uipc_socket.c revision 1.134.2.2 1 1.134.2.2 ad /* $NetBSD: uipc_socket.c,v 1.134.2.2 2007/04/10 13:26:42 ad Exp $ */
2 1.64 thorpej
3 1.64 thorpej /*-
4 1.134.2.2 ad * Copyright (c) 2002, 2007 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 1.64 thorpej * by Jason R. Thorpe of Wasabi Systems, Inc.
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 * 3. All advertising materials mentioning features or use of this software
19 1.64 thorpej * must display the following acknowledgement:
20 1.64 thorpej * This product includes software developed by the NetBSD
21 1.64 thorpej * Foundation, Inc. and its contributors.
22 1.64 thorpej * 4. Neither the name of The NetBSD Foundation nor the names of its
23 1.64 thorpej * contributors may be used to endorse or promote products derived
24 1.64 thorpej * from this software without specific prior written permission.
25 1.64 thorpej *
26 1.64 thorpej * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 1.64 thorpej * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 1.64 thorpej * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 1.64 thorpej * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 1.64 thorpej * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 1.64 thorpej * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 1.64 thorpej * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 1.64 thorpej * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 1.64 thorpej * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 1.64 thorpej * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 1.64 thorpej * POSSIBILITY OF SUCH DAMAGE.
37 1.64 thorpej */
38 1.16 cgd
39 1.1 cgd /*
40 1.15 mycroft * Copyright (c) 1982, 1986, 1988, 1990, 1993
41 1.15 mycroft * The Regents of the University of California. All rights reserved.
42 1.1 cgd *
43 1.1 cgd * Redistribution and use in source and binary forms, with or without
44 1.1 cgd * modification, are permitted provided that the following conditions
45 1.1 cgd * are met:
46 1.1 cgd * 1. Redistributions of source code must retain the above copyright
47 1.1 cgd * notice, this list of conditions and the following disclaimer.
48 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
49 1.1 cgd * notice, this list of conditions and the following disclaimer in the
50 1.1 cgd * documentation and/or other materials provided with the distribution.
51 1.85 agc * 3. Neither the name of the University nor the names of its contributors
52 1.1 cgd * may be used to endorse or promote products derived from this software
53 1.1 cgd * without specific prior written permission.
54 1.1 cgd *
55 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
56 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
57 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
58 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
59 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
60 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
61 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
62 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
63 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
64 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
65 1.1 cgd * SUCH DAMAGE.
66 1.1 cgd *
67 1.32 fvdl * @(#)uipc_socket.c 8.6 (Berkeley) 5/2/95
68 1.1 cgd */
69 1.59 lukem
70 1.59 lukem #include <sys/cdefs.h>
71 1.134.2.2 ad __KERNEL_RCSID(0, "$NetBSD: uipc_socket.c,v 1.134.2.2 2007/04/10 13:26:42 ad Exp $");
72 1.64 thorpej
73 1.64 thorpej #include "opt_sock_counters.h"
74 1.64 thorpej #include "opt_sosend_loan.h"
75 1.81 martin #include "opt_mbuftrace.h"
76 1.84 ragge #include "opt_somaxkva.h"
77 1.1 cgd
78 1.9 mycroft #include <sys/param.h>
79 1.9 mycroft #include <sys/systm.h>
80 1.9 mycroft #include <sys/proc.h>
81 1.9 mycroft #include <sys/file.h>
82 1.9 mycroft #include <sys/malloc.h>
83 1.9 mycroft #include <sys/mbuf.h>
84 1.9 mycroft #include <sys/domain.h>
85 1.9 mycroft #include <sys/kernel.h>
86 1.9 mycroft #include <sys/protosw.h>
87 1.9 mycroft #include <sys/socket.h>
88 1.9 mycroft #include <sys/socketvar.h>
89 1.21 christos #include <sys/signalvar.h>
90 1.9 mycroft #include <sys/resourcevar.h>
91 1.37 thorpej #include <sys/pool.h>
92 1.72 jdolecek #include <sys/event.h>
93 1.89 christos #include <sys/poll.h>
94 1.118 elad #include <sys/kauth.h>
95 1.134.2.1 ad #include <sys/mutex.h>
96 1.134.2.1 ad #include <sys/condvar.h>
97 1.37 thorpej
98 1.64 thorpej #include <uvm/uvm.h>
99 1.64 thorpej
100 1.134.2.1 ad POOL_INIT(socket_pool, sizeof(struct socket), 0, 0, 0, "sockpl", NULL,
101 1.134.2.1 ad IPL_SOFTNET);
102 1.77 thorpej
103 1.77 thorpej MALLOC_DEFINE(M_SOOPTS, "soopts", "socket options");
104 1.77 thorpej MALLOC_DEFINE(M_SONAME, "soname", "socket name");
105 1.37 thorpej
106 1.54 lukem extern int somaxconn; /* patchable (XXX sysctl) */
107 1.54 lukem int somaxconn = SOMAXCONN;
108 1.49 jonathan
109 1.64 thorpej #ifdef SOSEND_COUNTERS
110 1.64 thorpej #include <sys/device.h>
111 1.64 thorpej
112 1.113 thorpej static struct evcnt sosend_loan_big = EVCNT_INITIALIZER(EVCNT_TYPE_MISC,
113 1.64 thorpej NULL, "sosend", "loan big");
114 1.113 thorpej static struct evcnt sosend_copy_big = EVCNT_INITIALIZER(EVCNT_TYPE_MISC,
115 1.64 thorpej NULL, "sosend", "copy big");
116 1.113 thorpej static struct evcnt sosend_copy_small = EVCNT_INITIALIZER(EVCNT_TYPE_MISC,
117 1.64 thorpej NULL, "sosend", "copy small");
118 1.113 thorpej static struct evcnt sosend_kvalimit = EVCNT_INITIALIZER(EVCNT_TYPE_MISC,
119 1.64 thorpej NULL, "sosend", "kva limit");
120 1.64 thorpej
121 1.64 thorpej #define SOSEND_COUNTER_INCR(ev) (ev)->ev_count++
122 1.64 thorpej
123 1.101 matt EVCNT_ATTACH_STATIC(sosend_loan_big);
124 1.101 matt EVCNT_ATTACH_STATIC(sosend_copy_big);
125 1.101 matt EVCNT_ATTACH_STATIC(sosend_copy_small);
126 1.101 matt EVCNT_ATTACH_STATIC(sosend_kvalimit);
127 1.64 thorpej #else
128 1.64 thorpej
129 1.64 thorpej #define SOSEND_COUNTER_INCR(ev) /* nothing */
130 1.64 thorpej
131 1.64 thorpej #endif /* SOSEND_COUNTERS */
132 1.64 thorpej
133 1.119 yamt static struct callback_entry sokva_reclaimerentry;
134 1.1 cgd
135 1.71 thorpej #ifdef SOSEND_NO_LOAN
136 1.121 yamt int sock_loan_thresh = -1;
137 1.71 thorpej #else
138 1.121 yamt int sock_loan_thresh = 4096;
139 1.65 thorpej #endif
140 1.64 thorpej
141 1.134.2.1 ad static kmutex_t so_pendfree_lock;
142 1.113 thorpej static struct mbuf *so_pendfree;
143 1.64 thorpej
144 1.84 ragge #ifndef SOMAXKVA
145 1.84 ragge #define SOMAXKVA (16 * 1024 * 1024)
146 1.84 ragge #endif
147 1.84 ragge int somaxkva = SOMAXKVA;
148 1.113 thorpej static int socurkva;
149 1.134.2.1 ad static kcondvar_t socurkva_cv;
150 1.64 thorpej
151 1.64 thorpej #define SOCK_LOAN_CHUNK 65536
152 1.64 thorpej
153 1.117 yamt static size_t sodopendfree(void);
154 1.117 yamt static size_t sodopendfreel(void);
155 1.93 yamt
156 1.113 thorpej static vsize_t
157 1.129 yamt sokvareserve(struct socket *so, vsize_t len)
158 1.80 yamt {
159 1.98 christos int error;
160 1.80 yamt
161 1.134.2.1 ad mutex_enter(&so_pendfree_lock);
162 1.80 yamt while (socurkva + len > somaxkva) {
163 1.93 yamt size_t freed;
164 1.93 yamt
165 1.93 yamt /*
166 1.93 yamt * try to do pendfree.
167 1.93 yamt */
168 1.93 yamt
169 1.117 yamt freed = sodopendfreel();
170 1.93 yamt
171 1.93 yamt /*
172 1.93 yamt * if some kva was freed, try again.
173 1.93 yamt */
174 1.93 yamt
175 1.93 yamt if (freed)
176 1.80 yamt continue;
177 1.93 yamt
178 1.80 yamt SOSEND_COUNTER_INCR(&sosend_kvalimit);
179 1.134.2.1 ad error = cv_wait_sig(&socurkva_cv, &so_pendfree_lock);
180 1.98 christos if (error) {
181 1.98 christos len = 0;
182 1.98 christos break;
183 1.98 christos }
184 1.80 yamt }
185 1.93 yamt socurkva += len;
186 1.134.2.1 ad mutex_exit(&so_pendfree_lock);
187 1.98 christos return len;
188 1.95 yamt }
189 1.95 yamt
190 1.113 thorpej static void
191 1.95 yamt sokvaunreserve(vsize_t len)
192 1.95 yamt {
193 1.95 yamt
194 1.134.2.1 ad mutex_enter(&so_pendfree_lock);
195 1.95 yamt socurkva -= len;
196 1.134.2.1 ad cv_broadcast(&socurkva_cv);
197 1.134.2.1 ad mutex_exit(&so_pendfree_lock);
198 1.95 yamt }
199 1.95 yamt
200 1.95 yamt /*
201 1.95 yamt * sokvaalloc: allocate kva for loan.
202 1.95 yamt */
203 1.95 yamt
204 1.95 yamt vaddr_t
205 1.95 yamt sokvaalloc(vsize_t len, struct socket *so)
206 1.95 yamt {
207 1.95 yamt vaddr_t lva;
208 1.95 yamt
209 1.95 yamt /*
210 1.95 yamt * reserve kva.
211 1.95 yamt */
212 1.95 yamt
213 1.98 christos if (sokvareserve(so, len) == 0)
214 1.98 christos return 0;
215 1.93 yamt
216 1.93 yamt /*
217 1.93 yamt * allocate kva.
218 1.93 yamt */
219 1.80 yamt
220 1.109 yamt lva = uvm_km_alloc(kernel_map, len, 0, UVM_KMF_VAONLY | UVM_KMF_WAITVA);
221 1.95 yamt if (lva == 0) {
222 1.95 yamt sokvaunreserve(len);
223 1.80 yamt return (0);
224 1.95 yamt }
225 1.80 yamt
226 1.80 yamt return lva;
227 1.80 yamt }
228 1.80 yamt
229 1.93 yamt /*
230 1.93 yamt * sokvafree: free kva for loan.
231 1.93 yamt */
232 1.93 yamt
233 1.80 yamt void
234 1.80 yamt sokvafree(vaddr_t sva, vsize_t len)
235 1.80 yamt {
236 1.93 yamt
237 1.93 yamt /*
238 1.93 yamt * free kva.
239 1.93 yamt */
240 1.80 yamt
241 1.109 yamt uvm_km_free(kernel_map, sva, len, UVM_KMF_VAONLY);
242 1.93 yamt
243 1.93 yamt /*
244 1.93 yamt * unreserve kva.
