUNTER_INCR(&sosend_copy_small);
   1030   1.58  jdolecek 					len = lmin(lmin(mlen, resid), space);
   1031   1.45        tv 					space -= len;
   1032   1.45        tv 					/*
   1033   1.45        tv 					 * For datagram protocols, leave room
   1034   1.45        tv 					 * for protocol headers in first mbuf.
   1035   1.45        tv 					 */
   1036   1.45        tv 					if (atomic && top == 0 && len < mlen)
   1037   1.45        tv 						MH_ALIGN(m, len);
   1038   1.45        tv 				}
   1039  1.144    dyoung 				error = uiomove(mtod(m, void *), (int)len, uio);
   1040   1.64   thorpej  have_data:
   1041   1.45        tv 				resid = uio->uio_resid;
   1042   1.45        tv 				m->m_len = len;
   1043   1.45        tv 				*mp = m;
   1044   1.45        tv 				top->m_pkthdr.len += len;
   1045  1.160        ad 				s = splsoftnet();
   1046  1.160        ad 				solock(so);
   1047  1.144    dyoung 				if (error != 0)
   1048   1.45        tv 					goto release;
   1049   1.45        tv 				mp = &m->m_next;
   1050   1.45        tv 				if (resid <= 0) {
   1051   1.45        tv 					if (flags & MSG_EOR)
   1052   1.45        tv 						top->m_flags |= M_EOR;
   1053   1.45        tv 					break;
   1054   1.45        tv 				}
   1055   1.45        tv 			} while (space > 0 && atomic);
   1056  1.108     perry 
   1057  1.160        ad 			if (so->so_state & SS_CANTSENDMORE) {
   1058  1.160        ad 				error = EPIPE;
   1059  1.160        ad 				goto release;
   1060  1.160        ad 			}
   1061   1.45        tv 			if (dontroute)
   1062   1.45        tv 				so->so_options |= SO_DONTROUTE;
   1063   1.45        tv 			if (resid > 0)
   1064   1.45        tv 				so->so_state |= SS_MORETOCOME;
   1065   1.46  sommerfe 			error = (*so->so_proto->pr_usrreq)(so,
   1066   1.46  sommerfe 			    (flags & MSG_OOB) ? PRU_SENDOOB : PRU_SEND,
   1067  1.160        ad 			    top, addr, control, curlwp);
   1068   1.45        tv 			if (dontroute)
   1069   1.45        tv 				so->so_options &= ~SO_DONTROUTE;
   1070   1.45        tv 			if (resid > 0)
   1071   1.45        tv 				so->so_state &= ~SS_MORETOCOME;
   1072   1.45        tv 			clen = 0;
   1073  1.144    dyoung 			control = NULL;
   1074  1.144    dyoung 			top = NULL;
   1075   1.45        tv 			mp = &top;
   1076  1.144    dyoung 			if (error != 0)
   1077    1.1       cgd 				goto release;
   1078    1.1       cgd 		} while (resid && space > 0);
   1079    1.1       cgd 	} while (resid);
   1080    1.1       cgd 
   1081   1.54     lukem  release:
   1082    1.1       cgd 	sbunlock(&so->so_snd);
   1083   1.54     lukem  out:
   1084  1.160        ad 	sounlock(so);
   1085  1.160        ad 	splx(s);
   1086    1.1       cgd 	if (top)
   1087    1.1       cgd 		m_freem(top);
   1088    1.1       cgd 	if (control)
   1089    1.1       cgd 		m_freem(control);
   1090    1.1       cgd 	return (error);
   1091    1.1       cgd }
   1092    1.1       cgd 
   1093    1.1       cgd /*
   1094  1.159        ad  * Following replacement or removal of the first mbuf on the first
   1095  1.159        ad  * mbuf chain of a socket buffer, push necessary state changes back
   1096  1.159        ad  * into the socket buffer so that other consumers see the values
   1097  1.159        ad  * consistently.  'nextrecord' is the callers locally stored value of
   1098  1.159        ad  * the original value of sb->sb_mb->m_nextpkt which must be restored
   1099  1.159        ad  * when the lead mbuf changes.  NOTE: 'nextrecord' may be NULL.
   1100  1.159        ad  */
   1101  1.159        ad static void
   1102  1.159        ad sbsync(struct sockbuf *sb, struct mbuf *nextrecord)
   1103  1.159        ad {
   1104  1.159        ad 
   1105  1.160        ad 	KASSERT(solocked(sb->sb_so));
   1106  1.160        ad 
   1107  1.159        ad 	/*
   1108  1.159        ad 	 * First, update for the new value of nextrecord.  If necessary,
   1109  1.159        ad 	 * make it the first record.
   1110  1.159        ad 	 */
   1111  1.159        ad 	if (sb->sb_mb != NULL)
   1112  1.159        ad 		sb->sb_mb->m_nextpkt = nextrecord;
   1113  1.159        ad 	else
   1114  1.159        ad 		sb->sb_mb = nextrecord;
   1115  1.159        ad 
   1116  1.159        ad         /*
   1117  1.159        ad          * Now update any dependent socket buffer fields to reflect
   1118  1.159        ad          * the new state.  This is an inline of SB_EMPTY_FIXUP, with
   1119  1.159        ad          * the addition of a second clause that takes care of the
   1120  1.159        ad          * case where sb_mb has been updated, but remains the last
   1121  1.159        ad          * record.
   1122  1.159        ad          */
   1123  1.159        ad         if (sb->sb_mb == NULL) {
   1124  1.159        ad                 sb->sb_mbtail = NULL;
   1125  1.159        ad                 sb->sb_lastrecord = NULL;
   1126  1.159        ad         } else if (sb->sb_mb->m_nextpkt == NULL)
   1127  1.159        ad                 sb->sb_lastrecord = sb->sb_mb;
   1128  1.159        ad }
   1129  1.159        ad 
   1130  1.159        ad /*
   1131    1.1       cgd  * Implement receive operations on a socket.
   1132    1.1       cgd  * We depend on the way that records are added to the sockbuf
   1133    1.1       cgd  * by sbappend*.  In particular, each record (mbufs linked through m_next)
   1134    1.1       cgd  * must begin with an address if the protocol so specifies,
   1135    1.1       cgd  * followed by an optional mbuf or mbufs containing ancillary data,
   1136    1.1       cgd  * and then zero or more mbufs of data.
   1137    1.1       cgd  * In order to avoid blocking network interrupts for the entire time here,
   1138    1.1       cgd  * we splx() while doing the actual copy to user space.
   1139    1.1       cgd  * Although the sockbuf is locked, new data may still be appended,
   1140    1.1       cgd  * and thus we must maintain consistency of the sockbuf during that time.
   1141    1.1       cgd  *
   1142    1.1       cgd  * The caller may receive the data as a single mbuf chain by supplying
   1143    1.1       cgd  * an mbuf **mp0 for use in returning the chain.  The uio is then used
   1144    1.1       cgd  * only for the count in uio_resid.
   1145    1.1       cgd  */
   1146    1.3    andrew int
   1147   1.54     lukem soreceive(struct socket *so, struct mbuf **paddr, struct uio *uio,
   1148   1.54     lukem 	struct mbuf **mp0, struct mbuf **controlp, int *flagsp)
   1149    1.1       cgd {
   1150  1.116      yamt 	struct lwp *l = curlwp;
   1151  1.160        ad 	struct mbuf	*m, **mp, *mt;
   1152  1.146    dyoung 	int atomic, flags, len, error, s, offset, moff, type, orig_resid;
   1153   1.99      matt 	const struct protosw	*pr;
   1154   1.54     lukem 	struct mbuf	*nextrecord;
   1155   1.67        he 	int		mbuf_removed = 0;
   1156  1.146    dyoung 	const struct domain *dom;
   1157  1.196       dsl 	short		wakeup_state = 0;
   1158   1.64   thorpej 
   1159   1.54     lukem 	pr = so->so_proto;
   1160  1.146    dyoung 	atomic = pr->pr_flags & PR_ATOMIC;
   1161  1.146    dyoung 	dom = pr->pr_domain;
   1162    1.1       cgd 	mp = mp0;
   1163   1.54     lukem 	type = 0;
   1164   1.54     lukem 	orig_resid = uio->uio_resid;
   1165  1.102  jonathan 
   1166  1.144    dyoung 	if (paddr != NULL)
   1167  1.144    dyoung 		*paddr = NULL;
   1168  1.144    dyoung 	if (controlp != NULL)
   1169  1.144    dyoung 		*controlp = NULL;
   1170  1.144    dyoung 	if (flagsp != NULL)
   1171    1.1       cgd 		flags = *flagsp &~ MSG_EOR;
   1172    1.1       cgd 	else
   1173    1.1       cgd 		flags = 0;
   1174   1.66     enami 
   1175    1.1       cgd 	if (flags & MSG_OOB) {
   1176    1.1       cgd 		m = m_get(M_WAIT, MT_DATA);
   1177  1.160        ad 		solock(so);
   1178   1.17       cgd 		error = (*pr->pr_usrreq)(so, PRU_RCVOOB, m,
   1179  1.140    dyoung 		    (struct mbuf *)(long)(flags & MSG_PEEK), NULL, l);
   1180  1.160        ad 		sounlock(so);
   1181    1.1       cgd 		if (error)
   1182    1.1       cgd 			goto bad;
   1183    1.1       cgd 		do {
   1184  1.134  christos 			error = uiomove(mtod(m, void *),
   1185    1.1       cgd 			    (int) min(uio->uio_resid, m->m_len), uio);
   1186    1.1       cgd 			m = m_free(m);
   1187  1.144    dyoung 		} while (uio->uio_resid > 0 && error == 0 && m);
   1188   1.54     lukem  bad:
   1189  1.144    dyoung 		if (m != NULL)
   1190    1.1       cgd 			m_freem(m);
   1191  1.144    dyoung 		return error;
   1192    1.1       cgd 	}
   1193  1.144    dyoung 	if (mp != NULL)
   1194  1.140    dyoung 		*mp = NULL;
   1195  1.160        ad 
   1196  1.160        ad 	/*
   1197  1.160        ad 	 * solock() provides atomicity of access.  splsoftnet() prevents
   1198  1.160        ad 	 * protocol processing soft interrupts from interrupting us and
   1199  1.160        ad 	 * blocking (expensive).
