getaddrinfo.c revision 1.115.6.2 1 /* $NetBSD: getaddrinfo.c,v 1.115.6.2 2020/11/29 11:18:54 martin Exp $ */
2 /* $KAME: getaddrinfo.c,v 1.29 2000/08/31 17:26:57 itojun Exp $ */
3
4 /*
5 * Copyright (C) 1995, 1996, 1997, and 1998 WIDE Project.
6 * All rights reserved.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 * 1. Redistributions of source code must retain the above copyright
12 * notice, this list of conditions and the following disclaimer.
13 * 2. Redistributions in binary form must reproduce the above copyright
14 * notice, this list of conditions and the following disclaimer in the
15 * documentation and/or other materials provided with the distribution.
16 * 3. Neither the name of the project nor the names of its contributors
17 * may be used to endorse or promote products derived from this software
18 * without specific prior written permission.
19 *
20 * THIS SOFTWARE IS PROVIDED BY THE PROJECT AND CONTRIBUTORS ``AS IS'' AND
21 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
22 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
23 * ARE DISCLAIMED. IN NO EVENT SHALL THE PROJECT OR CONTRIBUTORS BE LIABLE
24 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
25 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
26 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
27 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
28 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
29 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
30 * SUCH DAMAGE.
31 */
32
33 /*
34 * Issues to be discussed:
35 * - Return values. There are nonstandard return values defined and used
36 * in the source code. This is because RFC2553 is silent about which error
37 * code must be returned for which situation.
38 * - IPv4 classful (shortened) form. RFC2553 is silent about it. XNET 5.2
39 * says to use inet_aton() to convert IPv4 numeric to binary (alows
40 * classful form as a result).
41 * current code - disallow classful form for IPv4 (due to use of inet_pton).
42 * - freeaddrinfo(NULL). RFC2553 is silent about it. XNET 5.2 says it is
43 * invalid.
44 * current code - SEGV on freeaddrinfo(NULL)
45 * Note:
46 * - The code filters out AFs that are not supported by the kernel,
47 * when globbing NULL hostname (to loopback, or wildcard). Is it the right
48 * thing to do? What is the relationship with post-RFC2553 AI_ADDRCONFIG
49 * in ai_flags?
50 * - (post-2553) semantics of AI_ADDRCONFIG itself is too vague.
51 * (1) what should we do against numeric hostname (2) what should we do
52 * against NULL hostname (3) what is AI_ADDRCONFIG itself. AF not ready?
53 * non-loopback address configured? global address configured?
54 */
55
56 #include <sys/cdefs.h>
57 #if defined(LIBC_SCCS) && !defined(lint)
58 __RCSID("$NetBSD: getaddrinfo.c,v 1.115.6.2 2020/11/29 11:18:54 martin Exp $");
59 #endif /* LIBC_SCCS and not lint */
60
61 #ifndef RUMP_ACTION
62 #include "namespace.h"
63 #endif
64 #include <sys/types.h>
65 #include <sys/param.h>
66 #include <sys/socket.h>
67 #include <sys/ioctl.h>
68 #include <sys/sysctl.h>
69 #include <net/if.h>
70 #include <netinet/in.h>
71 #include <netinet6/in6_var.h>
72 #include <arpa/inet.h>
73 #include <arpa/nameser.h>
