uipc_socket2.c revision 1.90 1 1.90 rmind /* $NetBSD: uipc_socket2.c,v 1.90 2008/03/01 14:16:51 rmind Exp $ */
2 1.9 cgd
3 1.1 cgd /*
4 1.7 mycroft * Copyright (c) 1982, 1986, 1988, 1990, 1993
5 1.7 mycroft * The Regents of the University of California. All rights reserved.
6 1.1 cgd *
7 1.1 cgd * Redistribution and use in source and binary forms, with or without
8 1.1 cgd * modification, are permitted provided that the following conditions
9 1.1 cgd * are met:
10 1.1 cgd * 1. Redistributions of source code must retain the above copyright
11 1.1 cgd * notice, this list of conditions and the following disclaimer.
12 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 cgd * notice, this list of conditions and the following disclaimer in the
14 1.1 cgd * documentation and/or other materials provided with the distribution.
15 1.54 agc * 3. Neither the name of the University nor the names of its contributors
16 1.1 cgd * may be used to endorse or promote products derived from this software
17 1.1 cgd * without specific prior written permission.
18 1.1 cgd *
19 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
20 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
23 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29 1.1 cgd * SUCH DAMAGE.
30 1.1 cgd *
31 1.23 fvdl * @(#)uipc_socket2.c 8.2 (Berkeley) 2/14/95
32 1.1 cgd */
33 1.42 lukem
34 1.42 lukem #include <sys/cdefs.h>
35 1.90 rmind __KERNEL_RCSID(0, "$NetBSD: uipc_socket2.c,v 1.90 2008/03/01 14:16:51 rmind Exp $");
36 1.51 martin
37 1.51 martin #include "opt_mbuftrace.h"
38 1.58 thorpej #include "opt_sb_max.h"
39 1.1 cgd
40 1.5 mycroft #include <sys/param.h>
41 1.5 mycroft #include <sys/systm.h>
42 1.5 mycroft #include <sys/proc.h>
43 1.5 mycroft #include <sys/file.h>
44 1.5 mycroft #include <sys/buf.h>
45 1.5 mycroft #include <sys/malloc.h>
46 1.5 mycroft #include <sys/mbuf.h>
47 1.5 mycroft #include <sys/protosw.h>
48 1.55 christos #include <sys/poll.h>
49 1.5 mycroft #include <sys/socket.h>
50 1.5 mycroft #include <sys/socketvar.h>
51 1.11 christos #include <sys/signalvar.h>
52 1.71 elad #include <sys/kauth.h>
53 1.1 cgd
54 1.1 cgd /*
55 1.1 cgd * Primitive routines for operating on sockets and socket buffers
56 1.1 cgd */
57 1.1 cgd
58 1.1 cgd /* strings for sleep message: */
59 1.21 mycroft const char netcon[] = "netcon";
60 1.21 mycroft const char netcls[] = "netcls";
61 1.41 enami const char netio[] = "netio";
62 1.41 enami const char netlck[] = "netlck";
63 1.1 cgd
64 1.58 thorpej u_long sb_max = SB_MAX; /* maximum socket buffer size */
65 1.58 thorpej static u_long sb_max_adj; /* adjusted sb_max */
66 1.58 thorpej
67 1.1 cgd /*
68 1.1 cgd * Procedures to manipulate state flags of socket
69 1.1 cgd * and do appropriate wakeups. Normal sequence from the
70 1.1 cgd * active (originating) side is that soisconnecting() is
71 1.1 cgd * called during processing of connect() call,
72 1.1 cgd * resulting in an eventual call to soisconnected() if/when the
73 1.1 cgd * connection is established. When the connection is torn down
74 1.1 cgd * soisdisconnecting() is called during processing of disconnect() call,
75 1.1 cgd * and soisdisconnected() is called when the connection to the peer
76 1.1 cgd * is totally severed. The semantics of these routines are such that
77 1.1 cgd * connectionless protocols can call soisconnected() and soisdisconnected()
78 1.1 cgd * only, bypassing the in-progress calls when setting up a ``connection''
79 1.1 cgd * takes no time.
80 1.1 cgd *
81 1.1 cgd * From the passive side, a socket is created with
82 1.1 cgd * two queues of sockets: so_q0 for connections in progress
83 1.1 cgd * and so_q for connections already made and awaiting user acceptance.
84 1.1 cgd * As a protocol is preparing incoming connections, it creates a socket
85 1.1 cgd * structure queued on so_q0 by calling sonewconn(). When the connection
86 1.1 cgd * is established, soisconnected() is called, and transfers the
87 1.1 cgd * socket structure to so_q, making it available to accept().
88 1.66 perry *
89 1.1 cgd * If a socket is closed with sockets on either
90 1.1 cgd * so_q0 or so_q, these sockets are dropped.
91 1.1 cgd *
92 1.1 cgd * If higher level protocols are implemented in
93 1.1 cgd * the kernel, the wakeups done here will sometimes
94 1.1 cgd * cause software-interrupt process scheduling.
95 1.1 cgd */
96 1.1 cgd
97 1.7 mycroft void
98 1.37 lukem soisconnecting(struct socket *so)
99 1.1 cgd {
100 1.1 cgd
101 1.1 cgd so->so_state &= ~(SS_ISCONNECTED|SS_ISDISCONNECTING);
102 1.1 cgd so->so_state |= SS_ISCONNECTING;
103 1.1 cgd }
104 1.1 cgd
105 1.7 mycroft void
106 1.37 lukem soisconnected(struct socket *so)
107 1.1 cgd {
108 1.37 lukem struct socket *head;
109 1.1 cgd
110 1.37 lukem head = so->so_head;
111 1.1 cgd so->so_state &= ~(SS_ISCONNECTING|SS_ISDISCONNECTING|SS_ISCONFIRMING);
112 1.1 cgd so->so_state |= SS_ISCONNECTED;
113 1.1 cgd if (head && soqremque(so, 0)) {
114 1.1 cgd soqinsque(head, so, 1);
115 1.1 cgd sorwakeup(head);
116 1.82 christos wakeup((void *)&head->so_timeo);
117 1.1 cgd } else {
118 1.82 christos wakeup((void *)&so->so_timeo);
119 1.1 cgd sorwakeup(so);
120 1.1 cgd sowwakeup(so);
121 1.1 cgd }
122 1.1 cgd }
123 1.1 cgd
124 1.7 mycroft void
125 1.37 lukem soisdisconnecting(struct socket *so)
126 1.1 cgd {
127 1.1 cgd
128 1.1 cgd so->so_state &= ~SS_ISCONNECTING;
129 1.1 cgd so->so_state |= (SS_ISDISCONNECTING|SS_CANTRCVMORE|SS_CANTSENDMORE);
130 1.82 christos wakeup((void *)&so->so_timeo);
131 1.1 cgd sowwakeup(so);
132 1.1 cgd sorwakeup(so);
133 1.1 cgd }
134 1.1 cgd
135 1.7 mycroft void
136 1.37 lukem soisdisconnected(struct socket *so)
137 1.1 cgd {
138 1.1 cgd
139 1.1 cgd so->so_state &= ~(SS_ISCONNECTING|SS_ISCONNECTED|SS_ISDISCONNECTING);
140 1.27 mycroft so->so_state |= (SS_CANTRCVMORE|SS_CANTSENDMORE|SS_ISDISCONNECTED);
141 1.82 christos wakeup((void *)&so->so_timeo);
142 1.1 cgd sowwakeup(so);
143 1.1 cgd sorwakeup(so);
144 1.1 cgd }
145 1.1 cgd
146 1.1 cgd /*
147 1.1 cgd * When an attempt at a new connection is noted on a socket
148 1.1 cgd * which accepts connections, sonewconn is called. If the
149 1.1 cgd * connection is possible (subject to space constraints, etc.)
