1 /*-
2 * SPDX-License-Identifier: BSD-2-Clause
3 *
4 * Copyright (c) 1995 Søren Schmidt
5 * All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 *
16 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
17 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
18 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
19 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
20 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
21 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
22 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
23 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
24 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
25 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
26 * SUCH DAMAGE.
27 */
28
29 #include "opt_inet6.h"
30
31 #include <sys/param.h>
32 #include <sys/capsicum.h>
33 #include <sys/filedesc.h>
34 #include <sys/limits.h>
35 #include <sys/malloc.h>
36 #include <sys/mbuf.h>
37 #include <sys/proc.h>
38 #include <sys/protosw.h>
39 #include <sys/socket.h>
40 #include <sys/socketvar.h>
41 #include <sys/syscallsubr.h>
42 #include <sys/sysproto.h>
43 #include <sys/vnode.h>
44 #include <sys/un.h>
45 #include <sys/unistd.h>
46
47 #include <security/audit/audit.h>
48
49 #include <net/if.h>
50 #include <net/vnet.h>
51 #include <netinet/in.h>
52 #include <netinet/ip.h>
53 #include <netinet/tcp.h>
54 #ifdef INET6
55 #include <netinet/ip6.h>
56 #include <netinet6/ip6_var.h>
57 #endif
58
59 #ifdef COMPAT_LINUX32
60 #include <compat/freebsd32/freebsd32_util.h>
61 #include <machine/../linux32/linux.h>
62 #include <machine/../linux32/linux32_proto.h>
63 #else
64 #include <machine/../linux/linux.h>
65 #include <machine/../linux/linux_proto.h>
66 #endif
67 #include <compat/linux/linux_common.h>
68 #include <compat/linux/linux_emul.h>
69 #include <compat/linux/linux_file.h>
70 #include <compat/linux/linux_mib.h>
71 #include <compat/linux/linux_socket.h>
72 #include <compat/linux/linux_time.h>
73 #include <compat/linux/linux_util.h>
74
75 _Static_assert(offsetof(struct l_ifreq, ifr_ifru) ==
76 offsetof(struct ifreq, ifr_ifru),
77 "Linux ifreq members names should be equal to FreeeBSD");
78 _Static_assert(offsetof(struct l_ifreq, ifr_index) ==
79 offsetof(struct ifreq, ifr_index),
80 "Linux ifreq members names should be equal to FreeeBSD");
81 _Static_assert(offsetof(struct l_ifreq, ifr_name) ==
82 offsetof(struct ifreq, ifr_name),
83 "Linux ifreq members names should be equal to FreeeBSD");
84
85 #define SECURITY_CONTEXT_STRING "unconfined"
86
87 static int linux_sendmsg_common(struct thread *, l_int, struct l_msghdr *,
88 l_uint);
89 static int linux_recvmsg_common(struct thread *, l_int, struct l_msghdr *,
90 l_uint, struct msghdr *);
91 static int linux_set_socket_flags(int, int *);
92
93 #define SOL_NETLINK 270
94
95 static int
linux_to_bsd_sockopt_level(int level)96 linux_to_bsd_sockopt_level(int level)
97 {
98
99 if (level == LINUX_SOL_SOCKET)
100 return (SOL_SOCKET);
101 /* Remaining values are RFC-defined protocol numbers. */
102 return (level);
103 }
104
105 static int
bsd_to_linux_sockopt_level(int level)106 bsd_to_linux_sockopt_level(int level)
107 {
108
109 if (level == SOL_SOCKET)
110 return (LINUX_SOL_SOCKET);
111 return (level);
112 }
113
114 static int
linux_to_bsd_ip_sockopt(int opt)115 linux_to_bsd_ip_sockopt(int opt)
116 {
117
118 switch (opt) {
119 /* known and translated sockopts */
120 case LINUX_IP_TOS:
121 return (IP_TOS);
122 case LINUX_IP_TTL:
123 return (IP_TTL);
124 case LINUX_IP_HDRINCL:
125 return (IP_HDRINCL);
126 case LINUX_IP_OPTIONS:
127 return (IP_OPTIONS);
128 case LINUX_IP_RECVOPTS:
129 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_RECVOPTS");
130 return (IP_RECVOPTS);
131 case LINUX_IP_RETOPTS:
132 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_REETOPTS");
133 return (IP_RETOPTS);
134 case LINUX_IP_RECVTTL:
135 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_RECVTTL");
136 return (IP_RECVTTL);
137 case LINUX_IP_RECVTOS:
138 return (IP_RECVTOS);
139 case LINUX_IP_FREEBIND:
140 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_FREEBIND");
141 return (IP_BINDANY);
142 case LINUX_IP_IPSEC_POLICY:
143 /* we have this option, but not documented in ip(4) manpage */
144 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_IPSEC_POLICY");
145 return (IP_IPSEC_POLICY);
146 case LINUX_IP_MINTTL:
147 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_MINTTL");
148 return (IP_MINTTL);
149 case LINUX_IP_MULTICAST_IF:
150 return (IP_MULTICAST_IF);
151 case LINUX_IP_MULTICAST_TTL:
152 return (IP_MULTICAST_TTL);
153 case LINUX_IP_MULTICAST_LOOP:
154 return (IP_MULTICAST_LOOP);
155 case LINUX_IP_ADD_MEMBERSHIP:
156 return (IP_ADD_MEMBERSHIP);
157 case LINUX_IP_DROP_MEMBERSHIP:
158 return (IP_DROP_MEMBERSHIP);
159 case LINUX_IP_UNBLOCK_SOURCE:
160 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_UNBLOCK_SOURCE");
161 return (IP_UNBLOCK_SOURCE);
162 case LINUX_IP_BLOCK_SOURCE:
163 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_BLOCK_SOURCE");
164 return (IP_BLOCK_SOURCE);
165 case LINUX_IP_ADD_SOURCE_MEMBERSHIP:
166 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_ADD_SOURCE_MEMBERSHIP");
167 return (IP_ADD_SOURCE_MEMBERSHIP);
168 case LINUX_IP_DROP_SOURCE_MEMBERSHIP:
169 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_DROP_SOURCE_MEMBERSHIP");
170 return (IP_DROP_SOURCE_MEMBERSHIP);
171 case LINUX_MCAST_JOIN_GROUP:
172 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_MCAST_JOIN_GROUP");
173 return (MCAST_JOIN_GROUP);
174 case LINUX_MCAST_LEAVE_GROUP:
175 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_MCAST_LEAVE_GROUP");
176 return (MCAST_LEAVE_GROUP);
177 case LINUX_MCAST_JOIN_SOURCE_GROUP:
178 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_MCAST_JOIN_SOURCE_GROUP");
179 return (MCAST_JOIN_SOURCE_GROUP);
180 case LINUX_MCAST_LEAVE_SOURCE_GROUP:
181 LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_MCAST_LEAVE_SOURCE_GROUP");
182 return (MCAST_LEAVE_SOURCE_GROUP);
183 case LINUX_IP_RECVORIGDSTADDR:
184 return (IP_RECVORIGDSTADDR);
185
186 /* known but not implemented sockopts */
187 case LINUX_IP_ROUTER_ALERT:
188 LINUX_RATELIMIT_MSG_OPT1(
189 "unsupported IPv4 socket option IP_ROUTER_ALERT (%d), you can not do user-space routing from linux programs",
190 opt);
191 return (-2);
192 case LINUX_IP_PKTINFO:
193 LINUX_RATELIMIT_MSG_OPT1(
194 "unsupported IPv4 socket option IP_PKTINFO (%d), you can not get extended packet info for datagram sockets in linux programs",
195 opt);
196 return (-2);
197 case LINUX_IP_PKTOPTIONS:
198 LINUX_RATELIMIT_MSG_OPT1(
199 "unsupported IPv4 socket option IP_PKTOPTIONS (%d)",
200 opt);
201 return (-2);
202 case LINUX_IP_MTU_DISCOVER:
203 LINUX_RATELIMIT_MSG_OPT1(
204 "unsupported IPv4 socket option IP_MTU_DISCOVER (%d), your linux program can not control path-MTU discovery",
205 opt);
206 return (-2);
207 case LINUX_IP_RECVERR:
208 /* needed by steam */
209 LINUX_RATELIMIT_MSG_OPT1(
210 "unsupported IPv4 socket option IP_RECVERR (%d), you can not get extended reliability info in linux programs",
211 opt);
212 return (-2);
213 case LINUX_IP_MTU:
214 LINUX_RATELIMIT_MSG_OPT1(
215 "unsupported IPv4 socket option IP_MTU (%d), your linux program can not control the MTU on this socket",
216 opt);
217 return (-2);
218 case LINUX_IP_XFRM_POLICY:
219 LINUX_RATELIMIT_MSG_OPT1(
220 "unsupported IPv4 socket option IP_XFRM_POLICY (%d)",
221 opt);
222 return (-2);
223 case LINUX_IP_PASSSEC:
224 /* needed by steam */
225 LINUX_RATELIMIT_MSG_OPT1(
226 "unsupported IPv4 socket option IP_PASSSEC (%d), you can not get IPSEC related credential information associated with this socket in linux programs -- if you do not use IPSEC, you can ignore this",
227 opt);
228 return (-2);
229 case LINUX_IP_TRANSPARENT:
230 /* IP_BINDANY or more? */
231 LINUX_RATELIMIT_MSG_OPT1(
232 "unsupported IPv4 socket option IP_TRANSPARENT (%d), you can not enable transparent proxying in linux programs -- note, IP_FREEBIND is supported, no idea if the FreeBSD IP_BINDANY is equivalent to the Linux IP_TRANSPARENT or not, any info is welcome",
233 opt);
234 return (-2);
235 case LINUX_IP_NODEFRAG:
236 LINUX_RATELIMIT_MSG_OPT1(
237 "unsupported IPv4 socket option IP_NODEFRAG (%d)",
238 opt);
239 return (-2);
240 case LINUX_IP_CHECKSUM:
241 LINUX_RATELIMIT_MSG_OPT1(
242 "unsupported IPv4 socket option IP_CHECKSUM (%d)",
243 opt);
244 return (-2);
245 case LINUX_IP_BIND_ADDRESS_NO_PORT:
246 LINUX_RATELIMIT_MSG_OPT1(
247 "unsupported IPv4 socket option IP_BIND_ADDRESS_NO_PORT (%d)",
248 opt);
249 return (-2);
250 case LINUX_IP_RECVFRAGSIZE:
251 LINUX_RATELIMIT_MSG_OPT1(
252 "unsupported IPv4 socket option IP_RECVFRAGSIZE (%d)",
253 opt);
254 return (-2);
255 case LINUX_MCAST_MSFILTER:
256 LINUX_RATELIMIT_MSG_OPT1(
257 "unsupported IPv4 socket option IP_MCAST_MSFILTER (%d)",
258 opt);
259 return (-2);
260 case LINUX_IP_MULTICAST_ALL:
261 LINUX_RATELIMIT_MSG_OPT1(
262 "unsupported IPv4 socket option IP_MULTICAST_ALL (%d), your linux program will not see all multicast groups joined by the entire system, only those the program joined itself on this socket",
263 opt);
264 return (-2);
265 case LINUX_IP_UNICAST_IF:
266 LINUX_RATELIMIT_MSG_OPT1(
267 "unsupported IPv4 socket option IP_UNICAST_IF (%d)",
268 opt);
269 return (-2);
270
271 /* unknown sockopts */
272 default:
273 return (-1);
274 }
275 }
276
277 static int
linux_to_bsd_ip6_sockopt(int opt)278 linux_to_bsd_ip6_sockopt(int opt)
279 {
280
281 switch (opt) {
282 /* known and translated sockopts */
283 case LINUX_IPV6_2292PKTINFO:
284 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_2292PKTINFO");
285 return (IPV6_2292PKTINFO);
286 case LINUX_IPV6_2292HOPOPTS:
287 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_2292HOPOPTS");
288 return (IPV6_2292HOPOPTS);
289 case LINUX_IPV6_2292DSTOPTS:
290 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_2292DSTOPTS");
291 return (IPV6_2292DSTOPTS);
292 case LINUX_IPV6_2292RTHDR:
293 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_2292RTHDR");
294 return (IPV6_2292RTHDR);
295 case LINUX_IPV6_2292PKTOPTIONS:
296 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_2292PKTOPTIONS");
297 return (IPV6_2292PKTOPTIONS);
298 case LINUX_IPV6_CHECKSUM:
299 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_CHECKSUM");
300 return (IPV6_CHECKSUM);
301 case LINUX_IPV6_2292HOPLIMIT:
302 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_2292HOPLIMIT");
303 return (IPV6_2292HOPLIMIT);
304 case LINUX_IPV6_NEXTHOP:
305 return (IPV6_NEXTHOP);
306 case LINUX_IPV6_UNICAST_HOPS:
307 return (IPV6_UNICAST_HOPS);