   1200  1.160        ad 	 */
   1201  1.160        ad 	s = splsoftnet();
   1202  1.160        ad 	solock(so);
   1203    1.1       cgd 	if (so->so_state & SS_ISCONFIRMING && uio->uio_resid)
   1204  1.140    dyoung 		(*pr->pr_usrreq)(so, PRU_RCVD, NULL, NULL, NULL, l);
   1205    1.1       cgd 
   1206   1.54     lukem  restart:
   1207  1.160        ad 	if ((error = sblock(&so->so_rcv, SBLOCKWAIT(flags))) != 0) {
   1208  1.160        ad 		sounlock(so);
   1209  1.160        ad 		splx(s);
   1210  1.144    dyoung 		return error;
   1211  1.160        ad 	}
   1212    1.1       cgd 
   1213    1.1       cgd 	m = so->so_rcv.sb_mb;
   1214    1.1       cgd 	/*
   1215    1.1       cgd 	 * If we have less data than requested, block awaiting more
   1216    1.1       cgd 	 * (subject to any timeout) if:
   1217   1.15   mycroft 	 *   1. the current count is less than the low water mark,
   1218    1.1       cgd 	 *   2. MSG_WAITALL is set, and it is possible to do the entire
   1219   1.15   mycroft 	 *	receive operation at once if we block (resid <= hiwat), or
   1220   1.15   mycroft 	 *   3. MSG_DONTWAIT is not set.
   1221    1.1       cgd 	 * If MSG_WAITALL is set but resid is larger than the receive buffer,
   1222    1.1       cgd 	 * we have to do the receive in sections, and thus risk returning
   1223    1.1       cgd 	 * a short count if a timeout or signal occurs after we start.
   1224    1.1       cgd 	 */
   1225  1.144    dyoung 	if (m == NULL ||
   1226  1.144    dyoung 	    ((flags & MSG_DONTWAIT) == 0 &&
   1227  1.144    dyoung 	     so->so_rcv.sb_cc < uio->uio_resid &&
   1228  1.144    dyoung 	     (so->so_rcv.sb_cc < so->so_rcv.sb_lowat ||
   1229  1.144    dyoung 	      ((flags & MSG_WAITALL) &&
   1230  1.144    dyoung 	       uio->uio_resid <= so->so_rcv.sb_hiwat)) &&
   1231  1.146    dyoung 	     m->m_nextpkt == NULL && !atomic)) {
   1232    1.1       cgd #ifdef DIAGNOSTIC
   1233  1.144    dyoung 		if (m == NULL && so->so_rcv.sb_cc)
   1234    1.1       cgd 			panic("receive 1");
   1235    1.1       cgd #endif
   1236    1.1       cgd 		if (so->so_error) {
   1237  1.144    dyoung 			if (m != NULL)
   1238   1.15   mycroft 				goto dontblock;
   1239    1.1       cgd 			error = so->so_error;
   1240    1.1       cgd 			if ((flags & MSG_PEEK) == 0)
   1241    1.1       cgd 				so->so_error = 0;
   1242    1.1       cgd 			goto release;
   1243    1.1       cgd 		}
   1244    1.1       cgd 		if (so->so_state & SS_CANTRCVMORE) {
   1245  1.144    dyoung 			if (m != NULL)
   1246   1.15   mycroft 				goto dontblock;
   1247    1.1       cgd 			else
   1248    1.1       cgd 				goto release;
   1249    1.1       cgd 		}
   1250  1.144    dyoung 		for (; m != NULL; m = m->m_next)
   1251    1.1       cgd 			if (m->m_type == MT_OOBDATA  || (m->m_flags & M_EOR)) {
   1252    1.1       cgd 				m = so->so_rcv.sb_mb;
   1253    1.1       cgd 				goto dontblock;
   1254    1.1       cgd 			}
   1255    1.1       cgd 		if ((so->so_state & (SS_ISCONNECTED|SS_ISCONNECTING)) == 0 &&
   1256    1.1       cgd 		    (so->so_proto->pr_flags & PR_CONNREQUIRED)) {
   1257    1.1       cgd 			error = ENOTCONN;
   1258    1.1       cgd 			goto release;
   1259    1.1       cgd 		}
   1260    1.1       cgd 		if (uio->uio_resid == 0)
   1261    1.1       cgd 			goto release;
   1262  1.206  christos 		if ((so->so_state & SS_NBIO) ||
   1263  1.206  christos 		    (flags & (MSG_DONTWAIT|MSG_NBIO))) {
   1264    1.1       cgd 			error = EWOULDBLOCK;
   1265    1.1       cgd 			goto release;
   1266    1.1       cgd 		}
   1267   1.69   thorpej 		SBLASTRECORDCHK(&so->so_rcv, "soreceive sbwait 1");
   1268   1.69   thorpej 		SBLASTMBUFCHK(&so->so_rcv, "soreceive sbwait 1");
   1269    1.1       cgd 		sbunlock(&so->so_rcv);
   1270  1.196       dsl 		if (wakeup_state & SS_RESTARTSYS)
   1271  1.196       dsl 			error = ERESTART;
   1272  1.196       dsl 		else
   1273  1.196       dsl 			error = sbwait(&so->so_rcv);
   1274  1.160        ad 		if (error != 0) {
   1275  1.160        ad 			sounlock(so);
   1276  1.160        ad 			splx(s);
   1277  1.144    dyoung 			return error;
   1278  1.160        ad 		}
   1279  1.196       dsl 		wakeup_state = so->so_state;
   1280    1.1       cgd 		goto restart;
   1281    1.1       cgd 	}
   1282   1.54     lukem  dontblock:
   1283   1.69   thorpej 	/*
   1284   1.69   thorpej 	 * On entry here, m points to the first record of the socket buffer.
   1285  1.159        ad 	 * From this point onward, we maintain 'nextrecord' as a cache of the
   1286  1.159        ad 	 * pointer to the next record in the socket buffer.  We must keep the
   1287  1.159        ad 	 * various socket buffer pointers and local stack versions of the
   1288  1.159        ad 	 * pointers in sync, pushing out modifications before dropping the
   1289  1.160        ad 	 * socket lock, and re-reading them when picking it up.
   1290  1.159        ad 	 *
   1291  1.159        ad 	 * Otherwise, we will race with the network stack appending new data
   1292  1.159        ad 	 * or records onto the socket buffer by using inconsistent/stale
   1293  1.159        ad 	 * versions of the field, possibly resulting in socket buffer
   1294  1.159        ad 	 * corruption.
   1295  1.159        ad 	 *
   1296  1.159        ad 	 * By holding the high-level sblock(), we prevent simultaneous
   1297  1.159        ad 	 * readers from pulling off the front of the socket buffer.
   1298   1.69   thorpej 	 */
   1299  1.144    dyoung 	if (l != NULL)
   1300  1.157        ad 		l->l_ru.ru_msgrcv++;
   1301   1.69   thorpej 	KASSERT(m == so->so_rcv.sb_mb);
   1302   1.69   thorpej 	SBLASTRECORDCHK(&so->so_rcv, "soreceive 1");
   1303   1.69   thorpej 	SBLASTMBUFCHK(&so->so_rcv, "soreceive 1");
   1304    1.1       cgd 	nextrecord = m->m_nextpkt;
   1305    1.1       cgd 	if (pr->pr_flags & PR_ADDR) {
   1306    1.1       cgd #ifdef DIAGNOSTIC
   1307    1.1       cgd 		if (m->m_type != MT_SONAME)
   1308    1.1       cgd 			panic("receive 1a");
   1309    1.1       cgd #endif
   1310    1.3    andrew 		orig_resid = 0;
   1311    1.1       cgd 		if (flags & MSG_PEEK) {
   1312    1.1       cgd 			if (paddr)
   1313    1.1       cgd 				*paddr = m_copy(m, 0, m->m_len);
   1314    1.1       cgd 			m = m->m_next;
   1315    1.1       cgd 		} else {
   1316    1.1       cgd 			sbfree(&so->so_rcv, m);
   1317   1.67        he 			mbuf_removed = 1;
   1318  1.144    dyoung 			if (paddr != NULL) {
   1319    1.1       cgd 				*paddr = m;
   1320    1.1       cgd 				so->so_rcv.sb_mb = m->m_next;
   1321  1.144    dyoung 				m->m_next = NULL;
   1322    1.1       cgd 				m = so->so_rcv.sb_mb;
   1323    1.1       cgd 			} else {
   1324    1.1       cgd 				MFREE(m, so->so_rcv.sb_mb);
   1325    1.1       cgd 				m = so->so_rcv.sb_mb;
   1326    1.1       cgd 			}
   1327  1.159        ad 			sbsync(&so->so_rcv, nextrecord);
   1328    1.1       cgd 		}
   1329    1.1       cgd 	}
   1330  1.159        ad 
   1331  1.159        ad 	/*
   1332  1.159        ad 	 * Process one or more MT_CONTROL mbufs present before any data mbufs
   1333  1.159        ad 	 * in the first mbuf chain on the socket buffer.  If MSG_PEEK, we
   1334  1.159        ad 	 * just copy the data; if !MSG_PEEK, we call into the protocol to
   1335  1.159        ad 	 * perform externalization (or freeing if controlp == NULL).
   1336  1.159        ad 	 */
   1337  1.159        ad 	if (__predict_false(m != NULL && m->m_type == MT_CONTROL)) {
   1338  1.159        ad 		struct mbuf *cm = NULL, *cmn;
   1339  1.159        ad 		struct mbuf **cme = &cm;
   1340  1.159        ad 
   1341  1.159        ad 		do {
   1342  1.159        ad 			if (flags & MSG_PEEK) {
   1343  1.159        ad 				if (controlp != NULL) {
   1344  1.159        ad 					*controlp = m_copy(m, 0, m->m_len);
   1345  1.159        ad 					controlp = &(*controlp)->m_next;
   1346  1.159        ad 				}
   1347  1.159        ad 				m = m->m_next;
   1348  1.159        ad 			} else {
   1349  1.159        ad 				sbfree(&so->so_rcv, m);
   1350    1.1       cgd 				so->so_rcv.sb_mb = m->m_next;
   1351  1.144    dyoung 				m->m_next = NULL;
   1352  1.159        ad 				*cme = m;
   1353  1.159        ad 				cme = &(*cme)->m_next;
   1354    1.1       cgd 				m = so->so_rcv.sb_mb;
   1355  1.159        ad 			}
   1356  1.159        ad 		} while (m != NULL && m->m_type == MT_CONTROL);
   1357  1.159        ad 		if ((flags & MSG_PEEK) == 0)
   1358  1.159        ad 			sbsync(&so->so_rcv, nextrecord);
   1359  1.159        ad 		for (; cm != NULL; cm = cmn) {
   1360  1.159        ad 			cmn = cm->m_next;
   1361  1.159        ad 			cm->m_next = NULL;
   1362  1.159        ad 			type = mtod(cm, struct cmsghdr *)->cmsg_type;
   1363  1.159        ad 			if (controlp != NULL) {
   1364  1.159        ad 				if (dom->dom_externalize != NULL &&
   1365  1.159        ad 				    type == SCM_RIGHTS) {
   1366  1.160        ad 					sounlock(so);
   1367  1.159        ad 					splx(s);
   1368  1.204  christos 					error = (*dom->dom_externalize)(cm, l,
   1369  1.204  christos 					    (flags & MSG_CMSG_CLOEXEC) ?
