noip.c: Add commentary to some hairier functions.
[preload-hacks] / noip.c
1 /* -*-c-*-
2 *
3 * Make programs use Unix-domain sockets instead of IP
4 *
5 * (c) 2008 Straylight/Edgeware
6 */
7
8 /*----- Licensing notice --------------------------------------------------*
9 *
10 * This file is part of the preload-hacks package.
11 *
12 * Preload-hacks are free software; you can redistribute it and/or modify
13 * them under the terms of the GNU General Public License as published by
14 * the Free Software Foundation; either version 2 of the License, or (at
15 * your option) any later version.
16 *
17 * Preload-hacks are distributed in the hope that it will be useful, but
18 * WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
19 * or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
20 * for more details.
21 *
22 * You should have received a copy of the GNU General Public License along
23 * with preload-hacks; if not, write to the Free Software Foundation, Inc.,
24 * 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
25 */
26
27 #define _GNU_SOURCE
28 #undef sun
29 #undef SUN
30 #define DEBUG
31
32 /*----- Header files ------------------------------------------------------*/
33
34 #include <assert.h>
35 #include <ctype.h>
36 #include <errno.h>
37 #include <stdarg.h>
38 #include <stddef.h>
39 #include <stdio.h>
40 #include <stdlib.h>
41
42 #include <unistd.h>
43 #include <dirent.h>
44 #include <dlfcn.h>
45 #include <fcntl.h>
46 #include <pwd.h>
47
48 #include <sys/ioctl.h>
49 #include <sys/socket.h>
50 #include <sys/stat.h>
51 #include <sys/un.h>
52
53 #include <netinet/in.h>
54 #include <arpa/inet.h>
55 #include <netinet/tcp.h>
56 #include <netinet/udp.h>
57 #include <ifaddrs.h>
58 #include <netdb.h>
59
60 /*----- Data structures ---------------------------------------------------*/
61
62 enum { UNUSED, STALE, USED }; /* Unix socket status values */
63 enum { DENY, ALLOW }; /* ACL verdicts */
64
65 static int address_families[] = { AF_INET, AF_INET6, -1 };
66
67 #define ADDRBUFSZ 64
68
69 /* Address representations. */
70 typedef union ipaddr {
71 struct in_addr v4;
72 struct in6_addr v6;
73 } ipaddr;
74
75 /* Convenient socket address hacking. */
76 typedef union address {
77 struct sockaddr sa;
78 struct sockaddr_in sin;
79 struct sockaddr_in6 sin6;
80 } address;
81
82 /* Access control list nodes */
83 typedef struct aclnode {
84 struct aclnode *next;
85 int act;
86 int af;
87 ipaddr minaddr, maxaddr;
88 unsigned short minport, maxport;
89 } aclnode;
90
91 /* Implicit bind records */
92 typedef struct impbind {
93 struct impbind *next;
94 int af, how;
95 ipaddr minaddr, maxaddr, bindaddr;
96 } impbind;
97 enum { EXPLICIT, SAME };
98
99 /* A type for an address range */
100 typedef struct addrrange {
101 int type;
102 union {
103 struct { int af; ipaddr min, max; } range;
104 } u;
105 } addrrange;
106 enum { EMPTY, ANY, LOCAL, RANGE };
107
108 /* Local address records */
109 typedef struct full_ipaddr {
110 int af;
111 ipaddr addr;
112 } full_ipaddr;
113 #define MAX_LOCAL_IPADDRS 64
114 static full_ipaddr local_ipaddrs[MAX_LOCAL_IPADDRS];
115 static int n_local_ipaddrs;
116
117 /* General configuration */
118 static uid_t uid;
119 static char *sockdir = 0;
120 static int debug = 0;
121 static unsigned minautoport = 16384, maxautoport = 65536;
122
123 /* Access control lists */
124 static aclnode *bind_real, **bind_tail = &bind_real;
125 static aclnode *connect_real, **connect_tail = &connect_real;
126 static impbind *impbinds, **impbind_tail = &impbinds;
127
128 /*----- Import the real versions of functions -----------------------------*/
129
130 /* The list of functions to immport. */
131 #define IMPORTS(_) \
132 _(socket, int, (int, int, int)) \
133 _(socketpair, int, (int, int, int, int *)) \
134 _(connect, int, (int, const struct sockaddr *, socklen_t)) \
135 _(bind, int, (int, const struct sockaddr *, socklen_t)) \
136 _(accept, int, (int, struct sockaddr *, socklen_t *)) \
137 _(getsockname, int, (int, struct sockaddr *, socklen_t *)) \
138 _(getpeername, int, (int, struct sockaddr *, socklen_t *)) \
139 _(getsockopt, int, (int, int, int, void *, socklen_t *)) \
140 _(setsockopt, int, (int, int, int, const void *, socklen_t)) \
141 _(sendto, ssize_t, (int, const void *buf, size_t, int, \
142 const struct sockaddr *to, socklen_t tolen)) \
143 _(recvfrom, ssize_t, (int, void *buf, size_t, int, \
144 struct sockaddr *from, socklen_t *fromlen)) \
145 _(sendmsg, ssize_t, (int, const struct msghdr *, int)) \
146 _(recvmsg, ssize_t, (int, struct msghdr *, int)) \
147 _(ioctl, int, (int, unsigned long, ...))
148
149 /* Function pointers to set up. */
150 #define DECL(imp, ret, args) static ret (*real_##imp) args;
151 IMPORTS(DECL)
152 #undef DECL
153
154 /* Import the system calls. */
155 static void import(void)
156 {
157 #define IMPORT(imp, ret, args) \
158 real_##imp = (ret (*)args)dlsym(RTLD_NEXT, #imp);
159 IMPORTS(IMPORT)
160 #undef IMPORT
161 }
162
163 /*----- Utilities ---------------------------------------------------------*/
164
165 /* Socket address casts */
166 #define SA(sa) ((struct sockaddr *)(sa))
167 #define SIN(sa) ((struct sockaddr_in *)(sa))
168 #define SIN6(sa) ((struct sockaddr_in6 *)(sa))
169 #define SUN(sa) ((struct sockaddr_un *)(sa))
170
171 /* Raw bytes */
172 #define UC(ch) ((unsigned char)(ch))
173
174 /* Memory allocation */
175 #define NEW(x) ((x) = xmalloc(sizeof(*x)))
176 #define NEWV(x, n) ((x) = xmalloc(sizeof(*x) * (n)))
177
178 /* Debugging */
179 #ifdef DEBUG
180 # define D(body) { if (debug) { body } }
181 # define Dpid pid_t pid = debug ? getpid() : -1
182 #else
183 # define D(body) ;
184 # define Dpid
185 #endif
186
187 /* Preservation of error status */
188 #define PRESERVING_ERRNO(body) do { \
189 int _err = errno; { body } errno = _err; \
190 } while (0)
191
192 /* Allocate N bytes of memory; abort on failure. */
193 static void *xmalloc(size_t n)
194 {
195 void *p;
196 if (!n) return (0);
197 if ((p = malloc(n)) == 0) { perror("malloc"); exit(127); }
198 return (p);
199 }
200
201 /* Allocate a copy of the null-terminated string P; abort on failure. */
202 static char *xstrdup(const char *p)
203 {
204 size_t n = strlen(p) + 1;
205 char *q = xmalloc(n);
206 memcpy(q, p, n);
207 return (q);
208 }
209
210 /*----- Address-type hacking ----------------------------------------------*/
211
212 /* If M is a simple mask, i.e., consists of a sequence of zero bits followed
213 * by a sequence of one bits, then return the length of the latter sequence
214 * (which may be zero); otherwise return -1.
215 */
216 static int simple_mask_length(unsigned long m)
217 {
218 int n = 0;
219
220 while (m & 1) { n++; m >>= 1; }
221 return (m ? -1 : n);
222 }
223
224 /* Answer whether AF is an interesting address family. */
225 static int family_known_p(int af)
226 {
227 switch (af) {
228 case AF_INET:
229 case AF_INET6:
230 return (1);
231 default:
232 return (0);
233 }
234 }
235
236 /* Return the socket address length for address family AF. */
237 static socklen_t family_socklen(int af)
238 {
239 switch (af) {
240 case AF_INET: return (sizeof(struct sockaddr_in));
241 case AF_INET6: return (sizeof(struct sockaddr_in6));
242 default: abort();
243 }
244 }
245
246 /* Return the width of addresses of kind AF. */
247 static int address_width(int af)
248 {
249 switch (af) {
250 case AF_INET: return 32;
251 case AF_INET6: return 128;
252 default: abort();
253 }
254 }
255
256 /* If addresses A and B share a common prefix then return its length;
257 * otherwise return -1.
