Simon suggests a better solution to valgrind's complaining about
[u/mdw/putty] / unix / uxnet.c
1 /*
2 * Unix networking abstraction.
3 */
4
5 #include <stdio.h>
6 #include <stdlib.h>
7 #include <assert.h>
8 #include <errno.h>
9 #include <fcntl.h>
10 #include <unistd.h>
11 #include <sys/types.h>
12 #include <sys/socket.h>
13 #include <sys/ioctl.h>
14 #include <arpa/inet.h>
15 #include <netinet/in.h>
16 #include <netinet/tcp.h>
17 #include <netdb.h>
18 #include <sys/un.h>
19
20 #define DEFINE_PLUG_METHOD_MACROS
21 #include "putty.h"
22 #include "network.h"
23 #include "tree234.h"
24
25 #ifndef X11_UNIX_PATH
26 # define X11_UNIX_PATH "/tmp/.X11-unix/X"
27 #endif
28
29 struct Socket_tag {
30 struct socket_function_table *fn;
31 /* the above variable absolutely *must* be the first in this structure */
32 const char *error;
33 int s;
34 Plug plug;
35 void *private_ptr;
36 bufchain output_data;
37 int connected; /* irrelevant for listening sockets */
38 int writable;
39 int frozen; /* this causes readability notifications to be ignored */
40 int frozen_readable; /* this means we missed at least one readability
41 * notification while we were frozen */
42 int localhost_only; /* for listening sockets */
43 char oobdata[1];
44 int sending_oob;
45 int oobpending; /* is there OOB data available to read? */
46 int oobinline;
47 int pending_error; /* in case send() returns error */
48 int listener;
49 int nodelay, keepalive; /* for connect()-type sockets */
50 int privport, port; /* and again */
51 SockAddr addr;
52 };
53
54 /*
55 * We used to typedef struct Socket_tag *Socket.
56 *
57 * Since we have made the networking abstraction slightly more
58 * abstract, Socket no longer means a tcp socket (it could mean
59 * an ssl socket). So now we must use Actual_Socket when we know
60 * we are talking about a tcp socket.
61 */
62 typedef struct Socket_tag *Actual_Socket;
63
64 struct SockAddr_tag {
65 const char *error;
66 /*
67 * Which address family this address belongs to. AF_INET for
68 * IPv4; AF_INET6 for IPv6; AF_UNSPEC indicates that name
69 * resolution has not been done and a simple host name is held
70 * in this SockAddr structure.
71 */
72 int family;
73 #ifndef NO_IPV6
74 struct addrinfo *ais; /* Addresses IPv6 style. */
75 struct addrinfo *ai; /* steps along the linked list */
76 #else
77 unsigned long *addresses; /* Addresses IPv4 style. */
78 int naddresses, curraddr;
79 #endif
80 char hostname[512]; /* Store an unresolved host name. */
81 };
82
83 static tree234 *sktree;
84
85 static void uxsel_tell(Actual_Socket s);
86
87 static int cmpfortree(void *av, void *bv)
88 {
89 Actual_Socket a = (Actual_Socket) av, b = (Actual_Socket) bv;
90 int as = a->s, bs = b->s;
91 if (as < bs)
92 return -1;
93 if (as > bs)
94 return +1;
95 return 0;
96 }
97
98 static int cmpforsearch(void *av, void *bv)
99 {
100 Actual_Socket b = (Actual_Socket) bv;
101 int as = *(int *)av, bs = b->s;
102 if (as < bs)
103 return -1;
104 if (as > bs)
105 return +1;
106 return 0;
107 }
108
109 void sk_init(void)
110 {
111 sktree = newtree234(cmpfortree);
112 }
113
114 void sk_cleanup(void)
115 {
116 Actual_Socket s;
117 int i;
118
119 if (sktree) {
120 for (i = 0; (s = index234(sktree, i)) != NULL; i++) {
121 close(s->s);
122 }
123 }
124 }
125
126 SockAddr sk_namelookup(const char *host, char **canonicalname, int address_family)
127 {
128 SockAddr ret = snew(struct SockAddr_tag);
129 #ifndef NO_IPV6
130 struct addrinfo hints;
131 int err;
132 #else
133 unsigned long a;
134 struct hostent *h = NULL;
135 int n;
136 #endif
137 char realhost[8192];
138
139 /* Clear the structure and default to IPv4. */
140 memset(ret, 0, sizeof(struct SockAddr_tag));
141 ret->family = 0; /* We set this one when we have resolved the host. */
142 *realhost = '\0';
143 ret->error = NULL;
144
145 #ifndef NO_IPV6
146 hints.ai_flags = AI_CANONNAME;
147 hints.ai_family = (address_family == ADDRTYPE_IPV4 ? AF_INET :
148 address_family == ADDRTYPE_IPV6 ? AF_INET6 :
149 AF_UNSPEC);
150 hints.ai_socktype = SOCK_STREAM;
151 hints.ai_protocol = 0;
152 hints.ai_addrlen = 0;
153 hints.ai_addr = NULL;
154 hints.ai_canonname = NULL;
155 hints.ai_next = NULL;
156 err = getaddrinfo(host, NULL, &hints, &ret->ais);
157 ret->ai = ret->ais;
158 if (err != 0) {
159 ret->error = gai_strerror(err);
160 return ret;
161 }
162 ret->family = ret->ai->ai_family;
163 *realhost = '\0';
164 if (ret->ai->ai_canonname != NULL)
165 strncat(realhost, ret->ai->ai_canonname, sizeof(realhost) - 1);
166 else
167 strncat(realhost, host, sizeof(realhost) - 1);
168 #else
169 if ((a = inet_addr(host)) == (unsigned long)(in_addr_t)(-1)) {
170 /*
171 * Otherwise use the IPv4-only gethostbyname... (NOTE:
172 * we don't use gethostbyname as a fallback!)