   1370  1.204  christos 					    O_CLOEXEC : 0);
   1371  1.159        ad 					s = splsoftnet();
   1372  1.160        ad 					solock(so);
   1373  1.159        ad 				}
   1374  1.159        ad 				*controlp = cm;
   1375  1.159        ad 				while (*controlp != NULL)
   1376  1.159        ad 					controlp = &(*controlp)->m_next;
   1377    1.1       cgd 			} else {
   1378  1.106    itojun 				/*
   1379  1.106    itojun 				 * Dispose of any SCM_RIGHTS message that went
   1380  1.106    itojun 				 * through the read path rather than recv.
   1381  1.106    itojun 				 */
   1382  1.159        ad 				if (dom->dom_dispose != NULL &&
   1383  1.159        ad 				    type == SCM_RIGHTS) {
   1384  1.160        ad 				    	sounlock(so);
   1385  1.159        ad 					(*dom->dom_dispose)(cm);
   1386  1.160        ad 					solock(so);
   1387  1.159        ad 				}
   1388  1.159        ad 				m_freem(cm);
   1389    1.1       cgd 			}
   1390    1.1       cgd 		}
   1391  1.159        ad 		if (m != NULL)
   1392  1.159        ad 			nextrecord = so->so_rcv.sb_mb->m_nextpkt;
   1393  1.159        ad 		else
   1394  1.159        ad 			nextrecord = so->so_rcv.sb_mb;
   1395  1.159        ad 		orig_resid = 0;
   1396    1.1       cgd 	}
   1397   1.69   thorpej 
   1398  1.159        ad 	/* If m is non-NULL, we have some data to read. */
   1399  1.159        ad 	if (__predict_true(m != NULL)) {
   1400    1.1       cgd 		type = m->m_type;
   1401    1.1       cgd 		if (type == MT_OOBDATA)
   1402    1.1       cgd 			flags |= MSG_OOB;
   1403    1.1       cgd 	}
   1404   1.69   thorpej 	SBLASTRECORDCHK(&so->so_rcv, "soreceive 2");
   1405   1.69   thorpej 	SBLASTMBUFCHK(&so->so_rcv, "soreceive 2");
   1406   1.69   thorpej 
   1407    1.1       cgd 	moff = 0;
   1408    1.1       cgd 	offset = 0;
   1409  1.144    dyoung 	while (m != NULL && uio->uio_resid > 0 && error == 0) {
   1410    1.1       cgd 		if (m->m_type == MT_OOBDATA) {
   1411    1.1       cgd 			if (type != MT_OOBDATA)
   1412    1.1       cgd 				break;
   1413    1.1       cgd 		} else if (type == MT_OOBDATA)
   1414    1.1       cgd 			break;
   1415    1.1       cgd #ifdef DIAGNOSTIC
   1416    1.1       cgd 		else if (m->m_type != MT_DATA && m->m_type != MT_HEADER)
   1417    1.1       cgd 			panic("receive 3");
   1418    1.1       cgd #endif
   1419    1.1       cgd 		so->so_state &= ~SS_RCVATMARK;
   1420  1.196       dsl 		wakeup_state = 0;
   1421    1.1       cgd 		len = uio->uio_resid;
   1422    1.1       cgd 		if (so->so_oobmark && len > so->so_oobmark - offset)
   1423    1.1       cgd 			len = so->so_oobmark - offset;
   1424    1.1       cgd 		if (len > m->m_len - moff)
   1425    1.1       cgd 			len = m->m_len - moff;
   1426    1.1       cgd 		/*
   1427    1.1       cgd 		 * If mp is set, just pass back the mbufs.
   1428    1.1       cgd 		 * Otherwise copy them out via the uio, then free.
   1429    1.1       cgd 		 * Sockbuf must be consistent here (points to current mbuf,
   1430    1.1       cgd 		 * it points to next record) when we drop priority;
   1431    1.1       cgd 		 * we must note any additions to the sockbuf when we
   1432    1.1       cgd 		 * block interrupts again.
   1433    1.1       cgd 		 */
   1434  1.144    dyoung 		if (mp == NULL) {
   1435   1.69   thorpej 			SBLASTRECORDCHK(&so->so_rcv, "soreceive uiomove");
   1436   1.69   thorpej 			SBLASTMBUFCHK(&so->so_rcv, "soreceive uiomove");
   1437  1.160        ad 			sounlock(so);
   1438    1.1       cgd 			splx(s);
   1439  1.134  christos 			error = uiomove(mtod(m, char *) + moff, (int)len, uio);
   1440   1.20   mycroft 			s = splsoftnet();
   1441  1.160        ad 			solock(so);
   1442  1.144    dyoung 			if (error != 0) {
   1443   1.67        he 				/*
   1444   1.67        he 				 * If any part of the record has been removed
   1445   1.67        he 				 * (such as the MT_SONAME mbuf, which will
   1446   1.67        he 				 * happen when PR_ADDR, and thus also
   1447   1.67        he 				 * PR_ATOMIC, is set), then drop the entire
   1448   1.67        he 				 * record to maintain the atomicity of the
   1449   1.67        he 				 * receive operation.
   1450   1.67        he 				 *
   1451   1.67        he 				 * This avoids a later panic("receive 1a")
   1452   1.67        he 				 * when compiled with DIAGNOSTIC.
   1453   1.67        he 				 */
   1454  1.146    dyoung 				if (m && mbuf_removed && atomic)
   1455   1.67        he 					(void) sbdroprecord(&so->so_rcv);
   1456   1.67        he 
   1457   1.57  jdolecek 				goto release;
   1458   1.67        he 			}
   1459    1.1       cgd 		} else
   1460    1.1       cgd 			uio->uio_resid -= len;
   1461    1.1       cgd 		if (len == m->m_len - moff) {
   1462    1.1       cgd 			if (m->m_flags & M_EOR)
   1463    1.1       cgd 				flags |= MSG_EOR;
   1464    1.1       cgd 			if (flags & MSG_PEEK) {
   1465    1.1       cgd 				m = m->m_next;
   1466    1.1       cgd 				moff = 0;
   1467    1.1       cgd 			} else {
   1468    1.1       cgd 				nextrecord = m->m_nextpkt;
   1469    1.1       cgd 				sbfree(&so->so_rcv, m);
   1470    1.1       cgd 				if (mp) {
   1471    1.1       cgd 					*mp = m;
   1472    1.1       cgd 					mp = &m->m_next;
   1473    1.1       cgd 					so->so_rcv.sb_mb = m = m->m_next;
   1474  1.140    dyoung 					*mp = NULL;
   1475    1.1       cgd 				} else {
   1476    1.1       cgd 					MFREE(m, so->so_rcv.sb_mb);
   1477    1.1       cgd 					m = so->so_rcv.sb_mb;
   1478    1.1       cgd 				}
   1479   1.69   thorpej 				/*
   1480   1.69   thorpej 				 * If m != NULL, we also know that
   1481   1.69   thorpej 				 * so->so_rcv.sb_mb != NULL.
   1482   1.69   thorpej 				 */
   1483   1.69   thorpej 				KASSERT(so->so_rcv.sb_mb == m);
   1484   1.69   thorpej 				if (m) {
   1485    1.1       cgd 					m->m_nextpkt = nextrecord;
   1486   1.69   thorpej 					if (nextrecord == NULL)
   1487   1.69   thorpej 						so->so_rcv.sb_lastrecord = m;
   1488   1.69   thorpej 				} else {
   1489   1.69   thorpej 					so->so_rcv.sb_mb = nextrecord;
   1490   1.70   thorpej 					SB_EMPTY_FIXUP(&so->so_rcv);
   1491   1.69   thorpej 				}
   1492   1.69   thorpej 				SBLASTRECORDCHK(&so->so_rcv, "soreceive 3");
   1493   1.69   thorpej 				SBLASTMBUFCHK(&so->so_rcv, "soreceive 3");
   1494    1.1       cgd 			}
   1495  1.144    dyoung 		} else if (flags & MSG_PEEK)
   1496  1.144    dyoung 			moff += len;
   1497  1.144    dyoung 		else {
   1498  1.160        ad 			if (mp != NULL) {
   1499  1.160        ad 				mt = m_copym(m, 0, len, M_NOWAIT);
   1500  1.160        ad 				if (__predict_false(mt == NULL)) {
   1501  1.160        ad 					sounlock(so);
   1502  1.160        ad 					mt = m_copym(m, 0, len, M_WAIT);
   1503  1.160        ad 					solock(so);
   1504  1.160        ad 				}
   1505  1.160        ad 				*mp = mt;
   1506  1.160        ad 			}
   1507  1.144    dyoung 			m->m_data += len;
   1508  1.144    dyoung 			m->m_len -= len;
   1509  1.144    dyoung 			so->so_rcv.sb_cc -= len;
   1510    1.1       cgd 		}
   1511    1.1       cgd 		if (so->so_oobmark) {
   1512    1.1       cgd 			if ((flags & MSG_PEEK) == 0) {
   1513    1.1       cgd 				so->so_oobmark -= len;
   1514    1.1       cgd 				if (so->so_oobmark == 0) {
   1515    1.1       cgd 					so->so_state |= SS_RCVATMARK;
   1516    1.1       cgd 					break;
   1517    1.1       cgd 				}
   1518    1.7       cgd 			} else {
   1519    1.1       cgd 				offset += len;
   1520    1.7       cgd 				if (offset == so->so_oobmark)
   1521    1.7       cgd 					break;
   1522    1.7       cgd 			}
   1523    1.1       cgd 		}
   1524    1.1       cgd 		if (flags & MSG_EOR)
   1525    1.1       cgd 			break;
   1526    1.1       cgd 		/*
   1527    1.1       cgd 		 * If the MSG_WAITALL flag is set (for non-atomic socket),
   1528    1.1       cgd 		 * we must not quit until "uio->uio_resid == 0" or an error
   1529    1.1       cgd 		 * termination.  If a signal/timeout occurs, return
   1530    1.1       cgd 		 * with a short count but without error.