245 1.93 yamt */
246 1.93 yamt
247 1.95 yamt sokvaunreserve(len);
248 1.80 yamt }
249 1.80 yamt
250 1.64 thorpej static void
251 1.134 christos sodoloanfree(struct vm_page **pgs, void *buf, size_t size)
252 1.64 thorpej {
253 1.64 thorpej vaddr_t va, sva, eva;
254 1.64 thorpej vsize_t len;
255 1.64 thorpej paddr_t pa;
256 1.64 thorpej int i, npgs;
257 1.64 thorpej
258 1.64 thorpej eva = round_page((vaddr_t) buf + size);
259 1.64 thorpej sva = trunc_page((vaddr_t) buf);
260 1.64 thorpej len = eva - sva;
261 1.64 thorpej npgs = len >> PAGE_SHIFT;
262 1.64 thorpej
263 1.79 thorpej if (__predict_false(pgs == NULL)) {
264 1.79 thorpej pgs = alloca(npgs * sizeof(*pgs));
265 1.64 thorpej
266 1.79 thorpej for (i = 0, va = sva; va < eva; i++, va += PAGE_SIZE) {
267 1.133 thorpej if (pmap_extract(pmap_kernel(), va, &pa) == false)
268 1.79 thorpej panic("sodoloanfree: va 0x%lx not mapped", va);
269 1.79 thorpej pgs[i] = PHYS_TO_VM_PAGE(pa);
270 1.79 thorpej }
271 1.64 thorpej }
272 1.64 thorpej
273 1.64 thorpej pmap_kremove(sva, len);
274 1.64 thorpej pmap_update(pmap_kernel());
275 1.64 thorpej uvm_unloan(pgs, npgs, UVM_LOAN_TOPAGE);
276 1.80 yamt sokvafree(sva, len);
277 1.64 thorpej }
278 1.64 thorpej
279 1.64 thorpej static size_t
280 1.117 yamt sodopendfree()
281 1.64 thorpej {
282 1.93 yamt size_t rv;
283 1.64 thorpej
284 1.134.2.1 ad mutex_enter(&so_pendfree_lock);
285 1.117 yamt rv = sodopendfreel();
286 1.134.2.1 ad mutex_exit(&so_pendfree_lock);
287 1.93 yamt
288 1.93 yamt return rv;
289 1.93 yamt }
290 1.93 yamt
291 1.93 yamt /*
292 1.93 yamt * sodopendfreel: free mbufs on "pendfree" list.
293 1.134.2.1 ad * unlock and relock so_pendfree_lock when freeing mbufs.
294 1.93 yamt *
295 1.134.2.1 ad * => called with so_pendfree_lock held.
296 1.93 yamt */
297 1.93 yamt
298 1.93 yamt static size_t
299 1.117 yamt sodopendfreel()
300 1.93 yamt {
301 1.134.2.2 ad struct mbuf *m, *next;
302 1.93 yamt size_t rv = 0;
303 1.134.2.2 ad int s;
304 1.93 yamt
305 1.134.2.1 ad KASSERT(mutex_owned(&so_pendfree_lock));
306 1.64 thorpej
307 1.134.2.2 ad while (so_pendfree != NULL) {
308 1.64 thorpej m = so_pendfree;
309 1.93 yamt so_pendfree = NULL;
310 1.134.2.1 ad mutex_exit(&so_pendfree_lock);
311 1.93 yamt
312 1.93 yamt for (; m != NULL; m = next) {
313 1.93 yamt next = m->m_next;
314 1.93 yamt
315 1.93 yamt rv += m->m_ext.ext_size;
316 1.93 yamt sodoloanfree((m->m_flags & M_EXT_PAGES) ?
317 1.93 yamt m->m_ext.ext_pgs : NULL, m->m_ext.ext_buf,
318 1.93 yamt m->m_ext.ext_size);
319 1.134.2.2 ad s = splvm();
320 1.93 yamt pool_cache_put(&mbpool_cache, m);
321 1.134.2.2 ad splx(s);
322 1.93 yamt }
323 1.64 thorpej
324 1.134.2.1 ad mutex_enter(&so_pendfree_lock);
325 1.64 thorpej }
326 1.64 thorpej
327 1.64 thorpej return (rv);
328 1.64 thorpej }
329 1.64 thorpej
330 1.80 yamt void
331 1.134 christos soloanfree(struct mbuf *m, void *buf, size_t size, void *arg)
332 1.64 thorpej {
333 1.64 thorpej
334 1.64 thorpej if (m == NULL) {
335 1.93 yamt
336 1.93 yamt /*
337 1.93 yamt * called from MEXTREMOVE.
338 1.93 yamt */
339 1.93 yamt
340 1.79 thorpej sodoloanfree(NULL, buf, size);
341 1.64 thorpej return;
342 1.64 thorpej }
343 1.64 thorpej
344 1.93 yamt /*
345 1.93 yamt * postpone freeing mbuf.
346 1.93 yamt *
347 1.93 yamt * we can't do it in interrupt context
348 1.93 yamt * because we need to put kva back to kernel_map.
349 1.93 yamt */
350 1.93 yamt
351 1.134.2.1 ad mutex_enter(&so_pendfree_lock);
352 1.92 yamt m->m_next = so_pendfree;
353 1.92 yamt so_pendfree = m;
354 1.134.2.1 ad cv_broadcast(&socurkva_cv);
355 1.134.2.1 ad mutex_exit(&so_pendfree_lock);
356 1.64 thorpej }
357 1.64 thorpej
358 1.64 thorpej static long
359 1.64 thorpej sosend_loan(struct socket *so, struct uio *uio, struct mbuf *m, long space)
360 1.64 thorpej {
361 1.64 thorpej struct iovec *iov = uio->uio_iov;
362 1.64 thorpej vaddr_t sva, eva;
363 1.64 thorpej vsize_t len;
364 1.64 thorpej vaddr_t lva, va;
365 1.80 yamt int npgs, i, error;
366 1.64 thorpej
367 1.116 yamt if (VMSPACE_IS_KERNEL_P(uio->uio_vmspace))
368 1.64 thorpej return (0);
369 1.64 thorpej
370 1.64 thorpej if (iov->iov_len < (size_t) space)
371 1.64 thorpej space = iov->iov_len;
372 1.64 thorpej if (space > SOCK_LOAN_CHUNK)
373 1.64 thorpej space = SOCK_LOAN_CHUNK;
374 1.64 thorpej
375 1.64 thorpej eva = round_page((vaddr_t) iov->iov_base + space);
376 1.64 thorpej sva = trunc_page((vaddr_t) iov->iov_base);
377 1.64 thorpej len = eva - sva;
378 1.64 thorpej npgs = len >> PAGE_SHIFT;
379 1.64 thorpej
380 1.79 thorpej /* XXX KDASSERT */
381 1.79 thorpej KASSERT(npgs <= M_EXT_MAXPAGES);
382 1.79 thorpej
383 1.80 yamt lva = sokvaalloc(len, so);
384 1.64 thorpej if (lva == 0)
385 1.80 yamt return 0;
386 1.64 thorpej
387 1.116 yamt error = uvm_loan(&uio->uio_vmspace->vm_map, sva, len,
388 1.79 thorpej m->m_ext.ext_pgs, UVM_LOAN_TOPAGE);
389 1.64 thorpej if (error) {
390 1.80 yamt sokvafree(lva, len);
391 1.64 thorpej return (0);
392 1.64 thorpej }
393 1.64 thorpej
394 1.64 thorpej for (i = 0, va = lva; i < npgs; i++, va += PAGE_SIZE)
395 1.79 thorpej pmap_kenter_pa(va, VM_PAGE_TO_PHYS(m->m_ext.ext_pgs[i]),
396 1.79 thorpej VM_PROT_READ);
397 1.64 thorpej pmap_update(pmap_kernel());
398 1.64 thorpej
399 1.64 thorpej lva += (vaddr_t) iov->iov_base & PAGE_MASK;
400 1.64 thorpej
401 1.134 christos MEXTADD(m, (void *) lva, space, M_MBUF, soloanfree, so);
402 1.79 thorpej m->m_flags |= M_EXT_PAGES | M_EXT_ROMAP;
403 1.64 thorpej
404 1.64 thorpej uio->uio_resid -= space;
405 1.64 thorpej /* uio_offset not updated, not set/used for write(2) */
406 1.134 christos uio->uio_iov->iov_base = (char *)uio->uio_iov->iov_base + space;
407 1.64 thorpej uio->uio_iov->iov_len -= space;
408 1.64 thorpej if (uio->uio_iov->iov_len == 0) {
409 1.64 thorpej uio->uio_iov++;
410 1.64 thorpej uio->uio_iovcnt--;
411 1.64 thorpej }
412 1.64 thorpej
413 1.64 thorpej return (space);
414 1.64 thorpej }
415 1.64 thorpej
416 1.119 yamt static int
417 1.129 yamt sokva_reclaim_callback(struct callback_entry *ce, void *obj, void *arg)
418 1.119 yamt {
419 1.119 yamt
420 1.119 yamt KASSERT(ce == &sokva_reclaimerentry);
421 1.119 yamt KASSERT(obj == NULL);
422 1.119 yamt
423 1.119 yamt sodopendfree();
424 1.119 yamt if (!vm_map_starved_p(kernel_map)) {
425 1.119 yamt return CALLBACK_CHAIN_ABORT;
426 1.119 yamt }
427 1.119 yamt return CALLBACK_CHAIN_CONTINUE;
428 1.119 yamt }
429 1.119 yamt
430 1.119 yamt void
431 1.119 yamt soinit(void)
432 1.119 yamt {
433 1.119 yamt
434 1.134.2.1 ad mutex_init(&so_pendfree_lock, MUTEX_DRIVER, IPL_VM);
435 1.134.2.1 ad cv_init(&socurkva_cv, "sokva");
436 1.134.2.1 ad
437 1.119 yamt /* Set the initial adjusted socket buffer size. */
438 1.119 yamt if (sb_max_set(sb_max))
439 1.119 yamt panic("bad initial sb_max value: %lu", sb_max);
440 1.119 yamt
441 1.119 yamt callback_register(&vm_map_to_kernel(kernel_map)->vmk_reclaim_callback,
442 1.119 yamt &sokva_reclaimerentry, NULL, sokva_reclaim_callback);
443 1.119 yamt }
444 1.119 yamt
445 1.1 cgd /*
446 1.1 cgd * Socket operation routines.
447 1.1 cgd * These routines are called by the routines in
448 1.1 cgd * sys_socket.c or from a system process, and
449 1.1 cgd * implement the semantics of socket operations by
450 1.1 cgd * switching out to the protocol specific routines.