173 */
174 if (ret->family == 0) {
175 /*debug(("Resolving \"%s\" with gethostbyname() (IPv4 only)...\n", host)); */
176 if ( (h = gethostbyname(host)) )
177 ret->family = AF_INET;
178 }
179 if (ret->family == 0) {
180 ret->error = (h_errno == HOST_NOT_FOUND ||
181 h_errno == NO_DATA ||
182 h_errno == NO_ADDRESS ? "Host does not exist" :
183 h_errno == TRY_AGAIN ?
184 "Temporary name service failure" :
185 "gethostbyname: unknown error");
186 return ret;
187 }
188 /* This way we are always sure the h->h_name is valid :) */
189 strncpy(realhost, h->h_name, sizeof(realhost));
190 for (n = 0; h->h_addr_list[n]; n++);
191 ret->addresses = snewn(n, unsigned long);
192 ret->naddresses = n;
193 for (n = 0; n < ret->naddresses; n++) {
194 memcpy(&a, h->h_addr_list[n], sizeof(a));
195 ret->addresses[n] = ntohl(a);
196 }
197 } else {
198 /*
199 * This must be a numeric IPv4 address because it caused a
200 * success return from inet_addr.
201 */
202 ret->family = AF_INET;
203 strncpy(realhost, host, sizeof(realhost));
204 ret->addresses = snew(unsigned long);
205 ret->naddresses = 1;
206 ret->addresses[0] = ntohl(a);
207 ret->curraddr = 0;
208 }
209 #endif
210 realhost[lenof(realhost)-1] = '\0';
211 *canonicalname = snewn(1+strlen(realhost), char);
212 strcpy(*canonicalname, realhost);
213 return ret;
214 }
215
216 SockAddr sk_nonamelookup(const char *host)
217 {
218 SockAddr ret = snew(struct SockAddr_tag);
219 ret->error = NULL;
220 ret->family = AF_UNSPEC;
221 strncpy(ret->hostname, host, lenof(ret->hostname));
222 ret->hostname[lenof(ret->hostname)-1] = '\0';
223 #ifndef NO_IPV6
224 ret->ais = NULL;
225 #else
226 ret->addresses = NULL;
227 #endif
228 return ret;
229 }
230
231 static int sk_nextaddr(SockAddr addr)
232 {
233 #ifndef NO_IPV6
234 if (addr->ai->ai_next) {
235 addr->ai = addr->ai->ai_next;
236 addr->family = addr->ai->ai_family;
237 return TRUE;
238 } else
239 return FALSE;
240 #else
241 if (addr->curraddr+1 < addr->naddresses) {
242 addr->curraddr++;
243 return TRUE;
244 } else {
245 return FALSE;
246 }
247 #endif
248 }
249
250 void sk_getaddr(SockAddr addr, char *buf, int buflen)
251 {
252
253 if (addr->family == AF_UNSPEC) {
254 strncpy(buf, addr->hostname, buflen);
255 buf[buflen-1] = '\0';
256 } else {
257 #ifndef NO_IPV6
258 if (getnameinfo(addr->ai->ai_addr, addr->ai->ai_addrlen, buf, buflen,
259 NULL, 0, NI_NUMERICHOST) != 0) {
260 buf[0] = '\0';
261 strncat(buf, "<unknown>", buflen - 1);
262 }
263 #else
264 struct in_addr a;
265 assert(addr->family == AF_INET);
266 a.s_addr = htonl(addr->addresses[addr->curraddr]);
267 strncpy(buf, inet_ntoa(a), buflen);
268 buf[buflen-1] = '\0';
269 #endif
270 }
271 }
272
273 int sk_hostname_is_local(char *name)
274 {
275 return !strcmp(name, "localhost");
276 }
277
278 #define ipv4_is_loopback(addr) \
279 (((addr).s_addr & htonl(0xff000000)) == htonl(0x7f000000))
280
281 static int sockaddr_is_loopback(struct sockaddr *sa)
282 {
283 struct sockaddr_in *sin;
284 #ifndef NO_IPV6
285 struct sockaddr_in6 *sin6;
286 #endif
287
288 switch (sa->sa_family) {
289 case AF_INET:
290 sin = (struct sockaddr_in *)sa;
291 return ipv4_is_loopback(sin->sin_addr);
292 #ifndef NO_IPV6
293 case AF_INET6:
294 sin6 = (struct sockaddr_in6 *)sa;
295 return IN6_IS_ADDR_LOOPBACK(&sin6->sin6_addr);
296 #endif
297 case AF_UNIX:
298 return TRUE;
299 default:
300 return FALSE;
301 }
302 }
303
304 int sk_address_is_local(SockAddr addr)
305 {
306
307 if (addr->family == AF_UNSPEC)
308 return 0; /* we don't know; assume not */
309 else {
310 #ifndef NO_IPV6
311 return sockaddr_is_loopback(addr->ai->ai_addr);
312 #else
313 struct in_addr a;
314 assert(addr->family == AF_INET);
315 a.s_addr = htonl(addr->addresses[addr->curraddr]);
316 return ipv4_is_loopback(a);
317 #endif
318 }
319 }
320