258 */
259 static int common_prefix_length(int af, const ipaddr *a, const ipaddr *b)
260 {
261 switch (af) {
262 case AF_INET: {
263 unsigned long aa = ntohl(a->v4.s_addr), bb = ntohl(b->v4.s_addr);
264 unsigned long m = aa^bb;
265 if ((aa&m) == 0 && (bb&m) == m) return (32 - simple_mask_length(m));
266 else return (-1);
267 } break;
268 case AF_INET6: {
269 const uint8_t *aa = a->v6.s6_addr, *bb = b->v6.s6_addr;
270 unsigned m;
271 unsigned n;
272 int i;
273
274 for (i = 0; i < 16 && aa[i] == bb[i]; i++);
275 n = 8*i;
276 if (i < 16) {
277 m = aa[i]^bb[i];
278 if ((aa[i]&m) != 0 || (bb[i]&m) != m) return (-1);
279 n += 8 - simple_mask_length(m);
280 for (i++; i < 16; i++)
281 if (aa[i] || bb[i] != 0xff) return (-1);
282 }
283 return (n);
284 } break;
285 default:
286 abort();
287 }
288 }
289
290 /* Extract the port number (in host byte-order) from SA. */
291 static int port_from_sockaddr(const struct sockaddr *sa)
292 {
293 switch (sa->sa_family) {
294 case AF_INET: return (ntohs(SIN(sa)->sin_port));
295 case AF_INET6: return (ntohs(SIN6(sa)->sin6_port));
296 default: abort();
297 }
298 }
299
300 /* Store the port number PORT (in host byte-order) in SA. */
301 static void port_to_sockaddr(struct sockaddr *sa, int port)
302 {
303 switch (sa->sa_family) {
304 case AF_INET: SIN(sa)->sin_port = htons(port); break;
305 case AF_INET6: SIN6(sa)->sin6_port = htons(port); break;
306 default: abort();
307 }
308 }
309
310 /* Extract the address part from SA and store it in A. */
311 static void ipaddr_from_sockaddr(ipaddr *a, const struct sockaddr *sa)
312 {
313 switch (sa->sa_family) {
314 case AF_INET: a->v4 = SIN(sa)->sin_addr; break;
315 case AF_INET6: a->v6 = SIN6(sa)->sin6_addr; break;
316 default: abort();
317 }
318 }
319
320 /* Store the address A in SA. */
321 static void ipaddr_to_sockaddr(struct sockaddr *sa, const ipaddr *a)
322 {
323 switch (sa->sa_family) {
324 case AF_INET:
325 SIN(sa)->sin_addr = a->v4;
326 break;
327 case AF_INET6:
328 SIN6(sa)->sin6_addr = a->v6;
329 SIN6(sa)->sin6_scope_id = 0;
330 SIN6(sa)->sin6_flowinfo = 0;
331 break;
332 default:
333 abort();
334 }
335 }
336
337 /* Copy a whole socket address about. */
338 static void copy_sockaddr(struct sockaddr *sa_dst,
339 const struct sockaddr *sa_src)
340 { memcpy(sa_dst, sa_src, family_socklen(sa_src->sa_family)); }
341
342 /* Answer whether two addresses are equal. */
343 static int ipaddr_equal_p(int af, const ipaddr *a, const ipaddr *b)
344 {
345 switch (af) {
346 case AF_INET: return (a->v4.s_addr == b->v4.s_addr);
347 case AF_INET6: return (memcmp(a->v6.s6_addr, b->v6.s6_addr, 16) == 0);
348 default: abort();
349 }
350 }
351
352 /* Answer whether the address part of SA is between A and B (inclusive). We
353 * assume that SA has the correct address family.
354 */
355 static int sockaddr_in_range_p(const struct sockaddr *sa,
356 const ipaddr *a, const ipaddr *b)
357 {
358 switch (sa->sa_family) {
359 case AF_INET: {
360 unsigned long addr = ntohl(SIN(sa)->sin_addr.s_addr);
361 return (ntohl(a->v4.s_addr) <= addr &&
362 addr <= ntohl(b->v4.s_addr));
363 } break;
364 case AF_INET6: {
365 const uint8_t *ss = SIN6(sa)->sin6_addr.s6_addr;
366 const uint8_t *aa = a->v6.s6_addr, *bb = b->v6.s6_addr;
367 int h = 1, l = 1;
368 int i;
369
370 for (i = 0; h && l && i < 16; i++, ss++, aa++, bb++) {
371 if (*ss < *aa || *bb < *ss) return (0);
372 if (*aa < *ss) l = 0;
373 if (*ss < *bb) h = 0;
374 }
375 return (1);
376 } break;
377 default:
378 abort();
379 }
380 }
381
382 /* Fill in SA with the appropriate wildcard address. */
383 static void wildcard_address(int af, struct sockaddr *sa)
384 {
385 switch (af) {
386 case AF_INET: {
387 struct sockaddr_in *sin = SIN(sa);
388 memset(sin, 0, sizeof(*sin));
389 sin->sin_family = AF_INET;
390 sin->sin_port = 0;
391 sin->sin_addr.s_addr = INADDR_ANY;
392 } break;
393 case AF_INET6: {
394 struct sockaddr_in6 *sin6 = SIN6(sa);
395 memset(sin6, 0, sizeof(*sin6));
396 sin6->sin6_family = AF_INET6;
397 sin6->sin6_port = 0;
398 sin6->sin6_addr = in6addr_any;
399 sin6->sin6_scope_id = 0;
400 sin6->sin6_flowinfo = 0;
401 } break;
402 default:
403 abort();
404 }
405 }
406
407 /* Mask the address A, forcing all but the top PLEN bits to zero or one
408 * according to HIGHP.
409 */
410 static void mask_address(int af, ipaddr *a, int plen, int highp)
411 {
412 switch (af) {
413 case AF_INET: {
414 unsigned long addr = ntohl(a->v4.s_addr);
415 unsigned long mask = plen ? ~0ul << (32 - plen) : 0;
416 addr &= mask;
417 if (highp) addr |= ~mask;
418 a->v4.s_addr = htonl(addr & 0xffffffff);
419 } break;
420 case AF_INET6: {
421 int i = plen/8;
422 unsigned m = (0xff << (8 - plen%8)) & 0xff;
423 unsigned s = highp ? 0xff : 0;
424 if (m) {
425 a->v6.s6_addr[i] = (a->v6.s6_addr[i] & m) | (s & ~m);
426 i++;
427 }
428 for (; i < 16; i++) a->v6.s6_addr[i] = s;
429 } break;
430 default:
431 abort();
432 }
433 }
434
435 /* Write a presentation form of SA to BUF, a buffer of length SZ. LEN is the
436 * address length; if it's zero, look it up based on the address family.
437 * Return a pointer to the string (which might, in an emergency, be a static
438 * string rather than your buffer).
439 */
440 static char *present_sockaddr(const struct sockaddr *sa, socklen_t len,
441 char *buf, size_t sz)
442 {
443 #define WANT(n_) do { if (sz < (n_)) goto nospace; } while (0)
444 #define PUTC(c_) do { *buf++ = (c_); sz--; } while (0)
445
446 if (!sa) return "<null-address>";
447 if (!sz) return "<no-space-in-buffer>";
448 if (!len) len = family_socklen(sa->sa_family);
449
450 switch (sa->sa_family) {
451 case AF_UNIX: {
452 struct sockaddr_un *sun = SUN(sa);
453 char *p = sun->sun_path;
454 size_t n = len - offsetof(struct sockaddr_un, sun_path);
455
456 assert(n);
457 if (*p == 0) {
458 WANT(1); PUTC('@');
459 p++; n--;
460 while (n) {
461 switch (*p) {
462 case 0: WANT(2); PUTC('\\'); PUTC('0'); break;
463 case '\a': WANT(2); PUTC('\\'); PUTC('a'); break;
464 case '\n': WANT(2); PUTC('\\'); PUTC('n'); break;
465 case '\r': WANT(2); PUTC('\\'); PUTC('r'); break;
466 case '\t': WANT(2); PUTC('\\'); PUTC('t'); break;
467 case '\v': WANT(2); PUTC('\\'); PUTC('v'); break;
468 case '\\': WANT(2); PUTC('\\'); PUTC('\\'); break;
469 default:
470 if (*p > ' ' && *p <= '~')
471 { WANT(1); PUTC(*p); }
472 else {
473 WANT(4); PUTC('\\'); PUTC('x');
474 PUTC((*p >> 4)&0xf); PUTC((*p >> 0)&0xf);
475 }
476 break;
477 }
478 p++; n--;
479 }
480 } else {
481 if (*p != '/') { WANT(2); PUTC('.'); PUTC('/'); }
482 while (n && *p) { WANT(1); PUTC(*p); p++; n--; }
483 }
484 WANT(1); PUTC(0);
485 } break;
486 case AF_INET: case AF_INET6: {
487 char addrbuf[NI_MAXHOST], portbuf[NI_MAXSERV];
488 int err = getnameinfo(sa, len,
489 addrbuf, sizeof(addrbuf),
490 portbuf, sizeof(portbuf),
491 NI_NUMERICHOST | NI_NUMERICSERV);
492 assert(!err);
493 snprintf(buf, sz, strchr(addrbuf, ':') ? "[%s]:%s" : "%s:%s",
494 addrbuf, portbuf);
495 } break;
496 default:
497 snprintf(buf, sz, "<unknown-address-family %d>", sa->sa_family);
498 break;
499 }
500 return (buf);
501
502 nospace:
503 buf[sz - 1] = 0;
504 return (buf);
505 }
506
507 /* Guess the family of a textual socket address. */
508 static int guess_address_family(const char *p)
509 { return (strchr(p, ':') ? AF_INET6 : AF_INET); }
510
511 /* Parse a socket address P and write the result to SA. */
512 static int parse_sockaddr(struct sockaddr *sa, const char *p)
513 {
514 char buf[ADDRBUFSZ];
515 char *q;
516 struct addrinfo *ai, ai_hint = { 0 };
517
518 if (strlen(p) >= sizeof(buf) - 1) return (-1);
519 strcpy(buf, p); p = buf;
520 if (*p != '[') {
521 if ((q = strchr(p, ':')) == 0) return (-1);