74 #include <assert.h>
75 #include <ctype.h>
76 #include <errno.h>
77 #include <netdb.h>
78 #include <resolv.h>
79 #include <stddef.h>
80 #include <stdio.h>
81 #include <stdlib.h>
82 #include <string.h>
83 #include <unistd.h>
84 #include <ifaddrs.h>
85
86 #include <syslog.h>
87 #include <stdarg.h>
88 #include <nsswitch.h>
89
90 #ifdef YP
91 #include <rpc/rpc.h>
92 #include <rpcsvc/yp_prot.h>
93 #include <rpcsvc/ypclnt.h>
94 #endif
95
96 #include "servent.h"
97
98 #ifndef RUMP_ACTION
99 #ifdef __weak_alias
100 __weak_alias(getaddrinfo,_getaddrinfo)
101 __weak_alias(allocaddrinfo,_allocaddrinfo)
102 __weak_alias(freeaddrinfo,_freeaddrinfo)
103 __weak_alias(gai_strerror,_gai_strerror)
104 #endif
105 #endif
106
107 #define SUCCESS 0
108 #define ANY 0
109 #define YES 1
110 #define NO 0
111
112 #define sa4addr(sa) ((void *)&((struct sockaddr_in *)(void *)sa)->sin_addr)
113 #define sa6addr(sa) ((void *)&((struct sockaddr_in6 *)(void *)sa)->sin6_addr)
114
115 static const char in_addrany[] = { 0, 0, 0, 0 };
116 static const char in_loopback[] = { 127, 0, 0, 1 };
117 #ifdef INET6
118 static const char in6_addrany[] = {
119 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0
120 };
121 static const char in6_loopback[] = {
122 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1
123 };
124 #endif
125
126 struct policyqueue {
127 TAILQ_ENTRY(policyqueue) pc_entry;
128 #ifdef INET6
129 struct in6_addrpolicy pc_policy;
130 #endif
131 };
132 TAILQ_HEAD(policyhead, policyqueue);
133
134 static const struct afd {
135 int a_af;
136 int a_addrlen;
137 int a_socklen;
138 int a_off;
139 const char *a_addrany;
140 const char *a_loopback;
141 int a_scoped;
142 } afdl [] = {
143 #ifdef INET6
144 {PF_INET6, sizeof(struct in6_addr),
145 sizeof(struct sockaddr_in6),
146 offsetof(struct sockaddr_in6, sin6_addr),
147 in6_addrany, in6_loopback, 1},
148 #endif
149 {PF_INET, sizeof(struct in_addr),
150 sizeof(struct sockaddr_in),
151 offsetof(struct sockaddr_in, sin_addr),
152 in_addrany, in_loopback, 0},
153 {0, 0, 0, 0, NULL, NULL, 0},
154 };
155
156 struct explore {
157 int e_af;
158 int e_socktype;
159 int e_protocol;
160 const char *e_protostr;
161 int e_wild;
162 #define WILD_AF(ex) ((ex)->e_wild & 0x01)
163 #define WILD_SOCKTYPE(ex) ((ex)->e_wild & 0x02)
164 #define WILD_PROTOCOL(ex) ((ex)->e_wild & 0x04)
165 };
166
167 static const struct explore explore[] = {
168 #if 0
169 { PF_LOCAL, 0, ANY, ANY, NULL, 0x01 },
170 #endif
171 #ifdef INET6
172 { PF_INET6, SOCK_DGRAM, IPPROTO_UDP, "udp", 0x07 },
173 { PF_INET6, SOCK_STREAM, IPPROTO_TCP, "tcp", 0x07 },
174 { PF_INET6, SOCK_RAW, ANY, NULL, 0x05 },
175 #endif
176 { PF_INET, SOCK_DGRAM, IPPROTO_UDP, "udp", 0x07 },
177 { PF_INET, SOCK_STREAM, IPPROTO_TCP, "tcp", 0x07 },
178 { PF_INET, SOCK_RAW, ANY, NULL, 0x05 },
179 { PF_UNSPEC, SOCK_DGRAM, IPPROTO_UDP, "udp", 0x07 },
180 { PF_UNSPEC, SOCK_STREAM, IPPROTO_TCP, "tcp", 0x07 },
181 { PF_UNSPEC, SOCK_RAW, ANY, NULL, 0x05 },
182 { -1, 0, 0, NULL, 0 },
183 };
184
185 #ifdef INET6
186 #define PTON_MAX 16
187 #else
188 #define PTON_MAX 4
189 #endif
190
191 #define AIO_SRCFLAG_DEPRECATED 0x1
192
193 struct ai_order {
194 union {
195 struct sockaddr_storage aiou_ss;
196 struct sockaddr aiou_sa;