321 int sk_addrtype(SockAddr addr)
322 {
323 return (addr->family == AF_INET ? ADDRTYPE_IPV4 :
324 #ifndef NO_IPV6
325 addr->family == AF_INET6 ? ADDRTYPE_IPV6 :
326 #endif
327 ADDRTYPE_NAME);
328 }
329
330 void sk_addrcopy(SockAddr addr, char *buf)
331 {
332
333 #ifndef NO_IPV6
334 if (addr->family == AF_INET)
335 memcpy(buf, &((struct sockaddr_in *)addr->ai->ai_addr)->sin_addr,
336 sizeof(struct in_addr));
337 else if (addr->family == AF_INET6)
338 memcpy(buf, &((struct sockaddr_in6 *)addr->ai->ai_addr)->sin6_addr,
339 sizeof(struct in6_addr));
340 else
341 assert(FALSE);
342 #else
343 struct in_addr a;
344
345 assert(addr->family == AF_INET);
346 a.s_addr = htonl(addr->addresses[addr->curraddr]);
347 memcpy(buf, (char*) &a.s_addr, 4);
348 #endif
349 }
350
351 void sk_addr_free(SockAddr addr)
352 {
353
354 #ifndef NO_IPV6
355 if (addr->ais != NULL)
356 freeaddrinfo(addr->ais);
357 #else
358 sfree(addr->addresses);
359 #endif
360 sfree(addr);
361 }
362
363 static Plug sk_tcp_plug(Socket sock, Plug p)
364 {
365 Actual_Socket s = (Actual_Socket) sock;
366 Plug ret = s->plug;
367 if (p)
368 s->plug = p;
369 return ret;
370 }
371
372 static void sk_tcp_flush(Socket s)
373 {
374 /*
375 * We send data to the socket as soon as we can anyway,
376 * so we don't need to do anything here. :-)
377 */
378 }
379
380 static void sk_tcp_close(Socket s);
381 static int sk_tcp_write(Socket s, const char *data, int len);
382 static int sk_tcp_write_oob(Socket s, const char *data, int len);
383 static void sk_tcp_set_private_ptr(Socket s, void *ptr);
384 static void *sk_tcp_get_private_ptr(Socket s);
385 static void sk_tcp_set_frozen(Socket s, int is_frozen);
386 static const char *sk_tcp_socket_error(Socket s);
387
388 static struct socket_function_table tcp_fn_table = {
389 sk_tcp_plug,
390 sk_tcp_close,
391 sk_tcp_write,
392 sk_tcp_write_oob,
393 sk_tcp_flush,
394 sk_tcp_set_private_ptr,
395 sk_tcp_get_private_ptr,
396 sk_tcp_set_frozen,
397 sk_tcp_socket_error
398 };
399
400 Socket sk_register(OSSocket sockfd, Plug plug)
401 {
402 Actual_Socket ret;
403
404 /*
405 * Create Socket structure.
406 */
407 ret = snew(struct Socket_tag);
408 ret->fn = &tcp_fn_table;
409 ret->error = NULL;
410 ret->plug = plug;
411 bufchain_init(&ret->output_data);
412 ret->writable = 1; /* to start with */
413 ret->sending_oob = 0;
414 ret->frozen = 1;
415 ret->frozen_readable = 0;
416 ret->localhost_only = 0; /* unused, but best init anyway */
417 ret->pending_error = 0;
418 ret->oobpending = FALSE;
419 ret->listener = 0;
420 ret->addr = NULL;
421 ret->connected = 1;
422
423 ret->s = sockfd;
424
425 if (ret->s < 0) {
426 ret->error = strerror(errno);
427 return (Socket) ret;
428 }
429
430 ret->oobinline = 0;
431
432 uxsel_tell(ret);
433 add234(sktree, ret);
434
435 return (Socket) ret;
436 }
437
438 static int try_connect(Actual_Socket sock)
439 {
440 int s;
441 #ifndef NO_IPV6
442 struct sockaddr_in6 a6;
443 #endif
444 struct sockaddr_in a;
445 struct sockaddr_un au;
446 const struct sockaddr *sa;
447 int err = 0;
448 short localport;
449 int fl, salen;
450
451 if (sock->s >= 0)
452 close(sock->s);
453
454 plug_log(sock->plug, 0, sock->addr, sock->port, NULL, 0);
455
456 /*
457 * Open socket.
458 */
459 assert(sock->addr->family != AF_UNSPEC);
460 s = socket(sock->addr->family, SOCK_STREAM, 0);
461 sock->s = s;
462
463 if (s < 0) {
464 err = errno;
465 goto ret;
466 }
467
468 if (sock->oobinline) {
469 int b = TRUE;
470 setsockopt(s, SOL_SOCKET, SO_OOBINLINE, (void *) &b, sizeof(b));
471 }
472
473 if (sock->nodelay) {
474 int b = TRUE;
475 setsockopt(s, IPPROTO_TCP, TCP_NODELAY, (void *) &b, sizeof(b));
476 }
477
478 if (sock->keepalive) {
479 int b = TRUE;
480 setsockopt(s, SOL_SOCKET, SO_KEEPALIVE, (void *) &b, sizeof(b));
481 }
482
483 /*
484 * Bind to local address.