150 1.1 cgd * then we allocate a new structure, propoerly linked into the
151 1.1 cgd * data structure of the original socket, and return this.
152 1.77 plunky * Connstatus may be 0, SS_ISCONFIRMING, or SS_ISCONNECTED.
153 1.1 cgd */
154 1.1 cgd struct socket *
155 1.76 plunky sonewconn(struct socket *head, int connstatus)
156 1.1 cgd {
157 1.37 lukem struct socket *so;
158 1.37 lukem int soqueue;
159 1.1 cgd
160 1.37 lukem soqueue = connstatus ? 1 : 0;
161 1.1 cgd if (head->so_qlen + head->so_q0len > 3 * head->so_qlimit / 2)
162 1.1 cgd return ((struct socket *)0);
163 1.25 thorpej so = pool_get(&socket_pool, PR_NOWAIT);
164 1.66 perry if (so == NULL)
165 1.25 thorpej return (NULL);
166 1.82 christos memset((void *)so, 0, sizeof(*so));
167 1.1 cgd so->so_type = head->so_type;
168 1.1 cgd so->so_options = head->so_options &~ SO_ACCEPTCONN;
169 1.1 cgd so->so_linger = head->so_linger;
170 1.1 cgd so->so_state = head->so_state | SS_NOFDREF;
171 1.89 ad so->so_nbio = head->so_nbio;
172 1.1 cgd so->so_proto = head->so_proto;
173 1.1 cgd so->so_timeo = head->so_timeo;
174 1.1 cgd so->so_pgid = head->so_pgid;
175 1.24 matt so->so_send = head->so_send;
176 1.24 matt so->so_receive = head->so_receive;
177 1.67 christos so->so_uidinfo = head->so_uidinfo;
178 1.49 matt #ifdef MBUFTRACE
179 1.49 matt so->so_mowner = head->so_mowner;
180 1.49 matt so->so_rcv.sb_mowner = head->so_rcv.sb_mowner;
181 1.49 matt so->so_snd.sb_mowner = head->so_snd.sb_mowner;
182 1.49 matt #endif
183 1.86 ad selinit(&so->so_rcv.sb_sel);
184 1.86 ad selinit(&so->so_snd.sb_sel);
185 1.1 cgd (void) soreserve(so, head->so_snd.sb_hiwat, head->so_rcv.sb_hiwat);
186 1.83 tls so->so_snd.sb_lowat = head->so_snd.sb_lowat;
187 1.83 tls so->so_rcv.sb_lowat = head->so_rcv.sb_lowat;
188 1.84 tls so->so_rcv.sb_timeo = head->so_rcv.sb_timeo;
189 1.84 tls so->so_snd.sb_timeo = head->so_snd.sb_timeo;
190 1.85 rmind so->so_rcv.sb_flags |= head->so_rcv.sb_flags & SB_AUTOSIZE;
191 1.85 rmind so->so_snd.sb_flags |= head->so_snd.sb_flags & SB_AUTOSIZE;
192 1.1 cgd soqinsque(head, so, soqueue);
193 1.1 cgd if ((*so->so_proto->pr_usrreq)(so, PRU_ATTACH,
194 1.12 mycroft (struct mbuf *)0, (struct mbuf *)0, (struct mbuf *)0,
195 1.69 christos (struct lwp *)0)) {
196 1.1 cgd (void) soqremque(so, soqueue);
197 1.86 ad seldestroy(&so->so_rcv.sb_sel);
198 1.86 ad seldestroy(&so->so_snd.sb_sel);
199 1.25 thorpej pool_put(&socket_pool, so);
200 1.25 thorpej return (NULL);
201 1.1 cgd }
202 1.1 cgd if (connstatus) {
203 1.1 cgd sorwakeup(head);
204 1.82 christos wakeup((void *)&head->so_timeo);
205 1.1 cgd so->so_state |= connstatus;
206 1.1 cgd }
207 1.1 cgd return (so);
208 1.1 cgd }
209 1.1 cgd
210 1.7 mycroft void
211 1.37 lukem soqinsque(struct socket *head, struct socket *so, int q)
212 1.1 cgd {
213 1.1 cgd
214 1.22 thorpej #ifdef DIAGNOSTIC
215 1.22 thorpej if (so->so_onq != NULL)
216 1.22 thorpej panic("soqinsque");
217 1.22 thorpej #endif
218 1.22 thorpej
219 1.1 cgd so->so_head = head;
220 1.1 cgd if (q == 0) {
221 1.1 cgd head->so_q0len++;
222 1.22 thorpej so->so_onq = &head->so_q0;
223 1.1 cgd } else {
224 1.1 cgd head->so_qlen++;
225 1.22 thorpej so->so_onq = &head->so_q;
226 1.1 cgd }
227 1.22 thorpej TAILQ_INSERT_TAIL(so->so_onq, so, so_qe);
228 1.1 cgd }
229 1.1 cgd
230 1.7 mycroft int
231 1.37 lukem soqremque(struct socket *so, int q)
232 1.1 cgd {
233 1.37 lukem struct socket *head;
234 1.1 cgd
235 1.37 lukem head = so->so_head;
236 1.22 thorpej if (q == 0) {
237 1.22 thorpej if (so->so_onq != &head->so_q0)
238 1.17 thorpej return (0);
239 1.1 cgd head->so_q0len--;
240 1.1 cgd } else {
241 1.22 thorpej if (so->so_onq != &head->so_q)
242 1.22 thorpej return (0);
243 1.1 cgd head->so_qlen--;
244 1.1 cgd }
245 1.22 thorpej TAILQ_REMOVE(so->so_onq, so, so_qe);
246 1.22 thorpej so->so_onq = NULL;
247 1.22 thorpej so->so_head = NULL;
248 1.1 cgd return (1);
249 1.1 cgd }
250 1.1 cgd
251 1.1 cgd /*
252 1.1 cgd * Socantsendmore indicates that no more data will be sent on the
253 1.1 cgd * socket; it would normally be applied to a socket when the user
254 1.1 cgd * informs the system that no more data is to be sent, by the protocol
255 1.1 cgd * code (in case PRU_SHUTDOWN). Socantrcvmore indicates that no more data
256 1.1 cgd * will be received, and will normally be applied to the socket by a
257 1.1 cgd * protocol when it detects that the peer will send no more data.
258 1.1 cgd * Data queued for reading in the socket may yet be read.
259 1.1 cgd */
260 1.1 cgd
261 1.4 andrew void
262 1.37 lukem socantsendmore(struct socket *so)
263 1.1 cgd {
264 1.1 cgd
265 1.1 cgd so->so_state |= SS_CANTSENDMORE;
266 1.1 cgd sowwakeup(so);
267 1.1 cgd }
268 1.1 cgd
269 1.4 andrew void
270 1.37 lukem socantrcvmore(struct socket *so)
271 1.1 cgd {
272 1.1 cgd
273 1.1 cgd so->so_state |= SS_CANTRCVMORE;
274 1.1 cgd sorwakeup(so);
275 1.1 cgd }
276 1.1 cgd
277 1.1 cgd /*
278 1.1 cgd * Wait for data to arrive at/drain from a socket buffer.