   1531    1.1       cgd 		 * Keep sockbuf locked against other readers.
   1532    1.1       cgd 		 */
   1533  1.144    dyoung 		while (flags & MSG_WAITALL && m == NULL && uio->uio_resid > 0 &&
   1534    1.3    andrew 		    !sosendallatonce(so) && !nextrecord) {
   1535    1.1       cgd 			if (so->so_error || so->so_state & SS_CANTRCVMORE)
   1536    1.1       cgd 				break;
   1537   1.68      matt 			/*
   1538   1.68      matt 			 * If we are peeking and the socket receive buffer is
   1539   1.68      matt 			 * full, stop since we can't get more data to peek at.
   1540   1.68      matt 			 */
   1541   1.68      matt 			if ((flags & MSG_PEEK) && sbspace(&so->so_rcv) <= 0)
   1542   1.68      matt 				break;
   1543   1.68      matt 			/*
   1544   1.68      matt 			 * If we've drained the socket buffer, tell the
   1545   1.68      matt 			 * protocol in case it needs to do something to
   1546   1.68      matt 			 * get it filled again.
   1547   1.68      matt 			 */
   1548   1.68      matt 			if ((pr->pr_flags & PR_WANTRCVD) && so->so_pcb)
   1549   1.68      matt 				(*pr->pr_usrreq)(so, PRU_RCVD,
   1550  1.140    dyoung 				    NULL, (struct mbuf *)(long)flags, NULL, l);
   1551   1.69   thorpej 			SBLASTRECORDCHK(&so->so_rcv, "soreceive sbwait 2");
   1552   1.69   thorpej 			SBLASTMBUFCHK(&so->so_rcv, "soreceive sbwait 2");
   1553  1.196       dsl 			if (wakeup_state & SS_RESTARTSYS)
   1554  1.196       dsl 				error = ERESTART;
   1555  1.196       dsl 			else
   1556  1.196       dsl 				error = sbwait(&so->so_rcv);
   1557  1.144    dyoung 			if (error != 0) {
   1558    1.1       cgd 				sbunlock(&so->so_rcv);
   1559  1.160        ad 				sounlock(so);
   1560    1.1       cgd 				splx(s);
   1561  1.144    dyoung 				return 0;
   1562    1.1       cgd 			}
   1563   1.21  christos 			if ((m = so->so_rcv.sb_mb) != NULL)
   1564    1.1       cgd 				nextrecord = m->m_nextpkt;
   1565  1.196       dsl 			wakeup_state = so->so_state;
   1566    1.1       cgd 		}
   1567    1.1       cgd 	}
   1568    1.3    andrew 
   1569  1.146    dyoung 	if (m && atomic) {
   1570    1.3    andrew 		flags |= MSG_TRUNC;
   1571    1.3    andrew 		if ((flags & MSG_PEEK) == 0)
   1572    1.3    andrew 			(void) sbdroprecord(&so->so_rcv);
   1573    1.3    andrew 	}
   1574    1.1       cgd 	if ((flags & MSG_PEEK) == 0) {
   1575  1.144    dyoung 		if (m == NULL) {
   1576   1.69   thorpej 			/*
   1577   1.70   thorpej 			 * First part is an inline SB_EMPTY_FIXUP().  Second
   1578   1.69   thorpej 			 * part makes sure sb_lastrecord is up-to-date if
   1579   1.69   thorpej 			 * there is still data in the socket buffer.
   1580   1.69   thorpej 			 */
   1581    1.1       cgd 			so->so_rcv.sb_mb = nextrecord;
   1582   1.69   thorpej 			if (so->so_rcv.sb_mb == NULL) {
   1583   1.69   thorpej 				so->so_rcv.sb_mbtail = NULL;
   1584   1.69   thorpej 				so->so_rcv.sb_lastrecord = NULL;
   1585   1.69   thorpej 			} else if (nextrecord->m_nextpkt == NULL)
   1586   1.69   thorpej 				so->so_rcv.sb_lastrecord = nextrecord;
   1587   1.69   thorpej 		}
   1588   1.69   thorpej 		SBLASTRECORDCHK(&so->so_rcv, "soreceive 4");
   1589   1.69   thorpej 		SBLASTMBUFCHK(&so->so_rcv, "soreceive 4");
   1590    1.1       cgd 		if (pr->pr_flags & PR_WANTRCVD && so->so_pcb)
   1591  1.140    dyoung 			(*pr->pr_usrreq)(so, PRU_RCVD, NULL,
   1592  1.140    dyoung 			    (struct mbuf *)(long)flags, NULL, l);
   1593    1.1       cgd 	}
   1594    1.3    andrew 	if (orig_resid == uio->uio_resid && orig_resid &&
   1595    1.3    andrew 	    (flags & MSG_EOR) == 0 && (so->so_state & SS_CANTRCVMORE) == 0) {
   1596    1.3    andrew 		sbunlock(&so->so_rcv);
   1597    1.3    andrew 		goto restart;
   1598    1.3    andrew 	}
   1599  1.108     perry 
   1600  1.144    dyoung 	if (flagsp != NULL)
   1601    1.1       cgd 		*flagsp |= flags;
   1602   1.54     lukem  release:
   1603    1.1       cgd 	sbunlock(&so->so_rcv);
   1604  1.160        ad 	sounlock(so);
   1605    1.1       cgd 	splx(s);
   1606  1.144    dyoung 	return error;
   1607    1.1       cgd }
   1608    1.1       cgd 
   1609   1.14   mycroft int
   1610   1.54     lukem soshutdown(struct socket *so, int how)
   1611    1.1       cgd {
   1612   1.99      matt 	const struct protosw	*pr;
   1613  1.160        ad 	int	error;
   1614  1.160        ad 
   1615  1.160        ad 	KASSERT(solocked(so));
   1616   1.34    kleink 
   1617   1.54     lukem 	pr = so->so_proto;
   1618   1.34    kleink 	if (!(how == SHUT_RD || how == SHUT_WR || how == SHUT_RDWR))
   1619   1.34    kleink 		return (EINVAL);
   1620    1.1       cgd 
   1621  1.160        ad 	if (how == SHUT_RD || how == SHUT_RDWR) {
   1622    1.1       cgd 		sorflush(so);
   1623  1.160        ad 		error = 0;
   1624  1.160        ad 	}
   1625   1.34    kleink 	if (how == SHUT_WR || how == SHUT_RDWR)
   1626  1.160        ad 		error = (*pr->pr_usrreq)(so, PRU_SHUTDOWN, NULL,
   1627  1.140    dyoung 		    NULL, NULL, NULL);
   1628  1.160        ad 
   1629  1.160        ad 	return error;
   1630    1.1       cgd }
   1631    1.1       cgd 
   1632  1.195       dsl void
   1633  1.196       dsl sorestart(struct socket *so)
   1634  1.188        ad {
   1635  1.196       dsl 	/*
   1636  1.196       dsl 	 * An application has called close() on an fd on which another
   1637  1.196       dsl 	 * of its threads has called a socket system call.
   1638  1.196       dsl 	 * Mark this and wake everyone up, and code that would block again
   1639  1.196       dsl 	 * instead returns ERESTART.
   1640  1.196       dsl 	 * On system call re-entry the fd is validated and EBADF returned.
   1641  1.196       dsl 	 * Any other fd will block again on the 2nd syscall.
   1642  1.196       dsl 	 */
   1643  1.188        ad 	solock(so);
   1644  1.196       dsl 	so->so_state |= SS_RESTARTSYS;
   1645  1.188        ad 	cv_broadcast(&so->so_cv);
   1646  1.196       dsl 	cv_broadcast(&so->so_snd.sb_cv);
   1647  1.196       dsl 	cv_broadcast(&so->so_rcv.sb_cv);
   1648  1.188        ad 	sounlock(so);
   1649  1.188        ad }
   1650  1.188        ad 
   1651   1.14   mycroft void
   1652   1.54     lukem sorflush(struct socket *so)
   1653    1.1       cgd {
   1654   1.54     lukem 	struct sockbuf	*sb, asb;
   1655   1.99      matt 	const struct protosw	*pr;
   1656  1.160        ad 
   1657  1.160        ad 	KASSERT(solocked(so));
   1658    1.1       cgd 
   1659   1.54     lukem 	sb = &so->so_rcv;
   1660   1.54     lukem 	pr = so->so_proto;
   1661  1.160        ad 	socantrcvmore(so);
   1662    1.1       cgd 	sb->sb_flags |= SB_NOINTR;
   1663  1.160        ad 	(void )sblock(sb, M_WAITOK);
   1664    1.1       cgd 	sbunlock(sb);
   1665    1.1       cgd 	asb = *sb;
   1666   1.86  wrstuden 	/*
   1667   1.86  wrstuden 	 * Clear most of the sockbuf structure, but leave some of the
   1668   1.86  wrstuden 	 * fields valid.