485 */
486 if (sock->privport)
487 localport = 1023; /* count from 1023 downwards */
488 else
489 localport = 0; /* just use port 0 (ie kernel picks) */
490
491 /* BSD IP stacks need sockaddr_in zeroed before filling in */
492 memset(&a,'\0',sizeof(struct sockaddr_in));
493 #ifndef NO_IPV6
494 memset(&a6,'\0',sizeof(struct sockaddr_in6));
495 #endif
496
497 /* We don't try to bind to a local address for UNIX domain sockets. (Why
498 * do we bother doing the bind when localport == 0 anyway?) */
499 if(sock->addr->family != AF_UNIX) {
500 /* Loop round trying to bind */
501 while (1) {
502 int retcode;
503
504 #ifndef NO_IPV6
505 if (sock->addr->family == AF_INET6) {
506 /* XXX use getaddrinfo to get a local address? */
507 a6.sin6_family = AF_INET6;
508 a6.sin6_addr = in6addr_any;
509 a6.sin6_port = htons(localport);
510 retcode = bind(s, (struct sockaddr *) &a6, sizeof(a6));
511 } else
512 #endif
513 {
514 assert(sock->addr->family == AF_INET);
515 a.sin_family = AF_INET;
516 a.sin_addr.s_addr = htonl(INADDR_ANY);
517 a.sin_port = htons(localport);
518 retcode = bind(s, (struct sockaddr *) &a, sizeof(a));
519 }
520 if (retcode >= 0) {
521 err = 0;
522 break; /* done */
523 } else {
524 err = errno;
525 if (err != EADDRINUSE) /* failed, for a bad reason */
526 break;
527 }
528
529 if (localport == 0)
530 break; /* we're only looping once */
531 localport--;
532 if (localport == 0)
533 break; /* we might have got to the end */
534 }
535
536 if (err)
537 goto ret;
538 }
539
540 /*
541 * Connect to remote address.
542 */
543 switch(sock->addr->family) {
544 #ifndef NO_IPV6
545 case AF_INET:
546 /* XXX would be better to have got getaddrinfo() to fill in the port. */
547 ((struct sockaddr_in *)sock->addr->ai->ai_addr)->sin_port =
548 htons(sock->port);
549 sa = (const struct sockaddr *)sock->addr->ai->ai_addr;
550 salen = sock->addr->ai->ai_addrlen;
551 break;
552 case AF_INET6:
553 ((struct sockaddr_in *)sock->addr->ai->ai_addr)->sin_port =
554 htons(sock->port);
555 sa = (const struct sockaddr *)sock->addr->ai->ai_addr;
556 salen = sock->addr->ai->ai_addrlen;
557 break;
558 #else
559 case AF_INET:
560 a.sin_family = AF_INET;
561 a.sin_addr.s_addr = htonl(sock->addr->addresses[sock->addr->curraddr]);
562 a.sin_port = htons((short) sock->port);
563 sa = (const struct sockaddr *)&a;
564 salen = sizeof a;
565 break;
566 #endif
567 case AF_UNIX:
568 assert(sock->port == 0); /* to catch confused people */
569 assert(strlen(sock->addr->hostname) < sizeof au.sun_path);
570 memset(&au, 0, sizeof au);
571 au.sun_family = AF_UNIX;
572 strcpy(au.sun_path, sock->addr->hostname);
573 sa = (const struct sockaddr *)&au;
574 salen = sizeof au;
575 break;
576
577 default:
578 assert(0 && "unknown address family");
579 }
580
581 fl = fcntl(s, F_GETFL);
582 if (fl != -1)
583 fcntl(s, F_SETFL, fl | O_NONBLOCK);
584
585 if ((connect(s, sa, salen)) < 0) {
586 if ( errno != EINPROGRESS ) {
587 err = errno;
588 goto ret;
589 }
590 } else {
591 /*
592 * If we _don't_ get EWOULDBLOCK, the connect has completed
593 * and we should set the socket as connected and writable.
594 */
595 sock->connected = 1;
596 sock->writable = 1;
597 }
598
599 uxsel_tell(sock);
600 add234(sktree, sock);
601
602 ret:
603 if (err)
604 plug_log(sock->plug, 1, sock->addr, sock->port, strerror(err), err);
605 return err;
606 }
607
608 Socket sk_new(SockAddr addr, int port, int privport, int oobinline,
609 int nodelay, int keepalive, Plug plug)
610 {
611 Actual_Socket ret;
612 int err;
613
614 /*
615 * Create Socket structure.
616 */
617 ret = snew(struct Socket_tag);
618 ret->fn = &tcp_fn_table;
619 ret->error = NULL;
620 ret->plug = plug;
621 bufchain_init(&ret->output_data);
622 ret->connected = 0; /* to start with */
623 ret->writable = 0; /* to start with */
624 ret->sending_oob = 0;
625 ret->frozen = 0;
626 ret->frozen_readable = 0;
627 ret->localhost_only = 0; /* unused, but best init anyway */
628 ret->pending_error = 0;
629 ret->oobpending = FALSE;
630 ret->listener = 0;
631 ret->addr = addr;
632 ret->s = -1;
633 ret->oobinline = oobinline;
634 ret->nodelay = nodelay;
635 ret->keepalive = keepalive;
636 ret->privport = privport;
637 ret->port = port;
638
639 err = 0;
640 do {
641 err = try_connect(ret);
642 } while (err && sk_nextaddr(ret->addr));
643
644 if (err)
645 ret->error = strerror(err);
646
647 return (Socket) ret;
648 }
649
650 Socket sk_newlistener(char *srcaddr, int port, Plug plug, int local_host_only, int address_family)
651 {
652 int s;
653 #ifndef NO_IPV6
654 struct addrinfo hints, *ai;
655 char portstr[6];
656 struct sockaddr_in6 a6;
657 #endif
658 struct sockaddr *addr;
659 int addrlen;
660 struct sockaddr_in a;
661 Actual_Socket ret;
662 int retcode;
663 int on = 1;
664
665 /*
666 * Create Socket structure.