279 1.1 cgd */
280 1.7 mycroft int
281 1.37 lukem sbwait(struct sockbuf *sb)
282 1.1 cgd {
283 1.1 cgd
284 1.1 cgd sb->sb_flags |= SB_WAIT;
285 1.82 christos return (tsleep((void *)&sb->sb_cc,
286 1.1 cgd (sb->sb_flags & SB_NOINTR) ? PSOCK : PSOCK | PCATCH, netio,
287 1.1 cgd sb->sb_timeo));
288 1.1 cgd }
289 1.1 cgd
290 1.66 perry /*
291 1.1 cgd * Lock a sockbuf already known to be locked;
292 1.1 cgd * return any error returned from sleep (EINTR).
293 1.1 cgd */
294 1.7 mycroft int
295 1.37 lukem sb_lock(struct sockbuf *sb)
296 1.1 cgd {
297 1.37 lukem int error;
298 1.1 cgd
299 1.1 cgd while (sb->sb_flags & SB_LOCK) {
300 1.1 cgd sb->sb_flags |= SB_WANT;
301 1.82 christos error = tsleep((void *)&sb->sb_flags,
302 1.41 enami (sb->sb_flags & SB_NOINTR) ? PSOCK : PSOCK|PCATCH,
303 1.41 enami netlck, 0);
304 1.11 christos if (error)
305 1.1 cgd return (error);
306 1.1 cgd }
307 1.1 cgd sb->sb_flags |= SB_LOCK;
308 1.1 cgd return (0);
309 1.1 cgd }
310 1.1 cgd
311 1.1 cgd /*
312 1.1 cgd * Wakeup processes waiting on a socket buffer.
313 1.1 cgd * Do asynchronous notification via SIGIO
314 1.39 manu * if the socket buffer has the SB_ASYNC flag set.
315 1.1 cgd */
316 1.7 mycroft void
317 1.55 christos sowakeup(struct socket *so, struct sockbuf *sb, int code)
318 1.1 cgd {
319 1.90 rmind int band;
320 1.90 rmind
321 1.90 rmind if (code == POLL_IN)
322 1.90 rmind band = POLLIN|POLLRDNORM;
323 1.90 rmind else
324 1.90 rmind band = POLLOUT|POLLWRNORM;
325 1.90 rmind selnotify(&sb->sb_sel, band, 0);
326 1.90 rmind
327 1.7 mycroft sb->sb_flags &= ~SB_SEL;
328 1.1 cgd if (sb->sb_flags & SB_WAIT) {
329 1.1 cgd sb->sb_flags &= ~SB_WAIT;
330 1.82 christos wakeup((void *)&sb->sb_cc);
331 1.1 cgd }
332 1.90 rmind if (sb->sb_flags & SB_ASYNC)
333 1.57 christos fownsignal(so->so_pgid, SIGIO, code, band, so);
334 1.24 matt if (sb->sb_flags & SB_UPCALL)
335 1.24 matt (*so->so_upcall)(so, so->so_upcallarg, M_DONTWAIT);
336 1.1 cgd }
337 1.1 cgd
338 1.1 cgd /*
339 1.1 cgd * Socket buffer (struct sockbuf) utility routines.
340 1.1 cgd *
341 1.1 cgd * Each socket contains two socket buffers: one for sending data and
342 1.1 cgd * one for receiving data. Each buffer contains a queue of mbufs,
343 1.1 cgd * information about the number of mbufs and amount of data in the
344 1.13 mycroft * queue, and other fields allowing poll() statements and notification
345 1.1 cgd * on data availability to be implemented.
346 1.1 cgd *
347 1.1 cgd * Data stored in a socket buffer is maintained as a list of records.
348 1.1 cgd * Each record is a list of mbufs chained together with the m_next
349 1.1 cgd * field. Records are chained together with the m_nextpkt field. The upper
350 1.1 cgd * level routine soreceive() expects the following conventions to be
351 1.1 cgd * observed when placing information in the receive buffer:
352 1.1 cgd *
353 1.1 cgd * 1. If the protocol requires each message be preceded by the sender's
354 1.1 cgd * name, then a record containing that name must be present before
355 1.1 cgd * any associated data (mbuf's must be of type MT_SONAME).
356 1.1 cgd * 2. If the protocol supports the exchange of ``access rights'' (really
357 1.1 cgd * just additional data associated with the message), and there are
358 1.1 cgd * ``rights'' to be received, then a record containing this data
359 1.10 mycroft * should be present (mbuf's must be of type MT_CONTROL).
360 1.1 cgd * 3. If a name or rights record exists, then it must be followed by
361 1.1 cgd * a data record, perhaps of zero length.
362 1.1 cgd *
363 1.1 cgd * Before using a new socket structure it is first necessary to reserve
364 1.1 cgd * buffer space to the socket, by calling sbreserve(). This should commit
365 1.1 cgd * some of the available buffer space in the system buffer pool for the
366 1.1 cgd * socket (currently, it does nothing but enforce limits). The space
367 1.1 cgd * should be released by calling sbrelease() when the socket is destroyed.
368 1.1 cgd */
369 1.1 cgd
370 1.7 mycroft int
371 1.58 thorpej sb_max_set(u_long new_sbmax)
372 1.58 thorpej {
373 1.58 thorpej int s;
374 1.58 thorpej
375 1.58 thorpej if (new_sbmax < (16 * 1024))
376 1.58 thorpej return (EINVAL);
377 1.58 thorpej
378 1.58 thorpej s = splsoftnet();
379 1.58 thorpej sb_max = new_sbmax;
380 1.58 thorpej sb_max_adj = (u_quad_t)new_sbmax * MCLBYTES / (MSIZE + MCLBYTES);
381 1.58 thorpej splx(s);
382 1.58 thorpej
383 1.58 thorpej return (0);
384 1.58 thorpej }
385 1.58 thorpej
386 1.58 thorpej int
387 1.37 lukem soreserve(struct socket *so, u_long sndcc, u_long rcvcc)
388 1.1 cgd {
389 1.74 christos /*
390 1.74 christos * there's at least one application (a configure script of screen)
391 1.74 christos * which expects a fifo is writable even if it has "some" bytes
392 1.74 christos * in its buffer.
393 1.74 christos * so we want to make sure (hiwat - lowat) >= (some bytes).
394 1.74 christos *
395 1.74 christos * PIPE_BUF here is an arbitrary value chosen as (some bytes) above.
396 1.74 christos * we expect it's large enough for such applications.
397 1.74 christos */
398 1.74 christos u_long lowat = MAX(sock_loan_thresh, MCLBYTES);
399 1.74 christos u_long hiwat = lowat + PIPE_BUF;
400 1.1 cgd
401 1.74 christos if (sndcc < hiwat)
402 1.74 christos sndcc = hiwat;
403 1.59 christos if (sbreserve(&so->so_snd, sndcc, so) == 0)
404 1.1 cgd goto bad;
405 1.59 christos if (sbreserve(&so->so_rcv, rcvcc, so) == 0)
406 1.1 cgd goto bad2;
407 1.1 cgd if (so->so_rcv.sb_lowat == 0)
408 1.1 cgd so->so_rcv.sb_lowat = 1;
409 1.1 cgd if (so->so_snd.sb_lowat == 0)
410 1.74 christos so->so_snd.sb_lowat = lowat;
411 1.1 cgd if (so->so_snd.sb_lowat > so->so_snd.sb_hiwat)
412 1.1 cgd so->so_snd.sb_lowat = so->so_snd.sb_hiwat;
413 1.1 cgd return (0);
414 1.37 lukem bad2:
415 1.59 christos sbrelease(&so->so_snd, so);
416 1.37 lukem bad:
417 1.1 cgd return (ENOBUFS);
418 1.1 cgd }
419 1.1 cgd
420 1.1 cgd /*
421 1.1 cgd * Allot mbufs to a sockbuf.