308 case LINUX_IPV6_MULTICAST_IF:
309 return (IPV6_MULTICAST_IF);
310 case LINUX_IPV6_MULTICAST_HOPS:
311 return (IPV6_MULTICAST_HOPS);
312 case LINUX_IPV6_MULTICAST_LOOP:
313 return (IPV6_MULTICAST_LOOP);
314 case LINUX_IPV6_ADD_MEMBERSHIP:
315 return (IPV6_JOIN_GROUP);
316 case LINUX_IPV6_DROP_MEMBERSHIP:
317 return (IPV6_LEAVE_GROUP);
318 case LINUX_IPV6_V6ONLY:
319 return (IPV6_V6ONLY);
320 case LINUX_IPV6_IPSEC_POLICY:
321 /* we have this option, but not documented in ip6(4) manpage */
322 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_IPSEC_POLICY");
323 return (IPV6_IPSEC_POLICY);
324 case LINUX_MCAST_JOIN_GROUP:
325 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_JOIN_GROUP");
326 return (IPV6_JOIN_GROUP);
327 case LINUX_MCAST_LEAVE_GROUP:
328 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_LEAVE_GROUP");
329 return (IPV6_LEAVE_GROUP);
330 case LINUX_IPV6_RECVPKTINFO:
331 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RECVPKTINFO");
332 return (IPV6_RECVPKTINFO);
333 case LINUX_IPV6_PKTINFO:
334 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_PKTINFO");
335 return (IPV6_PKTINFO);
336 case LINUX_IPV6_RECVHOPLIMIT:
337 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RECVHOPLIMIT");
338 return (IPV6_RECVHOPLIMIT);
339 case LINUX_IPV6_HOPLIMIT:
340 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_HOPLIMIT");
341 return (IPV6_HOPLIMIT);
342 case LINUX_IPV6_RECVHOPOPTS:
343 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RECVHOPOPTS");
344 return (IPV6_RECVHOPOPTS);
345 case LINUX_IPV6_HOPOPTS:
346 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_HOPOPTS");
347 return (IPV6_HOPOPTS);
348 case LINUX_IPV6_RTHDRDSTOPTS:
349 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RTHDRDSTOPTS");
350 return (IPV6_RTHDRDSTOPTS);
351 case LINUX_IPV6_RECVRTHDR:
352 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RECVRTHDR");
353 return (IPV6_RECVRTHDR);
354 case LINUX_IPV6_RTHDR:
355 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RTHDR");
356 return (IPV6_RTHDR);
357 case LINUX_IPV6_RECVDSTOPTS:
358 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RECVDSTOPTS");
359 return (IPV6_RECVDSTOPTS);
360 case LINUX_IPV6_DSTOPTS:
361 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_DSTOPTS");
362 return (IPV6_DSTOPTS);
363 case LINUX_IPV6_RECVPATHMTU:
364 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RECVPATHMTU");
365 return (IPV6_RECVPATHMTU);
366 case LINUX_IPV6_PATHMTU:
367 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_PATHMTU");
368 return (IPV6_PATHMTU);
369 case LINUX_IPV6_DONTFRAG:
370 return (IPV6_DONTFRAG);
371 case LINUX_IPV6_AUTOFLOWLABEL:
372 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_AUTOFLOWLABEL");
373 return (IPV6_AUTOFLOWLABEL);
374 case LINUX_IPV6_ORIGDSTADDR:
375 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_ORIGDSTADDR");
376 return (IPV6_ORIGDSTADDR);
377 case LINUX_IPV6_FREEBIND:
378 LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_FREEBIND");
379 return (IPV6_BINDANY);
380
381 /* known but not implemented sockopts */
382 case LINUX_IPV6_ADDRFORM:
383 LINUX_RATELIMIT_MSG_OPT1(
384 "unsupported IPv6 socket option IPV6_ADDRFORM (%d), you linux program can not convert the socket to IPv4",
385 opt);
386 return (-2);
387 case LINUX_IPV6_AUTHHDR:
388 LINUX_RATELIMIT_MSG_OPT1(
389 "unsupported IPv6 socket option IPV6_AUTHHDR (%d), your linux program can not get the authentication header info of IPv6 packets",
390 opt);
391 return (-2);
392 case LINUX_IPV6_FLOWINFO:
393 LINUX_RATELIMIT_MSG_OPT1(
394 "unsupported IPv6 socket option IPV6_FLOWINFO (%d), your linux program can not get the flowid of IPv6 packets",
395 opt);
396 return (-2);
397 case LINUX_IPV6_ROUTER_ALERT:
398 LINUX_RATELIMIT_MSG_OPT1(
399 "unsupported IPv6 socket option IPV6_ROUTER_ALERT (%d), you can not do user-space routing from linux programs",
400 opt);
401 return (-2);
402 case LINUX_IPV6_MTU_DISCOVER:
403 LINUX_RATELIMIT_MSG_OPT1(
404 "unsupported IPv6 socket option IPV6_MTU_DISCOVER (%d), your linux program can not control path-MTU discovery",
405 opt);
406 return (-2);
407 case LINUX_IPV6_MTU:
408 LINUX_RATELIMIT_MSG_OPT1(
409 "unsupported IPv6 socket option IPV6_MTU (%d), your linux program can not control the MTU on this socket",
410 opt);
411 return (-2);
412 case LINUX_IPV6_JOIN_ANYCAST:
413 LINUX_RATELIMIT_MSG_OPT1(
414 "unsupported IPv6 socket option IPV6_JOIN_ANYCAST (%d)",
415 opt);
416 return (-2);
417 case LINUX_IPV6_LEAVE_ANYCAST:
418 LINUX_RATELIMIT_MSG_OPT1(
419 "unsupported IPv6 socket option IPV6_LEAVE_ANYCAST (%d)",
420 opt);
421 return (-2);
422 case LINUX_IPV6_MULTICAST_ALL:
423 LINUX_RATELIMIT_MSG_OPT1(
424 "unsupported IPv6 socket option IPV6_MULTICAST_ALL (%d)",
425 opt);
426 return (-2);
427 case LINUX_IPV6_ROUTER_ALERT_ISOLATE:
428 LINUX_RATELIMIT_MSG_OPT1(
429 "unsupported IPv6 socket option IPV6_ROUTER_ALERT_ISOLATE (%d)",
430 opt);
431 return (-2);
432 case LINUX_IPV6_FLOWLABEL_MGR:
433 LINUX_RATELIMIT_MSG_OPT1(
434 "unsupported IPv6 socket option IPV6_FLOWLABEL_MGR (%d)",
435 opt);
436 return (-2);
437 case LINUX_IPV6_FLOWINFO_SEND:
438 LINUX_RATELIMIT_MSG_OPT1(
439 "unsupported IPv6 socket option IPV6_FLOWINFO_SEND (%d)",
440 opt);
441 return (-2);
442 case LINUX_IPV6_XFRM_POLICY:
443 LINUX_RATELIMIT_MSG_OPT1(
444 "unsupported IPv6 socket option IPV6_XFRM_POLICY (%d)",
445 opt);
446 return (-2);
447 case LINUX_IPV6_HDRINCL:
448 LINUX_RATELIMIT_MSG_OPT1(
449 "unsupported IPv6 socket option IPV6_HDRINCL (%d)",
450 opt);
451 return (-2);
452 case LINUX_MCAST_BLOCK_SOURCE:
453 LINUX_RATELIMIT_MSG_OPT1(
454 "unsupported IPv6 socket option MCAST_BLOCK_SOURCE (%d), your linux program may see more multicast stuff than it wants",
455 opt);
456 return (-2);
457 case LINUX_MCAST_UNBLOCK_SOURCE:
458 LINUX_RATELIMIT_MSG_OPT1(
459 "unsupported IPv6 socket option MCAST_UNBLOCK_SOURCE (%d), your linux program may not see all the multicast stuff it wants",
460 opt);
461 return (-2);
462 case LINUX_MCAST_JOIN_SOURCE_GROUP:
463 LINUX_RATELIMIT_MSG_OPT1(
464 "unsupported IPv6 socket option MCAST_JOIN_SOURCE_GROUP (%d), your linux program is not able to join a multicast source group",
465 opt);
466 return (-2);
467 case LINUX_MCAST_LEAVE_SOURCE_GROUP:
468 LINUX_RATELIMIT_MSG_OPT1(
469 "unsupported IPv6 socket option MCAST_LEAVE_SOURCE_GROUP (%d), your linux program is not able to leave a multicast source group -- but it was also not able to join one, so no issue",
470 opt);
471 return (-2);
472 case LINUX_MCAST_MSFILTER:
473 LINUX_RATELIMIT_MSG_OPT1(
474 "unsupported IPv6 socket option MCAST_MSFILTER (%d), your linux program can not manipulate the multicast filter, it may see more multicast data than it wants to see",
475 opt);
476 return (-2);
477 case LINUX_IPV6_ADDR_PREFERENCES:
478 LINUX_RATELIMIT_MSG_OPT1(
479 "unsupported IPv6 socket option IPV6_ADDR_PREFERENCES (%d)",
480 opt);
481 return (-2);
482 case LINUX_IPV6_MINHOPCOUNT:
483 LINUX_RATELIMIT_MSG_OPT1(
484 "unsupported IPv6 socket option IPV6_MINHOPCOUNT (%d)",
485 opt);
486 return (-2);
487 case LINUX_IPV6_TRANSPARENT:
488 /* IP_BINDANY or more? */
489 LINUX_RATELIMIT_MSG_OPT1(
490 "unsupported IPv6 socket option IPV6_TRANSPARENT (%d), you can not enable transparent proxying in linux programs -- note, IP_FREEBIND is supported, no idea if the FreeBSD IP_BINDANY is equivalent to the Linux IP_TRANSPARENT or not, any info is welcome",
491 opt);
492 return (-2);
493 case LINUX_IPV6_UNICAST_IF:
494 LINUX_RATELIMIT_MSG_OPT1(
495 "unsupported IPv6 socket option IPV6_UNICAST_IF (%d)",
496 opt);
497 return (-2);
498 case LINUX_IPV6_RECVFRAGSIZE:
499 LINUX_RATELIMIT_MSG_OPT1(
500 "unsupported IPv6 socket option IPV6_RECVFRAGSIZE (%d)",
501 opt);
502 return (-2);
503 case LINUX_IPV6_RECVERR:
504 LINUX_RATELIMIT_MSG_OPT1(
505 "unsupported IPv6 socket option IPV6_RECVERR (%d), you can not get extended reliability info in linux programs",
506 opt);
507 return (-2);
508
509 /* unknown sockopts */
510 default:
511 return (-1);
512 }
513 }
514
515 static int
linux_to_bsd_so_sockopt(int opt)516 linux_to_bsd_so_sockopt(int opt)
517 {
518
519 switch (opt) {
520 case LINUX_SO_DEBUG:
521 return (SO_DEBUG);
522 case LINUX_SO_REUSEADDR:
523 return (SO_REUSEADDR);
524 case LINUX_SO_TYPE:
525 return (SO_TYPE);
526 case LINUX_SO_ERROR:
527 return (SO_ERROR);
528 case LINUX_SO_DONTROUTE:
529 return (SO_DONTROUTE);
530 case LINUX_SO_BROADCAST:
531 return (SO_BROADCAST);
532 case LINUX_SO_SNDBUF:
533 case LINUX_SO_SNDBUFFORCE:
534 return (SO_SNDBUF);
535 case LINUX_SO_RCVBUF:
536 case LINUX_SO_RCVBUFFORCE:
537 return (SO_RCVBUF);
538 case LINUX_SO_KEEPALIVE:
539 return (SO_KEEPALIVE);
540 case LINUX_SO_OOBINLINE:
541 return (SO_OOBINLINE);
542 case LINUX_SO_LINGER:
543 return (SO_LINGER);
544 case LINUX_SO_REUSEPORT:
545 return (SO_REUSEPORT_LB);
546 case LINUX_SO_PASSCRED:
547 return (LOCAL_CREDS_PERSISTENT);
548 case LINUX_SO_PEERCRED:
549 return (LOCAL_PEERCRED);
550 case LINUX_SO_RCVLOWAT:
551 return (SO_RCVLOWAT);
552 case LINUX_SO_SNDLOWAT:
553 return (SO_SNDLOWAT);
554 case LINUX_SO_RCVTIMEO:
555 return (SO_RCVTIMEO);
556 case LINUX_SO_SNDTIMEO:
557 return (SO_SNDTIMEO);
558 case LINUX_SO_TIMESTAMPO:
559 case LINUX_SO_TIMESTAMPN:
560 return (SO_TIMESTAMP);
561 case LINUX_SO_TIMESTAMPNSO:
562 case LINUX_SO_TIMESTAMPNSN:
563 return (SO_BINTIME);
564 case LINUX_SO_ACCEPTCONN:
565 return (SO_ACCEPTCONN);
566 case LINUX_SO_PROTOCOL:
567 return (SO_PROTOCOL);
568 case LINUX_SO_DOMAIN:
569 return (SO_DOMAIN);
570 }
571 return (-1);
572 }
573
574 static int
linux_to_bsd_tcp_sockopt(int opt)575 linux_to_bsd_tcp_sockopt(int opt)
576 {
577
578 switch (opt) {
579 case LINUX_TCP_NODELAY:
580 return (TCP_NODELAY);
581 case LINUX_TCP_MAXSEG:
582 return (TCP_MAXSEG);
583 case LINUX_TCP_CORK:
584 return (TCP_NOPUSH);
585 case LINUX_TCP_KEEPIDLE:
586 return (TCP_KEEPIDLE);
587 case LINUX_TCP_KEEPINTVL:
588 return (TCP_KEEPINTVL);
589 case LINUX_TCP_KEEPCNT:
590 return (TCP_KEEPCNT);
591 case LINUX_TCP_INFO:
592 LINUX_RATELIMIT_MSG_OPT1(
593 "unsupported TCP socket option TCP_INFO (%d)", opt);
594 return (-2);
595 case LINUX_TCP_MD5SIG:
596 return (TCP_MD5SIG);
597 case LINUX_TCP_USER_TIMEOUT:
598 return (TCP_MAXUNACKTIME);
599 }
600 return (-1);
601 }
602
603 static u_int
linux_to_bsd_tcp_user_timeout(l_uint linux_timeout)604 linux_to_bsd_tcp_user_timeout(l_uint linux_timeout)
605 {
606
607 /*
608 * Linux exposes TCP_USER_TIMEOUT in milliseconds while
609 * TCP_MAXUNACKTIME uses whole seconds. Round up partial
610 * seconds so a non-zero Linux timeout never becomes zero.