451 1.1 cgd */
452 1.1 cgd /*ARGSUSED*/
453 1.3 andrew int
454 1.114 christos socreate(int dom, struct socket **aso, int type, int proto, struct lwp *l)
455 1.1 cgd {
456 1.99 matt const struct protosw *prp;
457 1.54 lukem struct socket *so;
458 1.115 yamt uid_t uid;
459 1.54 lukem int error, s;
460 1.1 cgd
461 1.132 elad error = kauth_authorize_network(l->l_cred, KAUTH_NETWORK_SOCKET,
462 1.132 elad KAUTH_REQ_NETWORK_SOCKET_OPEN, KAUTH_ARG(dom), KAUTH_ARG(type),
463 1.132 elad KAUTH_ARG(proto));
464 1.132 elad if (error)
465 1.132 elad return (error);
466 1.127 elad
467 1.1 cgd if (proto)
468 1.1 cgd prp = pffindproto(dom, proto, type);
469 1.1 cgd else
470 1.1 cgd prp = pffindtype(dom, type);
471 1.120 ginsbach if (prp == 0) {
472 1.120 ginsbach /* no support for domain */
473 1.120 ginsbach if (pffinddomain(dom) == 0)
474 1.120 ginsbach return (EAFNOSUPPORT);
475 1.120 ginsbach /* no support for socket type */
476 1.120 ginsbach if (proto == 0 && type != 0)
477 1.120 ginsbach return (EPROTOTYPE);
478 1.120 ginsbach return (EPROTONOSUPPORT);
479 1.120 ginsbach }
480 1.120 ginsbach if (prp->pr_usrreq == 0)
481 1.1 cgd return (EPROTONOSUPPORT);
482 1.1 cgd if (prp->pr_type != type)
483 1.1 cgd return (EPROTOTYPE);
484 1.39 matt s = splsoftnet();
485 1.37 thorpej so = pool_get(&socket_pool, PR_WAITOK);
486 1.134 christos memset((void *)so, 0, sizeof(*so));
487 1.31 thorpej TAILQ_INIT(&so->so_q0);
488 1.31 thorpej TAILQ_INIT(&so->so_q);
489 1.1 cgd so->so_type = type;
490 1.1 cgd so->so_proto = prp;
491 1.33 matt so->so_send = sosend;
492 1.33 matt so->so_receive = soreceive;
493 1.78 matt #ifdef MBUFTRACE
494 1.78 matt so->so_rcv.sb_mowner = &prp->pr_domain->dom_mowner;
495 1.78 matt so->so_snd.sb_mowner = &prp->pr_domain->dom_mowner;
496 1.78 matt so->so_mowner = &prp->pr_domain->dom_mowner;
497 1.78 matt #endif
498 1.134.2.2 ad uid = kauth_cred_geteuid(l->l_cred);
499 1.115 yamt so->so_uidinfo = uid_find(uid);
500 1.22 mycroft error = (*prp->pr_usrreq)(so, PRU_ATTACH, (struct mbuf *)0,
501 1.114 christos (struct mbuf *)(long)proto, (struct mbuf *)0, l);
502 1.1 cgd if (error) {
503 1.1 cgd so->so_state |= SS_NOFDREF;
504 1.1 cgd sofree(so);
505 1.39 matt splx(s);
506 1.1 cgd return (error);
507 1.1 cgd }
508 1.39 matt splx(s);
509 1.1 cgd *aso = so;
510 1.1 cgd return (0);
511 1.1 cgd }
512 1.1 cgd
513 1.3 andrew int
514 1.114 christos sobind(struct socket *so, struct mbuf *nam, struct lwp *l)
515 1.1 cgd {
516 1.54 lukem int s, error;
517 1.1 cgd
518 1.54 lukem s = splsoftnet();
519 1.22 mycroft error = (*so->so_proto->pr_usrreq)(so, PRU_BIND, (struct mbuf *)0,
520 1.114 christos nam, (struct mbuf *)0, l);
521 1.1 cgd splx(s);
522 1.1 cgd return (error);
523 1.1 cgd }
524 1.1 cgd
525 1.3 andrew int
526 1.54 lukem solisten(struct socket *so, int backlog)
527 1.1 cgd {
528 1.54 lukem int s, error;
529 1.1 cgd
530 1.54 lukem s = splsoftnet();
531 1.22 mycroft error = (*so->so_proto->pr_usrreq)(so, PRU_LISTEN, (struct mbuf *)0,
532 1.114 christos (struct mbuf *)0, (struct mbuf *)0, (struct lwp *)0);
533 1.1 cgd if (error) {
534 1.1 cgd splx(s);
535 1.1 cgd return (error);
536 1.1 cgd }
537 1.63 matt if (TAILQ_EMPTY(&so->so_q))
538 1.1 cgd so->so_options |= SO_ACCEPTCONN;
539 1.1 cgd if (backlog < 0)
540 1.1 cgd backlog = 0;
541 1.49 jonathan so->so_qlimit = min(backlog, somaxconn);
542 1.1 cgd splx(s);
543 1.1 cgd return (0);
544 1.1 cgd }
545 1.1 cgd
546 1.21 christos void
547 1.54 lukem sofree(struct socket *so)
548 1.1 cgd {
549 1.1 cgd
550 1.43 mycroft if (so->so_pcb || (so->so_state & SS_NOFDREF) == 0)
551 1.1 cgd return;
552 1.43 mycroft if (so->so_head) {
553 1.43 mycroft /*
554 1.43 mycroft * We must not decommission a socket that's on the accept(2)
555 1.43 mycroft * queue. If we do, then accept(2) may hang after select(2)
556 1.43 mycroft * indicated that the listening socket was ready.
557 1.43 mycroft */
558 1.43 mycroft if (!soqremque(so, 0))
559 1.43 mycroft return;
560 1.43 mycroft }
561 1.98 christos if (so->so_rcv.sb_hiwat)
562 1.110 christos (void)chgsbsize(so->so_uidinfo, &so->so_rcv.sb_hiwat, 0,
563 1.98 christos RLIM_INFINITY);
564 1.98 christos if (so->so_snd.sb_hiwat)
565 1.110 christos (void)chgsbsize(so->so_uidinfo, &so->so_snd.sb_hiwat, 0,
566 1.98 christos RLIM_INFINITY);
567 1.98 christos sbrelease(&so->so_snd, so);
568 1.1 cgd sorflush(so);
569 1.37 thorpej pool_put(&socket_pool, so);
570 1.1 cgd }
571 1.1 cgd
572 1.1 cgd /*
573 1.1 cgd * Close a socket on last file table reference removal.
574 1.1 cgd * Initiate disconnect if connected.
575 1.1 cgd * Free socket when disconnect complete.
576 1.1 cgd */
577 1.3 andrew int
578 1.54 lukem soclose(struct socket *so)
579 1.1 cgd {
580 1.54 lukem struct socket *so2;
581 1.54 lukem int s, error;
582 1.1 cgd
583 1.54 lukem error = 0;
584 1.54 lukem s = splsoftnet(); /* conservative */
585 1.1 cgd if (so->so_options & SO_ACCEPTCONN) {
586 1.63 matt while ((so2 = TAILQ_FIRST(&so->so_q0)) != 0) {
587 1.42 mycroft (void) soqremque(so2, 0);
588 1.41 mycroft (void) soabort(so2);
589 1.41 mycroft }
590 1.63 matt while ((so2 = TAILQ_FIRST(&so->so_q)) != 0) {
591 1.42 mycroft (void) soqremque(so2, 1);
592 1.41 mycroft (void) soabort(so2);
593 1.41 mycroft }
594 1.1 cgd }
595 1.1 cgd if (so->so_pcb == 0)
596 1.1 cgd goto discard;
597 1.1 cgd if (so->so_state & SS_ISCONNECTED) {
598 1.1 cgd if ((so->so_state & SS_ISDISCONNECTING) == 0) {
599 1.1 cgd error = sodisconnect(so);
600 1.1 cgd if (error)
601 1.1 cgd goto drop;
602 1.1 cgd }
603 1.1 cgd if (so->so_options & SO_LINGER) {
604 1.1 cgd if ((so->so_state & SS_ISDISCONNECTING) &&
605 1.1 cgd (so->so_state & SS_NBIO))
606 1.1 cgd goto drop;
607 1.21 christos while (so->so_state & SS_ISCONNECTED) {
608 1.134 christos error = tsleep((void *)&so->so_timeo,
609 1.21 christos PSOCK | PCATCH, netcls,
610 1.30 thorpej so->so_linger * hz);
611 1.21 christos if (error)
612 1.1 cgd break;
613 1.21 christos }
614 1.1 cgd }
615 1.1 cgd }
616 1.54 lukem drop:
617 1.1 cgd if (so->so_pcb) {
618 1.22 mycroft int error2 = (*so->so_proto->pr_usrreq)(so, PRU_DETACH,
619 1.22 mycroft (struct mbuf *)0, (struct mbuf *)0, (struct mbuf *)0,
620 1.114 christos (struct lwp *)0);
621 1.1 cgd if (error == 0)
622 1.1 cgd error = error2;
623 1.1 cgd }
624 1.54 lukem discard:
625 1.1 cgd if (so->so_state & SS_NOFDREF)
626 1.1 cgd panic("soclose: NOFDREF");
627 1.1 cgd so->so_state |= SS_NOFDREF;
628 1.1 cgd sofree(so);
629 1.1 cgd splx(s);
630 1.1 cgd return (error);
631 1.1 cgd }
632 1.1 cgd
633 1.1 cgd /*
634 1.20 mycroft * Must be called at splsoftnet...
635 1.1 cgd */
636 1.3 andrew int
637 1.54 lukem soabort(struct socket *so)
638 1.1 cgd {
639 1.1 cgd
640 1.22 mycroft return (*so->so_proto->pr_usrreq)(so, PRU_ABORT, (struct mbuf *)0,
641 1.114 christos (struct mbuf *)0, (struct mbuf *)0, (struct lwp *)0);
642 1.1 cgd }
643 1.1 cgd
644 1.3 andrew int
645 1.54 lukem soaccept(struct socket *so, struct mbuf *nam)
646 1.1 cgd {
647 1.54 lukem int s, error;
648 1.1 cgd
649 1.54 lukem error = 0;
650 1.54 lukem s = splsoftnet();
651 1.1 cgd if ((so->so_state & SS_NOFDREF) == 0)
652 1.1 cgd panic("soaccept: !NOFDREF");
653 1.1 cgd so->so_state &= ~SS_NOFDREF;
654 1.55 thorpej if ((so->so_state & SS_ISDISCONNECTED) == 0 ||
655 1.55 thorpej (so->so_proto->pr_flags & PR_ABRTACPTDIS) == 0)
656 1.41 mycroft error = (*so->so_proto->pr_usrreq)(so, PRU_ACCEPT,
657 1.114 christos (struct mbuf *)0, nam, (struct mbuf *)0, (struct lwp *)0);
658 1.41 mycroft else
659 1.53 itojun error = ECONNABORTED;
660 1.52 itojun
661 1.1 cgd splx(s);
662 1.1 cgd return (error);
663 1.1 cgd }
664 1.1 cgd
665 1.3 andrew int
666 1.114 christos soconnect(struct socket *so, struct mbuf *nam, struct lwp *l)
667 1.1 cgd {
668 1.54 lukem int s, error;
669 1.1 cgd
670 1.1 cgd if (so->so_options & SO_ACCEPTCONN)
671 1.1 cgd return (EOPNOTSUPP);
672 1.20 mycroft s = splsoftnet();
673 1.1 cgd /*
674 1.1 cgd * If protocol is connection-based, can only connect once.
675 1.1 cgd * Otherwise, if connected, try to disconnect first.
676 1.1 cgd * This allows user to disconnect by connecting to, e.g.,
677 1.1 cgd * a null address.
678 1.1 cgd */
679 1.1 cgd if (so->so_state & (SS_ISCONNECTED|SS_ISCONNECTING) &&
680 1.1 cgd ((so->so_proto->pr_flags & PR_CONNREQUIRED) ||
681 1.1 cgd (error = sodisconnect(so))))
682 1.1 cgd error = EISCONN;
683 1.1 cgd else
684 1.1 cgd error = (*so->so_proto->pr_usrreq)(so, PRU_CONNECT,
685 1.114 christos (struct mbuf *)0, nam, (struct mbuf *)0, l);
686 1.1 cgd splx(s);
687 1.1 cgd return (error);
688 1.1 cgd }
689 1.1 cgd
690 1.3 andrew int
691 1.54 lukem soconnect2(struct socket *so1, struct socket *so2)
692 1.1 cgd {
693 1.54 lukem int s, error;
694 1.1 cgd
695 1.54 lukem s = splsoftnet();
696 1.22 mycroft error = (*so1->so_proto->pr_usrreq)(so1, PRU_CONNECT2,
697 1.22 mycroft (struct mbuf *)0, (struct mbuf *)so2, (struct mbuf *)0,
698 1.114 christos (struct lwp *)0);
699 1.1 cgd splx(s);
700 1.1 cgd return (error);
701 1.1 cgd }
702 1.1 cgd
703 1.3 andrew int
704 1.54 lukem sodisconnect(struct socket *so)
705 1.1 cgd {
706 1.54 lukem int s, error;
707 1.1 cgd
708 1.54 lukem s = splsoftnet();
709 1.1 cgd if ((so->so_state & SS_ISCONNECTED) == 0) {
710 1.1 cgd error = ENOTCONN;
711 1.1 cgd goto bad;
712 1.1 cgd }
713 1.1 cgd if (so->so_state & SS_ISDISCONNECTING) {
714 1.1 cgd error = EALREADY;
715 1.1 cgd goto bad;
716 1.1 cgd }
717 1.22 mycroft error = (*so->so_proto->pr_usrreq)(so, PRU_DISCONNECT,
718 1.22 mycroft (struct mbuf *)0, (struct mbuf *)0, (struct mbuf *)0,
719 1.114 christos (struct lwp *)0);
720 1.54 lukem bad:
721 1.1 cgd splx(s);
722 1.117 yamt sodopendfree();
723 1.1 cgd return (error);
724 1.1 cgd }
725 1.1 cgd
726 1.15 mycroft #define SBLOCKWAIT(f) (((f) & MSG_DONTWAIT) ? M_NOWAIT : M_WAITOK)
727 1.1 cgd /*
728 1.1 cgd * Send on a socket.