667 */
668 ret = snew(struct Socket_tag);
669 ret->fn = &tcp_fn_table;
670 ret->error = NULL;
671 ret->plug = plug;
672 bufchain_init(&ret->output_data);
673 ret->writable = 0; /* to start with */
674 ret->sending_oob = 0;
675 ret->frozen = 0;
676 ret->frozen_readable = 0;
677 ret->localhost_only = local_host_only;
678 ret->pending_error = 0;
679 ret->oobpending = FALSE;
680 ret->listener = 1;
681 ret->addr = NULL;
682
683 /*
684 * Translate address_family from platform-independent constants
685 * into local reality.
686 */
687 address_family = (address_family == ADDRTYPE_IPV4 ? AF_INET :
688 address_family == ADDRTYPE_IPV6 ? AF_INET6 : AF_UNSPEC);
689
690 #ifndef NO_IPV6
691 /* Let's default to IPv6.
692 * If the stack doesn't support IPv6, we will fall back to IPv4. */
693 if (address_family == AF_UNSPEC) address_family = AF_INET6;
694 #else
695 /* No other choice, default to IPv4 */
696 if (address_family == AF_UNSPEC) address_family = AF_INET;
697 #endif
698
699 /*
700 * Open socket.
701 */
702 s = socket(address_family, SOCK_STREAM, 0);
703
704 /* If the host doesn't support IPv6 try fallback to IPv4. */
705 if (s < 0 && address_family == AF_INET6) {
706 address_family = AF_INET;
707 s = socket(address_family, SOCK_STREAM, 0);
708 }
709
710 if (s < 0) {
711 ret->error = strerror(errno);
712 return (Socket) ret;
713 }
714
715 ret->oobinline = 0;
716
717 setsockopt(s, SOL_SOCKET, SO_REUSEADDR, (const char *)&on, sizeof(on));
718
719 retcode = -1;
720 addr = NULL; addrlen = -1; /* placate optimiser */
721
722 if (srcaddr != NULL) {
723 #ifndef NO_IPV6
724 hints.ai_flags = AI_NUMERICHOST;
725 hints.ai_family = address_family;
726 hints.ai_socktype = SOCK_STREAM;
727 hints.ai_protocol = 0;
728 hints.ai_addrlen = 0;
729 hints.ai_addr = NULL;
730 hints.ai_canonname = NULL;
731 hints.ai_next = NULL;
732 assert(port >= 0 && port <= 99999);
733 sprintf(portstr, "%d", port);
734 retcode = getaddrinfo(srcaddr, portstr, &hints, &ai);
735 if (retcode == 0) {
736 addr = ai->ai_addr;
737 addrlen = ai->ai_addrlen;
738 }
739 #else
740 memset(&a,'\0',sizeof(struct sockaddr_in));
741 a.sin_family = AF_INET;
742 a.sin_port = htons(port);
743 a.sin_addr.s_addr = inet_addr(srcaddr);
744 if (a.sin_addr.s_addr != (in_addr_t)(-1)) {
745 /* Override localhost_only with specified listen addr. */
746 ret->localhost_only = ipv4_is_loopback(a.sin_addr);
747 got_addr = 1;
748 }
749 addr = (struct sockaddr *)a;
750 addrlen = sizeof(a);
751 retcode = 0;
752 #endif
753 }
754
755 if (retcode != 0) {
756 #ifndef NO_IPV6
757 if (address_family == AF_INET6) {
758 memset(&a6,'\0',sizeof(struct sockaddr_in6));
759 a6.sin6_family = AF_INET6;
760 a6.sin6_port = htons(port);
761 if (local_host_only)
762 a6.sin6_addr = in6addr_loopback;
763 else
764 a6.sin6_addr = in6addr_any;
765 addr = (struct sockaddr *)&a6;
766 addrlen = sizeof(a6);
767 } else
768 #endif
769 {
770 memset(&a,'\0',sizeof(struct sockaddr_in));
771 a.sin_family = AF_INET;
772 a.sin_port = htons(port);
773 if (local_host_only)
774 a.sin_addr.s_addr = htonl(INADDR_LOOPBACK);
775 else
776 a.sin_addr.s_addr = htonl(INADDR_ANY);
777 addr = (struct sockaddr *)&a;
778 addrlen = sizeof(a);
779 }
780 }
781
782 retcode = bind(s, addr, addrlen);
783 if (retcode < 0) {
784 close(s);
785 ret->error = strerror(errno);
786 return (Socket) ret;
787 }
788
789 if (listen(s, SOMAXCONN) < 0) {
790 close(s);
791 ret->error = strerror(errno);
792 return (Socket) ret;
793 }
794
795 ret->s = s;
796
797 uxsel_tell(ret);
798 add234(sktree, ret);
799
800 return (Socket) ret;
801 }
802
803 static void sk_tcp_close(Socket sock)
804 {
805 Actual_Socket s = (Actual_Socket) sock;
806
807 uxsel_del(s->s);
808 del234(sktree, s);
809 close(s->s);
810 if (s->addr)
811 sk_addr_free(s->addr);
812 sfree(s);
813 }
814
815 #define PUT_32BIT_MSB_FIRST(cp, value) ( \
816 (cp)[0] = (char)((value) >> 24), \
817 (cp)[1] = (char)((value) >> 16), \
818 (cp)[2] = (char)((value) >> 8), \
819 (cp)[3] = (char)(value) )
820
821 #define PUT_16BIT_MSB_FIRST(cp, value) ( \
822 (cp)[0] = (char)((value) >> 8), \
823 (cp)[1] = (char)(value) )
824
825 void *sk_getxdmdata(void *sock, int *lenp)
826 {
827 Actual_Socket s = (Actual_Socket) sock;
828 #ifdef NO_IPV6
829 struct sockaddr_in addr;
830 #else
831 struct sockaddr_storage addr;
832 struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *)&addr;
833 #endif
834 struct sockaddr *sa = (struct sockaddr *)&addr;
835 struct sockaddr_in *sin = (struct sockaddr_in *)&addr;
836 socklen_t addrlen;
837 char *buf;
838 static unsigned int unix_addr = 0xFFFFFFFF;
839
840 /*
841 * We must check that this socket really _is_ an Actual_Socket.