611 */
612 return (howmany(linux_timeout, 1000U));
613 }
614
615 static l_uint
bsd_to_linux_tcp_user_timeout(u_int bsd_timeout)616 bsd_to_linux_tcp_user_timeout(u_int bsd_timeout)
617 {
618
619 if (bsd_timeout > UINT_MAX / 1000U)
620 return (UINT_MAX);
621
622 return (bsd_timeout * 1000U);
623 }
624
625 static int
linux_to_bsd_msg_flags(int flags)626 linux_to_bsd_msg_flags(int flags)
627 {
628 int ret_flags = 0;
629
630 if (flags & LINUX_MSG_OOB)
631 ret_flags |= MSG_OOB;
632 if (flags & LINUX_MSG_PEEK)
633 ret_flags |= MSG_PEEK;
634 if (flags & LINUX_MSG_DONTROUTE)
635 ret_flags |= MSG_DONTROUTE;
636 if (flags & LINUX_MSG_CTRUNC)
637 ret_flags |= MSG_CTRUNC;
638 if (flags & LINUX_MSG_TRUNC)
639 ret_flags |= MSG_TRUNC;
640 if (flags & LINUX_MSG_DONTWAIT)
641 ret_flags |= MSG_DONTWAIT;
642 if (flags & LINUX_MSG_EOR)
643 ret_flags |= MSG_EOR;
644 if (flags & LINUX_MSG_WAITALL)
645 ret_flags |= MSG_WAITALL;
646 if (flags & LINUX_MSG_NOSIGNAL)
647 ret_flags |= MSG_NOSIGNAL;
648 if (flags & LINUX_MSG_PROXY)
649 LINUX_RATELIMIT_MSG_OPT1("socket message flag MSG_PROXY (%d) not handled",
650 LINUX_MSG_PROXY);
651 if (flags & LINUX_MSG_FIN)
652 LINUX_RATELIMIT_MSG_OPT1("socket message flag MSG_FIN (%d) not handled",
653 LINUX_MSG_FIN);
654 if (flags & LINUX_MSG_SYN)
655 LINUX_RATELIMIT_MSG_OPT1("socket message flag MSG_SYN (%d) not handled",
656 LINUX_MSG_SYN);
657 if (flags & LINUX_MSG_CONFIRM)
658 LINUX_RATELIMIT_MSG_OPT1("socket message flag MSG_CONFIRM (%d) not handled",
659 LINUX_MSG_CONFIRM);
660 if (flags & LINUX_MSG_RST)
661 LINUX_RATELIMIT_MSG_OPT1("socket message flag MSG_RST (%d) not handled",
662 LINUX_MSG_RST);
663 if (flags & LINUX_MSG_ERRQUEUE)
664 LINUX_RATELIMIT_MSG_OPT1("socket message flag MSG_ERRQUEUE (%d) not handled",
665 LINUX_MSG_ERRQUEUE);
666 return (ret_flags);
667 }
668
669 static int
linux_to_bsd_cmsg_type(int cmsg_type)670 linux_to_bsd_cmsg_type(int cmsg_type)
671 {
672
673 switch (cmsg_type) {
674 case LINUX_SCM_RIGHTS:
675 return (SCM_RIGHTS);
676 case LINUX_SCM_CREDENTIALS:
677 return (SCM_CREDS);
678 }
679 return (-1);
680 }
681
682 static int
bsd_to_linux_ip_cmsg_type(int cmsg_type)683 bsd_to_linux_ip_cmsg_type(int cmsg_type)
684 {
685
686 switch (cmsg_type) {
687 case IP_RECVORIGDSTADDR:
688 return (LINUX_IP_RECVORIGDSTADDR);
689 case IP_RECVTOS:
690 return (LINUX_IP_TOS);
691 }
692 return (-1);
693 }
694
695 static int
bsd_to_linux_cmsg_type(struct proc * p,int cmsg_type,int cmsg_level)696 bsd_to_linux_cmsg_type(struct proc *p, int cmsg_type, int cmsg_level)
697 {
698 struct linux_pemuldata *pem;
699
700 if (cmsg_level == IPPROTO_IP)
701 return (bsd_to_linux_ip_cmsg_type(cmsg_type));
702 if (cmsg_level != SOL_SOCKET)
703 return (-1);
704
705 pem = pem_find(p);
706
707 switch (cmsg_type) {
708 case SCM_RIGHTS:
709 return (LINUX_SCM_RIGHTS);
710 case SCM_CREDS:
711 return (LINUX_SCM_CREDENTIALS);
712 case SCM_CREDS2:
713 return (LINUX_SCM_CREDENTIALS);
714 case SCM_TIMESTAMP:
715 return (pem->so_timestamp);
716 case SCM_BINTIME:
717 return (pem->so_timestampns);
718 }
719 return (-1);
720 }
721
722 static int
linux_to_bsd_msghdr(struct msghdr * bhdr,const struct l_msghdr * lhdr)723 linux_to_bsd_msghdr(struct msghdr *bhdr, const struct l_msghdr *lhdr)
724 {
725 if (lhdr->msg_controllen > INT_MAX)
726 return (ENOBUFS);
727
728 bhdr->msg_name = PTRIN(lhdr->msg_name);
729 bhdr->msg_namelen = lhdr->msg_namelen;
730 bhdr->msg_iov = PTRIN(lhdr->msg_iov);
731 bhdr->msg_iovlen = lhdr->msg_iovlen;
732 bhdr->msg_control = PTRIN(lhdr->msg_control);
733
734 /*
735 * msg_controllen is skipped since BSD and LINUX control messages
736 * are potentially different sizes (e.g. the cred structure used
737 * by SCM_CREDS is different between the two operating system).
738 *
739 * The caller can set it (if necessary) after converting all the
740 * control messages.
741 */
742
743 bhdr->msg_flags = linux_to_bsd_msg_flags(lhdr->msg_flags);
744 return (0);
745 }
746
747 static int
bsd_to_linux_msghdr(const struct msghdr * bhdr,struct l_msghdr * lhdr)748 bsd_to_linux_msghdr(const struct msghdr *bhdr, struct l_msghdr *lhdr)
749 {
750 lhdr->msg_name = PTROUT(bhdr->msg_name);
751 lhdr->msg_namelen = bhdr->msg_namelen;
752 lhdr->msg_iov = PTROUT(bhdr->msg_iov);
753 lhdr->msg_iovlen = bhdr->msg_iovlen;
754 lhdr->msg_control = PTROUT(bhdr->msg_control);
755
756 /*
757 * msg_controllen is skipped since BSD and LINUX control messages
758 * are potentially different sizes (e.g. the cred structure used
759 * by SCM_CREDS is different between the two operating system).
760 *
761 * The caller can set it (if necessary) after converting all the
762 * control messages.
763 */
764
765 /* msg_flags skipped */
766 return (0);
767 }
768
769 static int
linux_set_socket_flags(int lflags,int * flags)770 linux_set_socket_flags(int lflags, int *flags)
771 {
772
773 if (lflags & ~(LINUX_SOCK_CLOEXEC | LINUX_SOCK_NONBLOCK))
774 return (EINVAL);
775 if (lflags & LINUX_SOCK_NONBLOCK)
776 *flags |= SOCK_NONBLOCK;
777 if (lflags & LINUX_SOCK_CLOEXEC)
778 *flags |= SOCK_CLOEXEC;
779 return (0);
780 }
781
782 static int
linux_copyout_sockaddr(const struct sockaddr * sa,void * uaddr,size_t len)783 linux_copyout_sockaddr(const struct sockaddr *sa, void *uaddr, size_t len)
784 {
785 struct l_sockaddr *lsa;
786 int error;
787
788 error = bsd_to_linux_sockaddr(sa, &lsa, len);
789 if (error != 0)
790 return (error);
791
792 error = copyout(lsa, uaddr, len);
793 free(lsa, M_LINUX);
794
795 return (error);
796 }
797
798 static int
linux_sendit(struct thread * td,int s,struct msghdr * mp,int flags,struct mbuf * control,enum uio_seg segflg)799 linux_sendit(struct thread *td, int s, struct msghdr *mp, int flags,
800 struct mbuf *control, enum uio_seg segflg)
801 {
802 struct sockaddr *to;
803 int error, len;
804
805 if (mp->msg_name != NULL) {
806 len = mp->msg_namelen;
807 error = linux_to_bsd_sockaddr(mp->msg_name, &to, &len);
808 if (error != 0)
809 return (error);
810 mp->msg_name = to;
811 } else
812 to = NULL;
813
814 error = kern_sendit(td, s, mp, linux_to_bsd_msg_flags(flags), control,
815 segflg);
816
817 if (to)
818 free(to, M_SONAME);
819 return (error);
820 }
821
822 /* Return 0 if IP_HDRINCL is set for the given socket. */
823 static int
linux_check_hdrincl(struct thread * td,int s)824 linux_check_hdrincl(struct thread *td, int s)
825 {
826 int error, optval;
827 socklen_t size_val;
828
829 size_val = sizeof(optval);
830 error = kern_getsockopt(td, s, IPPROTO_IP, IP_HDRINCL,
831 &optval, UIO_SYSSPACE, &size_val);
832 if (error != 0)
833 return (error);
834
835 return (optval == 0);
836 }
837
838 /*
839 * Updated sendto() when IP_HDRINCL is set:
840 * tweak endian-dependent fields in the IP packet.
841 */
842 static int
linux_sendto_hdrincl(struct thread * td,struct linux_sendto_args * linux_args)843 linux_sendto_hdrincl(struct thread *td, struct linux_sendto_args *linux_args)
844 {
845 /*
846 * linux_ip_copysize defines how many bytes we should copy
847 * from the beginning of the IP packet before we customize it for BSD.
848 * It should include all the fields we modify (ip_len and ip_off).
849 */
850 #define linux_ip_copysize 8
851
852 struct ip *packet;
853 struct msghdr msg;
854 struct iovec aiov[1];
855 int error;
856
857 /* Check that the packet isn't too big or too small. */
858 if (linux_args->len < linux_ip_copysize ||
859 linux_args->len > IP_MAXPACKET)
860 return (EINVAL);
861
862 packet = (struct ip *)malloc(linux_args->len, M_LINUX, M_WAITOK);
863
864 /* Make kernel copy of the packet to be sent */
865 if ((error = copyin(PTRIN(linux_args->msg), packet,
866 linux_args->len)))
867 goto goout;
868
869 /* Convert fields from Linux to BSD raw IP socket format */
870 packet->ip_len = linux_args->len;
871 packet->ip_off = ntohs(packet->ip_off);
872
873 /* Prepare the msghdr and iovec structures describing the new packet */
874 msg.msg_name = PTRIN(linux_args->to);
875 msg.msg_namelen = linux_args->tolen;
876 msg.msg_iov = aiov;
877 msg.msg_iovlen = 1;
878 msg.msg_control = NULL;
879 msg.msg_flags = 0;
880 aiov[0].iov_base = (char *)packet;
881 aiov[0].iov_len = linux_args->len;
882 error = linux_sendit(td, linux_args->s, &msg, linux_args->flags,
883 NULL, UIO_SYSSPACE);
884 goout:
885 free(packet, M_LINUX);
886 return (error);
887 }
888
889 static const char *linux_netlink_names[] = {
890 [LINUX_NETLINK_ROUTE] = "ROUTE",
891 [LINUX_NETLINK_SOCK_DIAG] = "SOCK_DIAG",
892 [LINUX_NETLINK_NFLOG] = "NFLOG",
893 [LINUX_NETLINK_SELINUX] = "SELINUX",
894 [LINUX_NETLINK_AUDIT] = "AUDIT",
895 [LINUX_NETLINK_FIB_LOOKUP] = "FIB_LOOKUP",
896 [LINUX_NETLINK_NETFILTER] = "NETFILTER",
897 [LINUX_NETLINK_KOBJECT_UEVENT] = "KOBJECT_UEVENT",
898 };
899
900 int
linux_socket(struct thread * td,struct linux_socket_args * args)901 linux_socket(struct thread *td, struct linux_socket_args *args)
902 {
903 int retval_socket, type;
904 sa_family_t domain;
905
906 type = args->type & LINUX_SOCK_TYPE_MASK;
907 if (type < 0 || type > LINUX_SOCK_MAX)
908 return (EINVAL);
909 retval_socket = linux_set_socket_flags(args->type & ~LINUX_SOCK_TYPE_MASK,
910 &type);
911 if (retval_socket != 0)
912 return (retval_socket);
913 domain = linux_to_bsd_domain(args->domain);
914 if (domain == AF_UNKNOWN) {
915 /* Mask off SOCK_NONBLOCK / CLOEXEC for error messages. */
916 type = args->type & LINUX_SOCK_TYPE_MASK;
917 if (args->domain == LINUX_AF_NETLINK &&
918 args->protocol == LINUX_NETLINK_AUDIT) {
919 ; /* Do nothing, quietly. */
920 } else if (args->domain == LINUX_AF_NETLINK) {
921 const char *nl_name;
922
923 if (args->protocol >= 0 &&
924 args->protocol < nitems(linux_netlink_names))
925 nl_name = linux_netlink_names[args->protocol];
926 else
927 nl_name = NULL;
928 if (nl_name != NULL)
929 linux_msg(curthread,
930 "unsupported socket(AF_NETLINK, %d, "
931 "NETLINK_%s)", type, nl_name);
932 else
933 linux_msg(curthread,
934 "unsupported socket(AF_NETLINK, %d, %d)",
935 type, args->protocol);
936 } else {
937 linux_msg(curthread, "unsupported socket domain %d, "
938 "type %d, protocol %d", args->domain, type,
939 args->protocol);
940 }
941 return (EAFNOSUPPORT);
942 }
943
944 retval_socket = kern_socket(td, domain, type, args->protocol);
945 if (retval_socket)
946 return (retval_socket);
947
948 if (type == SOCK_RAW
949 && (args->protocol == IPPROTO_RAW || args->protocol == 0)
950 && domain == PF_INET) {
951 /* It's a raw IP socket: set the IP_HDRINCL option. */
952 int hdrincl;
953
954 hdrincl = 1;
955 /* We ignore any error returned by kern_setsockopt() */
956 kern_setsockopt(td, td->td_retval[0], IPPROTO_IP, IP_HDRINCL,
957 &hdrincl, UIO_SYSSPACE, sizeof(hdrincl));
958 }
959 #ifdef INET6
960 /*
961 * Linux AF_INET6 socket has IPV6_V6ONLY setsockopt set to 0 by default
962 * and some apps depend on this. So, set V6ONLY to 0 for Linux apps.
963 * For simplicity we do this unconditionally of the net.inet6.ip6.v6only
964 * sysctl value.