197 } aio_src_un;
198 #define aio_srcsa aio_src_un.aiou_sa
199 u_int32_t aio_srcflag;
200 int aio_srcscope;
201 int aio_dstscope;
202 struct policyqueue *aio_srcpolicy;
203 struct policyqueue *aio_dstpolicy;
204 struct addrinfo *aio_ai;
205 int aio_matchlen;
206 };
207
208 static const ns_src default_dns_files[] = {
209 { NSSRC_FILES, NS_SUCCESS },
210 { NSSRC_DNS, NS_SUCCESS },
211 { 0, 0 }
212 };
213
214 #define MAXPACKET (64*1024)
215
216 typedef union {
217 HEADER hdr;
218 u_char buf[MAXPACKET];
219 } querybuf;
220
221 struct res_target {
222 struct res_target *next;
223 const char *name; /* domain name */
224 int qclass, qtype; /* class and type of query */
225 u_char *answer; /* buffer to put answer */
226 int anslen; /* size of answer buffer */
227 int n; /* result length */
228 };
229
230 struct srvinfo {
231 struct srvinfo *next;
232 char name[MAXDNAME];
233 int port, pri, weight;
234 };
235
236 static int gai_srvok(const char *);
237 static int str2number(const char *);
238 static int explore_fqdn(const struct addrinfo *, const char *,
239 const char *, struct addrinfo **, struct servent_data *);
240 static int explore_null(const struct addrinfo *,
241 const char *, struct addrinfo **, struct servent_data *);
242 static int explore_numeric(const struct addrinfo *, const char *,
243 const char *, struct addrinfo **, const char *, struct servent_data *);
244 static int explore_numeric_scope(const struct addrinfo *, const char *,
245 const char *, struct addrinfo **, struct servent_data *);
246 static int get_canonname(const struct addrinfo *,
247 struct addrinfo *, const char *);
248 static struct addrinfo *get_ai(const struct addrinfo *,
249 const struct afd *, const char *);
250 static int get_portmatch(const struct addrinfo *, const char *,
251 struct servent_data *);
252 static int get_port(const struct addrinfo *, const char *, int,
253 struct servent_data *);
254 static const struct afd *find_afd(int);
255 static int addrconfig(uint64_t *);
256 static void set_source(struct ai_order *, struct policyhead *,
257 struct servent_data *);
258 static int comp_dst(const void *, const void *);
259 #ifdef INET6
260 static int ip6_str2scopeid(char *, struct sockaddr_in6 *, u_int32_t *);
261 #endif
262 static int gai_addr2scopetype(struct sockaddr *);
263
264 static int reorder(struct addrinfo *, struct servent_data *);
265 static int get_addrselectpolicy(struct policyhead *);
266 static void free_addrselectpolicy(struct policyhead *);
267 static struct policyqueue *match_addrselectpolicy(struct sockaddr *,
268 struct policyhead *);
269 static int matchlen(struct sockaddr *, struct sockaddr *);
270
271 static struct addrinfo *getanswer(res_state, const querybuf *, int,
272 const char *, int, const struct addrinfo *);
273 static void aisort(struct addrinfo *s, res_state res);
274 static struct addrinfo * _dns_query(struct res_target *,
275 const struct addrinfo *, res_state, int);
276 static struct addrinfo * _dns_srv_lookup(const char *, const char *,
277 const struct addrinfo *);
278 static struct addrinfo * _dns_host_lookup(const char *,
279 const struct addrinfo *);
280 static int _dns_getaddrinfo(void *, void *, va_list);
281 static void _sethtent(FILE **);