522 *q++ = 0;
523 } else {
524 p++;
525 if ((q = strchr(p, ']')) == 0) return (-1);
526 *q++ = 0;
527 if (*q != ':') return (-1);
528 q++;
529 }
530
531 ai_hint.ai_family = AF_UNSPEC;
532 ai_hint.ai_socktype = SOCK_DGRAM;
533 ai_hint.ai_flags = AI_NUMERICHOST | AI_NUMERICSERV;
534 if (getaddrinfo(p, q, &ai_hint, &ai)) return (-1);
535 memcpy(sa, ai->ai_addr, ai->ai_addrlen);
536 freeaddrinfo(ai);
537 return (0);
538 }
539
540 /*----- Access control lists ----------------------------------------------*/
541
542 #ifdef DEBUG
543
544 static void dump_addrrange(int af, const ipaddr *min, const ipaddr *max)
545 {
546 char buf[ADDRBUFSZ];
547 const char *p;
548 int plen;
549
550 plen = common_prefix_length(af, min, max);
551 p = inet_ntop(af, min, buf, sizeof(buf));
552 fprintf(stderr, strchr(p, ':') ? "[%s]" : "%s", p);
553 if (plen < 0) {
554 p = inet_ntop(af, &max, buf, sizeof(buf));
555 fprintf(stderr, strchr(p, ':') ? "-[%s]" : "-%s", p);
556 } else if (plen < address_width(af))
557 fprintf(stderr, "/%d", plen);
558 }
559
560 /* Write to standard error a description of the ACL node A. */
561 static void dump_aclnode(const aclnode *a)
562 {
563 fprintf(stderr, "noip(%d): %c ", getpid(), a->act ? '+' : '-');
564 dump_addrrange(a->af, &a->minaddr, &a->maxaddr);
565 if (a->minport != 0 || a->maxport != 0xffff) {
566 fprintf(stderr, ":%u", (unsigned)a->minport);
567 if (a->minport != a->maxport)
568 fprintf(stderr, "-%u", (unsigned)a->maxport);
569 }
570 fputc('\n', stderr);
571 }
572
573 static void dump_acl(const aclnode *a)
574 {
575 int act = ALLOW;
576
577 for (; a; a = a->next) {
578 dump_aclnode(a);
579 act = a->act;
580 }
581 fprintf(stderr, "noip(%d): [default policy: %s]\n", getpid(),
582 act == ALLOW ? "DENY" : "ALLOW");
583 }
584
585 #endif
586
587 /* Returns nonzero if the ACL A allows the socket address SA. */
588 static int acl_allows_p(const aclnode *a, const struct sockaddr *sa)
589 {
590 unsigned short port = port_from_sockaddr(sa);
591 int act = ALLOW;
592 Dpid;
593
594 D({ char buf[ADDRBUFSZ];
595 fprintf(stderr, "noip(%d): check %s\n", pid,
596 present_sockaddr(sa, 0, buf, sizeof(buf))); })
597 for (; a; a = a->next) {
598 D( dump_aclnode(a); )
599 if (a->af == sa->sa_family &&
600 sockaddr_in_range_p(sa, &a->minaddr, &a->maxaddr) &&
601 a->minport <= port && port <= a->maxport) {
602 D( fprintf(stderr, "noip(%d): aha! %s\n", pid,
603 a->act ? "ALLOW" : "DENY"); )
604 return (a->act);
605 }
606 act = a->act;
607 }
608 D( fprintf(stderr, "noip(%d): nothing found: %s\n", pid,
609 act ? "DENY" : "ALLOW"); )
610 return (!act);
611 }
612
613 /*----- Socket address conversion -----------------------------------------*/
614
615 /* Return a uniformly distributed integer between MIN and MAX inclusive. */
616 static unsigned randrange(unsigned min, unsigned max)
617 {
618 unsigned mask, i;
619
620 /* It's so nice not to have to care about the quality of the generator
621 * much!
622 */
623 max -= min;
624 for (mask = 1; mask < max; mask = (mask << 1) | 1)
625 ;
626 do i = rand() & mask; while (i > max);
627 return (i + min);
628 }
629
630 /* Return the status of Unix-domain socket address SUN. Returns: UNUSED if
631 * the socket doesn't exist; USED if the path refers to an active socket, or
632 * isn't really a socket at all, or we can't tell without a careful search
633 * and QUICKP is set; or STALE if the file refers to a socket which isn't
634 * being used any more.
635 */
636 static int unix_socket_status(struct sockaddr_un *sun, int quickp)
637 {
638 struct stat st;
639 FILE *fp = 0;
640 size_t len, n;
641 int rc;
642 char buf[256];
643
644 /* If we can't find the socket node, then it's definitely not in use. If
645 * we get some other error, then this socket is weird.
646 */
647 if (stat(sun->sun_path, &st))
648 return (errno == ENOENT ? UNUSED : USED);
649
650 /* If it's not a socket, then something weird is going on. If we're just
651 * probing quickly to find a spare port, then existence is sufficient to
652 * discourage us now.
653 */
654 if (!S_ISSOCK(st.st_mode) || quickp)
655 return (USED);
656
657 /* The socket's definitely there, but is anyone actually still holding it
658 * open? The only way I know to discover this is to trundle through
659 * `/proc/net/unix'. If there's no entry, then the socket must be stale.
660 */
661 rc = USED;
662 if ((fp = fopen("/proc/net/unix", "r")) == 0)
663 goto done;
664 if (!fgets(buf, sizeof(buf), fp)) goto done; /* skip header */
665 len = strlen(sun->sun_path);
666 while (fgets(buf, sizeof(buf), fp)) {
667 n = strlen(buf);
668 if (n >= len + 2 && buf[n - len - 2] == ' ' && buf[n - 1] == '\n' &&
669 memcmp(buf + n - len - 1, sun->sun_path, len) == 0)
670 goto done;
671 }
672 if (ferror(fp))
673 goto done;
674 rc = STALE;
675 done:
676 if (fp) fclose(fp);
677
678 /* All done. */
679 return (rc);
680 }
681
682 /* Convert the IP address SA to a Unix-domain address SUN. Fail if the
683 * address seems already taken. If DESPARATEP then try cleaning up stale old
684 * sockets.
685 */
686 static int encode_unused_inet_addr(struct sockaddr *sa,
687 struct sockaddr_un *sun,
688 int desperatep)
689 {
690 address waddr;
691 struct sockaddr_un wsun;
692 int rc;
693 char buf[ADDRBUFSZ];
694 int port = port_from_sockaddr(sa);
695
696 /* First, look for an exact match. Only look quickly unless we're
697 * desperate. If the socket is in use, we fail here. (This could get
698 * racy. Let's not worry about that for now.)
699 */
700 snprintf(sun->sun_path, sizeof(sun->sun_path), "%s/%s", sockdir,
701 present_sockaddr(sa, 0, buf, sizeof(buf)));
702 if ((rc = unix_socket_status(sun, !desperatep)) == USED) return (-1);
703 else if (rc == STALE) unlink(sun->sun_path);
704
705 /* Next, check the corresponding wildcard address, so as to avoid
706 * inadvertant collisions with listeners. Do this in the same way.
707 */
708 wildcard_address(sa->sa_family, &waddr.sa);
709 port_to_sockaddr(&waddr.sa, port);
710 snprintf(wsun.sun_path, sizeof(wsun.sun_path), "%s/%s", sockdir,
711 present_sockaddr(&waddr.sa, 0, buf, sizeof(buf)));
712 if ((rc = unix_socket_status(&wsun, !desperatep)) == USED) return (-1);
713 else if (rc == STALE) unlink(wsun.sun_path);
714
715 /* All is well. */
716 return (0);
717 }
718
719 /* Encode the Internet address SA as a Unix-domain address SUN. If the flag
720 * `ENCF_FRESH' is set, and SA's port number is zero, then we pick an
721 * arbitrary local port. Otherwise we pick the port given. There's an
722 * unpleasant hack to find servers bound to local wildcard addresses.
723 * Returns zero on success; -1 on failure.
724 */
725 #define ENCF_FRESH 1u
726 static int encode_inet_addr(struct sockaddr_un *sun,
727 const struct sockaddr *sa,
728 unsigned f)
729 {
730 int i;
731 int desperatep = 0;
732 address addr;
733 int port = port_from_sockaddr(sa);
734 char buf[ADDRBUFSZ];
735 int rc;
736
737 D( fprintf(stderr, "noip(%d): encode %s (%s)", getpid(),
738 present_sockaddr(sa, 0, buf, sizeof(buf)),
739 (f&ENCF_FRESH) ? "FRESH" : "EXISTING"); )
740
741 /* Start making the Unix-domain address. */
742 sun->sun_family = AF_UNIX;
743
744 if (port || !(f&ENCF_FRESH)) {
745
746 /* Try the address as given. If it's in use, or we don't necessarily
747 * want an existing socket, then we're done.
748 */
749 snprintf(sun->sun_path, sizeof(sun->sun_path), "%s/%s", sockdir,
750 present_sockaddr(sa, 0, buf, sizeof(buf)));
751 rc = unix_socket_status(sun, 0);
752 if (rc == STALE) unlink(sun->sun_path);
753 if (rc == USED || (f&ENCF_FRESH)) goto found;
754
755 /* We're looking for a socket which already exists. Try the
756 * corresponding wildcard address.