965 */
966 if (domain == PF_INET6) {
967 int v6only;
968
969 v6only = 0;
970 /* We ignore any error returned by setsockopt() */
971 kern_setsockopt(td, td->td_retval[0], IPPROTO_IPV6, IPV6_V6ONLY,
972 &v6only, UIO_SYSSPACE, sizeof(v6only));
973 }
974 #endif
975
976 return (retval_socket);
977 }
978
979 int
linux_bind(struct thread * td,struct linux_bind_args * args)980 linux_bind(struct thread *td, struct linux_bind_args *args)
981 {
982 struct sockaddr *sa;
983 int error;
984
985 error = linux_to_bsd_sockaddr(PTRIN(args->name), &sa,
986 &args->namelen);
987 if (error != 0)
988 return (error);
989
990 error = kern_bindat(td, AT_FDCWD, args->s, sa);
991 free(sa, M_SONAME);
992
993 /* XXX */
994 if (error == EADDRNOTAVAIL && args->namelen != sizeof(struct sockaddr_in))
995 return (EINVAL);
996 return (error);
997 }
998
999 int
linux_connect(struct thread * td,struct linux_connect_args * args)1000 linux_connect(struct thread *td, struct linux_connect_args *args)
1001 {
1002 struct socket *so;
1003 struct sockaddr *sa;
1004 struct file *fp;
1005 int error;
1006
1007 error = linux_to_bsd_sockaddr(PTRIN(args->name), &sa,
1008 &args->namelen);
1009 if (error != 0)
1010 return (error);
1011
1012 error = kern_connectat(td, AT_FDCWD, args->s, sa);
1013 free(sa, M_SONAME);
1014 if (error != EISCONN)
1015 return (error);
1016
1017 /*
1018 * Linux doesn't return EISCONN the first time it occurs,
1019 * when on a non-blocking socket. Instead it returns the
1020 * error getsockopt(SOL_SOCKET, SO_ERROR) would return on BSD.
1021 */
1022 error = getsock(td, args->s, &cap_connect_rights, &fp);
1023 if (error != 0)
1024 return (error);
1025
1026 error = EISCONN;
1027 so = fp->f_data;
1028 if (atomic_load_int(&fp->f_flag) & FNONBLOCK) {
1029 SOCK_LOCK(so);
1030 if (so->so_emuldata == 0)
1031 error = so->so_error;
1032 so->so_emuldata = (void *)1;
1033 SOCK_UNLOCK(so);
1034 }
1035 fdrop(fp, td);
1036
1037 return (error);
1038 }
1039
1040 int
linux_listen(struct thread * td,struct linux_listen_args * args)1041 linux_listen(struct thread *td, struct linux_listen_args *args)
1042 {
1043
1044 return (kern_listen(td, args->s, args->backlog));
1045 }
1046
1047 static int
linux_accept_common(struct thread * td,int s,l_uintptr_t addr,l_uintptr_t namelen,int flags)1048 linux_accept_common(struct thread *td, int s, l_uintptr_t addr,
1049 l_uintptr_t namelen, int flags)
1050 {
1051 struct sockaddr_storage ss = { .ss_len = sizeof(ss) };
1052 struct file *fp, *fp1;
1053 struct socket *so;
1054 socklen_t len;
1055 int bflags, error, error1;
1056
1057 bflags = 0;
1058 fp = NULL;
1059
1060 error = linux_set_socket_flags(flags, &bflags);
1061 if (error != 0)
1062 return (error);
1063
1064 if (PTRIN(addr) != NULL) {
1065 error = copyin(PTRIN(namelen), &len, sizeof(len));
1066 if (error != 0)
1067 return (error);
1068 if (len < 0)
1069 return (EINVAL);
1070 } else
1071 len = 0;
1072
1073 error = kern_accept4(td, s, (struct sockaddr *)&ss, bflags, &fp);
1074
1075 /*
1076 * Translate errno values into ones used by Linux.
1077 */
1078 if (error != 0) {
1079 /*
1080 * XXX. This is wrong, different sockaddr structures
1081 * have different sizes.
1082 */
1083 switch (error) {
1084 case EFAULT:
1085 if (namelen != sizeof(struct sockaddr_in))
1086 error = EINVAL;
1087 break;
1088 case EINVAL:
1089 error1 = getsock(td, s, &cap_accept_rights, &fp1);
1090 if (error1 != 0) {
1091 error = error1;
1092 break;
1093 }
1094 so = fp1->f_data;
1095 if (so->so_type == SOCK_DGRAM)
1096 error = EOPNOTSUPP;
1097 fdrop(fp1, td);
1098 break;
1099 }
1100 return (error);
1101 }
1102
1103 if (PTRIN(addr) != NULL) {
1104 len = min(ss.ss_len, len);
1105 error = linux_copyout_sockaddr((struct sockaddr *)&ss,
1106 PTRIN(addr), len);
1107 if (error == 0) {
1108 len = ss.ss_len;
1109 error = copyout(&len, PTRIN(namelen), sizeof(len));
1110 }
1111 if (error != 0) {
1112 fdclose(td, fp, td->td_retval[0]);
1113 td->td_retval[0] = 0;
1114 }
1115 }
1116 if (fp != NULL)
1117 fdrop(fp, td);
1118 return (error);
1119 }
1120
1121 int
linux_accept(struct thread * td,struct linux_accept_args * args)1122 linux_accept(struct thread *td, struct linux_accept_args *args)
1123 {
1124
1125 return (linux_accept_common(td, args->s, args->addr,
1126 args->namelen, 0));
1127 }
1128
1129 int
linux_accept4(struct thread * td,struct linux_accept4_args * args)1130 linux_accept4(struct thread *td, struct linux_accept4_args *args)
1131 {
1132
1133 return (linux_accept_common(td, args->s, args->addr,
1134 args->namelen, args->flags));
1135 }
1136
1137 int
linux_getsockname(struct thread * td,struct linux_getsockname_args * args)1138 linux_getsockname(struct thread *td, struct linux_getsockname_args *args)
1139 {
1140 struct sockaddr_storage ss = { .ss_len = sizeof(ss) };
1141 socklen_t len;
1142 int error;
1143
1144 error = copyin(PTRIN(args->namelen), &len, sizeof(len));
1145 if (error != 0)
1146 return (error);
1147
1148 error = kern_getsockname(td, args->s, (struct sockaddr *)&ss);
1149 if (error != 0)
1150 return (error);
1151
1152 len = min(ss.ss_len, len);
1153 error = linux_copyout_sockaddr((struct sockaddr *)&ss,
1154 PTRIN(args->addr), len);
1155 if (error == 0) {
1156 len = ss.ss_len;
1157 error = copyout(&len, PTRIN(args->namelen), sizeof(len));
1158 }
1159 return (error);
1160 }
1161
1162 int
linux_getpeername(struct thread * td,struct linux_getpeername_args * args)1163 linux_getpeername(struct thread *td, struct linux_getpeername_args *args)
1164 {
1165 struct sockaddr_storage ss = { .ss_len = sizeof(ss) };
1166 socklen_t len;
1167 int error;
1168
1169 error = copyin(PTRIN(args->namelen), &len, sizeof(len));
1170 if (error != 0)
1171 return (error);
1172
1173 error = kern_getpeername(td, args->s, (struct sockaddr *)&ss);
1174 if (error != 0)
1175 return (error);
1176
1177 len = min(ss.ss_len, len);
1178 error = linux_copyout_sockaddr((struct sockaddr *)&ss,
1179 PTRIN(args->addr), len);
1180 if (error == 0) {
1181 len = ss.ss_len;
1182 error = copyout(&len, PTRIN(args->namelen), sizeof(len));
1183 }
1184 return (error);
1185 }
1186
1187 int
linux_socketpair(struct thread * td,struct linux_socketpair_args * args)1188 linux_socketpair(struct thread *td, struct linux_socketpair_args *args)
1189 {
1190 int domain, error, sv[2], type;
1191
1192 domain = linux_to_bsd_domain(args->domain);
1193 if (domain != PF_LOCAL)
1194 return (EAFNOSUPPORT);
1195 type = args->type & LINUX_SOCK_TYPE_MASK;
1196 if (type < 0 || type > LINUX_SOCK_MAX)
1197 return (EINVAL);
1198 error = linux_set_socket_flags(args->type & ~LINUX_SOCK_TYPE_MASK,
1199 &type);
1200 if (error != 0)
1201 return (error);
1202 if (args->protocol != 0 && args->protocol != PF_UNIX) {
1203 /*
1204 * Use of PF_UNIX as protocol argument is not right,
1205 * but Linux does it.
1206 * Do not map PF_UNIX as its Linux value is identical
1207 * to FreeBSD one.
1208 */
1209 return (EPROTONOSUPPORT);
1210 }
1211 error = kern_socketpair(td, domain, type, 0, sv);
1212 if (error != 0)
1213 return (error);
1214 error = copyout(sv, PTRIN(args->rsv), 2 * sizeof(int));
1215 if (error != 0) {
1216 (void)kern_close(td, sv[0]);
1217 (void)kern_close(td, sv[1]);
1218 }
1219 return (error);
1220 }
1221
1222 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
1223 struct linux_send_args {
1224 register_t s;
1225 register_t msg;
1226 register_t len;
1227 register_t flags;
1228 };
1229
1230 static int
linux_send(struct thread * td,struct linux_send_args * args)1231 linux_send(struct thread *td, struct linux_send_args *args)
1232 {
1233 struct sendto_args /* {
1234 int s;
1235 caddr_t buf;
1236 int len;
1237 int flags;
1238 caddr_t to;
1239 int tolen;
1240 } */ bsd_args;
1241 struct file *fp;
1242 int error;
1243
1244 bsd_args.s = args->s;
1245 bsd_args.buf = (caddr_t)PTRIN(args->msg);
1246 bsd_args.len = args->len;
1247 bsd_args.flags = linux_to_bsd_msg_flags(args->flags);
1248 bsd_args.to = NULL;
1249 bsd_args.tolen = 0;
1250 error = sys_sendto(td, &bsd_args);
1251 if (error == ENOTCONN) {
1252 /*
1253 * Linux doesn't return ENOTCONN for non-blocking sockets.
1254 * Instead it returns the EAGAIN.
1255 */
1256 error = getsock(td, args->s, &cap_send_rights, &fp);
1257 if (error == 0) {
1258 if (atomic_load_int(&fp->f_flag) & FNONBLOCK)
1259 error = EAGAIN;
1260 fdrop(fp, td);
1261 }
1262 }
1263 return (error);
1264 }
1265
1266 struct linux_recv_args {
1267 register_t s;
1268 register_t msg;
1269 register_t len;
1270 register_t flags;
1271 };
1272
1273 static int
linux_recv(struct thread * td,struct linux_recv_args * args)1274 linux_recv(struct thread *td, struct linux_recv_args *args)
1275 {
1276 struct recvfrom_args /* {
1277 int s;
1278 caddr_t buf;
1279 int len;
1280 int flags;
1281 struct sockaddr *from;
1282 socklen_t fromlenaddr;
1283 } */ bsd_args;
1284
1285 bsd_args.s = args->s;
1286 bsd_args.buf = (caddr_t)PTRIN(args->msg);
1287 bsd_args.len = args->len;
1288 bsd_args.flags = linux_to_bsd_msg_flags(args->flags);
1289 bsd_args.from = NULL;
1290 bsd_args.fromlenaddr = 0;
1291 return (sys_recvfrom(td, &bsd_args));
1292 }
1293 #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */
1294
1295 int
linux_sendto(struct thread * td,struct linux_sendto_args * args)1296 linux_sendto(struct thread *td, struct linux_sendto_args *args)
1297 {
1298 struct msghdr msg;
1299 struct iovec aiov;
1300 struct socket *so;
1301 struct file *fp;
1302 int error;
1303
1304 if (linux_check_hdrincl(td, args->s) == 0)
1305 /* IP_HDRINCL set, tweak the packet before sending */
1306 return (linux_sendto_hdrincl(td, args));
1307
1308 bzero(&msg, sizeof(msg));
1309 error = getsock(td, args->s, &cap_send_connect_rights, &fp);
1310 if (error != 0)
1311 return (error);
1312 so = fp->f_data;
1313 if ((so->so_state & (SS_ISCONNECTED|SS_ISCONNECTING)) == 0) {
1314 msg.msg_name = PTRIN(args->to);
1315 msg.msg_namelen = args->tolen;
1316 }
1317 msg.msg_iov = &aiov;
1318 msg.msg_iovlen = 1;
1319 aiov.iov_base = PTRIN(args->msg);
1320 aiov.iov_len = args->len;
1321 fdrop(fp, td);
1322 return (linux_sendit(td, args->s, &msg, args->flags, NULL,
1323 UIO_USERSPACE));
1324 }
1325
1326 int
linux_recvfrom(struct thread * td,struct linux_recvfrom_args * args)1327 linux_recvfrom(struct thread *td, struct linux_recvfrom_args *args)
1328 {
1329 struct sockaddr *sa;
1330 struct msghdr msg;
1331 struct iovec aiov;
1332 int error, fromlen;
1333
1334 if (PTRIN(args->fromlen) != NULL) {
1335 error = copyin(PTRIN(args->fromlen), &fromlen,
1336 sizeof(fromlen));
1337 if (error != 0)
1338 return (error);
1339 if (fromlen < 0)
1340 return (EINVAL);
1341 fromlen = min(fromlen, SOCK_MAXADDRLEN);
1342 sa = malloc(fromlen, M_SONAME, M_WAITOK);
1343 } else {
1344 fromlen = 0;
1345 sa = NULL;
1346 }
1347
1348 msg.msg_name = sa;
1349 msg.msg_namelen = fromlen;
1350 msg.msg_iov = &aiov;
1351 msg.msg_iovlen = 1;
1352 aiov.iov_base = PTRIN(args->buf);
1353 aiov.iov_len = args->len;
1354 msg.msg_control = 0;
1355 msg.msg_flags = linux_to_bsd_msg_flags(args->flags);
1356
1357 error = kern_recvit(td, args->s, &msg, UIO_SYSSPACE, NULL);
1358 if (error != 0)
1359 goto out;
1360
1361 /*
1362 * XXX. Seems that FreeBSD is different from Linux here. Linux
1363 * fill source address if underlying protocol provides it, while
1364 * FreeBSD fill it if underlying protocol is not connection-oriented.
1365 * So, kern_recvit() set msg.msg_namelen to 0 if protocol pr_flags
1366 * does not contains PR_ADDR flag.