282 static void _endhtent(FILE **);
283 static struct addrinfo *_gethtent(FILE **, const char *,
284 const struct addrinfo *);
285 static int _files_getaddrinfo(void *, void *, va_list);
286 #ifdef YP
287 static struct addrinfo *_yphostent(char *, const struct addrinfo *);
288 static int _yp_getaddrinfo(void *, void *, va_list);
289 #endif
290
291 static int res_queryN(const char *, struct res_target *, res_state);
292 static int res_searchN(const char *, struct res_target *, res_state);
293 static int res_querydomainN(const char *, const char *,
294 struct res_target *, res_state);
295
296 static const char * const ai_errlist[] = {
297 "Success",
298 "Address family for hostname not supported", /* EAI_ADDRFAMILY */
299 "Temporary failure in name resolution", /* EAI_AGAIN */
300 "Invalid value for ai_flags", /* EAI_BADFLAGS */
301 "Non-recoverable failure in name resolution", /* EAI_FAIL */
302 "ai_family not supported", /* EAI_FAMILY */
303 "Memory allocation failure", /* EAI_MEMORY */
304 "No address associated with hostname", /* EAI_NODATA */
305 "hostname nor servname provided, or not known", /* EAI_NONAME */
306 "servname not supported for ai_socktype", /* EAI_SERVICE */
307 "ai_socktype not supported", /* EAI_SOCKTYPE */
308 "System error returned in errno", /* EAI_SYSTEM */
309 "Invalid value for hints", /* EAI_BADHINTS */
310 "Resolved protocol is unknown", /* EAI_PROTOCOL */
311 "Argument buffer overflow", /* EAI_OVERFLOW */
312 "Unknown error", /* EAI_MAX */
313 };
314
315 /* XXX macros that make external reference is BAD. */
316
317 #define GET_AI(ai, afd, addr) \
318 do { \
319 /* external reference: pai, error, and label free */ \
320 (ai) = get_ai(pai, (afd), (addr)); \
321 if ((ai) == NULL) { \
322 error = EAI_MEMORY; \
323 goto free; \
324 } \
325 } while (/*CONSTCOND*/0)
326
327 #define GET_PORT(ai, serv, svd) \
328 do { \
329 /* external reference: error and label free */ \
330 error = get_port((ai), (serv), 0, (svd)); \
331 if (error != 0) \
332 goto free; \
333 } while (/*CONSTCOND*/0)
334
335 #define GET_CANONNAME(ai, str) \
336 do { \
337 /* external reference: pai, error and label free */ \
338 error = get_canonname(pai, (ai), (str)); \
339 if (error != 0) \
340 goto free; \
341 } while (/*CONSTCOND*/0)
342
343 #define ERR(err) \
344 do { \
345 /* external reference: error, and label bad */ \
346 error = (err); \
347 goto bad; \
348 /*NOTREACHED*/ \
349 } while (/*CONSTCOND*/0)
350
351 #define MATCH_FAMILY(x, y, w) \
352 ((x) == (y) || (/*CONSTCOND*/(w) && ((x) == PF_UNSPEC || \
353 (y) == PF_UNSPEC)))
354 #define MATCH(x, y, w) \
355 ((x) == (y) || (/*CONSTCOND*/(w) && ((x) == ANY || (y) == ANY)))
356
357 const char *
358 gai_strerror(int ecode)
359 {
360 if (ecode < 0 || ecode > EAI_MAX)
361 ecode = EAI_MAX;
362 return ai_errlist[ecode];
363 }
364
365 void
366 freeaddrinfo(struct addrinfo *ai)
367 {
368 struct addrinfo *next;
369
370 _DIAGASSERT(ai != NULL);
371
372 do {
373 next = ai->ai_next;
374 if (ai->ai_canonname)
375 free(ai->ai_canonname);
376 /* no need to free(ai->ai_addr) */
377 free(ai);
378 ai = next;
379 } while (ai);
380 }
381
382 /*
383 * We don't want localization to affect us
384 */
385 #define PERIOD '.'