729 1.1 cgd * If send must go all at once and message is larger than
730 1.1 cgd * send buffering, then hard error.
731 1.1 cgd * Lock against other senders.
732 1.1 cgd * If must go all at once and not enough room now, then
733 1.1 cgd * inform user that this would block and do nothing.
734 1.1 cgd * Otherwise, if nonblocking, send as much as possible.
735 1.1 cgd * The data to be sent is described by "uio" if nonzero,
736 1.1 cgd * otherwise by the mbuf chain "top" (which must be null
737 1.1 cgd * if uio is not). Data provided in mbuf chain must be small
738 1.1 cgd * enough to send all at once.
739 1.1 cgd *
740 1.1 cgd * Returns nonzero on error, timeout or signal; callers
741 1.1 cgd * must check for short counts if EINTR/ERESTART are returned.
742 1.1 cgd * Data and control buffers are freed on return.
743 1.1 cgd */
744 1.3 andrew int
745 1.54 lukem sosend(struct socket *so, struct mbuf *addr, struct uio *uio, struct mbuf *top,
746 1.114 christos struct mbuf *control, int flags, struct lwp *l)
747 1.1 cgd {
748 1.54 lukem struct mbuf **mp, *m;
749 1.114 christos struct proc *p;
750 1.58 jdolecek long space, len, resid, clen, mlen;
751 1.58 jdolecek int error, s, dontroute, atomic;
752 1.54 lukem
753 1.114 christos p = l->l_proc;
754 1.117 yamt sodopendfree();
755 1.64 thorpej
756 1.54 lukem clen = 0;
757 1.54 lukem atomic = sosendallatonce(so) || top;
758 1.1 cgd if (uio)
759 1.1 cgd resid = uio->uio_resid;
760 1.1 cgd else
761 1.1 cgd resid = top->m_pkthdr.len;
762 1.7 cgd /*
763 1.7 cgd * In theory resid should be unsigned.
764 1.7 cgd * However, space must be signed, as it might be less than 0
765 1.7 cgd * if we over-committed, and we must use a signed comparison
766 1.7 cgd * of space and resid. On the other hand, a negative resid
767 1.7 cgd * causes us to loop sending 0-length segments to the protocol.
768 1.7 cgd */
769 1.29 mycroft if (resid < 0) {
770 1.29 mycroft error = EINVAL;
771 1.29 mycroft goto out;
772 1.29 mycroft }
773 1.1 cgd dontroute =
774 1.1 cgd (flags & MSG_DONTROUTE) && (so->so_options & SO_DONTROUTE) == 0 &&
775 1.1 cgd (so->so_proto->pr_flags & PR_ATOMIC);
776 1.102 jonathan if (p)
777 1.102 jonathan p->p_stats->p_ru.ru_msgsnd++;
778 1.1 cgd if (control)
779 1.1 cgd clen = control->m_len;
780 1.1 cgd #define snderr(errno) { error = errno; splx(s); goto release; }
781 1.1 cgd
782 1.54 lukem restart:
783 1.21 christos if ((error = sblock(&so->so_snd, SBLOCKWAIT(flags))) != 0)
784 1.1 cgd goto out;
785 1.1 cgd do {
786 1.20 mycroft s = splsoftnet();
787 1.1 cgd if (so->so_state & SS_CANTSENDMORE)
788 1.1 cgd snderr(EPIPE);
789 1.48 thorpej if (so->so_error) {
790 1.48 thorpej error = so->so_error;
791 1.48 thorpej so->so_error = 0;
792 1.48 thorpej splx(s);
793 1.48 thorpej goto release;
794 1.48 thorpej }
795 1.1 cgd if ((so->so_state & SS_ISCONNECTED) == 0) {
796 1.1 cgd if (so->so_proto->pr_flags & PR_CONNREQUIRED) {
797 1.1 cgd if ((so->so_state & SS_ISCONFIRMING) == 0 &&
798 1.1 cgd !(resid == 0 && clen != 0))
799 1.1 cgd snderr(ENOTCONN);
800 1.1 cgd } else if (addr == 0)
801 1.1 cgd snderr(EDESTADDRREQ);
802 1.1 cgd }
803 1.1 cgd space = sbspace(&so->so_snd);
804 1.1 cgd if (flags & MSG_OOB)
805 1.1 cgd space += 1024;
806 1.21 christos if ((atomic && resid > so->so_snd.sb_hiwat) ||
807 1.11 mycroft clen > so->so_snd.sb_hiwat)
808 1.11 mycroft snderr(EMSGSIZE);
809 1.96 mycroft if (space < resid + clen &&
810 1.1 cgd (atomic || space < so->so_snd.sb_lowat || space < clen)) {
811 1.1 cgd if (so->so_state & SS_NBIO)
812 1.1 cgd snderr(EWOULDBLOCK);
813 1.1 cgd sbunlock(&so->so_snd);
814 1.1 cgd error = sbwait(&so->so_snd);
815 1.1 cgd splx(s);
816 1.1 cgd if (error)
817 1.1 cgd goto out;
818 1.1 cgd goto restart;
819 1.1 cgd }
820 1.1 cgd splx(s);
821 1.1 cgd mp = ⊤
822 1.1 cgd space -= clen;
823 1.1 cgd do {
824 1.45 tv if (uio == NULL) {
825 1.45 tv /*
826 1.45 tv * Data is prepackaged in "top".
827 1.45 tv */
828 1.45 tv resid = 0;
829 1.45 tv if (flags & MSG_EOR)
830 1.45 tv top->m_flags |= M_EOR;
831 1.45 tv } else do {
832 1.45 tv if (top == 0) {
833 1.78 matt m = m_gethdr(M_WAIT, MT_DATA);
834 1.45 tv mlen = MHLEN;
835 1.45 tv m->m_pkthdr.len = 0;
836 1.45 tv m->m_pkthdr.rcvif = (struct ifnet *)0;
837 1.45 tv } else {
838 1.78 matt m = m_get(M_WAIT, MT_DATA);
839 1.45 tv mlen = MLEN;
840 1.45 tv }
841 1.78 matt MCLAIM(m, so->so_snd.sb_mowner);
842 1.121 yamt if (sock_loan_thresh >= 0 &&
843 1.121 yamt uio->uio_iov->iov_len >= sock_loan_thresh &&
844 1.121 yamt space >= sock_loan_thresh &&
845 1.64 thorpej (len = sosend_loan(so, uio, m,
846 1.64 thorpej space)) != 0) {
847 1.64 thorpej SOSEND_COUNTER_INCR(&sosend_loan_big);
848 1.64 thorpej space -= len;
849 1.64 thorpej goto have_data;
850 1.64 thorpej }
851 1.45 tv if (resid >= MINCLSIZE && space >= MCLBYTES) {
852 1.64 thorpej SOSEND_COUNTER_INCR(&sosend_copy_big);
853 1.78 matt m_clget(m, M_WAIT);
854 1.45 tv if ((m->m_flags & M_EXT) == 0)
855 1.45 tv goto nopages;
856 1.45 tv mlen = MCLBYTES;
857 1.45 tv if (atomic && top == 0) {
858 1.58 jdolecek len = lmin(MCLBYTES - max_hdr,
859 1.54 lukem resid);
860 1.45 tv m->m_data += max_hdr;
861 1.45 tv } else
862 1.58 jdolecek len = lmin(MCLBYTES, resid);
863 1.45 tv space -= len;
864 1.45 tv } else {
865 1.64 thorpej nopages:
866 1.64 thorpej SOSEND_COUNTER_INCR(&sosend_copy_small);
867 1.58 jdolecek len = lmin(lmin(mlen, resid), space);
868 1.45 tv space -= len;
869 1.45 tv /*
870 1.45 tv * For datagram protocols, leave room
871 1.45 tv * for protocol headers in first mbuf.
872 1.45 tv */
873 1.45 tv if (atomic && top == 0 && len < mlen)
874 1.45 tv MH_ALIGN(m, len);
875 1.45 tv }
876 1.134 christos error = uiomove(mtod(m, void *), (int)len,
877 1.54 lukem uio);
878 1.64 thorpej have_data:
879 1.45 tv resid = uio->uio_resid;
880 1.45 tv m->m_len = len;
881 1.45 tv *mp = m;
882 1.45 tv top->m_pkthdr.len += len;
883 1.45 tv if (error)
884 1.45 tv goto release;
885 1.45 tv mp = &m->m_next;
886 1.45 tv if (resid <= 0) {
887 1.45 tv if (flags & MSG_EOR)
888 1.45 tv top->m_flags |= M_EOR;
889 1.45 tv break;
890 1.45 tv }
891 1.45 tv } while (space > 0 && atomic);
892 1.108 perry
893 1.46 sommerfe s = splsoftnet();
894 1.46 sommerfe
895 1.46 sommerfe if (so->so_state & SS_CANTSENDMORE)
896 1.46 sommerfe snderr(EPIPE);
897 1.45 tv
898 1.45 tv if (dontroute)
899 1.45 tv so->so_options |= SO_DONTROUTE;
900 1.45 tv if (resid > 0)
901 1.45 tv so->so_state |= SS_MORETOCOME;
902 1.46 sommerfe error = (*so->so_proto->pr_usrreq)(so,
903 1.46 sommerfe (flags & MSG_OOB) ? PRU_SENDOOB : PRU_SEND,
904 1.114 christos top, addr, control, curlwp); /* XXX */
905 1.45 tv if (dontroute)
906 1.45 tv so->so_options &= ~SO_DONTROUTE;
907 1.45 tv if (resid > 0)
908 1.45 tv so->so_state &= ~SS_MORETOCOME;
909 1.46 sommerfe splx(s);
910 1.46 sommerfe
911 1.45 tv clen = 0;
912 1.45 tv control = 0;
913 1.45 tv top = 0;
914 1.45 tv mp = ⊤
915 1.1 cgd if (error)
916 1.1 cgd goto release;
917 1.1 cgd } while (resid && space > 0);
918 1.1 cgd } while (resid);
919 1.1 cgd
920 1.54 lukem release:
921 1.1 cgd sbunlock(&so->so_snd);
922 1.54 lukem out:
923 1.1 cgd if (top)
924 1.1 cgd m_freem(top);
925 1.1 cgd if (control)
926 1.1 cgd m_freem(control);
927 1.1 cgd return (error);
928 1.1 cgd }
929 1.1 cgd
930 1.1 cgd /*
931 1.1 cgd * Implement receive operations on a socket.
932 1.1 cgd * We depend on the way that records are added to the sockbuf
933 1.1 cgd * by sbappend*. In particular, each record (mbufs linked through m_next)
934 1.1 cgd * must begin with an address if the protocol so specifies,
935 1.1 cgd * followed by an optional mbuf or mbufs containing ancillary data,
936 1.1 cgd * and then zero or more mbufs of data.
937 1.1 cgd * In order to avoid blocking network interrupts for the entire time here,
938 1.1 cgd * we splx() while doing the actual copy to user space.
939 1.1 cgd * Although the sockbuf is locked, new data may still be appended,
940 1.1 cgd * and thus we must maintain consistency of the sockbuf during that time.
941 1.1 cgd *
942 1.1 cgd * The caller may receive the data as a single mbuf chain by supplying
943 1.1 cgd * an mbuf **mp0 for use in returning the chain. The uio is then used
944 1.1 cgd * only for the count in uio_resid.