757 */
758 wildcard_address(sa->sa_family, &addr.sa);
759 port_to_sockaddr(&addr.sa, port);
760 snprintf(sun->sun_path, sizeof(sun->sun_path), "%s/%s", sockdir,
761 present_sockaddr(&addr.sa, 0, buf, sizeof(buf)));
762 if (unix_socket_status(sun, 0) == STALE) unlink(sun->sun_path);
763
764 } else {
765 /* We want a fresh new socket. */
766
767 /* Make a copy of the given address, because we're going to mangle it. */
768 copy_sockaddr(&addr.sa, sa);
769
770 /* Try a few random-ish port numbers to see if any of them is spare. */
771 for (i = 0; i < 10; i++) {
772 port_to_sockaddr(&addr.sa, randrange(minautoport, maxautoport));
773 if (!encode_unused_inet_addr(&addr.sa, sun, 0)) goto found;
774 }
775
776 /* Things must be getting tight. Work through all of the autoport range
777 * to see if we can find a spare one. The first time, just do it the
778 * quick way; if that doesn't work, then check harder for stale sockets.
779 */
780 for (desperatep = 0; desperatep < 2; desperatep++) {
781 for (i = minautoport; i <= maxautoport; i++) {
782 port_to_sockaddr(&addr.sa, i);
783 if (!encode_unused_inet_addr(&addr.sa, sun, 0)) goto found;
784 }
785 }
786
787 /* We failed to find any free ports. */
788 errno = EADDRINUSE;
789 D( fprintf(stderr, " -- can't resolve\n"); )
790 return (-1);
791 }
792
793 /* Success. */
794 found:
795 D( fprintf(stderr, " -> `%s'\n", sun->sun_path); )
796 return (0);
797 }
798
799 /* Decode the Unix address SUN to an Internet address SIN. If AF_HINT is
800 * nonzero, an empty address (indicative of an unbound Unix-domain socket) is
801 * translated to a wildcard Internet address of the appropriate family.
802 * Returns zero on success; -1 on failure (e.g., it wasn't one of our
803 * addresses).
804 */
805 static int decode_inet_addr(struct sockaddr *sa, int af_hint,
806 const struct sockaddr_un *sun,
807 socklen_t len)
808 {
809 char buf[ADDRBUFSZ];
810 size_t n = strlen(sockdir), nn;
811 address addr;
812
813 if (!sa) sa = &addr.sa;
814 if (sun->sun_family != AF_UNIX) return (-1);
815 if (len > sizeof(*sun)) return (-1);
816 ((char *)sun)[len] = 0;
817 nn = strlen(sun->sun_path);
818 D( fprintf(stderr, "noip(%d): decode `%s'", getpid(), sun->sun_path); )
819 if (af_hint && !sun->sun_path[0]) {
820 wildcard_address(af_hint, sa);
821 D( fprintf(stderr, " -- unbound socket\n"); )
822 return (0);
823 }
824 if (nn < n + 1 || nn - n >= sizeof(buf) || sun->sun_path[n] != '/' ||
825 memcmp(sun->sun_path, sockdir, n) != 0) {
826 D( fprintf(stderr, " -- not one of ours\n"); )
827 return (-1);
828 }
829 if (parse_sockaddr(sa, sun->sun_path + n + 1)) return (-1);
830 D( fprintf(stderr, " -> %s\n",
831 present_sockaddr(sa, 0, buf, sizeof(buf))); )
832 return (0);
833 }
834
835 /* SK is (or at least might be) a Unix-domain socket we created when an
836 * Internet socket was asked for. We've decided it should be an Internet
837 * socket after all, with family AF_HINT, so convert it. If TMP is not null,
838 * then don't replace the existing descriptor: store the new socket in *TMP
839 * and return zero.
840 */
841 static int fixup_real_ip_socket(int sk, int af_hint, int *tmp)
842 {
843 int nsk;
844 int type;
845 int f, fd;
846 struct sockaddr_un sun;
847 address addr;
848 socklen_t len;
849
850 #define OPTS(_) \
851 _(DEBUG, int) \
852 _(REUSEADDR, int) \
853 _(DONTROUTE, int) \
854 _(BROADCAST, int) \
855 _(SNDBUF, int) \
856 _(RCVBUF, int) \
857 _(OOBINLINE, int) \
858 _(NO_CHECK, int) \
859 _(LINGER, struct linger) \
860 _(BSDCOMPAT, int) \
861 _(RCVLOWAT, int) \
862 _(RCVTIMEO, struct timeval) \
863 _(SNDTIMEO, struct timeval)
864
865 len = sizeof(sun);
866 if (real_getsockname(sk, SA(&sun), &len))
867 return (-1);
868 if (decode_inet_addr(&addr.sa, af_hint, &sun, len))
869 return (0); /* Not one of ours */
870 len = sizeof(type);
871 if (real_getsockopt(sk, SOL_SOCKET, SO_TYPE, &type, &len) < 0 ||
872 (nsk = real_socket(addr.sa.sa_family, type, 0)) < 0)
873 return (-1);
874 #define FIX(opt, ty) do { \
875 ty ov_; \
876 len = sizeof(ov_); \
877 if (real_getsockopt(sk, SOL_SOCKET, SO_##opt, &ov_, &len) < 0 || \
878 real_setsockopt(nsk, SOL_SOCKET, SO_##opt, &ov_, len)) { \
879 close(nsk); \
880 return (-1); \
881 } \
882 } while (0);
883 OPTS(FIX)
884 #undef FIX
885 if (tmp)
886 *tmp = nsk;
887 else {
888 if ((f = fcntl(sk, F_GETFL)) < 0 ||
889 (fd = fcntl(sk, F_GETFD)) < 0 ||
890 fcntl(nsk, F_SETFL, f) < 0 ||
891 dup2(nsk, sk) < 0) {
892 close(nsk);
893 return (-1);
894 }
895 unlink(sun.sun_path);
896 close(nsk);
897 if (fcntl(sk, F_SETFD, fd) < 0) {
898 perror("noip: fixup_real_ip_socket F_SETFD");
899 abort();
900 }
901 }
902 return (0);
903 }
904
905 /* We found the real address SA, with length LEN; if it's a Unix-domain
906 * address corresponding to a fake socket, convert it to cover up the
907 * deception. Whatever happens, put the result at FAKE and store its length
908 * at FAKELEN.
909 */
910 static void return_fake_name(struct sockaddr *sa, socklen_t len,
911 struct sockaddr *fake, socklen_t *fakelen)
912 {
913 address addr;
914 socklen_t alen;
915
916 if (sa->sa_family == AF_UNIX &&
917 !decode_inet_addr(&addr.sa, 0, SUN(sa), len)) {
918 sa = &addr.sa;
919 len = family_socklen(addr.sa.sa_family);
920 }
921 alen = len;
922 if (len > *fakelen) len = *fakelen;
923 if (len > 0) memcpy(fake, sa, len);
924 *fakelen = alen;
925 }
926
927 /*----- Implicit binding --------------------------------------------------*/
928
929 #ifdef DEBUG
930
931 static void dump_impbind(const impbind *i)
932 {
933 char buf[ADDRBUFSZ];
934
935 fprintf(stderr, "noip(%d): ", getpid());
936 dump_addrrange(i->af, &i->minaddr, &i->maxaddr);
937 switch (i->how) {
938 case SAME: fprintf(stderr, " <self>"); break;
939 case EXPLICIT:
940 fprintf(stderr, " %s", inet_ntop(i->af, &i->bindaddr,
941 buf, sizeof(buf)));
942 break;
943 default: abort();
944 }
945 fputc('\n', stderr);
946 }
947
948 static void dump_impbind_list(void)
949 {
950 const impbind *i;
951
952 for (i = impbinds; i; i = i->next) dump_impbind(i);
953 }
954
955 #endif
956
957 /* The socket SK is about to be used to communicate with the remote address
958 * SA. Assign it a local address so that getpeername(2) does something
959 * useful.