422 1.1 cgd * Attempt to scale mbmax so that mbcnt doesn't become limiting
423 1.1 cgd * if buffering efficiency is near the normal case.
424 1.1 cgd */
425 1.7 mycroft int
426 1.59 christos sbreserve(struct sockbuf *sb, u_long cc, struct socket *so)
427 1.1 cgd {
428 1.75 ad struct lwp *l = curlwp; /* XXX */
429 1.62 christos rlim_t maxcc;
430 1.67 christos struct uidinfo *uidinfo;
431 1.1 cgd
432 1.58 thorpej KDASSERT(sb_max_adj != 0);
433 1.58 thorpej if (cc == 0 || cc > sb_max_adj)
434 1.1 cgd return (0);
435 1.60 matt if (so) {
436 1.88 yamt if (kauth_cred_geteuid(l->l_cred) == so->so_uidinfo->ui_uid)
437 1.75 ad maxcc = l->l_proc->p_rlimit[RLIMIT_SBSIZE].rlim_cur;
438 1.60 matt else
439 1.60 matt maxcc = RLIM_INFINITY;
440 1.67 christos uidinfo = so->so_uidinfo;
441 1.62 christos } else {
442 1.67 christos uidinfo = uid_find(0); /* XXX: nothing better */
443 1.62 christos maxcc = RLIM_INFINITY;
444 1.60 matt }
445 1.67 christos if (!chgsbsize(uidinfo, &sb->sb_hiwat, cc, maxcc))
446 1.62 christos return 0;
447 1.1 cgd sb->sb_mbmax = min(cc * 2, sb_max);
448 1.1 cgd if (sb->sb_lowat > sb->sb_hiwat)
449 1.1 cgd sb->sb_lowat = sb->sb_hiwat;
450 1.1 cgd return (1);
451 1.1 cgd }
452 1.1 cgd
453 1.1 cgd /*
454 1.1 cgd * Free mbufs held by a socket, and reserved mbuf space.
455 1.1 cgd */
456 1.7 mycroft void
457 1.59 christos sbrelease(struct sockbuf *sb, struct socket *so)
458 1.1 cgd {
459 1.1 cgd
460 1.1 cgd sbflush(sb);
461 1.87 yamt (void)chgsbsize(so->so_uidinfo, &sb->sb_hiwat, 0, RLIM_INFINITY);
462 1.59 christos sb->sb_mbmax = 0;
463 1.1 cgd }
464 1.1 cgd
465 1.1 cgd /*
466 1.1 cgd * Routines to add and remove
467 1.1 cgd * data from an mbuf queue.
468 1.1 cgd *
469 1.1 cgd * The routines sbappend() or sbappendrecord() are normally called to
470 1.1 cgd * append new mbufs to a socket buffer, after checking that adequate
471 1.1 cgd * space is available, comparing the function sbspace() with the amount
472 1.1 cgd * of data to be added. sbappendrecord() differs from sbappend() in
473 1.1 cgd * that data supplied is treated as the beginning of a new record.
474 1.1 cgd * To place a sender's address, optional access rights, and data in a
475 1.1 cgd * socket receive buffer, sbappendaddr() should be used. To place
476 1.1 cgd * access rights and data in a socket receive buffer, sbappendrights()
477 1.1 cgd * should be used. In either case, the new data begins a new record.
478 1.1 cgd * Note that unlike sbappend() and sbappendrecord(), these routines check
479 1.1 cgd * for the caller that there will be enough space to store the data.
480 1.1 cgd * Each fails if there is not enough space, or if it cannot find mbufs
481 1.1 cgd * to store additional information in.
482 1.1 cgd *
483 1.1 cgd * Reliable protocols may use the socket send buffer to hold data
484 1.1 cgd * awaiting acknowledgement. Data is normally copied from a socket
485 1.1 cgd * send buffer in a protocol with m_copy for output to a peer,
486 1.1 cgd * and then removing the data from the socket buffer with sbdrop()
487 1.1 cgd * or sbdroprecord() when the data is acknowledged by the peer.
488 1.1 cgd */
489 1.1 cgd
490 1.43 thorpej #ifdef SOCKBUF_DEBUG
491 1.43 thorpej void
492 1.43 thorpej sblastrecordchk(struct sockbuf *sb, const char *where)
493 1.43 thorpej {
494 1.43 thorpej struct mbuf *m = sb->sb_mb;
495 1.43 thorpej
496 1.43 thorpej while (m && m->m_nextpkt)
497 1.43 thorpej m = m->m_nextpkt;
498 1.43 thorpej
499 1.43 thorpej if (m != sb->sb_lastrecord) {
500 1.43 thorpej printf("sblastrecordchk: sb_mb %p sb_lastrecord %p last %p\n",
501 1.43 thorpej sb->sb_mb, sb->sb_lastrecord, m);
502 1.43 thorpej printf("packet chain:\n");
503 1.43 thorpej for (m = sb->sb_mb; m != NULL; m = m->m_nextpkt)
504 1.43 thorpej printf("\t%p\n", m);
505 1.47 provos panic("sblastrecordchk from %s", where);
506 1.43 thorpej }
507 1.43 thorpej }
508 1.43 thorpej
509 1.43 thorpej void
510 1.43 thorpej sblastmbufchk(struct sockbuf *sb, const char *where)
511 1.43 thorpej {
512 1.43 thorpej struct mbuf *m = sb->sb_mb;
513 1.43 thorpej struct mbuf *n;
514 1.43 thorpej
515 1.43 thorpej while (m && m->m_nextpkt)
516 1.43 thorpej m = m->m_nextpkt;
517 1.43 thorpej
518 1.43 thorpej while (m && m->m_next)
519 1.43 thorpej m = m->m_next;
520 1.43 thorpej
521 1.43 thorpej if (m != sb->sb_mbtail) {
522 1.43 thorpej printf("sblastmbufchk: sb_mb %p sb_mbtail %p last %p\n",
523 1.43 thorpej sb->sb_mb, sb->sb_mbtail, m);
524 1.43 thorpej printf("packet tree:\n");
525 1.43 thorpej for (m = sb->sb_mb; m != NULL; m = m->m_nextpkt) {
526 1.43 thorpej printf("\t");
527 1.43 thorpej for (n = m; n != NULL; n = n->m_next)
528 1.43 thorpej printf("%p ", n);
529 1.43 thorpej printf("\n");
530 1.43 thorpej }
531 1.43 thorpej panic("sblastmbufchk from %s", where);
532 1.43 thorpej }
533 1.43 thorpej }
534 1.43 thorpej #endif /* SOCKBUF_DEBUG */
535 1.43 thorpej
536 1.63 jonathan /*
537 1.63 jonathan * Link a chain of records onto a socket buffer
538 1.63 jonathan */
539 1.63 jonathan #define SBLINKRECORDCHAIN(sb, m0, mlast) \
540 1.43 thorpej do { \
541 1.43 thorpej if ((sb)->sb_lastrecord != NULL) \
542 1.43 thorpej (sb)->sb_lastrecord->m_nextpkt = (m0); \
543 1.43 thorpej else \
544 1.43 thorpej (sb)->sb_mb = (m0); \
545 1.63 jonathan (sb)->sb_lastrecord = (mlast); \
546 1.43 thorpej } while (/*CONSTCOND*/0)
547 1.43 thorpej
548 1.63 jonathan
549 1.63 jonathan #define SBLINKRECORD(sb, m0) \
550 1.63 jonathan SBLINKRECORDCHAIN(sb, m0, m0)
551 1.63 jonathan
552 1.1 cgd /*
553 1.1 cgd * Append mbuf chain m to the last record in the
554 1.1 cgd * socket buffer sb. The additional space associated
555 1.1 cgd * the mbuf chain is recorded in sb. Empty mbufs are
556 1.1 cgd * discarded and mbufs are compacted where possible.