945 1.1 cgd */
946 1.3 andrew int
947 1.54 lukem soreceive(struct socket *so, struct mbuf **paddr, struct uio *uio,
948 1.54 lukem struct mbuf **mp0, struct mbuf **controlp, int *flagsp)
949 1.1 cgd {
950 1.116 yamt struct lwp *l = curlwp;
951 1.54 lukem struct mbuf *m, **mp;
952 1.54 lukem int flags, len, error, s, offset, moff, type, orig_resid;
953 1.99 matt const struct protosw *pr;
954 1.54 lukem struct mbuf *nextrecord;
955 1.67 he int mbuf_removed = 0;
956 1.64 thorpej
957 1.54 lukem pr = so->so_proto;
958 1.1 cgd mp = mp0;
959 1.54 lukem type = 0;
960 1.54 lukem orig_resid = uio->uio_resid;
961 1.102 jonathan
962 1.1 cgd if (paddr)
963 1.1 cgd *paddr = 0;
964 1.1 cgd if (controlp)
965 1.1 cgd *controlp = 0;
966 1.1 cgd if (flagsp)
967 1.1 cgd flags = *flagsp &~ MSG_EOR;
968 1.1 cgd else
969 1.1 cgd flags = 0;
970 1.66 enami
971 1.66 enami if ((flags & MSG_DONTWAIT) == 0)
972 1.117 yamt sodopendfree();
973 1.66 enami
974 1.1 cgd if (flags & MSG_OOB) {
975 1.1 cgd m = m_get(M_WAIT, MT_DATA);
976 1.17 cgd error = (*pr->pr_usrreq)(so, PRU_RCVOOB, m,
977 1.102 jonathan (struct mbuf *)(long)(flags & MSG_PEEK),
978 1.114 christos (struct mbuf *)0, l);
979 1.1 cgd if (error)
980 1.1 cgd goto bad;
981 1.1 cgd do {
982 1.134 christos error = uiomove(mtod(m, void *),
983 1.1 cgd (int) min(uio->uio_resid, m->m_len), uio);
984 1.1 cgd m = m_free(m);
985 1.1 cgd } while (uio->uio_resid && error == 0 && m);
986 1.54 lukem bad:
987 1.1 cgd if (m)
988 1.1 cgd m_freem(m);
989 1.1 cgd return (error);
990 1.1 cgd }
991 1.1 cgd if (mp)
992 1.1 cgd *mp = (struct mbuf *)0;
993 1.1 cgd if (so->so_state & SS_ISCONFIRMING && uio->uio_resid)
994 1.22 mycroft (*pr->pr_usrreq)(so, PRU_RCVD, (struct mbuf *)0,
995 1.114 christos (struct mbuf *)0, (struct mbuf *)0, l);
996 1.1 cgd
997 1.54 lukem restart:
998 1.21 christos if ((error = sblock(&so->so_rcv, SBLOCKWAIT(flags))) != 0)
999 1.1 cgd return (error);
1000 1.20 mycroft s = splsoftnet();
1001 1.1 cgd
1002 1.1 cgd m = so->so_rcv.sb_mb;
1003 1.1 cgd /*
1004 1.1 cgd * If we have less data than requested, block awaiting more
1005 1.1 cgd * (subject to any timeout) if:
1006 1.15 mycroft * 1. the current count is less than the low water mark,
1007 1.1 cgd * 2. MSG_WAITALL is set, and it is possible to do the entire
1008 1.15 mycroft * receive operation at once if we block (resid <= hiwat), or
1009 1.15 mycroft * 3. MSG_DONTWAIT is not set.
1010 1.1 cgd * If MSG_WAITALL is set but resid is larger than the receive buffer,
1011 1.1 cgd * we have to do the receive in sections, and thus risk returning
1012 1.1 cgd * a short count if a timeout or signal occurs after we start.
1013 1.1 cgd */
1014 1.21 christos if (m == 0 || (((flags & MSG_DONTWAIT) == 0 &&
1015 1.15 mycroft so->so_rcv.sb_cc < uio->uio_resid) &&
1016 1.1 cgd (so->so_rcv.sb_cc < so->so_rcv.sb_lowat ||
1017 1.1 cgd ((flags & MSG_WAITALL) && uio->uio_resid <= so->so_rcv.sb_hiwat)) &&
1018 1.21 christos m->m_nextpkt == 0 && (pr->pr_flags & PR_ATOMIC) == 0)) {
1019 1.1 cgd #ifdef DIAGNOSTIC
1020 1.1 cgd if (m == 0 && so->so_rcv.sb_cc)
1021 1.1 cgd panic("receive 1");
1022 1.1 cgd #endif
1023 1.1 cgd if (so->so_error) {
1024 1.1 cgd if (m)
1025 1.15 mycroft goto dontblock;
1026 1.1 cgd error = so->so_error;
1027 1.1 cgd if ((flags & MSG_PEEK) == 0)
1028 1.1 cgd so->so_error = 0;
1029 1.1 cgd goto release;
1030 1.1 cgd }
1031 1.1 cgd if (so->so_state & SS_CANTRCVMORE) {
1032 1.1 cgd if (m)
1033 1.15 mycroft goto dontblock;
1034 1.1 cgd else
1035 1.1 cgd goto release;
1036 1.1 cgd }
1037 1.1 cgd for (; m; m = m->m_next)
1038 1.1 cgd if (m->m_type == MT_OOBDATA || (m->m_flags & M_EOR)) {
1039 1.1 cgd m = so->so_rcv.sb_mb;
1040 1.1 cgd goto dontblock;
1041 1.1 cgd }
1042 1.1 cgd if ((so->so_state & (SS_ISCONNECTED|SS_ISCONNECTING)) == 0 &&
1043 1.1 cgd (so->so_proto->pr_flags & PR_CONNREQUIRED)) {
1044 1.1 cgd error = ENOTCONN;
1045 1.1 cgd goto release;
1046 1.1 cgd }
1047 1.1 cgd if (uio->uio_resid == 0)
1048 1.1 cgd goto release;
1049 1.15 mycroft if ((so->so_state & SS_NBIO) || (flags & MSG_DONTWAIT)) {
1050 1.1 cgd error = EWOULDBLOCK;
1051 1.1 cgd goto release;
1052 1.1 cgd }
1053 1.69 thorpej SBLASTRECORDCHK(&so->so_rcv, "soreceive sbwait 1");
1054 1.69 thorpej SBLASTMBUFCHK(&so->so_rcv, "soreceive sbwait 1");
1055 1.1 cgd sbunlock(&so->so_rcv);
1056 1.1 cgd error = sbwait(&so->so_rcv);
1057 1.1 cgd splx(s);
1058 1.1 cgd if (error)
1059 1.1 cgd return (error);
1060 1.1 cgd goto restart;
1061 1.1 cgd }
1062 1.54 lukem dontblock:
1063 1.69 thorpej /*
1064 1.69 thorpej * On entry here, m points to the first record of the socket buffer.
1065 1.69 thorpej * While we process the initial mbufs containing address and control
1066 1.69 thorpej * info, we save a copy of m->m_nextpkt into nextrecord.
1067 1.69 thorpej */
1068 1.114 christos if (l)
1069 1.114 christos l->l_proc->p_stats->p_ru.ru_msgrcv++;
1070 1.69 thorpej KASSERT(m == so->so_rcv.sb_mb);
1071 1.69 thorpej SBLASTRECORDCHK(&so->so_rcv, "soreceive 1");
1072 1.69 thorpej SBLASTMBUFCHK(&so->so_rcv, "soreceive 1");
1073 1.1 cgd nextrecord = m->m_nextpkt;
1074 1.1 cgd if (pr->pr_flags & PR_ADDR) {
1075 1.1 cgd #ifdef DIAGNOSTIC
1076 1.1 cgd if (m->m_type != MT_SONAME)
1077 1.1 cgd panic("receive 1a");
1078 1.1 cgd #endif
1079 1.3 andrew orig_resid = 0;
1080 1.1 cgd if (flags & MSG_PEEK) {
1081 1.1 cgd if (paddr)
1082 1.1 cgd *paddr = m_copy(m, 0, m->m_len);
1083 1.1 cgd m = m->m_next;
1084 1.1 cgd } else {
1085 1.1 cgd sbfree(&so->so_rcv, m);
1086 1.67 he mbuf_removed = 1;
1087 1.1 cgd if (paddr) {
1088 1.1 cgd *paddr = m;
1089 1.1 cgd so->so_rcv.sb_mb = m->m_next;
1090 1.1 cgd m->m_next = 0;
1091 1.1 cgd m = so->so_rcv.sb_mb;
1092 1.1 cgd } else {
1093 1.1 cgd MFREE(m, so->so_rcv.sb_mb);
1094 1.1 cgd m = so->so_rcv.sb_mb;
1095 1.1 cgd }
1096 1.1 cgd }
1097 1.1 cgd }
1098 1.1 cgd while (m && m->m_type == MT_CONTROL && error == 0) {
1099 1.1 cgd if (flags & MSG_PEEK) {
1100 1.1 cgd if (controlp)
1101 1.1 cgd *controlp = m_copy(m, 0, m->m_len);
1102 1.1 cgd m = m->m_next;
1103 1.1 cgd } else {
1104 1.1 cgd sbfree(&so->so_rcv, m);
1105 1.67 he mbuf_removed = 1;
1106 1.1 cgd if (controlp) {
1107 1.102 jonathan struct domain *dom = pr->pr_domain;
1108 1.114 christos if (dom->dom_externalize && l &&
1109 1.1 cgd mtod(m, struct cmsghdr *)->cmsg_type ==
1110 1.1 cgd SCM_RIGHTS)
1111 1.114 christos error = (*dom->dom_externalize)(m, l);
1112 1.1 cgd *controlp = m;
1113 1.1 cgd so->so_rcv.sb_mb = m->m_next;
1114 1.1 cgd m->m_next = 0;
1115 1.1 cgd m = so->so_rcv.sb_mb;
1116 1.1 cgd } else {
1117 1.106 itojun /*
1118 1.106 itojun * Dispose of any SCM_RIGHTS message that went
1119 1.106 itojun * through the read path rather than recv.
1120 1.106 itojun */
1121 1.106 itojun if (pr->pr_domain->dom_dispose &&
1122 1.106 itojun mtod(m, struct cmsghdr *)->cmsg_type == SCM_RIGHTS)
1123 1.106 itojun (*pr->pr_domain->dom_dispose)(m);
1124 1.1 cgd MFREE(m, so->so_rcv.sb_mb);
1125 1.1 cgd m = so->so_rcv.sb_mb;
1126 1.1 cgd }
1127 1.1 cgd }
1128 1.3 andrew if (controlp) {
1129 1.3 andrew orig_resid = 0;
1130 1.1 cgd controlp = &(*controlp)->m_next;
1131 1.3 andrew }
1132 1.1 cgd }
1133 1.69 thorpej
1134 1.69 thorpej /*
1135 1.69 thorpej * If m is non-NULL, we have some data to read. From now on,
1136 1.69 thorpej * make sure to keep sb_lastrecord consistent when working on
1137 1.69 thorpej * the last packet on the chain (nextrecord == NULL) and we
1138 1.69 thorpej * change m->m_nextpkt.
1139 1.69 thorpej */
1140 1.1 cgd if (m) {
1141 1.69 thorpej if ((flags & MSG_PEEK) == 0) {
1142 1.1 cgd m->m_nextpkt = nextrecord;
1143 1.69 thorpej /*
1144 1.69 thorpej * If nextrecord == NULL (this is a single chain),
1145 1.69 thorpej * then sb_lastrecord may not be valid here if m
1146 1.69 thorpej * was changed earlier.