960 */
961 static int do_implicit_bind(int sk, const struct sockaddr **sa,
962 socklen_t *len, struct sockaddr_un *sun)
963 {
964 address addr;
965 socklen_t mylen = sizeof(*sun);
966 const impbind *i;
967 Dpid;
968
969 if (acl_allows_p(connect_real, *sa)) {
970 if (fixup_real_ip_socket(sk, (*sa)->sa_family, 0)) return (-1);
971 } else {
972 if (real_getsockname(sk, SA(sun), &mylen) < 0) return (-1);
973 if (sun->sun_family == AF_UNIX) {
974 if (mylen < sizeof(*sun)) ((char *)sun)[mylen] = 0;
975 if (!sun->sun_path[0]) {
976 D( fprintf(stderr, "noip(%d): checking impbind list...\n", pid); )
977 for (i = impbinds; i; i = i->next) {
978 D( dump_impbind(i); )
979 if ((*sa)->sa_family == i->af &&
980 sockaddr_in_range_p(*sa, &i->minaddr, &i->maxaddr)) {
981 D( fprintf(stderr, "noip(%d): match!\n", pid); )
982 addr.sa.sa_family = (*sa)->sa_family;
983 ipaddr_to_sockaddr(&addr.sa, &i->bindaddr);
984 goto found;
985 }
986 }
987 D( fprintf(stderr, "noip(%d): no match; using wildcard\n", pid); )
988 wildcard_address((*sa)->sa_family, &addr.sa);
989 found:
990 encode_inet_addr(sun, &addr.sa, ENCF_FRESH);
991 if (real_bind(sk, SA(sun), SUN_LEN(sun))) return (-1);
992 }
993 encode_inet_addr(sun, *sa, 0);
994 *sa = SA(sun);
995 *len = SUN_LEN(sun);
996 }
997 }
998 return (0);
999 }
1000
1001 /*----- Configuration -----------------------------------------------------*/
1002
1003 /* Return the process owner's home directory. */
1004 static char *home(void)
1005 {
1006 char *p;
1007 struct passwd *pw;
1008
1009 if (getuid() == uid &&
1010 (p = getenv("HOME")) != 0)
1011 return (p);
1012 else if ((pw = getpwuid(uid)) != 0)
1013 return (pw->pw_dir);
1014 else
1015 return "/notexist";
1016 }
1017
1018 /* Return a good temporary directory to use. */
1019 static char *tmpdir(void)
1020 {
1021 char *p;
1022
1023 if ((p = getenv("TMPDIR")) != 0) return (p);
1024 else if ((p = getenv("TMP")) != 0) return (p);
1025 else return ("/tmp");
1026 }
1027
1028 /* Return the user's name, or at least something distinctive. */
1029 static char *user(void)
1030 {
1031 static char buf[16];
1032 char *p;
1033 struct passwd *pw;
1034
1035 if ((p = getenv("USER")) != 0) return (p);
1036 else if ((p = getenv("LOGNAME")) != 0) return (p);
1037 else if ((pw = getpwuid(uid)) != 0) return (pw->pw_name);
1038 else {
1039 snprintf(buf, sizeof(buf), "uid-%lu", (unsigned long)uid);
1040 return (buf);
1041 }
1042 }
1043
1044 /* Skip P over space characters. */
1045 #define SKIPSPC do { while (*p && isspace(UC(*p))) p++; } while (0)
1046
1047 /* Set Q to point to the next word following P, null-terminate it, and step P
1048 * past it. */
1049 #define NEXTWORD(q) do { \
1050 SKIPSPC; \
1051 q = p; \
1052 while (*p && !isspace(UC(*p))) p++; \
1053 if (*p) *p++ = 0; \
1054 } while (0)
1055
1056 /* Set Q to point to the next dotted-quad address, store the ending delimiter
1057 * in DEL, null-terminate it, and step P past it. */
1058 static void parse_nextaddr(char **pp, char **qq, int *del)
1059 {
1060 char *p = *pp;
1061
1062 SKIPSPC;
1063 if (*p == '[') {
1064 p++; SKIPSPC;
1065 *qq = p;
1066 p += strcspn(p, "]");
1067 if (*p) *p++ = 0;
1068 *del = 0;
1069 } else {
1070 *qq = p;
1071 while (*p && (*p == '.' || isdigit(UC(*p)))) p++;
1072 *del = *p;
1073 if (*p) *p++ = 0;
1074 }
1075 *pp = p;
1076 }
1077
1078 /* Set Q to point to the next decimal number, store the ending delimiter in
1079 * DEL, null-terminate it, and step P past it. */
1080 #define NEXTNUMBER(q, del) do { \
1081 SKIPSPC; \
1082 q = p; \
1083 while (*p && isdigit(UC(*p))) p++; \
1084 del = *p; \
1085 if (*p) *p++ = 0; \
1086 } while (0)
1087
1088 /* Push the character DEL back so we scan it again, unless it's zero
1089 * (end-of-file). */
1090 #define RESCAN(del) do { if (del) *--p = del; } while (0)
1091
1092 /* Evaluate true if P is pointing to the word KW (and not some longer string
1093 * of which KW is a prefix). */
1094
1095 #define KWMATCHP(kw) (strncmp(p, kw, sizeof(kw) - 1) == 0 && \
1096 !isalnum(UC(p[sizeof(kw) - 1])) && \
1097 (p += sizeof(kw) - 1))
1098
1099 /* Parse a port list, starting at *PP. Port lists have the form
1100 * [:LOW[-HIGH]]: if omitted, all ports are included; if HIGH is omitted,
1101 * it's as if HIGH = LOW. Store LOW in *MIN, HIGH in *MAX and set *PP to the
1102 * rest of the string.
1103 */
1104 static void parse_ports(char **pp, unsigned short *min, unsigned short *max)
1105 {
1106 char *p = *pp, *q;
1107 int del;
1108
1109 SKIPSPC;
1110 if (*p != ':')
1111 { *min = 0; *max = 0xffff; }
1112 else {
1113 p++;
1114 NEXTNUMBER(q, del); *min = strtoul(q, 0, 0); RESCAN(del);
1115 SKIPSPC;
1116 if (*p == '-')
1117 { p++; NEXTNUMBER(q, del); *max = strtoul(q, 0, 0); RESCAN(del); }
1118 else
1119 *max = *min;
1120 }
1121 *pp = p;
1122 }
1123
1124 /* Parse an address range designator starting at PP and store a
1125 * representation of it in R. An address range designator has the form:
1126 *
1127 * any | local | ADDR | ADDR - ADDR | ADDR/ADDR | ADDR/INT
1128 */
1129 static int parse_addrrange(char **pp, addrrange *r)
1130 {
1131 char *p = *pp, *q;
1132 int n;
1133 int del;
1134 int af;
1135
1136 SKIPSPC;
1137 if (KWMATCHP("any")) r->type = ANY;
1138 else if (KWMATCHP("local")) r->type = LOCAL;
1139 else {
1140 parse_nextaddr(&p, &q, &del);
1141 af = guess_address_family(q);
1142 if (inet_pton(af, q, &r->u.range.min) <= 0) goto bad;
1143 RESCAN(del);
1144 SKIPSPC;
1145 if (*p == '-') {
1146 p++;
1147 parse_nextaddr(&p, &q, &del);
1148 if (inet_pton(af, q, &r->u.range.max) <= 0) goto bad;
1149 RESCAN(del);
1150 } else if (*p == '/') {
1151 p++;
1152 NEXTNUMBER(q, del);
1153 n = strtoul(q, 0, 0);
1154 r->u.range.max = r->u.range.min;
1155 mask_address(af, &r->u.range.min, n, 0);
1156 mask_address(af, &r->u.range.max, n, 1);
1157 RESCAN(del);
1158 } else
1159 r->u.range.max = r->u.range.min;
1160 r->type = RANGE;
1161 r->u.range.af = af;
1162 }
1163 *pp = p;
1164 return (0);
1165
1166 bad:
1167 return (-1);
1168 }
1169
1170 /* Call FUNC on each individual address range in R. */
1171 static void foreach_addrrange(const addrrange *r,
1172 void (*func)(int af,
1173 const ipaddr *min,
1174 const ipaddr *max,
1175 void *p),
1176 void *p)
1177 {
1178 ipaddr minaddr, maxaddr;
1179 int i, af;
1180
1181 switch (r->type) {
1182 case EMPTY:
1183 break;
1184 case ANY:
1185 for (i = 0; address_families[i] >= 0; i++) {
1186 af = address_families[i];
1187 memset(&minaddr, 0, sizeof(minaddr));
1188 maxaddr = minaddr; mask_address(af, &maxaddr, 0, 1);
1189 func(af, &minaddr, &maxaddr, p);
1190 }
1191 break;
1192 case LOCAL:
1193 for (i = 0; address_families[i] >= 0; i++) {
1194 af = address_families[i];
1195 memset(&minaddr, 0, sizeof(minaddr));
1196 maxaddr = minaddr; mask_address(af, &maxaddr, 0, 1);
1197 func(af, &minaddr, &minaddr, p);
1198 func(af, &maxaddr, &maxaddr, p);
1199 }
1200 for (i = 0; i < n_local_ipaddrs; i++) {
1201 func(local_ipaddrs[i].af,
1202 &local_ipaddrs[i].addr, &local_ipaddrs[i].addr,
1203 p);
1204 }
1205 break;
1206 case RANGE:
1207 func(r->u.range.af, &r->u.range.min, &r->u.range.max, p);
1208 break;
1209 default:
1210 abort();
1211 }
1212 }
1213
1214 struct add_aclnode_ctx {
1215 int act;
1216 unsigned short minport, maxport;
1217 aclnode ***tail;
1218 };
1219
1220 static void add_aclnode(int af, const ipaddr *min, const ipaddr *max,
1221 void *p)
1222 {
1223 struct add_aclnode_ctx *ctx = p;
1224 aclnode *a;
1225
1226 NEW(a);
1227 a->act = ctx->act;
1228 a->af = af;
1229 a->minaddr = *min; a->maxaddr = *max;
1230 a->minport = ctx->minport; a->maxport = ctx->maxport;
1231 **ctx->tail = a; *ctx->tail = &a->next;
1232 }
1233
1234 /* Parse an ACL line. *PP points to the end of the line; *TAIL points to
1235 * the list tail (i.e., the final link in the list). An ACL entry has the
1236 * form +|- ADDR-RANGE PORTS
1237 * where PORTS is parsed by parse_ports above; an ACL line consists of a
1238 * comma-separated sequence of entries..