386 #define hyphenchar(c) ((c) == '-')
387 #define periodchar(c) ((c) == PERIOD)
388 #define underschar(c) ((c) == '_')
389 #define alphachar(c) (((c) >= 'a' && (c) <= 'z') || ((c) >= 'A' && (c) <= 'Z'))
390 #define digitchar(c) ((c) >= '0' && (c) <= '9')
391
392 #define firstchar(c) (alphachar(c) || digitchar(c) || underschar(c))
393 #define lastchar(c) (alphachar(c) || digitchar(c))
394 #define middlechar(c) (lastchar(c) || hyphenchar(c))
395
396 static int
397 gai_srvok(const char *dn)
398 {
399 int nch, pch, ch;
400
401 for (pch = PERIOD, nch = ch = *dn++; ch != '\0'; pch = ch, ch = nch) {
402 if (periodchar(ch))
403 continue;
404 if (periodchar(pch)) {
405 if (!firstchar(ch))
406 return 0;
407 } else if (periodchar(nch) || nch == '\0') {
408 if (!lastchar(ch))
409 return 0;
410 } else if (!middlechar(ch))
411 return 0;
412 }
413 return 1;
414 }
415
416 static in_port_t *
417 getport(struct addrinfo *ai) {
418 static in_port_t p;
419
420 switch (ai->ai_family) {
421 case AF_INET:
422 return &((struct sockaddr_in *)(void *)ai->ai_addr)->sin_port;
423 #ifdef INET6
424 case AF_INET6:
425 return &((struct sockaddr_in6 *)(void *)ai->ai_addr)->sin6_port;
426 #endif
427 default:
428 p = 0;
429 /* XXX: abort()? */
430 return &p;
431 }
432 }
433
434 static int
435 str2number(const char *p)
436 {
437 char *ep;
438 unsigned long v;
439
440 _DIAGASSERT(p != NULL);
441
442 if (*p == '\0')
443 return -1;
444 ep = NULL;
445 errno = 0;
446 v = strtoul(p, &ep, 10);
447 if (errno == 0 && ep && *ep == '\0' && v <= INT_MAX)
448 return (int)v;
449 else
450 return -1;
451 }
452
453 int
454 getaddrinfo(const char *hostname, const char *servname,
455 const struct addrinfo *hints, struct addrinfo **res)
456 {
457 struct addrinfo sentinel;
458 struct addrinfo *cur;
459 int error = 0;
460 struct addrinfo ai;
461 struct addrinfo ai0;
462 struct addrinfo *pai;
463 const struct explore *ex;
464 struct servent_data svd;
465 uint64_t mask = (uint64_t)~0ULL;
466 int numeric = 0;
467
468 /* hostname is allowed to be NULL */
469 /* servname is allowed to be NULL */
470 /* hints is allowed to be NULL */
471 _DIAGASSERT(res != NULL);
472
473 (void)memset(&svd, 0, sizeof(svd));
474 memset(&sentinel, 0, sizeof(sentinel));
475 cur = &sentinel;
476 memset(&ai, 0, sizeof(ai));
477 pai = &ai;
478 pai->ai_flags = 0;
479 pai->ai_family = PF_UNSPEC;
480 pai->ai_socktype = ANY;
481 pai->ai_protocol = ANY;
482 pai->ai_addrlen = 0;
483 pai->ai_canonname = NULL;
484 pai->ai_addr = NULL;
485 pai->ai_next = NULL;
486
487 if (hostname == NULL && servname == NULL)
488 return EAI_NONAME;
489 if (hints) {
490 /* error check for hints */
491 if (hints->ai_addrlen || hints->ai_canonname ||
492 hints->ai_addr || hints->ai_next)
493 ERR(EAI_BADHINTS); /* xxx */
494 if (hints->ai_flags & ~AI_MASK)
495 ERR(EAI_BADFLAGS);
496 switch (hints->ai_family) {
497 case PF_UNSPEC:
498 case PF_INET:
499 #ifdef INET6
500 case PF_INET6:
501 #endif
502 break;
503 default:
504 ERR(EAI_FAMILY);
505 }
506 memcpy(pai, hints, sizeof(*pai));
507
508 /*
509 * if both socktype/protocol are specified, check if they
510 * are meaningful combination.
511 */
512 if (pai->ai_socktype != ANY && pai->ai_protocol != ANY) {
513 for (ex = explore; ex->e_af >= 0; ex++) {
514 if (pai->ai_family != ex->e_af)
515 continue;
516 if (ex->e_socktype == ANY)
517 continue;
518 if (ex->e_protocol == ANY)
519 continue;
520 if (pai->ai_socktype == ex->e_socktype
521 && pai->ai_protocol != ex->e_protocol) {
522 ERR(EAI_BADHINTS);
523 }
524 }
525 }
526 }
527
528 if ((pai->ai_flags & AI_ADDRCONFIG) != 0 && addrconfig(&mask) == -1)
529 ERR(EAI_FAIL);
530
531 /*
532 * check for special cases. (1) numeric servname is disallowed if
533 * socktype/protocol are left unspecified. (2) servname is disallowed
534 * for raw and other inet{,6} sockets.