1147 1.69 thorpej */
1148 1.69 thorpej if (nextrecord == NULL) {
1149 1.69 thorpej KASSERT(so->so_rcv.sb_mb == m);
1150 1.69 thorpej so->so_rcv.sb_lastrecord = m;
1151 1.69 thorpej }
1152 1.69 thorpej }
1153 1.1 cgd type = m->m_type;
1154 1.1 cgd if (type == MT_OOBDATA)
1155 1.1 cgd flags |= MSG_OOB;
1156 1.69 thorpej } else {
1157 1.69 thorpej if ((flags & MSG_PEEK) == 0) {
1158 1.69 thorpej KASSERT(so->so_rcv.sb_mb == m);
1159 1.69 thorpej so->so_rcv.sb_mb = nextrecord;
1160 1.70 thorpej SB_EMPTY_FIXUP(&so->so_rcv);
1161 1.69 thorpej }
1162 1.1 cgd }
1163 1.69 thorpej SBLASTRECORDCHK(&so->so_rcv, "soreceive 2");
1164 1.69 thorpej SBLASTMBUFCHK(&so->so_rcv, "soreceive 2");
1165 1.69 thorpej
1166 1.1 cgd moff = 0;
1167 1.1 cgd offset = 0;
1168 1.1 cgd while (m && uio->uio_resid > 0 && error == 0) {
1169 1.1 cgd if (m->m_type == MT_OOBDATA) {
1170 1.1 cgd if (type != MT_OOBDATA)
1171 1.1 cgd break;
1172 1.1 cgd } else if (type == MT_OOBDATA)
1173 1.1 cgd break;
1174 1.1 cgd #ifdef DIAGNOSTIC
1175 1.1 cgd else if (m->m_type != MT_DATA && m->m_type != MT_HEADER)
1176 1.1 cgd panic("receive 3");
1177 1.1 cgd #endif
1178 1.1 cgd so->so_state &= ~SS_RCVATMARK;
1179 1.1 cgd len = uio->uio_resid;
1180 1.1 cgd if (so->so_oobmark && len > so->so_oobmark - offset)
1181 1.1 cgd len = so->so_oobmark - offset;
1182 1.1 cgd if (len > m->m_len - moff)
1183 1.1 cgd len = m->m_len - moff;
1184 1.1 cgd /*
1185 1.1 cgd * If mp is set, just pass back the mbufs.
1186 1.1 cgd * Otherwise copy them out via the uio, then free.
1187 1.1 cgd * Sockbuf must be consistent here (points to current mbuf,
1188 1.1 cgd * it points to next record) when we drop priority;
1189 1.1 cgd * we must note any additions to the sockbuf when we
1190 1.1 cgd * block interrupts again.
1191 1.1 cgd */
1192 1.1 cgd if (mp == 0) {
1193 1.69 thorpej SBLASTRECORDCHK(&so->so_rcv, "soreceive uiomove");
1194 1.69 thorpej SBLASTMBUFCHK(&so->so_rcv, "soreceive uiomove");
1195 1.1 cgd splx(s);
1196 1.134 christos error = uiomove(mtod(m, char *) + moff, (int)len, uio);
1197 1.20 mycroft s = splsoftnet();
1198 1.67 he if (error) {
1199 1.67 he /*
1200 1.67 he * If any part of the record has been removed
1201 1.67 he * (such as the MT_SONAME mbuf, which will
1202 1.67 he * happen when PR_ADDR, and thus also
1203 1.67 he * PR_ATOMIC, is set), then drop the entire
1204 1.67 he * record to maintain the atomicity of the
1205 1.67 he * receive operation.
1206 1.67 he *
1207 1.67 he * This avoids a later panic("receive 1a")
1208 1.67 he * when compiled with DIAGNOSTIC.
1209 1.67 he */
1210 1.67 he if (m && mbuf_removed
1211 1.67 he && (pr->pr_flags & PR_ATOMIC))
1212 1.67 he (void) sbdroprecord(&so->so_rcv);
1213 1.67 he
1214 1.57 jdolecek goto release;
1215 1.67 he }
1216 1.1 cgd } else
1217 1.1 cgd uio->uio_resid -= len;
1218 1.1 cgd if (len == m->m_len - moff) {
1219 1.1 cgd if (m->m_flags & M_EOR)
1220 1.1 cgd flags |= MSG_EOR;
1221 1.1 cgd if (flags & MSG_PEEK) {
1222 1.1 cgd m = m->m_next;
1223 1.1 cgd moff = 0;
1224 1.1 cgd } else {
1225 1.1 cgd nextrecord = m->m_nextpkt;
1226 1.1 cgd sbfree(&so->so_rcv, m);
1227 1.1 cgd if (mp) {
1228 1.1 cgd *mp = m;
1229 1.1 cgd mp = &m->m_next;
1230 1.1 cgd so->so_rcv.sb_mb = m = m->m_next;
1231 1.1 cgd *mp = (struct mbuf *)0;
1232 1.1 cgd } else {
1233 1.1 cgd MFREE(m, so->so_rcv.sb_mb);
1234 1.1 cgd m = so->so_rcv.sb_mb;
1235 1.1 cgd }
1236 1.69 thorpej /*
1237 1.69 thorpej * If m != NULL, we also know that
1238 1.69 thorpej * so->so_rcv.sb_mb != NULL.
1239 1.69 thorpej */
1240 1.69 thorpej KASSERT(so->so_rcv.sb_mb == m);
1241 1.69 thorpej if (m) {
1242 1.1 cgd m->m_nextpkt = nextrecord;
1243 1.69 thorpej if (nextrecord == NULL)
1244 1.69 thorpej so->so_rcv.sb_lastrecord = m;
1245 1.69 thorpej } else {
1246 1.69 thorpej so->so_rcv.sb_mb = nextrecord;
1247 1.70 thorpej SB_EMPTY_FIXUP(&so->so_rcv);
1248 1.69 thorpej }
1249 1.69 thorpej SBLASTRECORDCHK(&so->so_rcv, "soreceive 3");
1250 1.69 thorpej SBLASTMBUFCHK(&so->so_rcv, "soreceive 3");
1251 1.1 cgd }
1252 1.1 cgd } else {
1253 1.1 cgd if (flags & MSG_PEEK)
1254 1.1 cgd moff += len;
1255 1.1 cgd else {
1256 1.1 cgd if (mp)
1257 1.1 cgd *mp = m_copym(m, 0, len, M_WAIT);
1258 1.1 cgd m->m_data += len;
1259 1.1 cgd m->m_len -= len;
1260 1.1 cgd so->so_rcv.sb_cc -= len;
1261 1.1 cgd }
1262 1.1 cgd }
1263 1.1 cgd if (so->so_oobmark) {
1264 1.1 cgd if ((flags & MSG_PEEK) == 0) {
1265 1.1 cgd so->so_oobmark -= len;
1266 1.1 cgd if (so->so_oobmark == 0) {
1267 1.1 cgd so->so_state |= SS_RCVATMARK;
1268 1.1 cgd break;
1269 1.1 cgd }
1270 1.7 cgd } else {
1271 1.1 cgd offset += len;
1272 1.7 cgd if (offset == so->so_oobmark)
1273 1.7 cgd break;
1274 1.7 cgd }
1275 1.1 cgd }
1276 1.1 cgd if (flags & MSG_EOR)
1277 1.1 cgd break;
1278 1.1 cgd /*
1279 1.1 cgd * If the MSG_WAITALL flag is set (for non-atomic socket),
1280 1.1 cgd * we must not quit until "uio->uio_resid == 0" or an error
1281 1.1 cgd * termination. If a signal/timeout occurs, return
1282 1.1 cgd * with a short count but without error.
1283 1.1 cgd * Keep sockbuf locked against other readers.
1284 1.1 cgd */
1285 1.1 cgd while (flags & MSG_WAITALL && m == 0 && uio->uio_resid > 0 &&
1286 1.3 andrew !sosendallatonce(so) && !nextrecord) {
1287 1.1 cgd if (so->so_error || so->so_state & SS_CANTRCVMORE)
1288 1.1 cgd break;
1289 1.68 matt /*
1290 1.68 matt * If we are peeking and the socket receive buffer is
1291 1.68 matt * full, stop since we can't get more data to peek at.
1292 1.68 matt */
1293 1.68 matt if ((flags & MSG_PEEK) && sbspace(&so->so_rcv) <= 0)
1294 1.68 matt break;
1295 1.68 matt /*
1296 1.68 matt * If we've drained the socket buffer, tell the
1297 1.68 matt * protocol in case it needs to do something to
1298 1.68 matt * get it filled again.
1299 1.68 matt */
1300 1.68 matt if ((pr->pr_flags & PR_WANTRCVD) && so->so_pcb)
1301 1.68 matt (*pr->pr_usrreq)(so, PRU_RCVD,
1302 1.68 matt (struct mbuf *)0,
1303 1.68 matt (struct mbuf *)(long)flags,
1304 1.114 christos (struct mbuf *)0, l);
1305 1.69 thorpej SBLASTRECORDCHK(&so->so_rcv, "soreceive sbwait 2");
1306 1.69 thorpej SBLASTMBUFCHK(&so->so_rcv, "soreceive sbwait 2");
1307 1.1 cgd error = sbwait(&so->so_rcv);
1308 1.1 cgd if (error) {
1309 1.1 cgd sbunlock(&so->so_rcv);
1310 1.1 cgd splx(s);
1311 1.1 cgd return (0);
1312 1.1 cgd }
1313 1.21 christos if ((m = so->so_rcv.sb_mb) != NULL)
1314 1.1 cgd nextrecord = m->m_nextpkt;
1315 1.1 cgd }
1316 1.1 cgd }
1317 1.3 andrew
1318 1.3 andrew if (m && pr->pr_flags & PR_ATOMIC) {
1319 1.3 andrew flags |= MSG_TRUNC;
1320 1.3 andrew if ((flags & MSG_PEEK) == 0)
1321 1.3 andrew (void) sbdroprecord(&so->so_rcv);
1322 1.3 andrew }
1323 1.1 cgd if ((flags & MSG_PEEK) == 0) {
1324 1.69 thorpej if (m == 0) {
1325 1.69 thorpej /*
1326 1.70 thorpej * First part is an inline SB_EMPTY_FIXUP(). Second
1327 1.69 thorpej * part makes sure sb_lastrecord is up-to-date if
1328 1.69 thorpej * there is still data in the socket buffer.
1329 1.69 thorpej */
1330 1.1 cgd so->so_rcv.sb_mb = nextrecord;
1331 1.69 thorpej if (so->so_rcv.sb_mb == NULL) {
1332 1.69 thorpej so->so_rcv.sb_mbtail = NULL;
1333 1.69 thorpej so->so_rcv.sb_lastrecord = NULL;
1334 1.69 thorpej } else if (nextrecord->m_nextpkt == NULL)
1335 1.69 thorpej so->so_rcv.sb_lastrecord = nextrecord;
1336 1.69 thorpej }
1337 1.69 thorpej SBLASTRECORDCHK(&so->so_rcv, "soreceive 4");
1338 1.69 thorpej SBLASTMBUFCHK(&so->so_rcv, "soreceive 4");
1339 1.1 cgd if (pr->pr_flags & PR_WANTRCVD && so->so_pcb)
1340 1.22 mycroft (*pr->pr_usrreq)(so, PRU_RCVD, (struct mbuf *)0,
1341 1.114 christos (struct mbuf *)(long)flags, (struct mbuf *)0, l);
1342 1.1 cgd }
1343 1.3 andrew if (orig_resid == uio->uio_resid && orig_resid &&
1344 1.3 andrew (flags & MSG_EOR) == 0 && (so->so_state & SS_CANTRCVMORE) == 0) {
1345 1.3 andrew sbunlock(&so->so_rcv);
1346 1.3 andrew splx(s);
1347 1.3 andrew goto restart;
1348 1.3 andrew }
1349 1.108 perry
1350 1.1 cgd if (flagsp)
1351 1.1 cgd *flagsp |= flags;
1352 1.54 lukem release:
1353 1.1 cgd sbunlock(&so->so_rcv);
1354 1.1 cgd splx(s);
1355 1.1 cgd return (error);
1356 1.1 cgd }
1357 1.1 cgd
1358 1.14 mycroft int
1359 1.54 lukem soshutdown(struct socket *so, int how)
1360 1.1 cgd {
1361 1.99 matt const struct protosw *pr;
1362 1.34 kleink
1363 1.54 lukem pr = so->so_proto;
1364 1.34 kleink if (!(how == SHUT_RD || how == SHUT_WR || how == SHUT_RDWR))
1365 1.34 kleink return (EINVAL);
1366 1.1 cgd
1367 1.34 kleink if (how == SHUT_RD || how == SHUT_RDWR)
1368 1.1 cgd sorflush(so);
1369 1.34 kleink if (how == SHUT_WR || how == SHUT_RDWR)
1370 1.22 mycroft return (*pr->pr_usrreq)(so, PRU_SHUTDOWN, (struct mbuf *)0,
1371 1.114 christos (struct mbuf *)0, (struct mbuf *)0, (struct lwp *)0);
1372 1.1 cgd return (0);
1373 1.1 cgd }
1374 1.1 cgd
1375 1.14 mycroft void
1376 1.54 lukem sorflush(struct socket *so)
1377 1.1 cgd {
1378 1.54 lukem struct sockbuf *sb, asb;
1379 1.99 matt const struct protosw *pr;
1380 1.54 lukem int s;
1381 1.1 cgd
1382 1.54 lukem sb = &so->so_rcv;
1383 1.54 lukem pr = so->so_proto;
1384 1.1 cgd sb->sb_flags |= SB_NOINTR;
1385 1.15 mycroft (void) sblock(sb, M_WAITOK);
1386 1.56 thorpej s = splnet();
1387 1.1 cgd socantrcvmore(so);
1388 1.1 cgd sbunlock(sb);
1389 1.1 cgd asb = *sb;
1390 1.86 wrstuden /*
1391 1.86 wrstuden * Clear most of the sockbuf structure, but leave some of the
1392 1.86 wrstuden * fields valid.