842 */
843 if (s->fn != &tcp_fn_table)
844 return NULL; /* failure */
845
846 addrlen = sizeof(addr);
847 if (getsockname(s->s, sa, &addrlen) < 0)
848 return NULL;
849 switch(sa->sa_family) {
850 case AF_INET:
851 *lenp = 6;
852 buf = snewn(*lenp, char);
853 PUT_32BIT_MSB_FIRST(buf, ntohl(sin->sin_addr.s_addr));
854 PUT_16BIT_MSB_FIRST(buf+4, ntohs(sin->sin_port));
855 break;
856 #ifndef NO_IPV6
857 case AF_INET6:
858 *lenp = 6;
859 buf = snewn(*lenp, char);
860 if (IN6_IS_ADDR_V4MAPPED(&sin6->sin6_addr)) {
861 memcpy(buf, sin6->sin6_addr.s6_addr + 12, 4);
862 PUT_16BIT_MSB_FIRST(buf+4, ntohs(sin6->sin6_port));
863 } else
864 /* This is stupid, but it's what XLib does. */
865 memset(buf, 0, 6);
866 break;
867 #endif
868 case AF_UNIX:
869 *lenp = 6;
870 buf = snewn(*lenp, char);
871 PUT_32BIT_MSB_FIRST(buf, unix_addr--);
872 PUT_16BIT_MSB_FIRST(buf+4, getpid());
873 break;
874
875 /* XXX IPV6 */
876
877 default:
878 return NULL;
879 }
880
881 return buf;
882 }
883
884 /*
885 * The function which tries to send on a socket once it's deemed
886 * writable.
887 */
888 void try_send(Actual_Socket s)
889 {
890 while (s->sending_oob || bufchain_size(&s->output_data) > 0) {
891 int nsent;
892 int err;
893 void *data;
894 int len, urgentflag;
895
896 if (s->sending_oob) {
897 urgentflag = MSG_OOB;
898 len = s->sending_oob;
899 data = &s->oobdata;
900 } else {
901 urgentflag = 0;
902 bufchain_prefix(&s->output_data, &data, &len);
903 }
904 nsent = send(s->s, data, len, urgentflag);
905 noise_ultralight(nsent);
906 if (nsent <= 0) {
907 err = (nsent < 0 ? errno : 0);
908 if (err == EWOULDBLOCK) {
909 /*
910 * Perfectly normal: we've sent all we can for the moment.
911 */
912 s->writable = FALSE;
913 return;
914 } else if (nsent == 0 ||
915 err == ECONNABORTED || err == ECONNRESET) {
916 /*
917 * If send() returns CONNABORTED or CONNRESET, we
918 * unfortunately can't just call plug_closing(),
919 * because it's quite likely that we're currently
920 * _in_ a call from the code we'd be calling back
921 * to, so we'd have to make half the SSH code
922 * reentrant. Instead we flag a pending error on
923 * the socket, to be dealt with (by calling
924 * plug_closing()) at some suitable future moment.
925 */
926 s->pending_error = err;
927 return;
928 } else {
929 /* We're inside the Unix frontend here, so we know
930 * that the frontend handle is unnecessary. */
931 logevent(NULL, strerror(err));
932 fatalbox("%s", strerror(err));
933 }
934 } else {
935 if (s->sending_oob) {
936 if (nsent < len) {
937 memmove(s->oobdata, s->oobdata+nsent, len-nsent);
938 s->sending_oob = len - nsent;
939 } else {
940 s->sending_oob = 0;
941 }
942 } else {
943 bufchain_consume(&s->output_data, nsent);
944 }
945 }
946 }
947 uxsel_tell(s);
948 }
949
950 static int sk_tcp_write(Socket sock, const char *buf, int len)
951 {
952 Actual_Socket s = (Actual_Socket) sock;
953
954 /*
955 * Add the data to the buffer list on the socket.
956 */
957 bufchain_add(&s->output_data, buf, len);
958
959 /*
960 * Now try sending from the start of the buffer list.
961 */
962 if (s->writable)
963 try_send(s);
964
965 /*
966 * Update the select() status to correctly reflect whether or
967 * not we should be selecting for write.