   1669   1.86  wrstuden 	 */
   1670   1.86  wrstuden 	memset(&sb->sb_startzero, 0,
   1671   1.86  wrstuden 	    sizeof(*sb) - offsetof(struct sockbuf, sb_startzero));
   1672  1.160        ad 	if (pr->pr_flags & PR_RIGHTS && pr->pr_domain->dom_dispose) {
   1673  1.160        ad 		sounlock(so);
   1674    1.1       cgd 		(*pr->pr_domain->dom_dispose)(asb.sb_mb);
   1675  1.160        ad 		solock(so);
   1676  1.160        ad 	}
   1677   1.98  christos 	sbrelease(&asb, so);
   1678    1.1       cgd }
   1679    1.1       cgd 
   1680  1.171    plunky /*
   1681  1.171    plunky  * internal set SOL_SOCKET options
   1682  1.171    plunky  */
   1683  1.142    dyoung static int
   1684  1.171    plunky sosetopt1(struct socket *so, const struct sockopt *sopt)
   1685    1.1       cgd {
   1686  1.182  christos 	int error = EINVAL, optval, opt;
   1687  1.171    plunky 	struct linger l;
   1688  1.171    plunky 	struct timeval tv;
   1689  1.142    dyoung 
   1690  1.179  christos 	switch ((opt = sopt->sopt_name)) {
   1691  1.142    dyoung 
   1692  1.170       tls 	case SO_ACCEPTFILTER:
   1693  1.177        ad 		error = accept_filt_setopt(so, sopt);
   1694  1.177        ad 		KASSERT(solocked(so));
   1695  1.170       tls 		break;
   1696  1.170       tls 
   1697  1.171    plunky   	case SO_LINGER:
   1698  1.171    plunky  		error = sockopt_get(sopt, &l, sizeof(l));
   1699  1.177        ad 		solock(so);
   1700  1.171    plunky  		if (error)
   1701  1.177        ad  			break;
   1702  1.171    plunky  		if (l.l_linger < 0 || l.l_linger > USHRT_MAX ||
   1703  1.177        ad  		    l.l_linger > (INT_MAX / hz)) {
   1704  1.177        ad 			error = EDOM;
   1705  1.177        ad 			break;
   1706  1.177        ad 		}
   1707  1.171    plunky  		so->so_linger = l.l_linger;
   1708  1.171    plunky  		if (l.l_onoff)
   1709  1.171    plunky  			so->so_options |= SO_LINGER;
   1710  1.171    plunky  		else
   1711  1.171    plunky  			so->so_options &= ~SO_LINGER;
   1712  1.177        ad    		break;
   1713    1.1       cgd 
   1714  1.142    dyoung 	case SO_DEBUG:
   1715  1.142    dyoung 	case SO_KEEPALIVE:
   1716  1.142    dyoung 	case SO_DONTROUTE:
   1717  1.142    dyoung 	case SO_USELOOPBACK:
   1718  1.142    dyoung 	case SO_BROADCAST:
   1719  1.142    dyoung 	case SO_REUSEADDR:
   1720  1.142    dyoung 	case SO_REUSEPORT:
   1721  1.142    dyoung 	case SO_OOBINLINE:
   1722  1.142    dyoung 	case SO_TIMESTAMP:
   1723  1.207  christos 	case SO_NOSIGPIPE:
   1724  1.184  christos #ifdef SO_OTIMESTAMP
   1725  1.184  christos 	case SO_OTIMESTAMP:
   1726  1.184  christos #endif
   1727  1.171    plunky 		error = sockopt_getint(sopt, &optval);
   1728  1.177        ad 		solock(so);
   1729  1.171    plunky 		if (error)
   1730  1.177        ad 			break;
   1731  1.171    plunky 		if (optval)
   1732  1.179  christos 			so->so_options |= opt;
   1733  1.142    dyoung 		else
   1734  1.179  christos 			so->so_options &= ~opt;
   1735  1.142    dyoung 		break;
   1736  1.142    dyoung 
   1737  1.142    dyoung 	case SO_SNDBUF:
   1738  1.142    dyoung 	case SO_RCVBUF:
   1739  1.142    dyoung 	case SO_SNDLOWAT:
   1740  1.142    dyoung 	case SO_RCVLOWAT:
   1741  1.171    plunky 		error = sockopt_getint(sopt, &optval);
   1742  1.177        ad 		solock(so);
   1743  1.171    plunky 		if (error)
   1744  1.177        ad 			break;
   1745    1.1       cgd 
   1746  1.142    dyoung 		/*
   1747  1.142    dyoung 		 * Values < 1 make no sense for any of these
   1748  1.142    dyoung 		 * options, so disallow them.
   1749  1.142    dyoung 		 */
   1750  1.177        ad 		if (optval < 1) {
   1751  1.177        ad 			error = EINVAL;
   1752  1.177        ad 			break;
   1753  1.177        ad 		}
   1754    1.1       cgd 
   1755  1.179  christos 		switch (opt) {
   1756  1.171    plunky 		case SO_SNDBUF:
   1757  1.177        ad 			if (sbreserve(&so->so_snd, (u_long)optval, so) == 0) {
   1758  1.177        ad 				error = ENOBUFS;
   1759  1.177        ad 				break;
   1760  1.177        ad 			}
   1761  1.171    plunky 			so->so_snd.sb_flags &= ~SB_AUTOSIZE;
   1762  1.171    plunky 			break;
   1763    1.1       cgd 
   1764    1.1       cgd 		case SO_RCVBUF:
   1765  1.177        ad 			if (sbreserve(&so->so_rcv, (u_long)optval, so) == 0) {
   1766  1.177        ad 				error = ENOBUFS;
   1767  1.177        ad 				break;
   1768  1.177        ad 			}
   1769  1.171    plunky 			so->so_rcv.sb_flags &= ~SB_AUTOSIZE;
   1770  1.142    dyoung 			break;
   1771  1.142    dyoung 
   1772  1.142    dyoung 		/*
   1773  1.142    dyoung 		 * Make sure the low-water is never greater than
   1774  1.142    dyoung 		 * the high-water.
   1775  1.142    dyoung 		 */
   1776    1.1       cgd 		case SO_SNDLOWAT:
   1777  1.171    plunky 			if (optval > so->so_snd.sb_hiwat)
   1778  1.171    plunky 				optval = so->so_snd.sb_hiwat;
   1779  1.171    plunky 
   1780  1.171    plunky 			so->so_snd.sb_lowat = optval;
   1781  1.142    dyoung 			break;
   1782  1.171    plunky 
   1783    1.1       cgd 		case SO_RCVLOWAT:
   1784  1.171    plunky 			if (optval > so->so_rcv.sb_hiwat)
   1785  1.171    plunky 				optval = so->so_rcv.sb_hiwat;
   1786  1.171    plunky 
   1787  1.171    plunky 			so->so_rcv.sb_lowat = optval;
   1788  1.142    dyoung 			break;
   1789  1.142    dyoung 		}
   1790  1.142    dyoung 		break;
   1791   1.28   thorpej 
   1792  1.179  christos #ifdef COMPAT_50
   1793  1.179  christos 	case SO_OSNDTIMEO:
   1794  1.179  christos 	case SO_ORCVTIMEO: {
   1795  1.179  christos 		struct timeval50 otv;
   1796  1.179  christos 		error = sockopt_get(sopt, &otv, sizeof(otv));
   1797  1.186     pooka 		if (error) {
   1798  1.186     pooka 			solock(so);
   1799  1.183  christos 			break;
   1800  1.186     pooka 		}
   1801  1.179  christos 		timeval50_to_timeval(&otv, &tv);
   1802  1.179  christos 		opt = opt == SO_OSNDTIMEO ? SO_SNDTIMEO : SO_RCVTIMEO;
   1803  1.182  christos 		error = 0;
   1804  1.179  christos 		/*FALLTHROUGH*/
   1805  1.179  christos 	}
   1806  1.179  christos #endif /* COMPAT_50 */
   1807  1.179  christos 
   1808  1.142    dyoung 	case SO_SNDTIMEO:
   1809  1.142    dyoung 	case SO_RCVTIMEO:
   1810  1.182  christos 		if (error)
   1811  1.179  christos 			error = sockopt_get(sopt, &tv, sizeof(tv));
   1812  1.177        ad 		solock(so);
   1813  1.171    plunky 		if (error)
   1814  1.177        ad 			break;
   1815  1.171    plunky 
   1816  1.177        ad 		if (tv.tv_sec > (INT_MAX - tv.tv_usec / tick) / hz) {
   1817  1.177        ad 			error = EDOM;
   1818  1.177        ad 			break;
   1819  1.177        ad 		}
   1820   1.28   thorpej 
   1821  1.171    plunky 		optval = tv.tv_sec * hz + tv.tv_usec / tick;
   1822  1.171    plunky 		if (optval == 0 && tv.tv_usec != 0)
   1823  1.171    plunky 			optval = 1;
   1824   1.28   thorpej 
   1825  1.179  christos 		switch (opt) {
   1826  1.142    dyoung 		case SO_SNDTIMEO:
   1827  1.171    plunky 			so->so_snd.sb_timeo = optval;
   1828    1.1       cgd 			break;
   1829    1.1       cgd 		case SO_RCVTIMEO:
   1830  1.171    plunky 			so->so_rcv.sb_timeo = optval;
   1831  1.142    dyoung 			break;
   1832  1.142    dyoung 		}
   1833  1.142    dyoung 		break;
   1834    1.1       cgd 
   1835  1.142    dyoung 	default:
   1836  1.177        ad 		solock(so);
   1837  1.177        ad 		error = ENOPROTOOPT;
   1838  1.177        ad 		break;
   1839  1.142    dyoung 	}
   1840  1.177        ad 	KASSERT(solocked(so));
   1841  1.177        ad 	return error;
   1842  1.142    dyoung }
   1843    1.1       cgd 
   1844  1.142    dyoung int
   1845  1.171    plunky sosetopt(struct socket *so, struct sockopt *sopt)
   1846  1.142    dyoung {
   1847  1.142    dyoung 	int error, prerr;
   1848    1.1       cgd 
   1849  1.177        ad 	if (sopt->sopt_level == SOL_SOCKET) {
   1850  1.171    plunky 		error = sosetopt1(so, sopt);
   1851  1.177        ad 		KASSERT(solocked(so));
   1852  1.177        ad 	} else {
   1853  1.142    dyoung 		error = ENOPROTOOPT;
   1854  1.177        ad 		solock(so);
   1855  1.177        ad 	}
   1856    1.1       cgd 
   1857  1.142    dyoung 	if ((error == 0 || error == ENOPROTOOPT) &&
   1858  1.142    dyoung 	    so->so_proto != NULL && so->so_proto->pr_ctloutput != NULL) {
   1859  1.142    dyoung 		/* give the protocol stack a shot */
   1860  1.171    plunky 		prerr = (*so->so_proto->pr_ctloutput)(PRCO_SETOPT, so, sopt);
   1861  1.142    dyoung 		if (prerr == 0)
   1862  1.142    dyoung 			error = 0;
   1863  1.142    dyoung 		else if (prerr != ENOPROTOOPT)
   1864  1.142    dyoung 			error = prerr;
   1865  1.171    plunky 	}
   1866  1.160        ad 	sounlock(so);
   1867  1.142    dyoung 	return error;
   1868    1.1       cgd }
   1869    1.1       cgd 
   1870  1.171    plunky /*
   1871  1.171    plunky  * so_setsockopt() is a wrapper providing a sockopt structure for sosetopt()