1239 */
1240 static void parse_acl_line(char **pp, aclnode ***tail)
1241 {
1242 struct add_aclnode_ctx ctx;
1243 addrrange r;
1244 char *p = *pp;
1245
1246 ctx.tail = tail;
1247 for (;;) {
1248 SKIPSPC;
1249 if (*p == '+') ctx.act = ALLOW;
1250 else if (*p == '-') ctx.act = DENY;
1251 else goto bad;
1252
1253 p++;
1254 if (parse_addrrange(&p, &r)) goto bad;
1255 parse_ports(&p, &ctx.minport, &ctx.maxport);
1256 foreach_addrrange(&r, add_aclnode, &ctx);
1257 SKIPSPC;
1258 if (*p != ',') break;
1259 if (*p) p++;
1260 }
1261 if (*p) goto bad;
1262 *pp = p;
1263 return;
1264
1265 bad:
1266 D( fprintf(stderr, "noip(%d): bad acl spec (ignored)\n", getpid()); )
1267 return;
1268 }
1269
1270 /* Parse an ACL from an environment variable VAR, attaching it to the list
1271 * TAIL.
1272 */
1273 static void parse_acl_env(const char *var, aclnode ***tail)
1274 {
1275 char *p, *q;
1276
1277 if ((p = getenv(var)) != 0) {
1278 p = q = xstrdup(p);
1279 parse_acl_line(&q, tail);
1280 free(p);
1281 }
1282 }
1283
1284 struct add_impbind_ctx {
1285 int af, how;
1286 ipaddr addr;
1287 };
1288
1289 static void add_impbind(int af, const ipaddr *min, const ipaddr *max,
1290 void *p)
1291 {
1292 struct add_impbind_ctx *ctx = p;
1293 impbind *i;
1294
1295 if (ctx->af && af != ctx->af) return;
1296 NEW(i);
1297 i->af = af;
1298 i->how = ctx->how;
1299 i->minaddr = *min; i->maxaddr = *max;
1300 switch (ctx->how) {
1301 case EXPLICIT: i->bindaddr = ctx->addr;
1302 case SAME: break;
1303 default: abort();
1304 }
1305 *impbind_tail = i; impbind_tail = &i->next;
1306 }
1307
1308 /* Parse an implicit-bind line. An implicit-bind entry has the form
1309 * ADDR-RANGE {ADDR | same}
1310 */
1311 static void parse_impbind_line(char **pp)
1312 {
1313 struct add_impbind_ctx ctx;
1314 char *p = *pp, *q;
1315 addrrange r;
1316 int del;
1317
1318 for (;;) {
1319 if (parse_addrrange(&p, &r)) goto bad;
1320 SKIPSPC;
1321 if (KWMATCHP("same")) {
1322 ctx.how = SAME;
1323 ctx.af = 0;
1324 } else {
1325 ctx.how = EXPLICIT;
1326 parse_nextaddr(&p, &q, &del);
1327 ctx.af = guess_address_family(q);
1328 if (inet_pton(ctx.af, q, &ctx.addr) < 0) goto bad;
1329 RESCAN(del);
1330 }
1331 foreach_addrrange(&r, add_impbind, &ctx);
1332 SKIPSPC;
1333 if (*p != ',') break;
1334 if (*p) p++;
1335 }
1336 if (*p) goto bad;
1337 *pp = p;
1338 return;
1339
1340 bad:
1341 D( fprintf(stderr, "noip(%d): bad implicit-bind spec (ignored)\n",
1342 getpid()); )
1343 return;
1344 }
1345
1346 /* Parse implicit-bind instructions from an environment variable VAR,
1347 * attaching it to the list.
1348 */
1349 static void parse_impbind_env(const char *var)
1350 {
1351 char *p, *q;
1352
1353 if ((p = getenv(var)) != 0) {
1354 p = q = xstrdup(p);
1355 parse_impbind_line(&q);
1356 free(p);
1357 }
1358 }
1359
1360 /* Parse the autoports configuration directive. Syntax is MIN - MAX. */
1361 static void parse_autoports(char **pp)
1362 {
1363 char *p = *pp, *q;
1364 unsigned x, y;
1365 int del;
1366
1367 SKIPSPC;
1368 NEXTNUMBER(q, del); x = strtoul(q, 0, 0); RESCAN(del);
1369 SKIPSPC;
1370 if (*p != '-') goto bad;
1371 p++;
1372 NEXTNUMBER(q, del); y = strtoul(q, 0, 0); RESCAN(del);
1373 minautoport = x; maxautoport = y;
1374 SKIPSPC; if (*p) goto bad;
1375 *pp = p;
1376 return;
1377
1378 bad:
1379 D( fprintf(stderr, "noip(%d): bad port range (ignored)\n", getpid()); )
1380 return;
1381 }
1382
1383 /* Read the configuration from the config file and environment. */
1384 static void readconfig(void)
1385 {
1386 FILE *fp;
1387 char buf[1024];
1388 size_t n;
1389 char *p, *q, *cmd;
1390 Dpid;
1391
1392 parse_acl_env("NOIP_REALBIND_BEFORE", &bind_tail);
1393 parse_acl_env("NOIP_REALCONNECT_BEFORE", &connect_tail);
1394 parse_impbind_env("NOIP_IMPBIND_BEFORE");
1395 if ((p = getenv("NOIP_AUTOPORTS")) != 0) {
1396 p = q = xstrdup(p);
1397 parse_autoports(&q);
1398 free(p);
1399 }
1400 if ((p = getenv("NOIP_CONFIG")) == 0)
1401 snprintf(p = buf, sizeof(buf), "%s/.noip", home());
1402 D( fprintf(stderr, "noip(%d): config file: %s\n", pid, p); )
1403
1404 if ((fp = fopen(p, "r")) == 0) {
1405 D( fprintf(stderr, "noip(%d): couldn't read config: %s\n",
1406 pid, strerror(errno)); )
1407 goto done;
1408 }
1409 while (fgets(buf, sizeof(buf), fp)) {
1410 n = strlen(buf);
1411 p = buf;
1412
1413 SKIPSPC;
1414 if (!*p || *p == '#') continue;
1415 while (n && isspace(UC(buf[n - 1]))) n--;
1416 buf[n] = 0;
1417 NEXTWORD(cmd);
1418 SKIPSPC;
1419
1420 if (strcmp(cmd, "socketdir") == 0)
1421 sockdir = xstrdup(p);
1422 else if (strcmp(cmd, "realbind") == 0)
1423 parse_acl_line(&p, &bind_tail);
1424 else if (strcmp(cmd, "realconnect") == 0)
1425 parse_acl_line(&p, &connect_tail);
1426 else if (strcmp(cmd, "impbind") == 0)
1427 parse_impbind_line(&p);
1428 else if (strcmp(cmd, "autoports") == 0)
1429 parse_autoports(&p);
1430 else if (strcmp(cmd, "debug") == 0)
1431 debug = *p ? atoi(p) : 1;
1432 else
1433 D( fprintf(stderr, "noip(%d): bad config command %s\n", pid, cmd); )
1434 }
1435 fclose(fp);
1436
1437 done:
1438 parse_acl_env("NOIP_REALBIND", &bind_tail);
1439 parse_acl_env("NOIP_REALCONNECT", &connect_tail);
1440 parse_impbind_env("NOIP_IMPBIND");
1441 parse_acl_env("NOIP_REALBIND_AFTER", &bind_tail);
1442 parse_acl_env("NOIP_REALCONNECT_AFTER", &connect_tail);
1443 parse_impbind_env("NOIP_IMPBIND_AFTER");
1444 *bind_tail = 0;
1445 *connect_tail = 0;
1446 *impbind_tail = 0;
1447 if (!sockdir) sockdir = getenv("NOIP_SOCKETDIR");
1448 if (!sockdir) {
1449 snprintf(buf, sizeof(buf), "%s/noip-%s", tmpdir(), user());
1450 sockdir = xstrdup(buf);
1451 }
1452 D( fprintf(stderr, "noip(%d): socketdir: %s\n", pid, sockdir);
1453 fprintf(stderr, "noip(%d): autoports: %u-%u\n",
1454 pid, minautoport, maxautoport);
1455 fprintf(stderr, "noip(%d): realbind acl:\n", pid);
1456 dump_acl(bind_real);
1457 fprintf(stderr, "noip(%d): realconnect acl:\n", pid);
1458 dump_acl(connect_real);
1459 fprintf(stderr, "noip(%d): impbind list:\n", pid);
1460 dump_impbind_list(); )
1461 }
1462
1463 /*----- Overridden system calls -------------------------------------------*/
1464
1465 static void dump_syserr(long rc)
1466 { fprintf(stderr, " => %ld (E%d)\n", rc, errno); }
1467
1468 static void dump_sysresult(long rc)
1469 {
1470 if (rc < 0) dump_syserr(rc);
1471 else fprintf(stderr, " => %ld\n", rc);
1472 }
1473
1474 static void dump_addrresult(long rc, const struct sockaddr *sa,
1475 socklen_t len)
1476 {
1477 char addrbuf[ADDRBUFSZ];
1478
1479 if (rc < 0) dump_syserr(rc);
1480 else {
1481 fprintf(stderr, " => %ld [%s]\n", rc,
1482 present_sockaddr(sa, len, addrbuf, sizeof(addrbuf)));
1483 }
1484 }
1485
1486 int socket(int pf, int ty, int proto)
1487 {
1488 int sk;
1489