1367 */
1368 if (PTRIN(args->from) != NULL && msg.msg_namelen != 0)
1369 error = linux_copyout_sockaddr(sa, PTRIN(args->from),
1370 msg.msg_namelen);
1371
1372 if (error == 0 && PTRIN(args->fromlen) != NULL)
1373 error = copyout(&msg.msg_namelen, PTRIN(args->fromlen),
1374 sizeof(msg.msg_namelen));
1375 out:
1376 free(sa, M_SONAME);
1377 return (error);
1378 }
1379
1380 static int
linux_sendmsg_common(struct thread * td,l_int s,struct l_msghdr * msghdr,l_uint flags)1381 linux_sendmsg_common(struct thread *td, l_int s, struct l_msghdr *msghdr,
1382 l_uint flags)
1383 {
1384 struct sockaddr_storage ss = { .ss_len = sizeof(ss) };
1385 struct cmsghdr *cmsg;
1386 struct mbuf *control;
1387 struct msghdr msg;
1388 struct l_cmsghdr linux_cmsg;
1389 struct l_cmsghdr *ptr_cmsg;
1390 struct l_msghdr linux_msghdr;
1391 struct iovec *iov;
1392 socklen_t datalen;
1393 struct socket *so;
1394 sa_family_t sa_family;
1395 struct file *fp;
1396 void *data;
1397 l_size_t len;
1398 l_size_t clen;
1399 int error;
1400
1401 error = copyin(msghdr, &linux_msghdr, sizeof(linux_msghdr));
1402 if (error != 0)
1403 return (error);
1404
1405 /*
1406 * Some Linux applications (ping) define a non-NULL control data
1407 * pointer, but a msg_controllen of 0, which is not allowed in the
1408 * FreeBSD system call interface. NULL the msg_control pointer in
1409 * order to handle this case. This should be checked, but allows the
1410 * Linux ping to work.
1411 */
1412 if (PTRIN(linux_msghdr.msg_control) != NULL &&
1413 linux_msghdr.msg_controllen == 0)
1414 linux_msghdr.msg_control = PTROUT(NULL);
1415
1416 error = linux_to_bsd_msghdr(&msg, &linux_msghdr);
1417 if (error != 0)
1418 return (error);
1419
1420 #ifdef COMPAT_LINUX32
1421 error = freebsd32_copyiniov(PTRIN(msg.msg_iov), msg.msg_iovlen,
1422 &iov, EMSGSIZE);
1423 #else
1424 error = copyiniov(msg.msg_iov, msg.msg_iovlen, &iov, EMSGSIZE);
1425 #endif
1426 if (error != 0)
1427 return (error);
1428
1429 control = NULL;
1430
1431 error = kern_getsockname(td, s, (struct sockaddr *)&ss);
1432 if (error != 0)
1433 goto bad;
1434 sa_family = ss.ss_family;
1435
1436 if (flags & LINUX_MSG_OOB) {
1437 error = EOPNOTSUPP;
1438 if (sa_family == AF_UNIX)
1439 goto bad;
1440
1441 error = getsock(td, s, &cap_send_rights, &fp);
1442 if (error != 0)
1443 goto bad;
1444 so = fp->f_data;
1445 if (so->so_type != SOCK_STREAM)
1446 error = EOPNOTSUPP;
1447 fdrop(fp, td);
1448 if (error != 0)
1449 goto bad;
1450 }
1451
1452 if (linux_msghdr.msg_controllen >= sizeof(struct l_cmsghdr)) {
1453 error = ENOBUFS;
1454 control = m_get(M_WAITOK, MT_CONTROL);
1455 MCLGET(control, M_WAITOK);
1456 data = mtod(control, void *);
1457 datalen = 0;
1458
1459 ptr_cmsg = PTRIN(linux_msghdr.msg_control);
1460 clen = linux_msghdr.msg_controllen;
1461 do {
1462 error = copyin(ptr_cmsg, &linux_cmsg,
1463 sizeof(struct l_cmsghdr));
1464 if (error != 0)
1465 goto bad;
1466
1467 error = EINVAL;
1468 if (linux_cmsg.cmsg_len < sizeof(struct l_cmsghdr) ||
1469 linux_cmsg.cmsg_len > clen)
1470 goto bad;
1471
1472 if (datalen + CMSG_HDRSZ > MCLBYTES)
1473 goto bad;
1474
1475 /*
1476 * Now we support only SCM_RIGHTS and SCM_CRED,
1477 * so return EINVAL in any other cmsg_type
1478 */
1479 cmsg = data;
1480 cmsg->cmsg_type =
1481 linux_to_bsd_cmsg_type(linux_cmsg.cmsg_type);
1482 cmsg->cmsg_level =
1483 linux_to_bsd_sockopt_level(linux_cmsg.cmsg_level);
1484 if (cmsg->cmsg_type == -1
1485 || cmsg->cmsg_level != SOL_SOCKET) {
1486 linux_msg(curthread,
1487 "unsupported sendmsg cmsg level %d type %d",
1488 linux_cmsg.cmsg_level, linux_cmsg.cmsg_type);
1489 goto bad;
1490 }
1491
1492 /*
1493 * Some applications (e.g. pulseaudio) attempt to
1494 * send ancillary data even if the underlying protocol
1495 * doesn't support it which is not allowed in the
1496 * FreeBSD system call interface.
1497 */
1498 if (sa_family != AF_UNIX)
1499 goto next;
1500
1501 if (cmsg->cmsg_type == SCM_CREDS) {
1502 len = sizeof(struct cmsgcred);
1503 if (datalen + CMSG_SPACE(len) > MCLBYTES)
1504 goto bad;
1505
1506 /*
1507 * The lower levels will fill in the structure
1508 */
1509 memset(CMSG_DATA(data), 0, len);
1510 } else {
1511 len = linux_cmsg.cmsg_len - L_CMSG_HDRSZ;
1512 if (datalen + CMSG_SPACE(len) < datalen ||
1513 datalen + CMSG_SPACE(len) > MCLBYTES)
1514 goto bad;
1515
1516 error = copyin(LINUX_CMSG_DATA(ptr_cmsg),
1517 CMSG_DATA(data), len);
1518 if (error != 0)
1519 goto bad;
1520 }
1521
1522 cmsg->cmsg_len = CMSG_LEN(len);
1523 data = (char *)data + CMSG_SPACE(len);
1524 datalen += CMSG_SPACE(len);
1525
1526 next:
1527 if (clen <= LINUX_CMSG_ALIGN(linux_cmsg.cmsg_len))
1528 break;
1529
1530 clen -= LINUX_CMSG_ALIGN(linux_cmsg.cmsg_len);
1531 ptr_cmsg = (struct l_cmsghdr *)((char *)ptr_cmsg +
1532 LINUX_CMSG_ALIGN(linux_cmsg.cmsg_len));
1533 } while(clen >= sizeof(struct l_cmsghdr));
1534
1535 control->m_len = datalen;
1536 if (datalen == 0) {
1537 m_freem(control);
1538 control = NULL;
1539 }
1540 }
1541
1542 msg.msg_iov = iov;
1543 msg.msg_flags = 0;
1544 error = linux_sendit(td, s, &msg, flags, control, UIO_USERSPACE);
1545 control = NULL;
1546
1547 bad:
1548 m_freem(control);
1549 free(iov, M_IOV);
1550 return (error);
1551 }
1552
1553 int
linux_sendmsg(struct thread * td,struct linux_sendmsg_args * args)1554 linux_sendmsg(struct thread *td, struct linux_sendmsg_args *args)
1555 {
1556
1557 return (linux_sendmsg_common(td, args->s, PTRIN(args->msg),
1558 args->flags));
1559 }
1560
1561 int
linux_sendmmsg(struct thread * td,struct linux_sendmmsg_args * args)1562 linux_sendmmsg(struct thread *td, struct linux_sendmmsg_args *args)
1563 {
1564 struct l_mmsghdr *msg;
1565 l_uint retval;
1566 int error, datagrams;
1567
1568 if (args->vlen > UIO_MAXIOV)
1569 args->vlen = UIO_MAXIOV;
1570
1571 msg = PTRIN(args->msg);
1572 datagrams = 0;
1573 while (datagrams < args->vlen) {
1574 error = linux_sendmsg_common(td, args->s, &msg->msg_hdr,
1575 args->flags);
1576 if (error != 0)
1577 break;
1578
1579 retval = td->td_retval[0];
1580 error = copyout(&retval, &msg->msg_len, sizeof(msg->msg_len));
1581 if (error != 0)
1582 break;
1583 ++msg;
1584 ++datagrams;
1585 }
1586 if (error == 0)
1587 td->td_retval[0] = datagrams;
1588 return (error);
1589 }
1590
1591 static int
recvmsg_scm_rights(struct thread * td,l_uint flags,socklen_t * datalen,void ** data,void ** udata)1592 recvmsg_scm_rights(struct thread *td, l_uint flags, socklen_t *datalen,
1593 void **data, void **udata)
1594 {
1595 int i, fd, fds, *fdp;
1596
1597 if (flags & LINUX_MSG_CMSG_CLOEXEC) {
1598 fds = *datalen / sizeof(int);
1599 fdp = *data;
1600 for (i = 0; i < fds; i++) {
1601 fd = *fdp++;
1602 (void)kern_fcntl(td, fd, F_SETFD, FD_CLOEXEC);
1603 }
1604 }
1605 return (0);
1606 }
1607
1608
1609 static int
recvmsg_scm_creds(socklen_t * datalen,void ** data,void ** udata)1610 recvmsg_scm_creds(socklen_t *datalen, void **data, void **udata)
1611 {
1612 struct cmsgcred *cmcred;
1613 struct l_ucred lu;
1614
1615 cmcred = *data;
1616 lu.pid = cmcred->cmcred_pid;
1617 lu.uid = cmcred->cmcred_uid;
1618 lu.gid = cmcred->cmcred_gid;
1619 memmove(*data, &lu, sizeof(lu));
1620 *datalen = sizeof(lu);
1621 return (0);
1622 }
1623 _Static_assert(sizeof(struct cmsgcred) >= sizeof(struct l_ucred),
1624 "scm_creds sizeof l_ucred");
1625
1626 static int
recvmsg_scm_creds2(socklen_t * datalen,void ** data,void ** udata)1627 recvmsg_scm_creds2(socklen_t *datalen, void **data, void **udata)
1628 {
1629 struct sockcred2 *scred;
1630 struct l_ucred lu;
1631
1632 scred = *data;
1633 lu.pid = scred->sc_pid;
1634 lu.uid = scred->sc_uid;
1635 lu.gid = scred->sc_gid;
1636 memmove(*data, &lu, sizeof(lu));
1637 *datalen = sizeof(lu);
1638 return (0);
1639 }
1640 _Static_assert(sizeof(struct sockcred2) >= sizeof(struct l_ucred),
1641 "scm_creds2 sizeof l_ucred");
1642
1643 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
1644 static int
recvmsg_scm_timestamp(l_int msg_type,socklen_t * datalen,void ** data,void ** udata)1645 recvmsg_scm_timestamp(l_int msg_type, socklen_t *datalen, void **data,
1646 void **udata)
1647 {
1648 l_sock_timeval ltv64;
1649 l_timeval ltv;
1650 struct timeval *tv;
1651 socklen_t len;
1652 void *buf;
1653
1654 if (*datalen != sizeof(struct timeval))
1655 return (EMSGSIZE);
1656
1657 tv = *data;
1658 #if defined(COMPAT_LINUX32)
1659 if (msg_type == LINUX_SCM_TIMESTAMPO &&
1660 (tv->tv_sec > INT_MAX || tv->tv_sec < INT_MIN))
1661 return (EOVERFLOW);
1662 #endif
1663 if (msg_type == LINUX_SCM_TIMESTAMPN)
1664 len = sizeof(ltv64);
1665 else
1666 len = sizeof(ltv);
1667
1668 buf = malloc(len, M_LINUX, M_WAITOK);
1669 if (msg_type == LINUX_SCM_TIMESTAMPN) {
1670 ltv64.tv_sec = tv->tv_sec;
1671 ltv64.tv_usec = tv->tv_usec;
1672 memmove(buf, <v64, len);
1673 } else {
1674 ltv.tv_sec = tv->tv_sec;
1675 ltv.tv_usec = tv->tv_usec;
1676 memmove(buf, <v, len);
1677 }
1678 *data = *udata = buf;
1679 *datalen = len;
1680 return (0);
1681 }
1682 #else
1683 _Static_assert(sizeof(struct timeval) == sizeof(l_timeval),
1684 "scm_timestamp sizeof l_timeval");
1685 #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */
1686
1687 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
1688 static int
recvmsg_scm_timestampns(l_int msg_type,socklen_t * datalen,void ** data,void ** udata)1689 recvmsg_scm_timestampns(l_int msg_type, socklen_t *datalen, void **data,
1690 void **udata)
1691 {
1692 struct l_timespec64 ts64;
1693 struct l_timespec ts32;
1694 struct timespec ts;
1695 socklen_t len;
1696 void *buf;
1697
1698 if (msg_type == LINUX_SCM_TIMESTAMPNSO)
1699 len = sizeof(ts32);
1700 else
1701 len = sizeof(ts64);
1702
1703 buf = malloc(len, M_LINUX, M_WAITOK);
1704 bintime2timespec(*data, &ts);
1705 if (msg_type == LINUX_SCM_TIMESTAMPNSO) {
1706 ts32.tv_sec = ts.tv_sec;
1707 ts32.tv_nsec = ts.tv_nsec;
1708 memmove(buf, &ts32, len);
1709 } else {
1710 ts64.tv_sec = ts.tv_sec;
1711 ts64.tv_nsec = ts.tv_nsec;
1712 memmove(buf, &ts64, len);
1713 }
1714 *data = *udata = buf;
1715 *datalen = len;
1716 return (0);
1717 }
1718 #else
1719 static int
recvmsg_scm_timestampns(l_int msg_type,socklen_t * datalen,void ** data,void ** udata)1720 recvmsg_scm_timestampns(l_int msg_type, socklen_t *datalen, void **data,
1721 void **udata)
1722 {
1723 struct timespec ts;
1724
1725 bintime2timespec(*data, &ts);
1726 memmove(*data, &ts, sizeof(struct timespec));
1727 *datalen = sizeof(struct timespec);
1728 return (0);
1729 }
1730 _Static_assert(sizeof(struct bintime) >= sizeof(struct timespec),
1731 "scm_timestampns sizeof timespec");
1732 #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */
1733
1734 static int
recvmsg_scm_sol_socket(struct thread * td,l_int msg_type,l_int lmsg_type,l_uint flags,socklen_t * datalen,void ** data,void ** udata)1735 recvmsg_scm_sol_socket(struct thread *td, l_int msg_type, l_int lmsg_type,
1736 l_uint flags, socklen_t *datalen, void **data, void **udata)
1737 {
1738 int error;
1739
1740 error = 0;
1741 switch (msg_type) {
1742 case SCM_RIGHTS:
1743 error = recvmsg_scm_rights(td, flags, datalen,
1744 data, udata);
1745 break;
1746 case SCM_CREDS:
1747 error = recvmsg_scm_creds(datalen, data, udata);
1748 break;
1749 case SCM_CREDS2:
1750 error = recvmsg_scm_creds2(datalen, data, udata);
1751 break;
1752 case SCM_TIMESTAMP:
1753 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
1754 error = recvmsg_scm_timestamp(lmsg_type, datalen,
1755 data, udata);
1756 #endif
1757 break;
1758 case SCM_BINTIME:
1759 error = recvmsg_scm_timestampns(lmsg_type, datalen,
1760 data, udata);
1761 break;
1762 }
1763
1764 return (error);
1765 }
1766
1767 static int
recvmsg_scm_ip_origdstaddr(socklen_t * datalen,void ** data,void ** udata)1768 recvmsg_scm_ip_origdstaddr(socklen_t *datalen, void **data, void **udata)
1769 {
1770 struct l_sockaddr *lsa;
1771 int error;
1772
1773 error = bsd_to_linux_sockaddr(*data, &lsa, *datalen);
1774 if (error == 0) {
1775 *data = *udata = lsa;
1776 *datalen = sizeof(*lsa);
1777 }
1778 return (error);
1779 }
1780
1781 static int
recvmsg_scm_ipproto_ip(l_int msg_type,l_int lmsg_type,socklen_t * datalen,void ** data,void ** udata)1782 recvmsg_scm_ipproto_ip(l_int msg_type, l_int lmsg_type, socklen_t *datalen,
1783 void **data, void **udata)
1784 {
1785 int error;
1786
1787 error = 0;
1788 switch (msg_type) {
1789 case IP_ORIGDSTADDR:
1790 error = recvmsg_scm_ip_origdstaddr(datalen, data,
1791 udata);
1792 break;
1793 }
1794
1795 return (error);
1796 }
1797
1798 static int
linux_recvmsg_common(struct thread * td,l_int s,struct l_msghdr * msghdr,l_uint flags,struct msghdr * msg)1799 linux_recvmsg_common(struct thread *td, l_int s, struct l_msghdr *msghdr,
1800 l_uint flags, struct msghdr *msg)
1801 {
1802 struct proc *p = td->td_proc;
1803 struct cmsghdr *cm;
1804 struct l_cmsghdr *lcm = NULL;
1805 socklen_t datalen, maxlen, outlen;
1806 struct l_msghdr l_msghdr;
1807 struct iovec *iov, *uiov;
1808 struct mbuf *m, *control = NULL;
1809 struct mbuf **controlp;
1810 struct sockaddr *sa;
1811 caddr_t outbuf;
1812 void *data, *udata;
1813 int error, skiped;
1814
1815 error = copyin(msghdr, &l_msghdr, sizeof(l_msghdr));
1816 if (error != 0)
1817 return (error);
1818
1819 /*
1820 * Pass user-supplied recvmsg() flags in msg_flags field,
1821 * following sys_recvmsg() convention.