968 */
969 uxsel_tell(s);
970
971 return bufchain_size(&s->output_data);
972 }
973
974 static int sk_tcp_write_oob(Socket sock, const char *buf, int len)
975 {
976 Actual_Socket s = (Actual_Socket) sock;
977
978 /*
979 * Replace the buffer list on the socket with the data.
980 */
981 bufchain_clear(&s->output_data);
982 assert(len <= sizeof(s->oobdata));
983 memcpy(s->oobdata, buf, len);
984 s->sending_oob = len;
985
986 /*
987 * Now try sending from the start of the buffer list.
988 */
989 if (s->writable)
990 try_send(s);
991
992 /*
993 * Update the select() status to correctly reflect whether or
994 * not we should be selecting for write.
995 */
996 uxsel_tell(s);
997
998 return s->sending_oob;
999 }
1000
1001 static int net_select_result(int fd, int event)
1002 {
1003 int ret;
1004 char buf[20480]; /* nice big buffer for plenty of speed */
1005 Actual_Socket s;
1006 u_long atmark;
1007
1008 /* Find the Socket structure */
1009 s = find234(sktree, &fd, cmpforsearch);
1010 if (!s)
1011 return 1; /* boggle */
1012
1013 noise_ultralight(event);
1014
1015 switch (event) {
1016 case 4: /* exceptional */
1017 if (!s->oobinline) {
1018 /*
1019 * On a non-oobinline socket, this indicates that we
1020 * can immediately perform an OOB read and get back OOB
1021 * data, which we will send to the back end with
1022 * type==2 (urgent data).
1023 */
1024 ret = recv(s->s, buf, sizeof(buf), MSG_OOB);
1025 noise_ultralight(ret);
1026 if (ret <= 0) {
1027 const char *str = (ret == 0 ? "Internal networking trouble" :
1028 strerror(errno));
1029 /* We're inside the Unix frontend here, so we know
1030 * that the frontend handle is unnecessary. */
1031 logevent(NULL, str);
1032 fatalbox("%s", str);
1033 } else {
1034 /*
1035 * Receiving actual data on a socket means we can
1036 * stop falling back through the candidate
1037 * addresses to connect to.
1038 */
1039 if (s->addr) {
1040 sk_addr_free(s->addr);
1041 s->addr = NULL;
1042 }
1043 return plug_receive(s->plug, 2, buf, ret);
1044 }
1045 break;
1046 }
1047
1048 /*
1049 * If we reach here, this is an oobinline socket, which
1050 * means we should set s->oobpending and then deal with it
1051 * when we get called for the readability event (which
1052 * should also occur).
1053 */
1054 s->oobpending = TRUE;
1055 break;
1056 case 1: /* readable; also acceptance */
1057 if (s->listener) {
1058 /*
1059 * On a listening socket, the readability event means a
1060 * connection is ready to be accepted.
1061 */
1062 #ifdef NO_IPV6
1063 struct sockaddr_in ss;
1064 #else
1065 struct sockaddr_storage ss;
1066 #endif
1067 socklen_t addrlen = sizeof(ss);
1068 int t; /* socket of connection */
1069
1070 memset(&ss, 0, addrlen);
1071 t = accept(s->s, (struct sockaddr *)&ss, &addrlen);
1072 if (t < 0) {
1073 break;
1074 }
1075
1076 if (s->localhost_only &&
1077 !sockaddr_is_loopback((struct sockaddr *)&ss)) {
1078 close(t); /* someone let nonlocal through?! */
1079 } else if (plug_accepting(s->plug, t)) {
1080 close(t); /* denied or error */
1081 }
1082 break;
1083 }
1084
1085 /*
1086 * If we reach here, this is not a listening socket, so
1087 * readability really means readability.
1088 */
1089
1090 /* In the case the socket is still frozen, we don't even bother */
1091 if (s->frozen) {
1092 s->frozen_readable = 1;
1093 break;
1094 }
1095
1096 /*
1097 * We have received data on the socket. For an oobinline
1098 * socket, this might be data _before_ an urgent pointer,
1099 * in which case we send it to the back end with type==1
1100 * (data prior to urgent).
1101 */
1102 if (s->oobinline && s->oobpending) {
1103 atmark = 1;
1104 if (ioctl(s->s, SIOCATMARK, &atmark) == 0 && atmark)
1105 s->oobpending = FALSE; /* clear this indicator */
1106 } else
1107 atmark = 1;
1108
1109 ret = recv(s->s, buf, s->oobpending ? 1 : sizeof(buf), 0);
1110 noise_ultralight(ret);
1111 if (ret < 0) {
1112 if (errno == EWOULDBLOCK) {
1113 break;
1114 }
1115 }
1116 if (ret < 0) {
1117 /*
1118 * An error at this point _might_ be an error reported
1119 * by a non-blocking connect(). So before we return a
1120 * panic status to the user, let's just see whether
1121 * that's the case.
1122 */
1123 int err = errno;
1124 if (s->addr) {
1125 plug_log(s->plug, 1, s->addr, s->port, strerror(err), err);
1126 while (s->addr && sk_nextaddr(s->addr)) {
1127 err = try_connect(s);
1128 }
1129 }
1130 if (err != 0)
1131 return plug_closing(s->plug, strerror(err), err, 0);
1132 } else if (0 == ret) {
1133 return plug_closing(s->plug, NULL, 0, 0);
1134 } else {
1135 /*
1136 * Receiving actual data on a socket means we can
1137 * stop falling back through the candidate
1138 * addresses to connect to.