1490 D( fprintf(stderr, "noip(%d): SOCKET pf=%d, type=%d, proto=%d",
1491 getpid(), pf, ty, proto); )
1492
1493 switch (pf) {
1494 default:
1495 if (!family_known_p(pf)) {
1496 D( fprintf(stderr, " -> unknown; refuse\n"); )
1497 errno = EAFNOSUPPORT;
1498 sk = -1;
1499 }
1500 D( fprintf(stderr, " -> inet; substitute"); )
1501 pf = PF_UNIX;
1502 proto = 0;
1503 break;
1504 case PF_UNIX:
1505 #ifdef PF_NETLINK
1506 case PF_NETLINK:
1507 #endif
1508 D( fprintf(stderr, " -> safe; permit"); )
1509 break;
1510 }
1511 sk = real_socket(pf, ty, proto);
1512 D( dump_sysresult(sk); )
1513 return (sk);
1514 }
1515
1516 int socketpair(int pf, int ty, int proto, int *sk)
1517 {
1518 int rc;
1519
1520 D( fprintf(stderr, "noip(%d): SOCKETPAIR pf=%d, type=%d, proto=%d",
1521 getpid(), pf, ty, proto); )
1522 if (!family_known_p(pf))
1523 D( fprintf(stderr, " -> unknown; permit"); )
1524 else {
1525 D( fprintf(stderr, " -> inet; substitute"); )
1526 pf = PF_UNIX;
1527 proto = 0;
1528 }
1529 rc = real_socketpair(pf, ty, proto, sk);
1530 D( if (rc < 0) dump_syserr(rc);
1531 else fprintf(stderr, " => %d (%d, %d)\n", rc, sk[0], sk[1]); )
1532 return (rc);
1533 }
1534
1535 int bind(int sk, const struct sockaddr *sa, socklen_t len)
1536 {
1537 struct sockaddr_un sun;
1538 int rc;
1539 Dpid;
1540
1541 D({ char buf[ADDRBUFSZ];
1542 fprintf(stderr, "noip(%d): BIND sk=%d, sa[%d]=%s", pid,
1543 sk, len, present_sockaddr(sa, len, buf, sizeof(buf))); })
1544
1545 if (!family_known_p(sa->sa_family))
1546 D( fprintf(stderr, " -> unknown af; pass through"); )
1547 else {
1548 D( fprintf(stderr, " -> checking...\n"); )
1549 PRESERVING_ERRNO({
1550 if (acl_allows_p(bind_real, sa)) {
1551 if (fixup_real_ip_socket(sk, sa->sa_family, 0))
1552 return (-1);
1553 } else {
1554 encode_inet_addr(&sun, sa, ENCF_FRESH);
1555 sa = SA(&sun);
1556 len = SUN_LEN(&sun);
1557 }
1558 });
1559 D( fprintf(stderr, "noip(%d): BIND ...", pid); )
1560 }
1561 rc = real_bind(sk, sa, len);
1562 D( dump_sysresult(rc); )
1563 return (rc);
1564 }
1565
1566 int connect(int sk, const struct sockaddr *sa, socklen_t len)
1567 {
1568 struct sockaddr_un sun;
1569 int rc;
1570 Dpid;
1571
1572 D({ char buf[ADDRBUFSZ];
1573 fprintf(stderr, "noip(%d): CONNECT sk=%d, sa[%d]=%s", pid,
1574 sk, len, present_sockaddr(sa, len, buf, sizeof(buf))); })
1575
1576 if (!family_known_p(sa->sa_family)) {
1577 D( fprintf(stderr, " -> unknown af; pass through"); )
1578 rc = real_connect(sk, sa, len);
1579 } else {
1580 D( fprintf(stderr, " -> checking...\n"); )
1581 PRESERVING_ERRNO({
1582 do_implicit_bind(sk, &sa, &len, &sun);
1583 });
1584 D( fprintf(stderr, "noip(%d): CONNECT ...", pid); )
1585 rc = real_connect(sk, sa, len);
1586 if (rc < 0) {
1587 switch (errno) {
1588 case ENOENT: errno = ECONNREFUSED; break;
1589 }
1590 }
1591 }
1592 D( dump_sysresult(rc); )
1593 return (rc);
1594 }
1595
1596 ssize_t sendto(int sk, const void *buf, size_t len, int flags,
1597 const struct sockaddr *to, socklen_t tolen)
1598 {
1599 struct sockaddr_un sun;
1600 ssize_t n;
1601 Dpid;
1602
1603 D({ char addrbuf[ADDRBUFSZ];
1604 fprintf(stderr, "noip(%d): SENDTO sk=%d, len=%lu, flags=%d, to[%d]=%s",
1605 pid, sk, (unsigned long)len, flags, tolen,
1606 present_sockaddr(to, tolen, addrbuf, sizeof(addrbuf))); })
1607
1608 if (!to)
1609 D( fprintf(stderr, " -> null address; leaving"); )
1610 else if (!family_known_p(to->sa_family))
1611 D( fprintf(stderr, " -> unknown af; pass through"); )
1612 else {
1613 D( fprintf(stderr, " -> checking...\n"); )
1614 PRESERVING_ERRNO({
1615 do_implicit_bind(sk, &to, &tolen, &sun);
1616 });
1617 D( fprintf(stderr, "noip(%d): SENDTO ...", pid); )
1618 }
1619 n = real_sendto(sk, buf, len, flags, to, tolen);
1620 D( dump_sysresult(n); )
1621 return (n);
1622 }
1623
1624 ssize_t recvfrom(int sk, void *buf, size_t len, int flags,
1625 struct sockaddr *from, socklen_t *fromlen)
1626 {
1627 char sabuf[1024];
1628 socklen_t mylen = sizeof(sabuf);
1629 ssize_t n;
1630 Dpid;
1631
1632 D( fprintf(stderr, "noip(%d): RECVFROM sk=%d, len=%lu, flags=%d",
1633 pid, sk, (unsigned long)len, flags); )
1634
1635 if (!from) {
1636 D( fprintf(stderr, " -> null addr; pass through"); )
1637 n = real_recvfrom(sk, buf, len, flags, 0, 0);
1638 } else {
1639 PRESERVING_ERRNO({
1640 n = real_recvfrom(sk, buf, len, flags, SA(sabuf), &mylen);
1641 if (n >= 0) {
1642 D( fprintf(stderr, " -> converting...\n"); )
1643 return_fake_name(SA(sabuf), mylen, from, fromlen);
1644 D( fprintf(stderr, "noip(%d): ... RECVFROM", pid); )
1645 }
1646 });
1647 }
1648 D( dump_addrresult(n, from, fromlen ? *fromlen : 0); )
1649 return (n);
1650 }
1651
1652 ssize_t sendmsg(int sk, const struct msghdr *msg, int flags)
1653 {
1654 struct sockaddr_un sun;
1655 const struct sockaddr *sa = SA(msg->msg_name);
1656 struct msghdr mymsg;
1657 ssize_t n;
1658 Dpid;
1659
1660 D({ char addrbuf[ADDRBUFSZ];
1661 fprintf(stderr, "noip(%d): SENDMSG sk=%d, "
1662 "msg_flags=%d, msg_name[%d]=%s, ...",
1663 pid, sk, msg->msg_flags, msg->msg_namelen,
1664 present_sockaddr(sa, msg->msg_namelen,
1665 addrbuf, sizeof(addrbuf))); })
1666
1667 if (!sa)
1668 D( fprintf(stderr, " -> null address; leaving"); )
1669 else if (!family_known_p(sa->sa_family))
1670 D( fprintf(stderr, " -> unknown af; pass through"); )
1671 else {
1672 D( fprintf(stderr, " -> checking...\n"); )
1673 PRESERVING_ERRNO({
1674 mymsg = *msg;
1675 do_implicit_bind(sk, &sa, &mymsg.msg_namelen, &sun);
1676 mymsg.msg_name = SA(sa);
1677 msg = &mymsg;
1678 });
1679 D( fprintf(stderr, "noip(%d): SENDMSG ...", pid); )
1680 }
1681 n = real_sendmsg(sk, msg, flags);
1682 D( dump_sysresult(n); )
1683 return (n);
1684 }
1685
1686 ssize_t recvmsg(int sk, struct msghdr *msg, int flags)
1687 {
1688 char sabuf[1024];
1689 struct sockaddr *sa = SA(msg->msg_name);
1690 socklen_t len = msg->msg_namelen;
1691 ssize_t n;
1692 Dpid;
1693
1694 D( fprintf(stderr, "noip(%d): RECVMSG sk=%d msg_flags=%d, ...",
1695 pid, sk, msg->msg_flags); )
1696
1697 if (!msg->msg_name) {
1698 D( fprintf(stderr, " -> null addr; pass through"); )
1699 return (real_recvmsg(sk, msg, flags));
1700 } else {
1701 PRESERVING_ERRNO({
1702 msg->msg_name = sabuf;
1703 msg->msg_namelen = sizeof(sabuf);
1704 n = real_recvmsg(sk, msg, flags);
1705 if (n >= 0) {
1706 D( fprintf(stderr, " -> converting...\n"); )
1707 return_fake_name(SA(sabuf), msg->msg_namelen, sa, &len);
1708 D( fprintf(stderr, "noip(%d): ... RECVMSG", pid); )
1709 }
1710 msg->msg_name = sa;
1711 msg->msg_namelen = len;
1712 });
1713 }
1714 D( dump_addrresult(n, sa, len); )
1715 return (n);
1716 }
1717
1718 int accept(int sk, struct sockaddr *sa, socklen_t *len)
1719 {
1720 char sabuf[1024];