1822 */
1823 l_msghdr.msg_flags = flags;
1824
1825 error = linux_to_bsd_msghdr(msg, &l_msghdr);
1826 if (error != 0)
1827 return (error);
1828
1829 #ifdef COMPAT_LINUX32
1830 error = freebsd32_copyiniov(PTRIN(msg->msg_iov), msg->msg_iovlen,
1831 &iov, EMSGSIZE);
1832 #else
1833 error = copyiniov(msg->msg_iov, msg->msg_iovlen, &iov, EMSGSIZE);
1834 #endif
1835 if (error != 0)
1836 return (error);
1837
1838 if (msg->msg_name != NULL && msg->msg_namelen > 0) {
1839 msg->msg_namelen = min(msg->msg_namelen, SOCK_MAXADDRLEN);
1840 sa = malloc(msg->msg_namelen, M_SONAME, M_WAITOK);
1841 msg->msg_name = sa;
1842 } else {
1843 sa = NULL;
1844 msg->msg_name = NULL;
1845 }
1846
1847 uiov = msg->msg_iov;
1848 msg->msg_iov = iov;
1849 controlp = (msg->msg_control != NULL) ? &control : NULL;
1850 error = kern_recvit(td, s, msg, UIO_SYSSPACE, controlp);
1851 msg->msg_iov = uiov;
1852 if (error != 0)
1853 goto bad;
1854
1855 /*
1856 * Note that kern_recvit() updates msg->msg_namelen.
1857 */
1858 if (msg->msg_name != NULL && msg->msg_namelen > 0) {
1859 msg->msg_name = PTRIN(l_msghdr.msg_name);
1860 error = linux_copyout_sockaddr(sa, msg->msg_name,
1861 msg->msg_namelen);
1862 if (error != 0)
1863 goto bad;
1864 }
1865
1866 error = bsd_to_linux_msghdr(msg, &l_msghdr);
1867 if (error != 0)
1868 goto bad;
1869
1870 skiped = outlen = 0;
1871 maxlen = l_msghdr.msg_controllen;
1872 if (control == NULL)
1873 goto out;
1874
1875 lcm = malloc(L_CMSG_HDRSZ, M_LINUX, M_WAITOK | M_ZERO);
1876 msg->msg_control = mtod(control, struct cmsghdr *);
1877 msg->msg_controllen = control->m_len;
1878 outbuf = PTRIN(l_msghdr.msg_control);
1879 for (m = control; m != NULL; m = m->m_next) {
1880 cm = mtod(m, struct cmsghdr *);
1881 lcm->cmsg_type = bsd_to_linux_cmsg_type(p, cm->cmsg_type,
1882 cm->cmsg_level);
1883 lcm->cmsg_level = bsd_to_linux_sockopt_level(cm->cmsg_level);
1884
1885 if (lcm->cmsg_type == -1 ||
1886 lcm->cmsg_level == -1) {
1887 LINUX_RATELIMIT_MSG_OPT2(
1888 "unsupported recvmsg cmsg level %d type %d",
1889 cm->cmsg_level, cm->cmsg_type);
1890 /* Skip unsupported messages */
1891 skiped++;
1892 continue;
1893 }
1894 data = CMSG_DATA(cm);
1895 datalen = (caddr_t)cm + cm->cmsg_len - (caddr_t)data;
1896 udata = NULL;
1897 error = 0;
1898
1899 switch (cm->cmsg_level) {
1900 case IPPROTO_IP:
1901 error = recvmsg_scm_ipproto_ip(cm->cmsg_type,
1902 lcm->cmsg_type, &datalen, &data, &udata);
1903 break;
1904 case SOL_SOCKET:
1905 error = recvmsg_scm_sol_socket(td, cm->cmsg_type,
1906 lcm->cmsg_type, flags, &datalen, &data, &udata);
1907 break;
1908 }
1909
1910 /* The recvmsg_scm_ is responsible to free udata on error. */
1911 if (error != 0)
1912 goto bad;
1913
1914 if (outlen + LINUX_CMSG_LEN(datalen) > maxlen) {
1915 if (outlen == 0) {
1916 error = EMSGSIZE;
1917 goto err;
1918 } else {
1919 l_msghdr.msg_flags |= LINUX_MSG_CTRUNC;
1920 m_dispose_extcontrolm(control);
1921 free(udata, M_LINUX);
1922 goto out;
1923 }
1924 }
1925
1926 lcm->cmsg_len = LINUX_CMSG_LEN(datalen);
1927 error = copyout(lcm, outbuf, L_CMSG_HDRSZ);
1928 if (error == 0) {
1929 error = copyout(data, LINUX_CMSG_DATA(outbuf), datalen);
1930 if (error == 0) {
1931 outbuf += LINUX_CMSG_SPACE(datalen);
1932 outlen += LINUX_CMSG_SPACE(datalen);
1933 }
1934 }
1935 err:
1936 free(udata, M_LINUX);
1937 if (error != 0)
1938 goto bad;
1939 }
1940 if (outlen == 0 && skiped > 0) {
1941 error = EINVAL;
1942 goto bad;
1943 }
1944
1945 out:
1946 l_msghdr.msg_controllen = outlen;
1947 error = copyout(&l_msghdr, msghdr, sizeof(l_msghdr));
1948
1949 bad:
1950 if (control != NULL) {
1951 if (error != 0)
1952 m_dispose_extcontrolm(control);
1953 m_freem(control);
1954 }
1955 free(iov, M_IOV);
1956 free(lcm, M_LINUX);
1957 free(sa, M_SONAME);
1958
1959 return (error);
1960 }
1961
1962 int
linux_recvmsg(struct thread * td,struct linux_recvmsg_args * args)1963 linux_recvmsg(struct thread *td, struct linux_recvmsg_args *args)
1964 {
1965 struct msghdr bsd_msg;
1966 struct file *fp;
1967 int error;
1968
1969 error = getsock(td, args->s, &cap_recv_rights, &fp);
1970 if (error != 0)
1971 return (error);
1972 fdrop(fp, td);
1973 return (linux_recvmsg_common(td, args->s, PTRIN(args->msg),
1974 args->flags, &bsd_msg));
1975 }
1976
1977 static int
linux_recvmmsg_common(struct thread * td,l_int s,struct l_mmsghdr * msg,l_uint vlen,l_uint flags,struct timespec * tts)1978 linux_recvmmsg_common(struct thread *td, l_int s, struct l_mmsghdr *msg,
1979 l_uint vlen, l_uint flags, struct timespec *tts)
1980 {
1981 struct msghdr bsd_msg;
1982 struct timespec ts;
1983 struct file *fp;
1984 l_uint retval;
1985 int error, datagrams;
1986
1987 error = getsock(td, s, &cap_recv_rights, &fp);
1988 if (error != 0)
1989 return (error);
1990 datagrams = 0;
1991 while (datagrams < vlen) {
1992 error = linux_recvmsg_common(td, s, &msg->msg_hdr,
1993 flags & ~LINUX_MSG_WAITFORONE, &bsd_msg);
1994 if (error != 0)
1995 break;
1996
1997 retval = td->td_retval[0];
1998 error = copyout(&retval, &msg->msg_len, sizeof(msg->msg_len));
1999 if (error != 0)
2000 break;
2001 ++msg;
2002 ++datagrams;
2003
2004 /*
2005 * MSG_WAITFORONE turns on MSG_DONTWAIT after one packet.
2006 */
2007 if (flags & LINUX_MSG_WAITFORONE)
2008 flags |= LINUX_MSG_DONTWAIT;
2009
2010 /*
2011 * See BUGS section of recvmmsg(2).
2012 */
2013 if (tts) {
2014 getnanotime(&ts);
2015 timespecsub(&ts, tts, &ts);
2016 if (!timespecisset(&ts) || ts.tv_sec > 0)
2017 break;
2018 }
2019 /* Out of band data, return right away. */
2020 if (bsd_msg.msg_flags & MSG_OOB)
2021 break;
2022 }
2023 if (error == 0)
2024 td->td_retval[0] = datagrams;
2025 fdrop(fp, td);
2026 return (error);
2027 }
2028
2029 int
linux_recvmmsg(struct thread * td,struct linux_recvmmsg_args * args)2030 linux_recvmmsg(struct thread *td, struct linux_recvmmsg_args *args)
2031 {
2032 struct timespec ts, tts, *ptts;
2033 int error;
2034
2035 if (args->timeout) {
2036 error = linux_get_timespec(&ts, args->timeout);
2037 if (error != 0)
2038 return (error);
2039 getnanotime(&tts);
2040 timespecadd(&tts, &ts, &tts);
2041 ptts = &tts;
2042 }
2043 else ptts = NULL;
2044
2045 return (linux_recvmmsg_common(td, args->s, PTRIN(args->msg),
2046 args->vlen, args->flags, ptts));
2047 }
2048
2049 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
2050 int
linux_recvmmsg_time64(struct thread * td,struct linux_recvmmsg_time64_args * args)2051 linux_recvmmsg_time64(struct thread *td, struct linux_recvmmsg_time64_args *args)
2052 {
2053 struct timespec ts, tts, *ptts;
2054 int error;
2055
2056 if (args->timeout) {
2057 error = linux_get_timespec64(&ts, args->timeout);
2058 if (error != 0)
2059 return (error);
2060 getnanotime(&tts);
2061 timespecadd(&tts, &ts, &tts);
2062 ptts = &tts;
2063 }
2064 else ptts = NULL;
2065
2066 return (linux_recvmmsg_common(td, args->s, PTRIN(args->msg),
2067 args->vlen, args->flags, ptts));
2068 }
2069 #endif
2070
2071 int
linux_shutdown(struct thread * td,struct linux_shutdown_args * args)2072 linux_shutdown(struct thread *td, struct linux_shutdown_args *args)
2073 {
2074
2075 return (kern_shutdown(td, args->s, args->how));
2076 }
2077
2078 int
linux_setsockopt(struct thread * td,struct linux_setsockopt_args * args)2079 linux_setsockopt(struct thread *td, struct linux_setsockopt_args *args)
2080 {
2081 struct proc *p = td->td_proc;
2082 struct linux_pemuldata *pem;
2083 l_timeval linux_tv;
2084 l_uint linux_timeout;
2085 struct sockaddr *sa;
2086 struct timeval tv;
2087 u_int bsd_timeout;
2088 socklen_t len;
2089 int error, level, name, val;
2090
2091 level = linux_to_bsd_sockopt_level(args->level);
2092 switch (level) {
2093 case SOL_SOCKET:
2094 name = linux_to_bsd_so_sockopt(args->optname);
2095 switch (name) {
2096 case LOCAL_CREDS_PERSISTENT:
2097 level = SOL_LOCAL;
2098 break;
2099 case SO_RCVTIMEO:
2100 /* FALLTHROUGH */
2101 case SO_SNDTIMEO:
2102 error = copyin(PTRIN(args->optval), &linux_tv,
2103 sizeof(linux_tv));
2104 if (error != 0)
2105 return (error);
2106 tv.tv_sec = linux_tv.tv_sec;
2107 tv.tv_usec = linux_tv.tv_usec;
2108 return (kern_setsockopt(td, args->s, level,
2109 name, &tv, UIO_SYSSPACE, sizeof(tv)));
2110 /* NOTREACHED */
2111 case SO_TIMESTAMP:
2112 /* overwrite SO_BINTIME */
2113 val = 0;
2114 error = kern_setsockopt(td, args->s, level,
2115 SO_BINTIME, &val, UIO_SYSSPACE, sizeof(val));
2116 if (error != 0)
2117 return (error);
2118 pem = pem_find(p);
2119 pem->so_timestamp = args->optname;
2120 break;
2121 case SO_BINTIME:
2122 /* overwrite SO_TIMESTAMP */
2123 val = 0;
2124 error = kern_setsockopt(td, args->s, level,
2125 SO_TIMESTAMP, &val, UIO_SYSSPACE, sizeof(val));
2126 if (error != 0)
2127 return (error);
2128 pem = pem_find(p);
2129 pem->so_timestampns = args->optname;
2130 break;
2131 default:
2132 break;
2133 }
2134 break;
2135 case IPPROTO_IP:
2136 if (args->optname == LINUX_IP_RECVERR &&
2137 linux_ignore_ip_recverr) {
2138 /*
2139 * XXX: This is a hack to unbreak DNS resolution
2140 * with glibc 2.30 and above.