557 1.1 cgd */
558 1.7 mycroft void
559 1.37 lukem sbappend(struct sockbuf *sb, struct mbuf *m)
560 1.1 cgd {
561 1.37 lukem struct mbuf *n;
562 1.1 cgd
563 1.1 cgd if (m == 0)
564 1.1 cgd return;
565 1.43 thorpej
566 1.49 matt #ifdef MBUFTRACE
567 1.65 jonathan m_claimm(m, sb->sb_mowner);
568 1.49 matt #endif
569 1.49 matt
570 1.43 thorpej SBLASTRECORDCHK(sb, "sbappend 1");
571 1.43 thorpej
572 1.43 thorpej if ((n = sb->sb_lastrecord) != NULL) {
573 1.43 thorpej /*
574 1.43 thorpej * XXX Would like to simply use sb_mbtail here, but
575 1.43 thorpej * XXX I need to verify that I won't miss an EOR that
576 1.43 thorpej * XXX way.
577 1.43 thorpej */
578 1.1 cgd do {
579 1.1 cgd if (n->m_flags & M_EOR) {
580 1.1 cgd sbappendrecord(sb, m); /* XXXXXX!!!! */
581 1.1 cgd return;
582 1.1 cgd }
583 1.1 cgd } while (n->m_next && (n = n->m_next));
584 1.43 thorpej } else {
585 1.43 thorpej /*
586 1.43 thorpej * If this is the first record in the socket buffer, it's
587 1.43 thorpej * also the last record.
588 1.43 thorpej */
589 1.43 thorpej sb->sb_lastrecord = m;
590 1.1 cgd }
591 1.1 cgd sbcompress(sb, m, n);
592 1.43 thorpej SBLASTRECORDCHK(sb, "sbappend 2");
593 1.43 thorpej }
594 1.43 thorpej
595 1.43 thorpej /*
596 1.43 thorpej * This version of sbappend() should only be used when the caller
597 1.43 thorpej * absolutely knows that there will never be more than one record
598 1.43 thorpej * in the socket buffer, that is, a stream protocol (such as TCP).
599 1.43 thorpej */
600 1.43 thorpej void
601 1.44 thorpej sbappendstream(struct sockbuf *sb, struct mbuf *m)
602 1.43 thorpej {
603 1.43 thorpej
604 1.43 thorpej KDASSERT(m->m_nextpkt == NULL);
605 1.43 thorpej KASSERT(sb->sb_mb == sb->sb_lastrecord);
606 1.43 thorpej
607 1.43 thorpej SBLASTMBUFCHK(sb, __func__);
608 1.43 thorpej
609 1.49 matt #ifdef MBUFTRACE
610 1.65 jonathan m_claimm(m, sb->sb_mowner);
611 1.49 matt #endif
612 1.49 matt
613 1.43 thorpej sbcompress(sb, m, sb->sb_mbtail);
614 1.43 thorpej
615 1.43 thorpej sb->sb_lastrecord = sb->sb_mb;
616 1.43 thorpej SBLASTRECORDCHK(sb, __func__);
617 1.1 cgd }
618 1.1 cgd
619 1.1 cgd #ifdef SOCKBUF_DEBUG
620 1.7 mycroft void
621 1.37 lukem sbcheck(struct sockbuf *sb)
622 1.1 cgd {
623 1.37 lukem struct mbuf *m;
624 1.43 thorpej u_long len, mbcnt;
625 1.1 cgd
626 1.37 lukem len = 0;
627 1.37 lukem mbcnt = 0;
628 1.1 cgd for (m = sb->sb_mb; m; m = m->m_next) {
629 1.1 cgd len += m->m_len;
630 1.1 cgd mbcnt += MSIZE;
631 1.1 cgd if (m->m_flags & M_EXT)
632 1.1 cgd mbcnt += m->m_ext.ext_size;
633 1.1 cgd if (m->m_nextpkt)
634 1.1 cgd panic("sbcheck nextpkt");
635 1.1 cgd }
636 1.1 cgd if (len != sb->sb_cc || mbcnt != sb->sb_mbcnt) {
637 1.43 thorpej printf("cc %lu != %lu || mbcnt %lu != %lu\n", len, sb->sb_cc,
638 1.1 cgd mbcnt, sb->sb_mbcnt);
639 1.1 cgd panic("sbcheck");
640 1.1 cgd }
641 1.1 cgd }
642 1.1 cgd #endif
643 1.1 cgd
644 1.1 cgd /*
645 1.1 cgd * As above, except the mbuf chain
646 1.1 cgd * begins a new record.
647 1.1 cgd */
648 1.7 mycroft void
649 1.37 lukem sbappendrecord(struct sockbuf *sb, struct mbuf *m0)
650 1.1 cgd {
651 1.37 lukem struct mbuf *m;
652 1.1 cgd
653 1.1 cgd if (m0 == 0)
654 1.1 cgd return;
655 1.43 thorpej
656 1.49 matt #ifdef MBUFTRACE
657 1.65 jonathan m_claimm(m0, sb->sb_mowner);
658 1.49 matt #endif
659 1.1 cgd /*
660 1.1 cgd * Put the first mbuf on the queue.
661 1.1 cgd * Note this permits zero length records.
662 1.1 cgd */
663 1.1 cgd sballoc(sb, m0);
664 1.43 thorpej SBLASTRECORDCHK(sb, "sbappendrecord 1");
665 1.43 thorpej SBLINKRECORD(sb, m0);
666 1.1 cgd m = m0->m_next;
667 1.1 cgd m0->m_next = 0;
668 1.1 cgd if (m && (m0->m_flags & M_EOR)) {
669 1.1 cgd m0->m_flags &= ~M_EOR;
670 1.1 cgd m->m_flags |= M_EOR;
671 1.1 cgd }
672 1.1 cgd sbcompress(sb, m, m0);
673 1.43 thorpej SBLASTRECORDCHK(sb, "sbappendrecord 2");
674 1.1 cgd }
675 1.1 cgd
676 1.1 cgd /*
677 1.1 cgd * As above except that OOB data
678 1.1 cgd * is inserted at the beginning of the sockbuf,
679 1.1 cgd * but after any other OOB data.
680 1.1 cgd */
681 1.7 mycroft void
682 1.37 lukem sbinsertoob(struct sockbuf *sb, struct mbuf *m0)
683 1.1 cgd {
684 1.37 lukem struct mbuf *m, **mp;
685 1.1 cgd
686 1.1 cgd if (m0 == 0)
687 1.1 cgd return;
688 1.43 thorpej
689 1.43 thorpej SBLASTRECORDCHK(sb, "sbinsertoob 1");
690 1.43 thorpej
691 1.11 christos for (mp = &sb->sb_mb; (m = *mp) != NULL; mp = &((*mp)->m_nextpkt)) {
692 1.1 cgd again:
693 1.1 cgd switch (m->m_type) {
694 1.1 cgd
695 1.1 cgd case MT_OOBDATA:
696 1.1 cgd continue; /* WANT next train */
697 1.1 cgd
698 1.1 cgd case MT_CONTROL:
699 1.11 christos if ((m = m->m_next) != NULL)
700 1.1 cgd goto again; /* inspect THIS train further */
701 1.1 cgd }
702 1.1 cgd break;
703 1.1 cgd }
704 1.1 cgd /*
705 1.1 cgd * Put the first mbuf on the queue.
706 1.1 cgd * Note this permits zero length records.