535 */
536 if (MATCH_FAMILY(pai->ai_family, PF_INET, 1)
537 #ifdef PF_INET6
538 || MATCH_FAMILY(pai->ai_family, PF_INET6, 1)
539 #endif
540 ) {
541 ai0 = *pai; /* backup *pai */
542
543 if (pai->ai_family == PF_UNSPEC) {
544 #ifdef PF_INET6
545 pai->ai_family = PF_INET6;
546 #else
547 pai->ai_family = PF_INET;
548 #endif
549 }
550 error = get_portmatch(pai, servname, &svd);
551 if (error)
552 goto bad;
553
554 *pai = ai0;
555 }
556
557 ai0 = *pai;
558
559 /* NULL hostname, or numeric hostname */
560 for (ex = explore; ex->e_af >= 0; ex++) {
561 *pai = ai0;
562
563 /* ADDRCONFIG check */
564 if ((((uint64_t)1 << ex->e_af) & mask) == 0)
565 continue;
566
567 /* PF_UNSPEC entries are prepared for DNS queries only */
568 if (ex->e_af == PF_UNSPEC)
569 continue;
570
571 if (!MATCH_FAMILY(pai->ai_family, ex->e_af, WILD_AF(ex)))
572 continue;
573 if (!MATCH(pai->ai_socktype, ex->e_socktype, WILD_SOCKTYPE(ex)))
574 continue;
575 if (!MATCH(pai->ai_protocol, ex->e_protocol, WILD_PROTOCOL(ex)))
576 continue;
577 if (pai->ai_family == PF_UNSPEC)
578 pai->ai_family = ex->e_af;
579 if (pai->ai_socktype == ANY && ex->e_socktype != ANY)
580 pai->ai_socktype = ex->e_socktype;
581 if (pai->ai_protocol == ANY && ex->e_protocol != ANY)
582 pai->ai_protocol = ex->e_protocol;
583
584 if (hostname == NULL)
585 error = explore_null(pai, servname, &cur->ai_next,
586 &svd);
587 else
588 error = explore_numeric_scope(pai, hostname, servname,
589 &cur->ai_next, &svd);
590
591 if (error)
592 goto free;
593
594 while (cur->ai_next)
595 cur = cur->ai_next;
596 }
597
598 /*
599 * XXX
600 * If numeric representation of AF1 can be interpreted as FQDN
601 * representation of AF2, we need to think again about the code below.
602 */
603 if (sentinel.ai_next) {
604 numeric = 1;
605 goto good;
606 }
607
608 if (hostname == NULL)
609 ERR(EAI_NODATA);
610 if (pai->ai_flags & AI_NUMERICHOST)
611 ERR(EAI_NONAME);
612
613 /*
614 * hostname as alphabetical name.
615 * we would like to prefer AF_INET6 than AF_INET, so we'll make a
616 * outer loop by AFs.