2141 */
2142 return (0);
2143 }
2144 name = linux_to_bsd_ip_sockopt(args->optname);
2145 break;
2146 case IPPROTO_IPV6:
2147 if (args->optname == LINUX_IPV6_RECVERR &&
2148 linux_ignore_ip_recverr) {
2149 /*
2150 * XXX: This is a hack to unbreak DNS resolution
2151 * with glibc 2.30 and above.
2152 */
2153 return (0);
2154 }
2155 name = linux_to_bsd_ip6_sockopt(args->optname);
2156 break;
2157 case IPPROTO_TCP:
2158 name = linux_to_bsd_tcp_sockopt(args->optname);
2159 switch (name) {
2160 case TCP_MAXUNACKTIME:
2161 if (args->optlen < sizeof(linux_timeout))
2162 return (EINVAL);
2163
2164 error = copyin(PTRIN(args->optval), &linux_timeout,
2165 sizeof(linux_timeout));
2166 if (error != 0)
2167 return (error);
2168
2169 bsd_timeout = linux_to_bsd_tcp_user_timeout(
2170 linux_timeout);
2171 return (kern_setsockopt(td, args->s, level, name,
2172 &bsd_timeout, UIO_SYSSPACE,
2173 sizeof(bsd_timeout)));
2174 default:
2175 break;
2176 }
2177 break;
2178 case SOL_NETLINK:
2179 name = args->optname;
2180 break;
2181 default:
2182 name = -1;
2183 break;
2184 }
2185 if (name < 0) {
2186 if (name == -1)
2187 linux_msg(curthread,
2188 "unsupported setsockopt level %d optname %d",
2189 args->level, args->optname);
2190 return (ENOPROTOOPT);
2191 }
2192
2193 switch (name) {
2194 case IPV6_NEXTHOP: {
2195 len = args->optlen;
2196 error = linux_to_bsd_sockaddr(PTRIN(args->optval), &sa, &len);
2197 if (error != 0)
2198 return (error);
2199
2200 error = kern_setsockopt(td, args->s, level,
2201 name, sa, UIO_SYSSPACE, len);
2202 free(sa, M_SONAME);
2203 break;
2204 }
2205 case MCAST_JOIN_GROUP:
2206 case MCAST_LEAVE_GROUP:
2207 case MCAST_JOIN_SOURCE_GROUP:
2208 case MCAST_LEAVE_SOURCE_GROUP: {
2209 struct group_source_req req;
2210 size_t size;
2211
2212 size = (name == MCAST_JOIN_SOURCE_GROUP ||
2213 name == MCAST_LEAVE_SOURCE_GROUP) ?
2214 sizeof(struct group_source_req) : sizeof(struct group_req);
2215
2216 if ((error = copyin(PTRIN(args->optval), &req, size)))
2217 return (error);
2218 len = sizeof(struct sockaddr_storage);
2219 if ((error = linux_to_bsd_sockaddr(
2220 (struct l_sockaddr *)&req.gsr_group, NULL, &len)))
2221 return (error);
2222 if (size == sizeof(struct group_source_req) &&
2223 (error = linux_to_bsd_sockaddr(
2224 (struct l_sockaddr *)&req.gsr_source, NULL, &len)))
2225 return (error);
2226 error = kern_setsockopt(td, args->s, level, name, &req,
2227 UIO_SYSSPACE, size);
2228 break;
2229 }
2230 default:
2231 error = kern_setsockopt(td, args->s, level,
2232 name, PTRIN(args->optval), UIO_USERSPACE, args->optlen);
2233 }
2234
2235 return (error);
2236 }
2237
2238 static int
linux_sockopt_copyout(struct thread * td,void * val,socklen_t len,struct linux_getsockopt_args * args)2239 linux_sockopt_copyout(struct thread *td, void *val, socklen_t len,
2240 struct linux_getsockopt_args *args)
2241 {
2242 int error;
2243
2244 error = copyout(val, PTRIN(args->optval), len);
2245 if (error == 0)
2246 error = copyout(&len, PTRIN(args->optlen), sizeof(len));
2247 return (error);
2248 }
2249
2250 static int
linux_getsockopt_so_peergroups(struct thread * td,struct linux_getsockopt_args * args)2251 linux_getsockopt_so_peergroups(struct thread *td,
2252 struct linux_getsockopt_args *args)
2253 {
2254 l_gid_t *out = PTRIN(args->optval);
2255 struct xucred xu;
2256 socklen_t xulen, len;
2257 int error, i;
2258
2259 xulen = sizeof(xu);
2260 error = kern_getsockopt(td, args->s, 0,
2261 LOCAL_PEERCRED, &xu, UIO_SYSSPACE, &xulen);
2262 if (error != 0)
2263 return (error);
2264
2265 len = xu.cr_ngroups * sizeof(l_gid_t);
2266 if (args->optlen < len) {
2267 error = copyout(&len, PTRIN(args->optlen), sizeof(len));
2268 if (error == 0)
2269 error = ERANGE;
2270 return (error);
2271 }
2272
2273 /* "- 1" to skip the primary group. */
2274 for (i = 0; i < xu.cr_ngroups - 1; i++) {
2275 /* Copy to cope with a possible type discrepancy. */
2276 const l_gid_t g = xu.cr_groups[i + 1];
2277
2278 error = copyout(&g, out + i, sizeof(l_gid_t));
2279 if (error != 0)
2280 return (error);
2281 }
2282
2283 error = copyout(&len, PTRIN(args->optlen), sizeof(len));
2284 return (error);
2285 }
2286
2287 static int
linux_getsockopt_so_peersec(struct thread * td,struct linux_getsockopt_args * args)2288 linux_getsockopt_so_peersec(struct thread *td,
2289 struct linux_getsockopt_args *args)
2290 {
2291 socklen_t len;
2292 int error;
2293
2294 len = sizeof(SECURITY_CONTEXT_STRING);
2295 if (args->optlen < len) {
2296 error = copyout(&len, PTRIN(args->optlen), sizeof(len));
2297 if (error == 0)
2298 error = ERANGE;
2299 return (error);
2300 }
2301
2302 return (linux_sockopt_copyout(td, SECURITY_CONTEXT_STRING,
2303 len, args));
2304 }
2305
2306 static int
linux_getsockopt_so_linger(struct thread * td,struct linux_getsockopt_args * args)2307 linux_getsockopt_so_linger(struct thread *td,
2308 struct linux_getsockopt_args *args)
2309 {
2310 struct linger ling;
2311 socklen_t len;
2312 int error;
2313
2314 len = sizeof(ling);
2315 error = kern_getsockopt(td, args->s, SOL_SOCKET,
2316 SO_LINGER, &ling, UIO_SYSSPACE, &len);
2317 if (error != 0)
2318 return (error);
2319 ling.l_onoff = ((ling.l_onoff & SO_LINGER) != 0);
2320 return (linux_sockopt_copyout(td, &ling, len, args));
2321 }
2322
2323 int
linux_getsockopt(struct thread * td,struct linux_getsockopt_args * args)2324 linux_getsockopt(struct thread *td, struct linux_getsockopt_args *args)
2325 {
2326 l_uint linux_timeout;
2327 l_timeval linux_tv;
2328 struct timeval tv;
2329 socklen_t tv_len, xulen, len;
2330 struct sockaddr *sa;
2331 u_int bsd_timeout;
2332 struct xucred xu;
2333 struct l_ucred lxu;
2334 int error, level, name, newval;
2335
2336 level = linux_to_bsd_sockopt_level(args->level);
2337 switch (level) {
2338 case SOL_SOCKET:
2339 switch (args->optname) {
2340 case LINUX_SO_PEERGROUPS:
2341 return (linux_getsockopt_so_peergroups(td, args));
2342 case LINUX_SO_PEERSEC:
2343 return (linux_getsockopt_so_peersec(td, args));
2344 default:
2345 break;
2346 }
2347
2348 name = linux_to_bsd_so_sockopt(args->optname);
2349 switch (name) {
2350 case LOCAL_CREDS_PERSISTENT:
2351 level = SOL_LOCAL;
2352 break;
2353 case SO_RCVTIMEO:
2354 /* FALLTHROUGH */
2355 case SO_SNDTIMEO:
2356 tv_len = sizeof(tv);
2357 error = kern_getsockopt(td, args->s, level,
2358 name, &tv, UIO_SYSSPACE, &tv_len);
2359 if (error != 0)
2360 return (error);
2361 linux_tv.tv_sec = tv.tv_sec;
2362 linux_tv.tv_usec = tv.tv_usec;
2363 return (linux_sockopt_copyout(td, &linux_tv,
2364 sizeof(linux_tv), args));
2365 /* NOTREACHED */
2366 case LOCAL_PEERCRED:
2367 if (args->optlen < sizeof(lxu))
2368 return (EINVAL);
2369 /*
2370 * LOCAL_PEERCRED is not served at the SOL_SOCKET level,
2371 * but by the Unix socket's level 0.
2372 */
2373 level = 0;
2374 xulen = sizeof(xu);
2375 error = kern_getsockopt(td, args->s, level,
2376 name, &xu, UIO_SYSSPACE, &xulen);
2377 if (error != 0)
2378 return (error);
2379 lxu.pid = xu.cr_pid;
2380 lxu.uid = xu.cr_uid;
2381 lxu.gid = xu.cr_gid;
2382 return (linux_sockopt_copyout(td, &lxu,
2383 sizeof(lxu), args));
2384 /* NOTREACHED */
2385 case SO_ERROR:
2386 len = sizeof(newval);
2387 error = kern_getsockopt(td, args->s, level,
2388 name, &newval, UIO_SYSSPACE, &len);
2389 if (error != 0)
2390 return (error);
2391 newval = -bsd_to_linux_errno(newval);
2392 return (linux_sockopt_copyout(td, &newval,
2393 len, args));
2394 /* NOTREACHED */
2395 case SO_DOMAIN:
2396 len = sizeof(newval);
2397 error = kern_getsockopt(td, args->s, level,
2398 name, &newval, UIO_SYSSPACE, &len);
2399 if (error != 0)
2400 return (error);
2401 newval = bsd_to_linux_domain((sa_family_t)newval);
2402 if (newval == AF_UNKNOWN)
2403 return (ENOPROTOOPT);
2404 return (linux_sockopt_copyout(td, &newval,
2405 len, args));
2406 /* NOTREACHED */
2407 case SO_LINGER:
2408 return (linux_getsockopt_so_linger(td, args));
2409 /* NOTREACHED */
2410 default:
2411 break;
2412 }
2413 break;
2414 case IPPROTO_IP:
2415 name = linux_to_bsd_ip_sockopt(args->optname);
2416 break;
2417 case IPPROTO_IPV6:
2418 name = linux_to_bsd_ip6_sockopt(args->optname);
2419 break;
2420 case IPPROTO_TCP:
2421 name = linux_to_bsd_tcp_sockopt(args->optname);
2422 switch (name) {
2423 case TCP_MAXUNACKTIME:
2424 len = sizeof(bsd_timeout);
2425 error = kern_getsockopt(td, args->s, level, name,
2426 &bsd_timeout, UIO_SYSSPACE, &len);
2427 if (error != 0)
2428 return (error);
2429
2430 linux_timeout = bsd_to_linux_tcp_user_timeout(
2431 bsd_timeout);
2432 return (linux_sockopt_copyout(td, &linux_timeout,
2433 sizeof(linux_timeout), args));
2434 default:
2435 break;
2436 }
2437 break;
2438 default:
2439 name = -1;
2440 break;
2441 }
2442 if (name < 0) {
2443 if (name == -1)
2444 linux_msg(curthread,
2445 "unsupported getsockopt level %d optname %d",
2446 args->level, args->optname);
2447 return (EINVAL);
2448 }
2449
2450 if (name == IPV6_NEXTHOP) {
2451 error = copyin(PTRIN(args->optlen), &len, sizeof(len));
2452 if (error != 0)
2453 return (error);
2454 sa = malloc(len, M_SONAME, M_WAITOK);
2455
2456 error = kern_getsockopt(td, args->s, level,
2457 name, sa, UIO_SYSSPACE, &len);
2458 if (error != 0)
2459 goto out;
2460
2461 error = linux_copyout_sockaddr(sa, PTRIN(args->optval), len);
2462 if (error == 0)
2463 error = copyout(&len, PTRIN(args->optlen),
2464 sizeof(len));
2465 out:
2466 free(sa, M_SONAME);
2467 } else {
2468 if (args->optval) {
2469 error = copyin(PTRIN(args->optlen), &len, sizeof(len));
2470 if (error != 0)
2471 return (error);
2472 }
2473 error = kern_getsockopt(td, args->s, level,
2474 name, PTRIN(args->optval), UIO_USERSPACE, &len);
2475 if (error == 0)
2476 error = copyout(&len, PTRIN(args->optlen),
2477 sizeof(len));
2478 }
2479
2480 return (error);
2481 }
2482
2483 /*
2484 * Based on sendfile_getsock from kern_sendfile.c
2485 * Determines whether an fd is a stream socket that can be used
2486 * with FreeBSD sendfile.
2487 */
2488 static bool
is_sendfile(struct file * fp,struct file * ofp)2489 is_sendfile(struct file *fp, struct file *ofp)
2490 {
2491 struct socket *so;
2492
2493 /*
2494 * FreeBSD sendfile() system call sends a regular file or
2495 * shared memory object out a stream socket.