1393 1.86 wrstuden */
1394 1.86 wrstuden memset(&sb->sb_startzero, 0,
1395 1.86 wrstuden sizeof(*sb) - offsetof(struct sockbuf, sb_startzero));
1396 1.1 cgd splx(s);
1397 1.1 cgd if (pr->pr_flags & PR_RIGHTS && pr->pr_domain->dom_dispose)
1398 1.1 cgd (*pr->pr_domain->dom_dispose)(asb.sb_mb);
1399 1.98 christos sbrelease(&asb, so);
1400 1.1 cgd }
1401 1.1 cgd
1402 1.14 mycroft int
1403 1.54 lukem sosetopt(struct socket *so, int level, int optname, struct mbuf *m0)
1404 1.1 cgd {
1405 1.54 lukem int error;
1406 1.54 lukem struct mbuf *m;
1407 1.130 christos struct linger *l;
1408 1.1 cgd
1409 1.54 lukem error = 0;
1410 1.54 lukem m = m0;
1411 1.1 cgd if (level != SOL_SOCKET) {
1412 1.1 cgd if (so->so_proto && so->so_proto->pr_ctloutput)
1413 1.1 cgd return ((*so->so_proto->pr_ctloutput)
1414 1.1 cgd (PRCO_SETOPT, so, level, optname, &m0));
1415 1.1 cgd error = ENOPROTOOPT;
1416 1.1 cgd } else {
1417 1.1 cgd switch (optname) {
1418 1.1 cgd
1419 1.1 cgd case SO_LINGER:
1420 1.36 perry if (m == NULL || m->m_len != sizeof(struct linger)) {
1421 1.1 cgd error = EINVAL;
1422 1.1 cgd goto bad;
1423 1.1 cgd }
1424 1.130 christos l = mtod(m, struct linger *);
1425 1.131 christos if (l->l_linger < 0 || l->l_linger > USHRT_MAX ||
1426 1.131 christos l->l_linger > (INT_MAX / hz)) {
1427 1.112 nathanw error = EDOM;
1428 1.112 nathanw goto bad;
1429 1.112 nathanw }
1430 1.130 christos so->so_linger = l->l_linger;
1431 1.130 christos if (l->l_onoff)
1432 1.130 christos so->so_options |= SO_LINGER;
1433 1.130 christos else
1434 1.130 christos so->so_options &= ~SO_LINGER;
1435 1.130 christos break;
1436 1.1 cgd
1437 1.1 cgd case SO_DEBUG:
1438 1.1 cgd case SO_KEEPALIVE:
1439 1.1 cgd case SO_DONTROUTE:
1440 1.1 cgd case SO_USELOOPBACK:
1441 1.1 cgd case SO_BROADCAST:
1442 1.1 cgd case SO_REUSEADDR:
1443 1.15 mycroft case SO_REUSEPORT:
1444 1.1 cgd case SO_OOBINLINE:
1445 1.26 thorpej case SO_TIMESTAMP:
1446 1.36 perry if (m == NULL || m->m_len < sizeof(int)) {
1447 1.1 cgd error = EINVAL;
1448 1.1 cgd goto bad;
1449 1.1 cgd }
1450 1.1 cgd if (*mtod(m, int *))
1451 1.1 cgd so->so_options |= optname;
1452 1.1 cgd else
1453 1.1 cgd so->so_options &= ~optname;
1454 1.1 cgd break;
1455 1.1 cgd
1456 1.1 cgd case SO_SNDBUF:
1457 1.1 cgd case SO_RCVBUF:
1458 1.1 cgd case SO_SNDLOWAT:
1459 1.1 cgd case SO_RCVLOWAT:
1460 1.28 thorpej {
1461 1.28 thorpej int optval;
1462 1.28 thorpej
1463 1.36 perry if (m == NULL || m->m_len < sizeof(int)) {
1464 1.1 cgd error = EINVAL;
1465 1.1 cgd goto bad;
1466 1.1 cgd }
1467 1.28 thorpej
1468 1.28 thorpej /*
1469 1.28 thorpej * Values < 1 make no sense for any of these
1470 1.28 thorpej * options, so disallow them.
1471 1.28 thorpej */
1472 1.28 thorpej optval = *mtod(m, int *);
1473 1.28 thorpej if (optval < 1) {
1474 1.28 thorpej error = EINVAL;
1475 1.28 thorpej goto bad;
1476 1.28 thorpej }
1477 1.28 thorpej
1478 1.1 cgd switch (optname) {
1479 1.1 cgd
1480 1.1 cgd case SO_SNDBUF:
1481 1.1 cgd case SO_RCVBUF:
1482 1.1 cgd if (sbreserve(optname == SO_SNDBUF ?
1483 1.1 cgd &so->so_snd : &so->so_rcv,
1484 1.98 christos (u_long) optval, so) == 0) {
1485 1.1 cgd error = ENOBUFS;
1486 1.1 cgd goto bad;
1487 1.1 cgd }
1488 1.1 cgd break;
1489 1.1 cgd
1490 1.28 thorpej /*
1491 1.28 thorpej * Make sure the low-water is never greater than
1492 1.28 thorpej * the high-water.
1493 1.28 thorpej */
1494 1.1 cgd case SO_SNDLOWAT:
1495 1.28 thorpej so->so_snd.sb_lowat =
1496 1.28 thorpej (optval > so->so_snd.sb_hiwat) ?
1497 1.28 thorpej so->so_snd.sb_hiwat : optval;
1498 1.1 cgd break;
1499 1.1 cgd case SO_RCVLOWAT:
1500 1.28 thorpej so->so_rcv.sb_lowat =
1501 1.28 thorpej (optval > so->so_rcv.sb_hiwat) ?
1502 1.28 thorpej so->so_rcv.sb_hiwat : optval;
1503 1.1 cgd break;
1504 1.1 cgd }
1505 1.1 cgd break;
1506 1.28 thorpej }
1507 1.1 cgd
1508 1.1 cgd case SO_SNDTIMEO:
1509 1.1 cgd case SO_RCVTIMEO:
1510 1.1 cgd {
1511 1.1 cgd struct timeval *tv;
1512 1.104 yamt int val;
1513 1.1 cgd
1514 1.36 perry if (m == NULL || m->m_len < sizeof(*tv)) {
1515 1.1 cgd error = EINVAL;
1516 1.1 cgd goto bad;
1517 1.1 cgd }
1518 1.1 cgd tv = mtod(m, struct timeval *);
1519 1.104 yamt if (tv->tv_sec > (INT_MAX - tv->tv_usec / tick) / hz) {
1520 1.1 cgd error = EDOM;
1521 1.1 cgd goto bad;
1522 1.1 cgd }
1523 1.1 cgd val = tv->tv_sec * hz + tv->tv_usec / tick;
1524 1.74 itojun if (val == 0 && tv->tv_usec != 0)
1525 1.74 itojun val = 1;
1526 1.1 cgd
1527 1.1 cgd switch (optname) {
1528 1.1 cgd
1529 1.1 cgd case SO_SNDTIMEO:
1530 1.1 cgd so->so_snd.sb_timeo = val;
1531 1.1 cgd break;
1532 1.1 cgd case SO_RCVTIMEO:
1533 1.1 cgd so->so_rcv.sb_timeo = val;
1534 1.1 cgd break;
1535 1.1 cgd }
1536 1.1 cgd break;
1537 1.1 cgd }
1538 1.1 cgd
1539 1.1 cgd default:
1540 1.1 cgd error = ENOPROTOOPT;
1541 1.1 cgd break;
1542 1.1 cgd }
1543 1.15 mycroft if (error == 0 && so->so_proto && so->so_proto->pr_ctloutput) {
1544 1.15 mycroft (void) ((*so->so_proto->pr_ctloutput)
1545 1.15 mycroft (PRCO_SETOPT, so, level, optname, &m0));
1546 1.15 mycroft m = NULL; /* freed by protocol */
1547 1.15 mycroft }
1548 1.1 cgd }
1549 1.54 lukem bad:
1550 1.1 cgd if (m)
1551 1.1 cgd (void) m_free(m);
1552 1.1 cgd return (error);
1553 1.1 cgd }
1554 1.1 cgd
1555 1.14 mycroft int
1556 1.54 lukem sogetopt(struct socket *so, int level, int optname, struct mbuf **mp)
1557 1.1 cgd {
1558 1.54 lukem struct mbuf *m;
1559 1.1 cgd
1560 1.1 cgd if (level != SOL_SOCKET) {
1561 1.1 cgd if (so->so_proto && so->so_proto->pr_ctloutput) {
1562 1.1 cgd return ((*so->so_proto->pr_ctloutput)
1563 1.1 cgd (PRCO_GETOPT, so, level, optname, mp));
1564 1.1 cgd } else
1565 1.1 cgd return (ENOPROTOOPT);
1566 1.1 cgd } else {
1567 1.1 cgd m = m_get(M_WAIT, MT_SOOPTS);
1568 1.36 perry m->m_len = sizeof(int);
1569 1.1 cgd
1570 1.1 cgd switch (optname) {
1571 1.1 cgd
1572 1.1 cgd case SO_LINGER:
1573 1.36 perry m->m_len = sizeof(struct linger);
1574 1.1 cgd mtod(m, struct linger *)->l_onoff =
1575 1.131 christos (so->so_options & SO_LINGER) ? 1 : 0;
1576 1.1 cgd mtod(m, struct linger *)->l_linger = so->so_linger;
1577 1.1 cgd break;
1578 1.1 cgd
1579 1.1 cgd case SO_USELOOPBACK:
1580 1.1 cgd case SO_DONTROUTE:
1581 1.1 cgd case SO_DEBUG:
1582 1.1 cgd case SO_KEEPALIVE:
1583 1.1 cgd case SO_REUSEADDR:
1584 1.15 mycroft case SO_REUSEPORT:
1585 1.1 cgd case SO_BROADCAST:
1586 1.1 cgd case SO_OOBINLINE:
1587 1.26 thorpej case SO_TIMESTAMP:
1588 1.131 christos *mtod(m, int *) = (so->so_options & optname) ? 1 : 0;
1589 1.1 cgd break;
1590 1.1 cgd
1591 1.1 cgd case SO_TYPE:
1592 1.1 cgd *mtod(m, int *) = so->so_type;
1593 1.1 cgd break;
1594 1.1 cgd
1595 1.1 cgd case SO_ERROR:
1596 1.1 cgd *mtod(m, int *) = so->so_error;
1597 1.1 cgd so->so_error = 0;
1598 1.1 cgd break;
1599 1.1 cgd
1600 1.1 cgd case SO_SNDBUF:
1601 1.1 cgd *mtod(m, int *) = so->so_snd.sb_hiwat;
1602 1.1 cgd break;
1603 1.1 cgd
1604 1.1 cgd case SO_RCVBUF:
1605 1.1 cgd *mtod(m, int *) = so->so_rcv.sb_hiwat;
1606 1.1 cgd break;
1607 1.1 cgd
1608 1.1 cgd case SO_SNDLOWAT:
1609 1.1 cgd *mtod(m, int *) = so->so_snd.sb_lowat;
1610 1.1 cgd break;
1611 1.1 cgd
1612 1.1 cgd case SO_RCVLOWAT:
1613 1.1 cgd *mtod(m, int *) = so->so_rcv.sb_lowat;
1614 1.1 cgd break;
1615 1.1 cgd
1616 1.1 cgd case SO_SNDTIMEO:
1617 1.1 cgd case SO_RCVTIMEO:
1618 1.1 cgd {
1619 1.1 cgd int val = (optname == SO_SNDTIMEO ?