617 */
618 for (ex = explore; ex->e_af >= 0; ex++) {
619 *pai = ai0;
620
621
622 /* ADDRCONFIG check */
623 /* PF_UNSPEC entries are prepared for DNS queries only */
624 if (ex->e_af != PF_UNSPEC &&
625 (((uint64_t)1 << ex->e_af) & mask) == 0)
626 continue;
627
628 /* require exact match for family field */
629 if (pai->ai_family != ex->e_af)
630 continue;
631
632 if (!MATCH(pai->ai_socktype, ex->e_socktype,
633 WILD_SOCKTYPE(ex))) {
634 continue;
635 }
636 if (!MATCH(pai->ai_protocol, ex->e_protocol,
637 WILD_PROTOCOL(ex))) {
638 continue;
639 }
640
641 if (pai->ai_socktype == ANY && ex->e_socktype != ANY)
642 pai->ai_socktype = ex->e_socktype;
643 if (pai->ai_protocol == ANY && ex->e_protocol != ANY)
644 pai->ai_protocol = ex->e_protocol;
645
646 error = explore_fqdn(pai, hostname, servname, &cur->ai_next,
647 &svd);
648
649 while (cur && cur->ai_next)
650 cur = cur->ai_next;
651 }
652
653 /* XXX */
654 if (sentinel.ai_next)
655 error = 0;
656
657 if (error)
658 goto free;
659
660 if (sentinel.ai_next) {
661 good:
662 /*
663 * If the returned entry is for an active connection,
664 * and the given name is not numeric, reorder the
665 * list, so that the application would try the list
666 * in the most efficient order. Since the head entry
667 * of the original list may contain ai_canonname and
668 * that entry may be moved elsewhere in the new list,
669 * we keep the pointer and will restore it in the new
670 * head entry. (Note that RFC3493 requires the head
671 * entry store it when requested by the caller).
672 */
673 if (hints == NULL || !(hints->ai_flags & AI_PASSIVE)) {
674 if (!numeric) {
675 char *canonname;
676
677 canonname = sentinel.ai_next->ai_canonname;
678 sentinel.ai_next->ai_canonname = NULL;
679 (void)reorder(&sentinel, &svd);
680 if (sentinel.ai_next->ai_canonname == NULL) {
681 sentinel.ai_next->ai_canonname
682 = canonname;
683 } else if (canonname != NULL)
684 free(canonname);
685 }
686 }
687 endservent_r(&svd);
688 *res = sentinel.ai_next;
689 return SUCCESS;
690 } else
691 error = EAI_FAIL;
692 free:
693 bad:
694 endservent_r(&svd);
695 if (sentinel.ai_next)
696 freeaddrinfo(sentinel.ai_next);
697 *res = NULL;
698 return error;
699 }
700
701 static int
702 reorder(struct addrinfo *sentinel, struct servent_data *svd)
703 {
704 struct addrinfo *ai, **aip;
705 struct ai_order *aio;
706 int i, n;
707 struct policyhead policyhead;
708
709 /* count the number of addrinfo elements for sorting. */
710 for (n = 0, ai = sentinel->ai_next; ai != NULL; ai = ai->ai_next, n++)
711 ;
712
713 /*
714 * If the number is small enough, we can skip the reordering process.
715 */
716 if (n <= 1)
717 return n;
718
719 /* allocate a temporary array for sort and initialization of it. */
720 if ((aio = malloc(sizeof(*aio) * n)) == NULL)
721 return n; /* give up reordering */
722 memset(aio, 0, sizeof(*aio) * n);
723
724 /* retrieve address selection policy from the kernel */
725 TAILQ_INIT(&policyhead);
726 if (!get_addrselectpolicy(&policyhead)) {
727 /* no policy is installed into kernel, we don't sort. */
728 free(aio);
729 return n;
730 }
731
732 for (i = 0, ai = sentinel->ai_next; i < n; ai = ai->ai_next, i++) {
733 aio[i].aio_ai = ai;
734 aio[i].aio_dstscope = gai_addr2scopetype(ai->ai_addr);
735 aio[i].aio_dstpolicy = match_addrselectpolicy(ai->ai_addr,
736 &policyhead);
737 set_source(&aio[i], &policyhead, svd);
738 }
739
740 /* perform sorting. */
741 qsort(aio, n, sizeof(*aio), comp_dst);