707 1.1 cgd */
708 1.1 cgd sballoc(sb, m0);
709 1.1 cgd m0->m_nextpkt = *mp;
710 1.43 thorpej if (*mp == NULL) {
711 1.43 thorpej /* m0 is actually the new tail */
712 1.43 thorpej sb->sb_lastrecord = m0;
713 1.43 thorpej }
714 1.1 cgd *mp = m0;
715 1.1 cgd m = m0->m_next;
716 1.1 cgd m0->m_next = 0;
717 1.1 cgd if (m && (m0->m_flags & M_EOR)) {
718 1.1 cgd m0->m_flags &= ~M_EOR;
719 1.1 cgd m->m_flags |= M_EOR;
720 1.1 cgd }
721 1.1 cgd sbcompress(sb, m, m0);
722 1.43 thorpej SBLASTRECORDCHK(sb, "sbinsertoob 2");
723 1.1 cgd }
724 1.1 cgd
725 1.1 cgd /*
726 1.1 cgd * Append address and data, and optionally, control (ancillary) data
727 1.1 cgd * to the receive queue of a socket. If present,
728 1.1 cgd * m0 must include a packet header with total length.
729 1.1 cgd * Returns 0 if no space in sockbuf or insufficient mbufs.
730 1.1 cgd */
731 1.7 mycroft int
732 1.61 matt sbappendaddr(struct sockbuf *sb, const struct sockaddr *asa, struct mbuf *m0,
733 1.37 lukem struct mbuf *control)
734 1.1 cgd {
735 1.43 thorpej struct mbuf *m, *n, *nlast;
736 1.50 fvdl int space, len;
737 1.1 cgd
738 1.37 lukem space = asa->sa_len;
739 1.37 lukem
740 1.49 matt if (m0 != NULL) {
741 1.49 matt if ((m0->m_flags & M_PKTHDR) == 0)
742 1.49 matt panic("sbappendaddr");
743 1.1 cgd space += m0->m_pkthdr.len;
744 1.49 matt #ifdef MBUFTRACE
745 1.65 jonathan m_claimm(m0, sb->sb_mowner);
746 1.49 matt #endif
747 1.49 matt }
748 1.1 cgd for (n = control; n; n = n->m_next) {
749 1.1 cgd space += n->m_len;
750 1.49 matt MCLAIM(n, sb->sb_mowner);
751 1.1 cgd if (n->m_next == 0) /* keep pointer to last control buf */
752 1.1 cgd break;
753 1.1 cgd }
754 1.1 cgd if (space > sbspace(sb))
755 1.1 cgd return (0);
756 1.1 cgd MGET(m, M_DONTWAIT, MT_SONAME);
757 1.1 cgd if (m == 0)
758 1.1 cgd return (0);
759 1.49 matt MCLAIM(m, sb->sb_mowner);
760 1.50 fvdl /*
761 1.50 fvdl * XXX avoid 'comparison always true' warning which isn't easily
762 1.50 fvdl * avoided.
763 1.50 fvdl */
764 1.50 fvdl len = asa->sa_len;
765 1.50 fvdl if (len > MLEN) {
766 1.20 thorpej MEXTMALLOC(m, asa->sa_len, M_NOWAIT);
767 1.20 thorpej if ((m->m_flags & M_EXT) == 0) {
768 1.20 thorpej m_free(m);
769 1.20 thorpej return (0);
770 1.20 thorpej }
771 1.20 thorpej }
772 1.1 cgd m->m_len = asa->sa_len;
773 1.82 christos memcpy(mtod(m, void *), asa, asa->sa_len);
774 1.1 cgd if (n)
775 1.1 cgd n->m_next = m0; /* concatenate data to control */
776 1.1 cgd else
777 1.1 cgd control = m0;
778 1.1 cgd m->m_next = control;
779 1.43 thorpej
780 1.43 thorpej SBLASTRECORDCHK(sb, "sbappendaddr 1");
781 1.43 thorpej
782 1.43 thorpej for (n = m; n->m_next != NULL; n = n->m_next)
783 1.1 cgd sballoc(sb, n);
784 1.43 thorpej sballoc(sb, n);
785 1.43 thorpej nlast = n;
786 1.43 thorpej SBLINKRECORD(sb, m);
787 1.43 thorpej
788 1.43 thorpej sb->sb_mbtail = nlast;
789 1.43 thorpej SBLASTMBUFCHK(sb, "sbappendaddr");
790 1.43 thorpej
791 1.43 thorpej SBLASTRECORDCHK(sb, "sbappendaddr 2");
792 1.43 thorpej
793 1.1 cgd return (1);
794 1.1 cgd }
795 1.1 cgd
796 1.63 jonathan /*
797 1.63 jonathan * Helper for sbappendchainaddr: prepend a struct sockaddr* to
798 1.63 jonathan * an mbuf chain.
799 1.63 jonathan */
800 1.70 perry static inline struct mbuf *
801 1.81 yamt m_prepend_sockaddr(struct sockbuf *sb, struct mbuf *m0,
802 1.64 jonathan const struct sockaddr *asa)
803 1.63 jonathan {
804 1.63 jonathan struct mbuf *m;
805 1.64 jonathan const int salen = asa->sa_len;
806 1.63 jonathan
807 1.63 jonathan /* only the first in each chain need be a pkthdr */
808 1.63 jonathan MGETHDR(m, M_DONTWAIT, MT_SONAME);
809 1.63 jonathan if (m == 0)
810 1.63 jonathan return (0);
811 1.63 jonathan MCLAIM(m, sb->sb_mowner);
812 1.64 jonathan #ifdef notyet
813 1.64 jonathan if (salen > MHLEN) {
814 1.64 jonathan MEXTMALLOC(m, salen, M_NOWAIT);
815 1.64 jonathan if ((m->m_flags & M_EXT) == 0) {
816 1.64 jonathan m_free(m);
817 1.64 jonathan return (0);
818 1.64 jonathan }
819 1.64 jonathan }
820 1.64 jonathan #else
821 1.64 jonathan KASSERT(salen <= MHLEN);
822 1.64 jonathan #endif
823 1.64 jonathan m->m_len = salen;
824 1.82 christos memcpy(mtod(m, void *), asa, salen);
825 1.63 jonathan m->m_next = m0;
826 1.64 jonathan m->m_pkthdr.len = salen + m0->m_pkthdr.len;
827 1.63 jonathan
828 1.63 jonathan return m;
829 1.63 jonathan }
830 1.63 jonathan
831 1.63 jonathan int
832 1.63 jonathan sbappendaddrchain(struct sockbuf *sb, const struct sockaddr *asa,
833 1.63 jonathan struct mbuf *m0, int sbprio)
834 1.63 jonathan {
835 1.63 jonathan int space;
836 1.63 jonathan struct mbuf *m, *n, *n0, *nlast;
837 1.63 jonathan int error;
838 1.63 jonathan
839 1.63 jonathan /*
840 1.63 jonathan * XXX sbprio reserved for encoding priority of this* request:
841 1.63 jonathan * SB_PRIO_NONE --> honour normal sb limits
842 1.63 jonathan * SB_PRIO_ONESHOT_OVERFLOW --> if socket has any space,
843 1.63 jonathan * take whole chain. Intended for large requests
844 1.63 jonathan * that should be delivered atomically (all, or none).
845 1.63 jonathan * SB_PRIO_OVERDRAFT -- allow a small (2*MLEN) overflow
846 1.63 jonathan * over normal socket limits, for messages indicating
847 1.63 jonathan * buffer overflow in earlier normal/lower-priority messages
848 1.63 jonathan * SB_PRIO_BESTEFFORT --> ignore limits entirely.