1620 1.1 cgd so->so_snd.sb_timeo : so->so_rcv.sb_timeo);
1621 1.1 cgd
1622 1.1 cgd m->m_len = sizeof(struct timeval);
1623 1.1 cgd mtod(m, struct timeval *)->tv_sec = val / hz;
1624 1.1 cgd mtod(m, struct timeval *)->tv_usec =
1625 1.27 kleink (val % hz) * tick;
1626 1.1 cgd break;
1627 1.1 cgd }
1628 1.1 cgd
1629 1.107 darrenr case SO_OVERFLOWED:
1630 1.107 darrenr *mtod(m, int *) = so->so_rcv.sb_overflowed;
1631 1.107 darrenr break;
1632 1.107 darrenr
1633 1.1 cgd default:
1634 1.1 cgd (void)m_free(m);
1635 1.1 cgd return (ENOPROTOOPT);
1636 1.1 cgd }
1637 1.1 cgd *mp = m;
1638 1.1 cgd return (0);
1639 1.1 cgd }
1640 1.1 cgd }
1641 1.1 cgd
1642 1.14 mycroft void
1643 1.54 lukem sohasoutofband(struct socket *so)
1644 1.1 cgd {
1645 1.90 christos fownsignal(so->so_pgid, SIGURG, POLL_PRI, POLLPRI|POLLRDBAND, so);
1646 1.2 cgd selwakeup(&so->so_rcv.sb_sel);
1647 1.1 cgd }
1648 1.72 jdolecek
1649 1.72 jdolecek static void
1650 1.72 jdolecek filt_sordetach(struct knote *kn)
1651 1.72 jdolecek {
1652 1.72 jdolecek struct socket *so;
1653 1.72 jdolecek
1654 1.72 jdolecek so = (struct socket *)kn->kn_fp->f_data;
1655 1.73 christos SLIST_REMOVE(&so->so_rcv.sb_sel.sel_klist, kn, knote, kn_selnext);
1656 1.73 christos if (SLIST_EMPTY(&so->so_rcv.sb_sel.sel_klist))
1657 1.72 jdolecek so->so_rcv.sb_flags &= ~SB_KNOTE;
1658 1.72 jdolecek }
1659 1.72 jdolecek
1660 1.72 jdolecek /*ARGSUSED*/
1661 1.72 jdolecek static int
1662 1.129 yamt filt_soread(struct knote *kn, long hint)
1663 1.72 jdolecek {
1664 1.72 jdolecek struct socket *so;
1665 1.72 jdolecek
1666 1.72 jdolecek so = (struct socket *)kn->kn_fp->f_data;
1667 1.72 jdolecek kn->kn_data = so->so_rcv.sb_cc;
1668 1.72 jdolecek if (so->so_state & SS_CANTRCVMORE) {
1669 1.108 perry kn->kn_flags |= EV_EOF;
1670 1.72 jdolecek kn->kn_fflags = so->so_error;
1671 1.72 jdolecek return (1);
1672 1.72 jdolecek }
1673 1.72 jdolecek if (so->so_error) /* temporary udp error */
1674 1.72 jdolecek return (1);
1675 1.72 jdolecek if (kn->kn_sfflags & NOTE_LOWAT)
1676 1.72 jdolecek return (kn->kn_data >= kn->kn_sdata);
1677 1.72 jdolecek return (kn->kn_data >= so->so_rcv.sb_lowat);
1678 1.72 jdolecek }
1679 1.72 jdolecek
1680 1.72 jdolecek static void
1681 1.72 jdolecek filt_sowdetach(struct knote *kn)
1682 1.72 jdolecek {
1683 1.72 jdolecek struct socket *so;
1684 1.72 jdolecek
1685 1.72 jdolecek so = (struct socket *)kn->kn_fp->f_data;
1686 1.73 christos SLIST_REMOVE(&so->so_snd.sb_sel.sel_klist, kn, knote, kn_selnext);
1687 1.73 christos if (SLIST_EMPTY(&so->so_snd.sb_sel.sel_klist))
1688 1.72 jdolecek so->so_snd.sb_flags &= ~SB_KNOTE;
1689 1.72 jdolecek }
1690 1.72 jdolecek
1691 1.72 jdolecek /*ARGSUSED*/
1692 1.72 jdolecek static int
1693 1.129 yamt filt_sowrite(struct knote *kn, long hint)
1694 1.72 jdolecek {
1695 1.72 jdolecek struct socket *so;
1696 1.72 jdolecek
1697 1.72 jdolecek so = (struct socket *)kn->kn_fp->f_data;
1698 1.72 jdolecek kn->kn_data = sbspace(&so->so_snd);
1699 1.72 jdolecek if (so->so_state & SS_CANTSENDMORE) {
1700 1.108 perry kn->kn_flags |= EV_EOF;
1701 1.72 jdolecek kn->kn_fflags = so->so_error;
1702 1.72 jdolecek return (1);
1703 1.72 jdolecek }
1704 1.72 jdolecek if (so->so_error) /* temporary udp error */
1705 1.72 jdolecek return (1);
1706 1.72 jdolecek if (((so->so_state & SS_ISCONNECTED) == 0) &&
1707 1.72 jdolecek (so->so_proto->pr_flags & PR_CONNREQUIRED))
1708 1.72 jdolecek return (0);
1709 1.72 jdolecek if (kn->kn_sfflags & NOTE_LOWAT)
1710 1.72 jdolecek return (kn->kn_data >= kn->kn_sdata);
1711 1.72 jdolecek return (kn->kn_data >= so->so_snd.sb_lowat);
1712 1.72 jdolecek }
1713 1.72 jdolecek
1714 1.72 jdolecek /*ARGSUSED*/
1715 1.72 jdolecek static int
1716 1.129 yamt filt_solisten(struct knote *kn, long hint)
1717 1.72 jdolecek {
1718 1.72 jdolecek struct socket *so;
1719 1.72 jdolecek
1720 1.72 jdolecek so = (struct socket *)kn->kn_fp->f_data;
1721 1.72 jdolecek
1722 1.72 jdolecek /*
1723 1.72 jdolecek * Set kn_data to number of incoming connections, not
1724 1.72 jdolecek * counting partial (incomplete) connections.
1725 1.108 perry */
1726 1.72 jdolecek kn->kn_data = so->so_qlen;
1727 1.72 jdolecek return (kn->kn_data > 0);
1728 1.72 jdolecek }
1729 1.72 jdolecek
1730 1.72 jdolecek static const struct filterops solisten_filtops =
1731 1.72 jdolecek { 1, NULL, filt_sordetach, filt_solisten };
1732 1.72 jdolecek static const struct filterops soread_filtops =
1733 1.72 jdolecek { 1, NULL, filt_sordetach, filt_soread };
1734 1.72 jdolecek static const struct filterops sowrite_filtops =
1735 1.72 jdolecek { 1, NULL, filt_sowdetach, filt_sowrite };
1736 1.72 jdolecek
1737 1.72 jdolecek int
1738 1.129 yamt soo_kqfilter(struct file *fp, struct knote *kn)
1739 1.72 jdolecek {
1740 1.72 jdolecek struct socket *so;
1741 1.72 jdolecek struct sockbuf *sb;
1742 1.72 jdolecek
1743 1.72 jdolecek so = (struct socket *)kn->kn_fp->f_data;
1744 1.72 jdolecek switch (kn->kn_filter) {
1745 1.72 jdolecek case EVFILT_READ:
1746 1.72 jdolecek if (so->so_options & SO_ACCEPTCONN)
1747 1.72 jdolecek kn->kn_fop = &solisten_filtops;
1748 1.72 jdolecek else
1749 1.72 jdolecek kn->kn_fop = &soread_filtops;
1750 1.72 jdolecek sb = &so->so_rcv;
1751 1.72 jdolecek break;
1752 1.72 jdolecek case EVFILT_WRITE:
1753 1.72 jdolecek kn->kn_fop = &sowrite_filtops;
1754 1.72 jdolecek sb = &so->so_snd;
1755 1.72 jdolecek break;
1756 1.72 jdolecek default:
1757 1.72 jdolecek return (1);
1758 1.72 jdolecek }
1759 1.73 christos SLIST_INSERT_HEAD(&sb->sb_sel.sel_klist, kn, kn_selnext);
1760 1.72 jdolecek sb->sb_flags |= SB_KNOTE;
1761 1.72 jdolecek return (0);
1762 1.72 jdolecek }
1763 1.72 jdolecek
1764 1.94 yamt #include <sys/sysctl.h>
1765 1.94 yamt
1766 1.94 yamt static int sysctl_kern_somaxkva(SYSCTLFN_PROTO);
1767 1.94 yamt
1768 1.94 yamt /*
1769 1.94 yamt * sysctl helper routine for kern.somaxkva. ensures that the given
1770 1.94 yamt * value is not too small.
1771 1.94 yamt * (XXX should we maybe make sure it's not too large as well?)
1772 1.94 yamt */
1773 1.94 yamt static int
1774 1.94 yamt sysctl_kern_somaxkva(SYSCTLFN_ARGS)
1775 1.94 yamt {
1776 1.94 yamt int error, new_somaxkva;
1777 1.94 yamt struct sysctlnode node;
1778 1.94 yamt
1779 1.94 yamt new_somaxkva = somaxkva;
1780 1.94 yamt node = *rnode;
1781 1.94 yamt node.sysctl_data = &new_somaxkva;
1782 1.94 yamt error = sysctl_lookup(SYSCTLFN_CALL(&node));
1783 1.94 yamt if (error || newp == NULL)
1784 1.94 yamt return (error);
1785 1.94 yamt
1786 1.94 yamt if (new_somaxkva < (16 * 1024 * 1024)) /* sanity */
1787 1.94 yamt return (EINVAL);
1788 1.94 yamt
1789 1.134.2.1 ad mutex_enter(&so_pendfree_lock);
1790 1.94 yamt somaxkva = new_somaxkva;
1791 1.134.2.1 ad cv_broadcast(&socurkva_cv);
1792 1.134.2.1 ad mutex_exit(&so_pendfree_lock);
1793 1.94 yamt
1794 1.94 yamt return (error);
1795 1.94 yamt }
1796 1.94 yamt
1797 1.94 yamt SYSCTL_SETUP(sysctl_kern_somaxkva_setup, "sysctl kern.somaxkva setup")
1798 1.94 yamt {
1799 1.94 yamt
1800 1.97 atatat sysctl_createv(clog, 0, NULL, NULL,
1801 1.97 atatat CTLFLAG_PERMANENT,
1802 1.97 atatat CTLTYPE_NODE, "kern", NULL,
1803 1.97 atatat NULL, 0, NULL, 0,
1804 1.97 atatat CTL_KERN, CTL_EOL);
1805 1.97 atatat
1806 1.97 atatat sysctl_createv(clog, 0, NULL, NULL,
1807 1.97 atatat CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
1808 1.103 atatat CTLTYPE_INT, "somaxkva",
1809 1.103 atatat SYSCTL_DESCR("Maximum amount of kernel memory to be "
1810 1.103 atatat "used for socket buffers"),
1811 1.94 yamt sysctl_kern_somaxkva, 0, NULL, 0,
1812 1.94 yamt CTL_KERN, KERN_SOMAXKVA, CTL_EOL);
1813 1.94 yamt }
1814