1139 */
1140 if (s->addr) {
1141 sk_addr_free(s->addr);
1142 s->addr = NULL;
1143 }
1144 return plug_receive(s->plug, atmark ? 0 : 1, buf, ret);
1145 }
1146 break;
1147 case 2: /* writable */
1148 if (!s->connected) {
1149 /*
1150 * select() reports a socket as _writable_ when an
1151 * asynchronous connection is completed.
1152 */
1153 s->connected = s->writable = 1;
1154 uxsel_tell(s);
1155 break;
1156 } else {
1157 int bufsize_before, bufsize_after;
1158 s->writable = 1;
1159 bufsize_before = s->sending_oob + bufchain_size(&s->output_data);
1160 try_send(s);
1161 bufsize_after = s->sending_oob + bufchain_size(&s->output_data);
1162 if (bufsize_after < bufsize_before)
1163 plug_sent(s->plug, bufsize_after);
1164 }
1165 break;
1166 }
1167
1168 return 1;
1169 }
1170
1171 /*
1172 * Deal with socket errors detected in try_send().
1173 */
1174 void net_pending_errors(void)
1175 {
1176 int i;
1177 Actual_Socket s;
1178
1179 /*
1180 * This might be a fiddly business, because it's just possible
1181 * that handling a pending error on one socket might cause
1182 * others to be closed. (I can't think of any reason this might
1183 * happen in current SSH implementation, but to maintain
1184 * generality of this network layer I'll assume the worst.)
1185 *
1186 * So what we'll do is search the socket list for _one_ socket
1187 * with a pending error, and then handle it, and then search
1188 * the list again _from the beginning_. Repeat until we make a
1189 * pass with no socket errors present. That way we are
1190 * protected against the socket list changing under our feet.
1191 */
1192
1193 do {
1194 for (i = 0; (s = index234(sktree, i)) != NULL; i++) {
1195 if (s->pending_error) {
1196 /*
1197 * An error has occurred on this socket. Pass it to the
1198 * plug.
1199 */
1200 plug_closing(s->plug, strerror(s->pending_error),
1201 s->pending_error, 0);
1202 break;
1203 }
1204 }
1205 } while (s);
1206 }
1207
1208 /*
1209 * Each socket abstraction contains a `void *' private field in
1210 * which the client can keep state.
1211 */
1212 static void sk_tcp_set_private_ptr(Socket sock, void *ptr)
1213 {
1214 Actual_Socket s = (Actual_Socket) sock;
1215 s->private_ptr = ptr;
1216 }
1217
1218 static void *sk_tcp_get_private_ptr(Socket sock)
1219 {
1220 Actual_Socket s = (Actual_Socket) sock;
1221 return s->private_ptr;
1222 }
1223
1224 /*
1225 * Special error values are returned from sk_namelookup and sk_new
1226 * if there's a problem. These functions extract an error message,
1227 * or return NULL if there's no problem.
1228 */
1229 const char *sk_addr_error(SockAddr addr)
1230 {
1231 return addr->error;
1232 }
1233 static const char *sk_tcp_socket_error(Socket sock)
1234 {
1235 Actual_Socket s = (Actual_Socket) sock;
1236 return s->error;
1237 }
1238
1239 static void sk_tcp_set_frozen(Socket sock, int is_frozen)
1240 {
1241 Actual_Socket s = (Actual_Socket) sock;
1242 if (s->frozen == is_frozen)
1243 return;
1244 s->frozen = is_frozen;
1245 if (!is_frozen && s->frozen_readable) {
1246 char c;
1247 recv(s->s, &c, 1, MSG_PEEK);
1248 }
1249 s->frozen_readable = 0;
1250 uxsel_tell(s);
1251 }
1252
1253 static void uxsel_tell(Actual_Socket s)
1254 {
1255 int rwx = 0;
1256 if (s->listener) {
1257 rwx |= 1; /* read == accept */
1258 } else {
1259 if (!s->connected)
1260 rwx |= 2; /* write == connect */
1261 if (s->connected && !s->frozen)
1262 rwx |= 1 | 4; /* read, except */
1263 if (bufchain_size(&s->output_data))
1264 rwx |= 2; /* write */
1265 }
1266 uxsel_set(s->s, rwx, net_select_result);
1267 }
1268
1269 int net_service_lookup(char *service)
1270 {
1271 struct servent *se;
1272 se = getservbyname(service, NULL);
1273 if (se != NULL)
1274 return ntohs(se->s_port);
1275 else
1276 return 0;
1277 }
1278
1279 SockAddr platform_get_x11_unix_address(int displaynum, char **canonicalname)
1280 {
1281 SockAddr ret = snew(struct SockAddr_tag);
1282 int n;
1283
1284 memset(ret, 0, sizeof *ret);
1285 ret->family = AF_UNIX;
1286 n = snprintf(ret->hostname, sizeof ret->hostname,
1287 "%s%d", X11_UNIX_PATH, displaynum);
1288 if(n < 0)
1289 ret->error = "snprintf failed";
1290 else if(n >= sizeof ret->hostname)
1291 ret->error = "X11 UNIX name too long";
1292 else
1293 *canonicalname = dupstr(ret->hostname);
1294 #ifndef NO_IPV6
1295 ret->ais = NULL;
1296 #else
1297 ret->addresses = NULL;
1298 #endif
1299 return ret;
1300 }