849 1.63 jonathan * Intended for kernel-generated messages only.
850 1.63 jonathan * Up to generator to avoid total mbuf resource exhaustion.
851 1.63 jonathan */
852 1.63 jonathan (void)sbprio;
853 1.63 jonathan
854 1.63 jonathan if (m0 && (m0->m_flags & M_PKTHDR) == 0)
855 1.63 jonathan panic("sbappendaddrchain");
856 1.63 jonathan
857 1.63 jonathan space = sbspace(sb);
858 1.66 perry
859 1.63 jonathan #ifdef notyet
860 1.66 perry /*
861 1.63 jonathan * Enforce SB_PRIO_* limits as described above.
862 1.63 jonathan */
863 1.63 jonathan #endif
864 1.63 jonathan
865 1.63 jonathan n0 = NULL;
866 1.63 jonathan nlast = NULL;
867 1.63 jonathan for (m = m0; m; m = m->m_nextpkt) {
868 1.63 jonathan struct mbuf *np;
869 1.63 jonathan
870 1.64 jonathan #ifdef MBUFTRACE
871 1.65 jonathan m_claimm(m, sb->sb_mowner);
872 1.64 jonathan #endif
873 1.64 jonathan
874 1.63 jonathan /* Prepend sockaddr to this record (m) of input chain m0 */
875 1.64 jonathan n = m_prepend_sockaddr(sb, m, asa);
876 1.63 jonathan if (n == NULL) {
877 1.63 jonathan error = ENOBUFS;
878 1.63 jonathan goto bad;
879 1.63 jonathan }
880 1.63 jonathan
881 1.63 jonathan /* Append record (asa+m) to end of new chain n0 */
882 1.63 jonathan if (n0 == NULL) {
883 1.63 jonathan n0 = n;
884 1.63 jonathan } else {
885 1.63 jonathan nlast->m_nextpkt = n;
886 1.63 jonathan }
887 1.63 jonathan /* Keep track of last record on new chain */
888 1.63 jonathan nlast = n;
889 1.63 jonathan
890 1.63 jonathan for (np = n; np; np = np->m_next)
891 1.63 jonathan sballoc(sb, np);
892 1.63 jonathan }
893 1.63 jonathan
894 1.64 jonathan SBLASTRECORDCHK(sb, "sbappendaddrchain 1");
895 1.64 jonathan
896 1.63 jonathan /* Drop the entire chain of (asa+m) records onto the socket */
897 1.63 jonathan SBLINKRECORDCHAIN(sb, n0, nlast);
898 1.64 jonathan
899 1.64 jonathan SBLASTRECORDCHK(sb, "sbappendaddrchain 2");
900 1.64 jonathan
901 1.63 jonathan for (m = nlast; m->m_next; m = m->m_next)
902 1.63 jonathan ;
903 1.63 jonathan sb->sb_mbtail = m;
904 1.64 jonathan SBLASTMBUFCHK(sb, "sbappendaddrchain");
905 1.64 jonathan
906 1.63 jonathan return (1);
907 1.63 jonathan
908 1.63 jonathan bad:
909 1.64 jonathan /*
910 1.64 jonathan * On error, free the prepended addreseses. For consistency
911 1.64 jonathan * with sbappendaddr(), leave it to our caller to free
912 1.64 jonathan * the input record chain passed to us as m0.
913 1.64 jonathan */
914 1.64 jonathan while ((n = n0) != NULL) {
915 1.64 jonathan struct mbuf *np;
916 1.64 jonathan
917 1.64 jonathan /* Undo the sballoc() of this record */
918 1.64 jonathan for (np = n; np; np = np->m_next)
919 1.64 jonathan sbfree(sb, np);
920 1.64 jonathan
921 1.64 jonathan n0 = n->m_nextpkt; /* iterate at next prepended address */
922 1.64 jonathan MFREE(n, np); /* free prepended address (not data) */
923 1.64 jonathan }
924 1.66 perry return 0;
925 1.63 jonathan }
926 1.63 jonathan
927 1.63 jonathan
928 1.7 mycroft int
929 1.37 lukem sbappendcontrol(struct sockbuf *sb, struct mbuf *m0, struct mbuf *control)
930 1.1 cgd {
931 1.43 thorpej struct mbuf *m, *mlast, *n;
932 1.37 lukem int space;
933 1.1 cgd
934 1.37 lukem space = 0;
935 1.1 cgd if (control == 0)
936 1.1 cgd panic("sbappendcontrol");
937 1.1 cgd for (m = control; ; m = m->m_next) {
938 1.1 cgd space += m->m_len;
939 1.49 matt MCLAIM(m, sb->sb_mowner);
940 1.1 cgd if (m->m_next == 0)
941 1.1 cgd break;
942 1.1 cgd }
943 1.1 cgd n = m; /* save pointer to last control buffer */
944 1.49 matt for (m = m0; m; m = m->m_next) {
945 1.49 matt MCLAIM(m, sb->sb_mowner);
946 1.1 cgd space += m->m_len;
947 1.49 matt }
948 1.1 cgd if (space > sbspace(sb))
949 1.1 cgd return (0);
950 1.1 cgd n->m_next = m0; /* concatenate data to control */
951 1.43 thorpej
952 1.43 thorpej SBLASTRECORDCHK(sb, "sbappendcontrol 1");
953 1.43 thorpej
954 1.43 thorpej for (m = control; m->m_next != NULL; m = m->m_next)
955 1.1 cgd sballoc(sb, m);
956 1.43 thorpej sballoc(sb, m);
957 1.43 thorpej mlast = m;
958 1.43 thorpej SBLINKRECORD(sb, control);
959 1.43 thorpej
960 1.43 thorpej sb->sb_mbtail = mlast;
961 1.43 thorpej SBLASTMBUFCHK(sb, "sbappendcontrol");
962 1.43 thorpej
963 1.43 thorpej SBLASTRECORDCHK(sb, "sbappendcontrol 2");
964 1.43 thorpej
965 1.1 cgd return (1);
966 1.1 cgd }
967 1.1 cgd
968 1.1 cgd /*
969 1.1 cgd * Compress mbuf chain m into the socket
970 1.1 cgd * buffer sb following mbuf n. If n
971 1.1 cgd * is null, the buffer is presumed empty.