1721 socklen_t mylen = sizeof(sabuf);
1722 int nsk;
1723 Dpid;
1724
1725 D( fprintf(stderr, "noip(%d): ACCEPT sk=%d", pid, sk); )
1726
1727 nsk = real_accept(sk, SA(sabuf), &mylen);
1728 if (nsk < 0) /* failed */;
1729 else if (!sa) D( fprintf(stderr, " -> address not wanted"); )
1730 else {
1731 D( fprintf(stderr, " -> converting...\n"); )
1732 return_fake_name(SA(sabuf), mylen, sa, len);
1733 D( fprintf(stderr, "noip(%d): ... ACCEPT", pid); )
1734 }
1735 D( dump_addrresult(nsk, sa, len ? *len : 0); )
1736 return (nsk);
1737 }
1738
1739 int getsockname(int sk, struct sockaddr *sa, socklen_t *len)
1740 {
1741 char sabuf[1024];
1742 socklen_t mylen = sizeof(sabuf);
1743 int rc;
1744 Dpid;
1745
1746 D( fprintf(stderr, "noip(%d): GETSOCKNAME sk=%d", pid, sk); )
1747 rc = real_getsockname(sk, SA(sabuf), &mylen);
1748 if (rc >= 0) {
1749 D( fprintf(stderr, " -> converting...\n"); )
1750 return_fake_name(SA(sabuf), mylen, sa, len);
1751 D( fprintf(stderr, "noip(%d): ... GETSOCKNAME", pid); )
1752 }
1753 D( dump_addrresult(rc, sa, *len); )
1754 return (rc);
1755 }
1756
1757 int getpeername(int sk, struct sockaddr *sa, socklen_t *len)
1758 {
1759 char sabuf[1024];
1760 socklen_t mylen = sizeof(sabuf);
1761 int rc;
1762 Dpid;
1763
1764 D( fprintf(stderr, "noip(%d): GETPEERNAME sk=%d", pid, sk); )
1765 rc = real_getpeername(sk, SA(sabuf), &mylen);
1766 if (rc >= 0) {
1767 D( fprintf(stderr, " -> converting...\n"); )
1768 return_fake_name(SA(sabuf), mylen, sa, len);
1769 D( fprintf(stderr, "noip(%d): ... GETPEERNAME", pid); )
1770 }
1771 D( dump_addrresult(rc, sa, *len); )
1772 return (0);
1773 }
1774
1775 int getsockopt(int sk, int lev, int opt, void *p, socklen_t *len)
1776 {
1777 switch (lev) {
1778 case IPPROTO_IP:
1779 case IPPROTO_IPV6:
1780 case IPPROTO_TCP:
1781 case IPPROTO_UDP:
1782 if (*len > 0)
1783 memset(p, 0, *len);
1784 return (0);
1785 }
1786 return (real_getsockopt(sk, lev, opt, p, len));
1787 }
1788
1789 int setsockopt(int sk, int lev, int opt, const void *p, socklen_t len)
1790 {
1791 switch (lev) {
1792 case IPPROTO_IP:
1793 case IPPROTO_IPV6:
1794 case IPPROTO_TCP:
1795 case IPPROTO_UDP:
1796 return (0);
1797 }
1798 switch (opt) {
1799 case SO_BINDTODEVICE:
1800 case SO_ATTACH_FILTER:
1801 case SO_DETACH_FILTER:
1802 return (0);
1803 }
1804 return (real_setsockopt(sk, lev, opt, p, len));
1805 }
1806
1807 int ioctl(int fd, unsigned long op, ...)
1808 {
1809 va_list ap;
1810 void *arg;
1811 int sk;
1812 int rc;
1813
1814 va_start(ap, op);
1815 arg = va_arg(ap, void *);
1816
1817 switch (op) {
1818 case SIOCGIFADDR:
1819 case SIOCGIFBRDADDR:
1820 case SIOCGIFDSTADDR:
1821 case SIOCGIFNETMASK:
1822 PRESERVING_ERRNO({
1823 if (fixup_real_ip_socket(fd, AF_INET, &sk)) goto real;
1824 });
1825 rc = real_ioctl(sk, op, arg);
1826 PRESERVING_ERRNO({ close(sk); });
1827 break;
1828 default:
1829 real:
1830 rc = real_ioctl(fd, op, arg);
1831 break;
1832 }
1833 va_end(ap);
1834 return (rc);
1835 }
1836
1837 /*----- Initialization ----------------------------------------------------*/
1838
1839 /* Clean up the socket directory, deleting stale sockets. */
1840 static void cleanup_sockdir(void)
1841 {
1842 DIR *dir;
1843 struct dirent *d;
1844 address addr;
1845 struct sockaddr_un sun;
1846 struct stat st;
1847 Dpid;
1848
1849 if ((dir = opendir(sockdir)) == 0) return;
1850 sun.sun_family = AF_UNIX;
1851 while ((d = readdir(dir)) != 0) {
1852 if (d->d_name[0] == '.') continue;
1853 snprintf(sun.sun_path, sizeof(sun.sun_path),
1854 "%s/%s", sockdir, d->d_name);
1855 if (decode_inet_addr(&addr.sa, 0, &sun, SUN_LEN(&sun)) ||
1856 stat(sun.sun_path, &st) ||
1857 !S_ISSOCK(st.st_mode)) {
1858 D( fprintf(stderr, "noip(%d): ignoring unknown socketdir entry `%s'\n",
1859 pid, sun.sun_path); )
1860 continue;
1861 }
1862 if (unix_socket_status(&sun, 0) == STALE) {
1863 D( fprintf(stderr, "noip(%d): clearing away stale socket %s\n",
1864 pid, d->d_name); )
1865 unlink(sun.sun_path);
1866 }
1867 }
1868 closedir(dir);
1869 }
1870
1871 /* Find the addresses attached to local network interfaces, and remember them
1872 * in a table.
1873 */
1874 static void get_local_ipaddrs(void)
1875 {
1876 struct ifaddrs *ifa_head, *ifa;
1877 ipaddr a;
1878 int i;
1879 Dpid;
1880
1881 D( fprintf(stderr, "noip(%d): fetching local addresses...\n", pid); )
1882 if (getifaddrs(&ifa_head)) { perror("getifaddrs"); return; }
1883 for (n_local_ipaddrs = 0, ifa = ifa_head;
1884 n_local_ipaddrs < MAX_LOCAL_IPADDRS && ifa;
1885 ifa = ifa->ifa_next) {
1886 if (!ifa->ifa_addr || !family_known_p(ifa->ifa_addr->sa_family))
1887 continue;
1888 ipaddr_from_sockaddr(&a, ifa->ifa_addr);
1889 D({ char buf[ADDRBUFSZ];
1890 fprintf(stderr, "noip(%d): local addr %s = %s", pid,
1891 ifa->ifa_name,
1892 inet_ntop(ifa->ifa_addr->sa_family, &a,
1893 buf, sizeof(buf))); })
1894 for (i = 0; i < n_local_ipaddrs; i++) {
1895 if (ifa->ifa_addr->sa_family == local_ipaddrs[i].af &&
1896 ipaddr_equal_p(local_ipaddrs[i].af, &a, &local_ipaddrs[i].addr)) {
1897 D( fprintf(stderr, " (duplicate)\n"); )
1898 goto skip;
1899 }
1900 }
1901 D( fprintf(stderr, "\n"); )
1902 local_ipaddrs[n_local_ipaddrs].af = ifa->ifa_addr->sa_family;
1903 local_ipaddrs[n_local_ipaddrs].addr = a;
1904 n_local_ipaddrs++;
1905 skip:;
1906 }
1907 freeifaddrs(ifa_head);
1908 }
1909
1910 /* Print the given message to standard error. Avoids stdio. */
1911 static void printerr(const char *p)
1912 { if (write(STDERR_FILENO, p, strlen(p))) ; }
1913
1914 /* Create the socket directory, being careful about permissions. */
1915 static void create_sockdir(void)
1916 {
1917 struct stat st;
1918
1919 if (lstat(sockdir, &st)) {
1920 if (errno == ENOENT) {
1921 if (mkdir(sockdir, 0700)) {
1922 perror("noip: creating socketdir");
1923 exit(127);
1924 }
1925 if (!lstat(sockdir, &st))
1926 goto check;
1927 }
1928 perror("noip: checking socketdir");
1929 exit(127);
1930 }
1931 check:
1932 if (!S_ISDIR(st.st_mode)) {
1933 printerr("noip: bad socketdir: not a directory\n");
1934 exit(127);
1935 }
1936 if (st.st_uid != uid) {
1937 printerr("noip: bad socketdir: not owner\n");
1938 exit(127);
1939 }
1940 if (st.st_mode & 077) {
1941 printerr("noip: bad socketdir: not private\n");
1942 exit(127);
1943 }
1944 }
1945
1946 /* Initialization function. */
1947 static void setup(void) __attribute__((constructor));
1948 static void setup(void)
1949 {
1950 PRESERVING_ERRNO({
1951 char *p;
1952
1953 import();
1954 uid = geteuid();
1955 if ((p = getenv("NOIP_DEBUG")) && atoi(p))
1956 debug = 1;
1957 get_local_ipaddrs();
1958 readconfig();
1959 create_sockdir();
1960 cleanup_sockdir();
1961 });
1962 }
1963
1964 /*----- That's all, folks -------------------------------------------------*/