2496 */
2497 if ((fp->f_type != DTYPE_SHM && fp->f_type != DTYPE_VNODE) ||
2498 (fp->f_type == DTYPE_VNODE &&
2499 (fp->f_vnode == NULL || fp->f_vnode->v_type != VREG)))
2500 return (false);
2501 /*
2502 * The socket must be a stream socket and connected.
2503 */
2504 if (ofp->f_type != DTYPE_SOCKET)
2505 return (false);
2506 so = ofp->f_data;
2507 if (so->so_type != SOCK_STREAM)
2508 return (false);
2509 /*
2510 * SCTP one-to-one style sockets currently don't work with
2511 * sendfile().
2512 */
2513 if (so->so_proto->pr_protocol == IPPROTO_SCTP)
2514 return (false);
2515 return (!SOLISTENING(so));
2516 }
2517
2518 static bool
is_regular_file(struct file * fp)2519 is_regular_file(struct file *fp)
2520 {
2521
2522 return (fp->f_type == DTYPE_VNODE && fp->f_vnode != NULL &&
2523 fp->f_vnode->v_type == VREG);
2524 }
2525
2526 static int
sendfile_fallback(struct thread * td,struct file * fp,l_int out,off_t * offset,l_size_t count,off_t * sbytes)2527 sendfile_fallback(struct thread *td, struct file *fp, l_int out,
2528 off_t *offset, l_size_t count, off_t *sbytes)
2529 {
2530 off_t current_offset, out_offset, to_send;
2531 l_size_t bytes_sent, n_read;
2532 struct file *ofp;
2533 struct iovec aiov;
2534 struct uio auio;
2535 bool seekable;
2536 size_t bufsz;
2537 void *buf;
2538 int flags, error;
2539
2540 if (offset == NULL) {
2541 if ((error = fo_seek(fp, 0, SEEK_CUR, td)) != 0)
2542 return (error);
2543 current_offset = td->td_uretoff.tdu_off;
2544 } else {
2545 if ((fp->f_ops->fo_flags & DFLAG_SEEKABLE) == 0)
2546 return (ESPIPE);
2547 current_offset = *offset;
2548 }
2549 error = fget_write(td, out, &cap_pwrite_rights, &ofp);
2550 if (error != 0)
2551 return (error);
2552 seekable = (ofp->f_ops->fo_flags & DFLAG_SEEKABLE) != 0;
2553 if (seekable) {
2554 if ((error = fo_seek(ofp, 0, SEEK_CUR, td)) != 0)
2555 goto drop;
2556 out_offset = td->td_uretoff.tdu_off;
2557 } else
2558 out_offset = 0;
2559
2560 flags = FOF_OFFSET | FOF_NOUPDATE;
2561 bufsz = min(count, maxphys);
2562 buf = malloc(bufsz, M_LINUX, M_WAITOK);
2563 bytes_sent = 0;
2564 while (bytes_sent < count) {
2565 to_send = min(count - bytes_sent, bufsz);
2566 aiov.iov_base = buf;
2567 aiov.iov_len = bufsz;
2568 auio.uio_iov = &aiov;
2569 auio.uio_iovcnt = 1;
2570 auio.uio_segflg = UIO_SYSSPACE;
2571 auio.uio_td = td;
2572 auio.uio_rw = UIO_READ;
2573 auio.uio_offset = current_offset;
2574 auio.uio_resid = to_send;
2575 error = fo_read(fp, &auio, fp->f_cred, flags, td);
2576 if (error != 0)
2577 break;
2578 n_read = to_send - auio.uio_resid;
2579 if (n_read == 0)
2580 break;
2581 aiov.iov_base = buf;
2582 aiov.iov_len = bufsz;
2583 auio.uio_iov = &aiov;
2584 auio.uio_iovcnt = 1;
2585 auio.uio_segflg = UIO_SYSSPACE;
2586 auio.uio_td = td;
2587 auio.uio_rw = UIO_WRITE;
2588 auio.uio_offset = (seekable) ? out_offset : 0;
2589 auio.uio_resid = n_read;
2590 error = fo_write(ofp, &auio, ofp->f_cred, flags, td);
2591 if (error != 0)
2592 break;
2593 bytes_sent += n_read;
2594 current_offset += n_read;
2595 out_offset += n_read;
2596 }
2597 free(buf, M_LINUX);
2598
2599 if (error == 0) {
2600 *sbytes = bytes_sent;
2601 if (offset != NULL)
2602 *offset = current_offset;
2603 else
2604 error = fo_seek(fp, current_offset, SEEK_SET, td);
2605 }
2606 if (error == 0 && seekable)
2607 error = fo_seek(ofp, out_offset, SEEK_SET, td);
2608
2609 drop:
2610 fdrop(ofp, td);
2611 return (error);
2612 }
2613
2614 static int
sendfile_sendfile(struct thread * td,struct file * fp,l_int out,off_t * offset,l_size_t count,off_t * sbytes)2615 sendfile_sendfile(struct thread *td, struct file *fp, l_int out,
2616 off_t *offset, l_size_t count, off_t *sbytes)
2617 {
2618 off_t current_offset;
2619 int error;
2620
2621 if (offset == NULL) {
2622 if ((fp->f_ops->fo_flags & DFLAG_SEEKABLE) == 0)
2623 return (ESPIPE);
2624 if ((error = fo_seek(fp, 0, SEEK_CUR, td)) != 0)
2625 return (error);
2626 current_offset = td->td_uretoff.tdu_off;
2627 } else
2628 current_offset = *offset;
2629 error = fo_sendfile(fp, out, NULL, NULL, current_offset, count,
2630 sbytes, 0, td);
2631 if (error == EAGAIN && *sbytes > 0) {
2632 /*
2633 * The socket is non-blocking and we didn't finish sending.
2634 * Squash the error, since that's what Linux does.
2635 */
2636 error = 0;
2637 }
2638 if (error == 0) {
2639 current_offset += *sbytes;
2640 if (offset != NULL)
2641 *offset = current_offset;
2642 else
2643 error = fo_seek(fp, current_offset, SEEK_SET, td);
2644 }
2645 return (error);
2646 }
2647
2648 static int
linux_sendfile_common(struct thread * td,l_int out,l_int in,off_t * offset,l_size_t count)2649 linux_sendfile_common(struct thread *td, l_int out, l_int in,
2650 off_t *offset, l_size_t count)
2651 {
2652 struct file *fp, *ofp;
2653 off_t sbytes;
2654 int error;
2655
2656 /* Linux cannot have 0 count. */
2657 if (count <= 0 || (offset != NULL && *offset < 0))
2658 return (EINVAL);
2659
2660 AUDIT_ARG_FD(in);
2661 error = fget_read(td, in, &cap_pread_rights, &fp);
2662 if (error != 0)
2663 return (error);
2664 if ((fp->f_type != DTYPE_SHM && fp->f_type != DTYPE_VNODE) ||
2665 (fp->f_type == DTYPE_VNODE &&
2666 (fp->f_vnode == NULL || fp->f_vnode->v_type != VREG))) {
2667 error = EINVAL;
2668 goto drop;
2669 }
2670 error = fget_unlocked(td, out, &cap_no_rights, &ofp);
2671 if (error != 0)
2672 goto drop;
2673
2674 if (is_regular_file(fp) && is_regular_file(ofp)) {
2675 error = kern_copy_file_range(td, in, offset, out, NULL, count,
2676 0);
2677 } else {
2678 sbytes = 0;
2679 if (is_sendfile(fp, ofp))
2680 error = sendfile_sendfile(td, fp, out, offset, count,
2681 &sbytes);
2682 else
2683 error = sendfile_fallback(td, fp, out, offset, count,
2684 &sbytes);
2685 if (error == ENOBUFS && (ofp->f_flag & FNONBLOCK) != 0)
2686 error = EAGAIN;
2687 if (error == 0)
2688 td->td_retval[0] = sbytes;
2689 }
2690 fdrop(ofp, td);
2691
2692 drop:
2693 fdrop(fp, td);
2694 return (error);
2695 }
2696
2697 int
linux_sendfile(struct thread * td,struct linux_sendfile_args * arg)2698 linux_sendfile(struct thread *td, struct linux_sendfile_args *arg)
2699 {
2700 /*
2701 * Differences between FreeBSD and Linux sendfile:
2702 * - Linux doesn't send anything when count is 0 (FreeBSD uses 0 to
2703 * mean send the whole file).
2704 * - Linux can send to any fd whereas FreeBSD only supports sockets.
2705 * We therefore use FreeBSD sendfile where possible for performance,
2706 * but fall back on a manual copy (sendfile_fallback).
2707 * - Linux doesn't have an equivalent for FreeBSD's flags and sf_hdtr.
2708 * - Linux takes an offset pointer and updates it to the read location.
2709 * FreeBSD takes in an offset and a 'bytes read' parameter which is
2710 * only filled if it isn't NULL. We use this parameter to update the
2711 * offset pointer if it exists.
2712 * - Linux sendfile returns bytes read on success while FreeBSD
2713 * returns 0. We use the 'bytes read' parameter to get this value.
2714 */
2715
2716 off_t offset64;
2717 l_off_t offset;
2718 int error;
2719
2720 if (arg->offset != NULL) {
2721 error = copyin(arg->offset, &offset, sizeof(offset));
2722 if (error != 0)
2723 return (error);
2724 offset64 = offset;
2725 }
2726
2727 error = linux_sendfile_common(td, arg->out, arg->in,
2728 arg->offset != NULL ? &offset64 : NULL, arg->count);
2729
2730 if (error == 0 && arg->offset != NULL) {
2731 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
2732 if (offset64 > INT32_MAX)
2733 return (EOVERFLOW);
2734 #endif
2735 offset = (l_off_t)offset64;
2736 error = copyout(&offset, arg->offset, sizeof(offset));
2737 }
2738
2739 return (error);
2740 }
2741
2742 #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32))
2743 int
linux_sendfile64(struct thread * td,struct linux_sendfile64_args * arg)2744 linux_sendfile64(struct thread *td, struct linux_sendfile64_args *arg)
2745 {
2746 off_t offset;
2747 int error;
2748
2749 if (arg->offset != NULL) {
2750 error = copyin(arg->offset, &offset, sizeof(offset));
2751 if (error != 0)
2752 return (error);
2753 }
2754
2755 error = linux_sendfile_common(td, arg->out, arg->in,
2756 arg->offset != NULL ? &offset : NULL, arg->count);
2757
2758 if (error == 0 && arg->offset != NULL)
2759 error = copyout(&offset, arg->offset, sizeof(offset));
2760
2761 return (error);
2762 }
2763
2764 /* Argument list sizes for linux_socketcall */
2765 static const unsigned char lxs_args_cnt[] = {
2766 0 /* unused*/, 3 /* socket */,
2767 3 /* bind */, 3 /* connect */,
2768 2 /* listen */, 3 /* accept */,
2769 3 /* getsockname */, 3 /* getpeername */,
2770 4 /* socketpair */, 4 /* send */,
2771 4 /* recv */, 6 /* sendto */,
2772 6 /* recvfrom */, 2 /* shutdown */,
2773 5 /* setsockopt */, 5 /* getsockopt */,
2774 3 /* sendmsg */, 3 /* recvmsg */,
2775 4 /* accept4 */, 5 /* recvmmsg */,
2776 4 /* sendmmsg */, 4 /* sendfile */
2777 };
2778 #define LINUX_ARGS_CNT (nitems(lxs_args_cnt) - 1)
2779 #define LINUX_ARG_SIZE(x) (lxs_args_cnt[x] * sizeof(l_ulong))
2780
2781 int
linux_socketcall(struct thread * td,struct linux_socketcall_args * args)2782 linux_socketcall(struct thread *td, struct linux_socketcall_args *args)
2783 {
2784 l_ulong a[6];
2785 #if defined(__amd64__) && defined(COMPAT_LINUX32)
2786 register_t l_args[6];
2787 #endif
2788 void *arg;
2789 int error;
2790
2791 if (args->what < LINUX_SOCKET || args->what > LINUX_ARGS_CNT)
2792 return (EINVAL);
2793 error = copyin(PTRIN(args->args), a, LINUX_ARG_SIZE(args->what));
2794 if (error != 0)
2795 return (error);
2796
2797 #if defined(__amd64__) && defined(COMPAT_LINUX32)
2798 for (int i = 0; i < lxs_args_cnt[args->what]; ++i)
2799 l_args[i] = a[i];
2800 arg = l_args;
2801 #else
2802 arg = a;
2803 #endif
2804 switch (args->what) {
2805 case LINUX_SOCKET:
2806 return (linux_socket(td, arg));
2807 case LINUX_BIND:
2808 return (linux_bind(td, arg));
2809 case LINUX_CONNECT:
2810 return (linux_connect(td, arg));
2811 case LINUX_LISTEN:
2812 return (linux_listen(td, arg));
2813 case LINUX_ACCEPT:
2814 return (linux_accept(td, arg));
2815 case LINUX_GETSOCKNAME:
2816 return (linux_getsockname(td, arg));
2817 case LINUX_GETPEERNAME:
2818 return (linux_getpeername(td, arg));
2819 case LINUX_SOCKETPAIR:
2820 return (linux_socketpair(td, arg));
2821 case LINUX_SEND:
2822 return (linux_send(td, arg));
2823 case LINUX_RECV:
2824 return (linux_recv(td, arg));
2825 case LINUX_SENDTO:
2826 return (linux_sendto(td, arg));
2827 case LINUX_RECVFROM:
2828 return (linux_recvfrom(td, arg));
2829 case LINUX_SHUTDOWN:
2830 return (linux_shutdown(td, arg));
2831 case LINUX_SETSOCKOPT:
2832 return (linux_setsockopt(td, arg));
2833 case LINUX_GETSOCKOPT:
2834 return (linux_getsockopt(td, arg));
2835 case LINUX_SENDMSG:
2836 return (linux_sendmsg(td, arg));
2837 case LINUX_RECVMSG:
2838 return (linux_recvmsg(td, arg));
2839 case LINUX_ACCEPT4:
2840 return (linux_accept4(td, arg));
2841 case LINUX_RECVMMSG:
2842 return (linux_recvmmsg(td, arg));
2843 case LINUX_SENDMMSG:
2844 return (linux_sendmmsg(td, arg));
2845 case LINUX_SENDFILE:
2846 return (linux_sendfile(td, arg));
2847 }
2848
2849 linux_msg(td, "socket type %d not implemented", args->what);
2850 return (ENOSYS);
2851 }
2852 #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */
2853