972 1.1 cgd */
973 1.7 mycroft void
974 1.37 lukem sbcompress(struct sockbuf *sb, struct mbuf *m, struct mbuf *n)
975 1.1 cgd {
976 1.37 lukem int eor;
977 1.37 lukem struct mbuf *o;
978 1.1 cgd
979 1.37 lukem eor = 0;
980 1.1 cgd while (m) {
981 1.1 cgd eor |= m->m_flags & M_EOR;
982 1.1 cgd if (m->m_len == 0 &&
983 1.1 cgd (eor == 0 ||
984 1.1 cgd (((o = m->m_next) || (o = n)) &&
985 1.1 cgd o->m_type == m->m_type))) {
986 1.46 thorpej if (sb->sb_lastrecord == m)
987 1.46 thorpej sb->sb_lastrecord = m->m_next;
988 1.1 cgd m = m_free(m);
989 1.1 cgd continue;
990 1.1 cgd }
991 1.40 thorpej if (n && (n->m_flags & M_EOR) == 0 &&
992 1.40 thorpej /* M_TRAILINGSPACE() checks buffer writeability */
993 1.40 thorpej m->m_len <= MCLBYTES / 4 && /* XXX Don't copy too much */
994 1.40 thorpej m->m_len <= M_TRAILINGSPACE(n) &&
995 1.40 thorpej n->m_type == m->m_type) {
996 1.82 christos memcpy(mtod(n, char *) + n->m_len, mtod(m, void *),
997 1.1 cgd (unsigned)m->m_len);
998 1.1 cgd n->m_len += m->m_len;
999 1.1 cgd sb->sb_cc += m->m_len;
1000 1.1 cgd m = m_free(m);
1001 1.1 cgd continue;
1002 1.1 cgd }
1003 1.1 cgd if (n)
1004 1.1 cgd n->m_next = m;
1005 1.1 cgd else
1006 1.1 cgd sb->sb_mb = m;
1007 1.43 thorpej sb->sb_mbtail = m;
1008 1.1 cgd sballoc(sb, m);
1009 1.1 cgd n = m;
1010 1.1 cgd m->m_flags &= ~M_EOR;
1011 1.1 cgd m = m->m_next;
1012 1.1 cgd n->m_next = 0;
1013 1.1 cgd }
1014 1.1 cgd if (eor) {
1015 1.1 cgd if (n)
1016 1.1 cgd n->m_flags |= eor;
1017 1.1 cgd else
1018 1.15 christos printf("semi-panic: sbcompress\n");
1019 1.1 cgd }
1020 1.43 thorpej SBLASTMBUFCHK(sb, __func__);
1021 1.1 cgd }
1022 1.1 cgd
1023 1.1 cgd /*
1024 1.1 cgd * Free all mbufs in a sockbuf.
1025 1.1 cgd * Check that all resources are reclaimed.
1026 1.1 cgd */
1027 1.7 mycroft void
1028 1.37 lukem sbflush(struct sockbuf *sb)
1029 1.1 cgd {
1030 1.1 cgd
1031 1.43 thorpej KASSERT((sb->sb_flags & SB_LOCK) == 0);
1032 1.43 thorpej
1033 1.1 cgd while (sb->sb_mbcnt)
1034 1.1 cgd sbdrop(sb, (int)sb->sb_cc);
1035 1.43 thorpej
1036 1.43 thorpej KASSERT(sb->sb_cc == 0);
1037 1.43 thorpej KASSERT(sb->sb_mb == NULL);
1038 1.43 thorpej KASSERT(sb->sb_mbtail == NULL);
1039 1.43 thorpej KASSERT(sb->sb_lastrecord == NULL);
1040 1.1 cgd }
1041 1.1 cgd
1042 1.1 cgd /*
1043 1.1 cgd * Drop data from (the front of) a sockbuf.
1044 1.1 cgd */
1045 1.7 mycroft void
1046 1.37 lukem sbdrop(struct sockbuf *sb, int len)
1047 1.1 cgd {
1048 1.37 lukem struct mbuf *m, *mn, *next;
1049 1.1 cgd
1050 1.1 cgd next = (m = sb->sb_mb) ? m->m_nextpkt : 0;
1051 1.1 cgd while (len > 0) {
1052 1.1 cgd if (m == 0) {
1053 1.1 cgd if (next == 0)
1054 1.1 cgd panic("sbdrop");
1055 1.1 cgd m = next;
1056 1.1 cgd next = m->m_nextpkt;
1057 1.1 cgd continue;
1058 1.1 cgd }
1059 1.1 cgd if (m->m_len > len) {
1060 1.1 cgd m->m_len -= len;
1061 1.1 cgd m->m_data += len;
1062 1.1 cgd sb->sb_cc -= len;
1063 1.1 cgd break;
1064 1.1 cgd }
1065 1.1 cgd len -= m->m_len;
1066 1.1 cgd sbfree(sb, m);
1067 1.1 cgd MFREE(m, mn);
1068 1.1 cgd m = mn;
1069 1.1 cgd }
1070 1.1 cgd while (m && m->m_len == 0) {
1071 1.1 cgd sbfree(sb, m);
1072 1.1 cgd MFREE(m, mn);
1073 1.1 cgd m = mn;
1074 1.1 cgd }
1075 1.1 cgd if (m) {
1076 1.1 cgd sb->sb_mb = m;
1077 1.1 cgd m->m_nextpkt = next;
1078 1.1 cgd } else
1079 1.1 cgd sb->sb_mb = next;
1080 1.43 thorpej /*
1081 1.45 thorpej * First part is an inline SB_EMPTY_FIXUP(). Second part
1082 1.43 thorpej * makes sure sb_lastrecord is up-to-date if we dropped
1083 1.43 thorpej * part of the last record.
1084 1.43 thorpej */
1085 1.43 thorpej m = sb->sb_mb;
1086 1.43 thorpej if (m == NULL) {
1087 1.43 thorpej sb->sb_mbtail = NULL;
1088 1.43 thorpej sb->sb_lastrecord = NULL;
1089 1.43 thorpej } else if (m->m_nextpkt == NULL)
1090 1.43 thorpej sb->sb_lastrecord = m;
1091 1.1 cgd }
1092 1.1 cgd
1093 1.1 cgd /*
1094 1.1 cgd * Drop a record off the front of a sockbuf
1095 1.1 cgd * and move the next record to the front.
1096 1.1 cgd */
1097 1.7 mycroft void
1098 1.37 lukem sbdroprecord(struct sockbuf *sb)
1099 1.1 cgd {
1100 1.37 lukem struct mbuf *m, *mn;
1101 1.1 cgd
1102 1.1 cgd m = sb->sb_mb;
1103 1.1 cgd if (m) {
1104 1.1 cgd sb->sb_mb = m->m_nextpkt;
1105 1.1 cgd do {
1106 1.1 cgd sbfree(sb, m);
1107 1.1 cgd MFREE(m, mn);
1108 1.11 christos } while ((m = mn) != NULL);
1109 1.1 cgd }
1110 1.45 thorpej SB_EMPTY_FIXUP(sb);
1111 1.19 thorpej }
1112 1.19 thorpej
1113 1.19 thorpej /*
1114 1.19 thorpej * Create a "control" mbuf containing the specified data
1115 1.19 thorpej * with the specified type for presentation on a socket buffer.
1116 1.19 thorpej */
1117 1.19 thorpej struct mbuf *
1118 1.82 christos sbcreatecontrol(void *p, int size, int type, int level)
1119 1.19 thorpej {
1120 1.37 lukem struct cmsghdr *cp;
1121 1.37 lukem struct mbuf *m;
1122 1.19 thorpej
1123 1.35 itojun if (CMSG_SPACE(size) > MCLBYTES) {
1124 1.30 itojun printf("sbcreatecontrol: message too large %d\n", size);
1125 1.30 itojun return NULL;
1126 1.30 itojun }
1127 1.30 itojun
1128 1.19 thorpej if ((m = m_get(M_DONTWAIT, MT_CONTROL)) == NULL)
1129 1.19 thorpej return ((struct mbuf *) NULL);
1130 1.35 itojun if (CMSG_SPACE(size) > MLEN) {
1131 1.30 itojun MCLGET(m, M_DONTWAIT);
1132 1.30 itojun if ((m->m_flags & M_EXT) == 0) {
1133 1.30 itojun m_free(m);
1134 1.30 itojun return NULL;
1135 1.30 itojun }
1136 1.30 itojun }
1137 1.19 thorpej cp = mtod(m, struct cmsghdr *);
1138 1.26 perry memcpy(CMSG_DATA(cp), p, size);
1139 1.35 itojun m->m_len = CMSG_SPACE(size);
1140 1.35 itojun cp->cmsg_len = CMSG_LEN(size);
1141 1.19 thorpej cp->cmsg_level = level;
1142 1.19 thorpej cp->cmsg_type = type;
1143 1.19 thorpej return (m);
1144 1.1 cgd }
1145