   1872  1.171    plunky  */
   1873  1.171    plunky int
   1874  1.171    plunky so_setsockopt(struct lwp *l, struct socket *so, int level, int name,
   1875  1.171    plunky     const void *val, size_t valsize)
   1876  1.171    plunky {
   1877  1.171    plunky 	struct sockopt sopt;
   1878  1.171    plunky 	int error;
   1879  1.171    plunky 
   1880  1.171    plunky 	KASSERT(valsize == 0 || val != NULL);
   1881  1.171    plunky 
   1882  1.171    plunky 	sockopt_init(&sopt, level, name, valsize);
   1883  1.171    plunky 	sockopt_set(&sopt, val, valsize);
   1884  1.171    plunky 
   1885  1.171    plunky 	error = sosetopt(so, &sopt);
   1886  1.171    plunky 
   1887  1.171    plunky 	sockopt_destroy(&sopt);
   1888  1.171    plunky 
   1889  1.171    plunky 	return error;
   1890  1.171    plunky }
   1891  1.171    plunky 
   1892  1.171    plunky /*
   1893  1.171    plunky  * internal get SOL_SOCKET options
   1894  1.171    plunky  */
   1895  1.171    plunky static int
   1896  1.171    plunky sogetopt1(struct socket *so, struct sockopt *sopt)
   1897  1.171    plunky {
   1898  1.179  christos 	int error, optval, opt;
   1899  1.171    plunky 	struct linger l;
   1900  1.171    plunky 	struct timeval tv;
   1901  1.171    plunky 
   1902  1.179  christos 	switch ((opt = sopt->sopt_name)) {
   1903  1.171    plunky 
   1904  1.171    plunky 	case SO_ACCEPTFILTER:
   1905  1.177        ad 		error = accept_filt_getopt(so, sopt);
   1906  1.171    plunky 		break;
   1907  1.171    plunky 
   1908  1.171    plunky 	case SO_LINGER:
   1909  1.171    plunky 		l.l_onoff = (so->so_options & SO_LINGER) ? 1 : 0;
   1910  1.171    plunky 		l.l_linger = so->so_linger;
   1911  1.171    plunky 
   1912  1.171    plunky 		error = sockopt_set(sopt, &l, sizeof(l));
   1913  1.171    plunky 		break;
   1914  1.171    plunky 
   1915  1.171    plunky 	case SO_USELOOPBACK:
   1916  1.171    plunky 	case SO_DONTROUTE:
   1917  1.171    plunky 	case SO_DEBUG:
   1918  1.171    plunky 	case SO_KEEPALIVE:
   1919  1.171    plunky 	case SO_REUSEADDR:
   1920  1.171    plunky 	case SO_REUSEPORT:
   1921  1.171    plunky 	case SO_BROADCAST:
   1922  1.171    plunky 	case SO_OOBINLINE:
   1923  1.171    plunky 	case SO_TIMESTAMP:
   1924  1.207  christos 	case SO_NOSIGPIPE:
   1925  1.184  christos #ifdef SO_OTIMESTAMP
   1926  1.184  christos 	case SO_OTIMESTAMP:
   1927  1.184  christos #endif
   1928  1.179  christos 		error = sockopt_setint(sopt, (so->so_options & opt) ? 1 : 0);
   1929  1.171    plunky 		break;
   1930  1.171    plunky 
   1931  1.171    plunky 	case SO_TYPE:
   1932  1.171    plunky 		error = sockopt_setint(sopt, so->so_type);
   1933  1.171    plunky 		break;
   1934  1.171    plunky 
   1935  1.171    plunky 	case SO_ERROR:
   1936  1.171    plunky 		error = sockopt_setint(sopt, so->so_error);
   1937  1.171    plunky 		so->so_error = 0;
   1938  1.171    plunky 		break;
   1939  1.171    plunky 
   1940  1.171    plunky 	case SO_SNDBUF:
   1941  1.171    plunky 		error = sockopt_setint(sopt, so->so_snd.sb_hiwat);
   1942  1.171    plunky 		break;
   1943  1.171    plunky 
   1944  1.171    plunky 	case SO_RCVBUF:
   1945  1.171    plunky 		error = sockopt_setint(sopt, so->so_rcv.sb_hiwat);
   1946  1.171    plunky 		break;
   1947  1.171    plunky 
   1948  1.171    plunky 	case SO_SNDLOWAT:
   1949  1.171    plunky 		error = sockopt_setint(sopt, so->so_snd.sb_lowat);
   1950  1.171    plunky 		break;
   1951  1.171    plunky 
   1952  1.171    plunky 	case SO_RCVLOWAT:
   1953  1.171    plunky 		error = sockopt_setint(sopt, so->so_rcv.sb_lowat);
   1954  1.171    plunky 		break;
   1955  1.171    plunky 
   1956  1.179  christos #ifdef COMPAT_50
   1957  1.179  christos 	case SO_OSNDTIMEO:
   1958  1.179  christos 	case SO_ORCVTIMEO: {
   1959  1.179  christos 		struct timeval50 otv;
   1960  1.179  christos 
   1961  1.179  christos 		optval = (opt == SO_OSNDTIMEO ?
   1962  1.179  christos 		     so->so_snd.sb_timeo : so->so_rcv.sb_timeo);
   1963  1.179  christos 
   1964  1.179  christos 		otv.tv_sec = optval / hz;
   1965  1.179  christos 		otv.tv_usec = (optval % hz) * tick;
   1966  1.179  christos 
   1967  1.179  christos 		error = sockopt_set(sopt, &otv, sizeof(otv));
   1968  1.179  christos 		break;
   1969  1.179  christos 	}
   1970  1.179  christos #endif /* COMPAT_50 */
   1971  1.179  christos 
   1972  1.171    plunky 	case SO_SNDTIMEO:
   1973  1.171    plunky 	case SO_RCVTIMEO:
   1974  1.179  christos 		optval = (opt == SO_SNDTIMEO ?
   1975  1.171    plunky 		     so->so_snd.sb_timeo : so->so_rcv.sb_timeo);
   1976  1.171    plunky 
   1977  1.171    plunky 		tv.tv_sec = optval / hz;
   1978  1.171    plunky 		tv.tv_usec = (optval % hz) * tick;
   1979  1.171    plunky 
   1980  1.171    plunky 		error = sockopt_set(sopt, &tv, sizeof(tv));
   1981  1.171    plunky 		break;
   1982  1.171    plunky 
   1983  1.171    plunky 	case SO_OVERFLOWED:
   1984  1.171    plunky 		error = sockopt_setint(sopt, so->so_rcv.sb_overflowed);
   1985  1.171    plunky 		break;
   1986  1.171    plunky 
   1987  1.171    plunky 	default:
   1988  1.171    plunky 		error = ENOPROTOOPT;
   1989  1.171    plunky 		break;
   1990  1.171    plunky 	}
   1991  1.171    plunky 
   1992  1.171    plunky 	return (error);
   1993  1.171    plunky }
   1994  1.171    plunky 
   1995   1.14   mycroft int
   1996  1.171    plunky sogetopt(struct socket *so, struct sockopt *sopt)
   1997    1.1       cgd {
   1998  1.160        ad 	int		error;
   1999    1.1       cgd 
   2000  1.160        ad 	solock(so);
   2001  1.171    plunky 	if (sopt->sopt_level != SOL_SOCKET) {
   2002    1.1       cgd 		if (so->so_proto && so->so_proto->pr_ctloutput) {
   2003  1.160        ad 			error = ((*so->so_proto->pr_ctloutput)
   2004  1.171    plunky 			    (PRCO_GETOPT, so, sopt));
   2005    1.1       cgd 		} else
   2006  1.160        ad 			error = (ENOPROTOOPT);
   2007    1.1       cgd 	} else {
   2008  1.171    plunky 		error = sogetopt1(so, sopt);
   2009  1.171    plunky 	}
   2010  1.171    plunky 	sounlock(so);
   2011  1.171    plunky 	return (error);
   2012  1.171    plunky }
   2013  1.171    plunky 
   2014  1.171    plunky /*
   2015  1.171    plunky  * alloc sockopt data buffer buffer
   2016  1.171    plunky  *	- will be released at destroy
   2017  1.171    plunky  */
   2018  1.176    plunky static int
   2019  1.176    plunky sockopt_alloc(struct sockopt *sopt, size_t len, km_flag_t kmflag)
   2020  1.171    plunky {
   2021  1.171    plunky 
   2022  1.171    plunky 	KASSERT(sopt->sopt_size == 0);
   2023  1.171    plunky 
   2024  1.176    plunky 	if (len > sizeof(sopt->sopt_buf)) {
   2025  1.176    plunky 		sopt->sopt_data = kmem_zalloc(len, kmflag);
   2026  1.176    plunky 		if (sopt->sopt_data == NULL)
   2027  1.176    plunky 			return ENOMEM;
   2028  1.176    plunky 	} else
   2029  1.171    plunky 		sopt->sopt_data = sopt->sopt_buf;
   2030  1.171    plunky 
   2031  1.171    plunky 	sopt->sopt_size = len;
   2032  1.176    plunky 	return 0;
   2033  1.171    plunky }
   2034  1.171    plunky 
   2035  1.171    plunky /*
   2036  1.171    plunky  * initialise sockopt storage
   2037  1.176    plunky  *	- MAY sleep during allocation
   2038  1.171    plunky  */
   2039  1.171    plunky void
   2040  1.171    plunky sockopt_init(struct sockopt *sopt, int level, int name, size_t size)
   2041  1.171    plunky {
   2042    1.1       cgd 
   2043  1.171    plunky 	memset(sopt, 0, sizeof(*sopt));
   2044    1.1       cgd 
   2045  1.171    plunky 	sopt->sopt_level = level;
   2046  1.171    plunky 	sopt->sopt_name = name;
   2047  1.176    plunky 	(void)sockopt_alloc(sopt, size, KM_SLEEP);
   2048  1.171    plunky }
   2049  1.171    plunky 
   2050  1.171    plunky /*
   2051  1.171    plunky  * destroy sockopt storage
   2052  1.171    plunky  *	- will release any held memory references
   2053  1.171    plunky  */
   2054  1.171    plunky void
   2055  1.171    plunky sockopt_destroy(struct sockopt *sopt)
   2056  1.171    plunky {
   2057  1.171    plunky 
   2058  1.171    plunky 	if (sopt->sopt_data != sopt->sopt_buf)
   2059  1.173    plunky 		kmem_free(sopt->sopt_data, sopt->sopt_size);
   2060  1.171    plunky 
   2061  1.171    plunky 	memset(sopt, 0, sizeof(*sopt));
   2062  1.171    plunky }
   2063  1.171    plunky 
   2064  1.171    plunky /*
   2065  1.171    plunky  * set sockopt value
   2066  1.171    plunky  *	- value is copied into sockopt
   2067  1.176    plunky  * 	- memory is allocated when necessary, will not sleep
   2068  1.171    plunky  */
   2069  1.171    plunky int
   2070  1.171    plunky sockopt_set(struct sockopt *sopt, const void *buf, size_t len)
   2071  1.171    plunky {
   2072  1.176    plunky 	int error;
   2073  1.171    plunky 
   2074  1.176    plunky 	if (sopt->sopt_size == 0) {
   2075  1.176    plunky 		error = sockopt_alloc(sopt, len, KM_NOSLEEP);
   2076  1.176    plunky 		if (error)
   2077  1.176    plunky 			return error;
   2078  1.176    plunky 	}
   2079  1.171    plunky 
   2080  1.171    plunky 	KASSERT(sopt->sopt_size == len);
   2081  1.171    plunky 	memcpy(sopt->sopt_data, buf, len);
   2082  1.171    plunky 	return 0;
   2083  1.171    plunky }
   2084  1.171    plunky 
   2085  1.171    plunky /*
   2086  1.171    plunky  * common case of set sockopt integer value
   2087  1.171    plunky  */
   2088  1.171    plunky int
   2089  1.171    plunky sockopt_setint(struct sockopt *sopt, int val)
   2090  1.171    plunky {
   2091  1.171    plunky 
   2092  1.171    plunky 	return sockopt_set(sopt, &val, sizeof(int));
   2093  1.171    plunky }
   2094  1.171    plunky 
   2095  1.171    plunky /*
   2096  1.171    plunky  * get sockopt value
   2097  1.171    plunky  *	- correct size must be given
   2098  1.171    plunky  */
   2099  1.171    plunky int
   2100  1.171    plunky sockopt_get(const struct sockopt *sopt, void *buf, size_t len)
   2101  1.171    plunky {
   2102  1.170       tls 
   2103  1.171    plunky 	if (sopt->sopt_size != len)
   2104  1.171    plunky 		return EINVAL;
   2105    1.1       cgd 
   2106  1.171    plunky 	memcpy(buf, sopt->sopt_data, len);
   2107  1.171    plunky 	return 0;
   2108  1.171    plunky }
   2109    1.1       cgd 
   2110  1.171    plunky /*
   2111  1.171    plunky  * common case of get sockopt integer value
   2112  1.171    plunky  */
   2113  1.171    plunky int
   2114  1.171    plunky sockopt_getint(const struct sockopt *sopt, int *valp)
   2115  1.171    plunky {
   2116    1.1       cgd 
   2117  1.171    plunky 	return sockopt_get(sopt, valp, sizeof(int));
   2118  1.171    plunky }
   2119    1.1       cgd 
   2120  1.171    plunky /*
   2121  1.171    plunky  * set sockopt value from mbuf
   2122  1.171    plunky  *	- ONLY for legacy code
   2123  1.171    plunky  *	- mbuf is released by sockopt
   2124  1.176    plunky  *	- will not sleep
   2125  1.171    plunky  */
   2126  1.171    plunky int
   2127  1.171    plunky sockopt_setmbuf(struct sockopt *sopt, struct mbuf *m)
   2128  1.171    plunky {
   2129  1.171    plunky 	size_t len;
   2130  1.176    plunky 	int error;
   2131    1.1       cgd 
   2132  1.171    plunky 	len = m_length(m);
   2133    1.1       cgd 
   2134  1.176    plunky 	if (sopt->sopt_size == 0) {
   2135  1.176    plunky 		error = sockopt_alloc(sopt, len, KM_NOSLEEP);
   2136  1.176    plunky 		if (error)
   2137  1.176    plunky 			return error;
   2138  1.176    plunky 	}
   2139    1.1       cgd 
   2140  1.171    plunky 	KASSERT(sopt->sopt_size == len);
   2141  1.171    plunky 	m_copydata(m, 0, len, sopt->sopt_data);
   2142  1.171    plunky 	m_freem(m);
   2143    1.1       cgd 
   2144  1.171    plunky 	return 0;
   2145  1.171    plunky }
   2146    1.1       cgd 
   2147  1.171    plunky /*
   2148  1.171    plunky  * get sockopt value into mbuf
   2149  1.171    plunky  *	- ONLY for legacy code
   2150  1.171    plunky  *	- mbuf to be released by the caller
   2151  1.176    plunky  *	- will not sleep
   2152  1.171    plunky  */
   2153  1.171    plunky struct mbuf *
   2154  1.171    plunky sockopt_getmbuf(const struct sockopt *sopt)
   2155  1.171    plunky {
   2156  1.171    plunky 	struct mbuf *m;
   2157  1.107   darrenr 
   2158  1.176    plunky 	if (sopt->sopt_size > MCLBYTES)
   2159  1.176    plunky 		return NULL;
   2160  1.176    plunky 
   2161  1.176    plunky 	m = m_get(M_DONTWAIT, MT_SOOPTS);
   2162  1.171    plunky 	if (m == NULL)
   2163  1.171    plunky 		return NULL;
   2164  1.171    plunky 
   2165  1.176    plunky 	if (sopt->sopt_size > MLEN) {
   2166  1.176    plunky 		MCLGET(m, M_DONTWAIT);
   2167  1.176    plunky 		if ((m->m_flags & M_EXT) == 0) {
   2168  1.176    plunky 			m_free(m);
   2169  1.176    plunky 			return NULL;
   2170  1.176    plunky 		}
   2171    1.1       cgd 	}
   2172  1.176    plunky 
   2173  1.176    plunky 	memcpy(mtod(m, void *), sopt->sopt_data, sopt->sopt_size);
   2174  1.176    plunky 	m->m_len = sopt->sopt_size;
   2175  1.160        ad 
   2176  1.171    plunky 	return m;
   2177    1.1       cgd }
   2178    1.1       cgd 
   2179   1.14   mycroft void
   2180   1.54     lukem sohasoutofband(struct socket *so)
   2181    1.1       cgd {
   2182  1.153     rmind 
   2183   1.90  christos 	fownsignal(so->so_pgid, SIGURG, POLL_PRI, POLLPRI|POLLRDBAND, so);
   2184  1.189        ad 	selnotify(&so->so_rcv.sb_sel, POLLPRI | POLLRDBAND, NOTE_SUBMIT);
   2185    1.1       cgd }
   2186   1.72  jdolecek 
   2187   1.72  jdolecek static void
   2188   1.72  jdolecek filt_sordetach(struct knote *kn)
   2189   1.72  jdolecek {
   2190   1.72  jdolecek 	struct socket	*so;
   2191   1.72  jdolecek 
   2192  1.155        ad 	so = ((file_t *)kn->kn_obj)->f_data;
   2193  1.160        ad 	solock(so);
   2194   1.73  christos 	SLIST_REMOVE(&so->so_rcv.sb_sel.sel_klist, kn, knote, kn_selnext);
   2195   1.73  christos 	if (SLIST_EMPTY(&so->so_rcv.sb_sel.sel_klist))
   2196   1.72  jdolecek 		so->so_rcv.sb_flags &= ~SB_KNOTE;
   2197  1.160        ad 	sounlock(so);
   2198   1.72  jdolecek }
   2199   1.72  jdolecek 
   2200   1.72  jdolecek /*ARGSUSED*/
   2201   1.72  jdolecek static int
   2202  1.129      yamt filt_soread(struct knote *kn, long hint)
   2203   1.72  jdolecek {
   2204   1.72  jdolecek 	struct socket	*so;
   2205  1.160        ad 	int rv;
   2206   1.72  jdolecek 
   2207  1.155        ad 	so = ((file_t *)kn->kn_obj)->f_data;
   2208  1.160        ad 	if (hint != NOTE_SUBMIT)
   2209  1.160        ad 		solock(so);
   2210   1.72  jdolecek 	kn->kn_data = so->so_rcv.sb_cc;
   2211   1.72  jdolecek 	if (so->so_state & SS_CANTRCVMORE) {
   2212  1.108     perry 		kn->kn_flags |= EV_EOF;
   2213   1.72  jdolecek 		kn->kn_fflags = so->so_error;
   2214  1.160        ad 		rv = 1;
   2215  1.160        ad 	} else if (so->so_error)	/* temporary udp error */
   2216  1.160        ad 		rv = 1;
   2217  1.160        ad 	else if (kn->kn_sfflags & NOTE_LOWAT)
   2218  1.160        ad 		rv = (kn->kn_data >= kn->kn_sdata);
   2219  1.160        ad 	else
   2220  1.160        ad 		rv = (kn->kn_data >= so->so_rcv.sb_lowat);
   2221  1.160        ad 	if (hint != NOTE_SUBMIT)
   2222  1.160        ad 		sounlock(so);
   2223  1.160        ad 	return rv;
   2224   1.72  jdolecek }
   2225   1.72  jdolecek 
   2226   1.72  jdolecek static void
   2227   1.72  jdolecek filt_sowdetach(struct knote *kn)
   2228   1.72  jdolecek {
   2229   1.72  jdolecek 	struct socket	*so;
   2230   1.72  jdolecek 
   2231  1.155        ad 	so = ((file_t *)kn->kn_obj)->f_data;
   2232  1.160        ad 	solock(so);
   2233   1.73  christos 	SLIST_REMOVE(&so->so_snd.sb_sel.sel_klist, kn, knote, kn_selnext);
   2234   1.73  christos 	if (SLIST_EMPTY(&so->so_snd.sb_sel.sel_klist))
   2235   1.72  jdolecek 		so->so_snd.sb_flags &= ~SB_KNOTE;
   2236  1.160        ad 	sounlock(so);
   2237   1.72  jdolecek }
   2238   1.72  jdolecek 
   2239   1.72  jdolecek /*ARGSUSED*/
   2240   1.72  jdolecek static int
   2241  1.129      yamt filt_sowrite(struct knote *kn, long hint)
   2242   1.72  jdolecek {
   2243   1.72  jdolecek 	struct socket	*so;
   2244  1.160        ad 	int rv;
   2245   1.72  jdolecek 
   2246  1.155        ad 	so = ((file_t *)kn->kn_obj)->f_data;
   2247  1.160        ad 	if (hint != NOTE_SUBMIT)
   2248  1.160        ad 		solock(so);
   2249   1.72  jdolecek 	kn->kn_data = sbspace(&so->so_snd);
   2250   1.72  jdolecek 	if (so->so_state & SS_CANTSENDMORE) {
   2251  1.108     perry 		kn->kn_flags |= EV_EOF;
   2252   1.72  jdolecek 		kn->kn_fflags = so->so_error;
   2253  1.160        ad 		rv = 1;
   2254  1.160        ad 	} else if (so->so_error)	/* temporary udp error */
   2255  1.160        ad 		rv = 1;
   2256  1.160        ad 	else if (((so->so_state & SS_ISCONNECTED) == 0) &&
   2257   1.72  jdolecek 	    (so->so_proto->pr_flags & PR_CONNREQUIRED))
   2258  1.160        ad 		rv = 0;
   2259  1.160        ad 	else if (kn->kn_sfflags & NOTE_LOWAT)
   2260  1.160        ad 		rv = (kn->kn_data >= kn->kn_sdata);
   2261  1.160        ad 	else
   2262  1.160        ad 		rv = (kn->kn_data >= so->so_snd.sb_lowat);
   2263  1.160        ad 	if (hint != NOTE_SUBMIT)
   2264  1.160        ad 		sounlock(so);
   2265  1.160        ad 	return rv;
   2266   1.72  jdolecek }
   2267   1.72  jdolecek 
   2268   1.72  jdolecek /*ARGSUSED*/
   2269   1.72  jdolecek static int
   2270  1.129      yamt filt_solisten(struct knote *kn, long hint)
   2271   1.72  jdolecek {
   2272   1.72  jdolecek 	struct socket	*so;
   2273  1.160        ad 	int rv;
   2274   1.72  jdolecek 
   2275  1.155        ad 	so = ((file_t *)kn->kn_obj)->f_data;
   2276   1.72  jdolecek 
   2277   1.72  jdolecek 	/*
   2278   1.72  jdolecek 	 * Set kn_data to number of incoming connections, not
   2279   1.72  jdolecek 	 * counting partial (incomplete) connections.
   2280  1.108     perry 	 */
   2281  1.160        ad 	if (hint != NOTE_SUBMIT)
   2282  1.160        ad 		solock(so);
   2283   1.72  jdolecek 	kn->kn_data = so->so_qlen;
   2284  1.160        ad 	rv = (kn->kn_data > 0);
   2285  1.160        ad 	if (hint != NOTE_SUBMIT)
   2286  1.160        ad 		sounlock(so);
   2287  1.160        ad 	return rv;
   2288   1.72  jdolecek }
   2289   1.72  jdolecek 
   2290   1.72  jdolecek static const struct filterops solisten_filtops =
   2291   1.72  jdolecek 	{ 1, NULL, filt_sordetach, filt_solisten };
   2292   1.72  jdolecek static const struct filterops soread_filtops =
   2293   1.72  jdolecek 	{ 1, NULL, filt_sordetach, filt_soread };
   2294   1.72  jdolecek static const struct filterops sowrite_filtops =
   2295   1.72  jdolecek 	{ 1, NULL, filt_sowdetach, filt_sowrite };
   2296   1.72  jdolecek 
   2297   1.72  jdolecek int
   2298  1.129      yamt soo_kqfilter(struct file *fp, struct knote *kn)
   2299   1.72  jdolecek {
   2300   1.72  jdolecek 	struct socket	*so;
   2301   1.72  jdolecek 	struct sockbuf	*sb;
   2302   1.72  jdolecek 
   2303  1.155        ad 	so = ((file_t *)kn->kn_obj)->f_data;
   2304  1.160        ad 	solock(so);
   2305   1.72  jdolecek 	switch (kn->kn_filter) {
   2306   1.72  jdolecek 	case EVFILT_READ:
   2307   1.72  jdolecek 		if (so->so_options & SO_ACCEPTCONN)
   2308   1.72  jdolecek 			kn->kn_fop = &solisten_filtops;
   2309   1.72  jdolecek 		else
   2310   1.72  jdolecek 			kn->kn_fop = &soread_filtops;
   2311   1.72  jdolecek 		sb = &so->so_rcv;
   2312   1.72  jdolecek 		break;
   2313   1.72  jdolecek 	case EVFILT_WRITE:
   2314   1.72  jdolecek 		kn->kn_fop = &sowrite_filtops;
   2315   1.72  jdolecek 		sb = &so->so_snd;
   2316   1.72  jdolecek 		break;
   2317   1.72  jdolecek 	default:
   2318  1.160        ad 		sounlock(so);
   2319  1.149     pooka 		return (EINVAL);
   2320   1.72  jdolecek 	}
   2321   1.73  christos 	SLIST_INSERT_HEAD(&sb->sb_sel.sel_klist, kn, kn_selnext);
   2322   1.72  jdolecek 	sb->sb_flags |= SB_KNOTE;
   2323  1.160        ad 	sounlock(so);
   2324   1.72  jdolecek 	return (0);
   2325   1.72  jdolecek }
   2326   1.72  jdolecek 
   2327  1.154        ad static int
   2328  1.154        ad sodopoll(struct socket *so, int events)
   2329  1.154        ad {
   2330  1.154        ad 	int revents;
   2331  1.154        ad 
   2332  1.154        ad 	revents = 0;
   2333  1.154        ad 
   2334  1.154        ad 	if (events & (POLLIN | POLLRDNORM))
   2335  1.154        ad 		if (soreadable(so))
   2336  1.154        ad 			revents |= events & (POLLIN | POLLRDNORM);
   2337  1.154        ad 
   2338  1.154        ad 	if (events & (POLLOUT | POLLWRNORM))
   2339  1.154        ad 		if (sowritable(so))
   2340  1.154        ad 			revents |= events & (POLLOUT | POLLWRNORM);
   2341  1.154        ad 
   2342  1.154        ad 	if (events & (POLLPRI | POLLRDBAND))
   2343  1.154        ad 		if (so->so_oobmark || (so->so_state & SS_RCVATMARK))
   2344  1.154        ad 			revents |= events & (POLLPRI | POLLRDBAND);
   2345  1.154        ad 
   2346  1.154        ad 	return revents;
   2347  1.154        ad }
   2348  1.154        ad 
   2349  1.154        ad int
   2350  1.154        ad sopoll(struct socket *so, int events)
   2351  1.154        ad {
   2352  1.154        ad 	int revents = 0;
   2353  1.154        ad 
   2354  1.160        ad #ifndef DIAGNOSTIC
   2355  1.160        ad 	/*
   2356  1.160        ad 	 * Do a quick, unlocked check in expectation that the socket
   2357  1.160        ad 	 * will be ready for I/O.  Don't do this check if DIAGNOSTIC,
   2358  1.160        ad 	 * as the solocked() assertions will fail.
   2359  1.160        ad 	 */
   2360  1.154        ad 	if ((revents = sodopoll(so, events)) != 0)
   2361  1.154        ad 		return revents;
   2362  1.160        ad #endif
   2363  1.154        ad 
   2364  1.160        ad 	solock(so);
   2365  1.154        ad 	if ((revents = sodopoll(so, events)) == 0) {
   2366  1.154        ad 		if (events & (POLLIN | POLLPRI | POLLRDNORM | POLLRDBAND)) {
   2367  1.154        ad 			selrecord(curlwp, &so->so_rcv.sb_sel);
   2368  1.160        ad 			so->so_rcv.sb_flags |= SB_NOTIFY;
   2369  1.154        ad 		}
   2370  1.154        ad 
   2371  1.154        ad 		if (events & (POLLOUT | POLLWRNORM)) {
   2372  1.154        ad 			selrecord(curlwp, &so->so_snd.sb_sel);
   2373  1.160        ad 			so->so_snd.sb_flags |= SB_NOTIFY;
   2374  1.154        ad 		}
   2375  1.154        ad 	}
   2376  1.160        ad 	sounlock(so);
   2377  1.154        ad 
   2378  1.154        ad 	return revents;
   2379  1.154        ad }
   2380  1.154        ad 
   2381  1.154        ad 
   2382   1.94      yamt #include <sys/sysctl.h>
   2383   1.94      yamt 
   2384   1.94      yamt static int sysctl_kern_somaxkva(SYSCTLFN_PROTO);
   2385   1.94      yamt 
   2386   1.94      yamt /*
   2387   1.94      yamt  * sysctl helper routine for kern.somaxkva.  ensures that the given
   2388   1.94      yamt  * value is not too small.
   2389   1.94      yamt  * (XXX should we maybe make sure it's not too large as well?)
   2390   1.94      yamt  */
   2391   1.94      yamt static int
   2392   1.94      yamt sysctl_kern_somaxkva(SYSCTLFN_ARGS)
   2393   1.94      yamt {
   2394   1.94      yamt 	int error, new_somaxkva;
   2395   1.94      yamt 	struct sysctlnode node;
   2396   1.94      yamt 
   2397   1.94      yamt 	new_somaxkva = somaxkva;
   2398   1.94      yamt 	node = *rnode;
   2399   1.94      yamt 	node.sysctl_data = &new_somaxkva;
   2400   1.94      yamt 	error = sysctl_lookup(SYSCTLFN_CALL(&node));
   2401   1.94      yamt 	if (error || newp == NULL)
   2402   1.94      yamt 		return (error);
   2403   1.94      yamt 
   2404   1.94      yamt 	if (new_somaxkva < (16 * 1024 * 1024)) /* sanity */
   2405   1.94      yamt 		return (EINVAL);
   2406   1.94      yamt 
   2407  1.136        ad 	mutex_enter(&so_pendfree_lock);
   2408   1.94      yamt 	somaxkva = new_somaxkva;
   2409  1.136        ad 	cv_broadcast(&socurkva_cv);
   2410  1.136        ad 	mutex_exit(&so_pendfree_lock);
   2411   1.94      yamt 
   2412   1.94      yamt 	return (error);
   2413   1.94      yamt }
   2414   1.94      yamt 
   2415  1.178     pooka static void
   2416  1.187    cegger sysctl_kern_somaxkva_setup(void)
   2417   1.94      yamt {
   2418   1.94      yamt 
   2419  1.178     pooka 	KASSERT(socket_sysctllog == NULL);
   2420  1.178     pooka 	sysctl_createv(&socket_sysctllog, 0, NULL, NULL,
   2421   1.97    atatat 		       CTLFLAG_PERMANENT,
   2422   1.97    atatat 		       CTLTYPE_NODE, "kern", NULL,
   2423   1.97    atatat 		       NULL, 0, NULL, 0,
   2424   1.97    atatat 		       CTL_KERN, CTL_EOL);
   2425   1.97    atatat 
   2426  1.178     pooka 	sysctl_createv(&socket_sysctllog, 0, NULL, NULL,
   2427   1.97    atatat 		       CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   2428  1.103    atatat 		       CTLTYPE_INT, "somaxkva",
   2429  1.103    atatat 		       SYSCTL_DESCR("Maximum amount of kernel memory to be "
   2430  1.103    atatat 				    "used for socket buffers"),
   2431   1.94      yamt 		       sysctl_kern_somaxkva, 0, NULL, 0,
   2432   1.94      yamt 		       CTL_KERN, KERN_SOMAXKVA, CTL_EOL);
   2433   1.94      yamt }
   2434