742
743 /* reorder the addrinfo chain. */
744 for (i = 0, aip = &sentinel->ai_next; i < n; i++) {
745 *aip = aio[i].aio_ai;
746 aip = &aio[i].aio_ai->ai_next;
747 }
748 *aip = NULL;
749
750 /* cleanup and return */
751 free(aio);
752 free_addrselectpolicy(&policyhead);
753 return n;
754 }
755
756 static int
757 get_addrselectpolicy(struct policyhead *head)
758 {
759 #ifdef INET6
760 static const int mib[] = {
761 CTL_NET, PF_INET6, IPPROTO_IPV6, IPV6CTL_ADDRCTLPOLICY };
762 static const u_int miblen = (u_int)__arraycount(mib);
763 size_t l;
764 char *buf;
765 struct in6_addrpolicy *pol, *ep;
766
767 if (sysctl(mib, miblen, NULL, &l, NULL, 0) < 0)
768 return 0;
769 if (l == 0)
770 return 0;
771 if ((buf = malloc(l)) == NULL)
772 return 0;
773 if (sysctl(mib, miblen, buf, &l, NULL, 0) < 0) {
774 free(buf);
775 return 0;
776 }
777
778 ep = (void *)(buf + l);
779 for (pol = (void *)buf; pol + 1 <= ep; pol++) {
780 struct policyqueue *new;
781
782 if ((new = malloc(sizeof(*new))) == NULL) {
783 free_addrselectpolicy(head); /* make the list empty */
784 break;
785 }
786 new->pc_policy = *pol;
787 TAILQ_INSERT_TAIL(head, new, pc_entry);
788 }
789
790 free(buf);
791 return 1;
792 #else
793 return 0;
794 #endif
795 }
796
797 static void
798 free_addrselectpolicy(struct policyhead *head)
799 {
800 struct policyqueue *ent, *nent;
801
802 for (ent = TAILQ_FIRST(head); ent; ent = nent) {
803 nent = TAILQ_NEXT(ent, pc_entry);
804 TAILQ_REMOVE(head, ent, pc_entry);
805 free(ent);
806 }
807 }
808
809 static struct policyqueue *
810 match_addrselectpolicy(struct sockaddr *addr, struct policyhead *head)
811 {
812 #ifdef INET6
813 struct policyqueue *ent, *bestent = NULL;
814 struct in6_addrpolicy *pol;
815 int curmatchlen, bestmatchlen = -1;
816 u_char *mp, *ep, *k, *p;
817 u_int m;
818 struct sockaddr_in6 key;
819
820 switch(addr->sa_family) {
821 case AF_INET6:
822 memcpy(&key, addr, sizeof(key));
823 break;
824 case AF_INET:
825 /* convert the address into IPv4-mapped IPv6 address. */
826 memset(&key, 0, sizeof(key));
827 key.sin6_family = AF_INET6;
828 key.sin6_len = sizeof(key);
829 key.sin6_addr.s6_addr[10] = 0xff;
830 key.sin6_addr.s6_addr[11] = 0xff;
831 memcpy(&key.sin6_addr.s6_addr[12], sa4addr(addr), 4);
832 break;
833 default:
834 return NULL;
835 }
836
837 for (ent = TAILQ_FIRST(head); ent; ent = TAILQ_NEXT(ent, pc_entry)) {
838 pol = &ent->pc_policy;
839 curmatchlen = 0;
840
841 mp = (void *)&pol->addrmask.sin6_addr;
842 ep = mp + 16; /* XXX: scope field? */
843 k = (void *)&key.sin6_addr;
844 p = (void *)&pol->addr.sin6_addr;
845 for (; mp < ep && *mp; mp++, k++, p++) {
846 m = *mp;
847 if ((*k & m) != *p)
848 goto next; /* not match */
849 if (m == 0xff) /* short cut for a typical case */
850 curmatchlen += 8;
851 else {
852 while (m >= 0x80) {
853 curmatchlen++;
854 m <<= 1;
855 }
856 }
857 }
858
859 /* matched. check if this is better than the current best. */
860 if (curmatchlen > bestmatchlen) {
861 bestent = ent;
862 bestmatchlen = curmatchlen;
863 }
864
865 next:
866 continue;
867 }
868
869 return bestent;
870 #else
871 return NULL;
872 #endif
873
874 }
875
876 static void
877 set_source(struct ai_order *aio, struct policyhead *ph,
878 struct servent_data *svd)
879 {
880 struct addrinfo ai = *aio->aio_ai;
881 struct sockaddr_storage ss;
882 socklen_t srclen;
883 int s;
884
885 /* set unspec ("no source is available"), just in case */
886 aio->aio_srcsa.sa_family = AF_UNSPEC;
887 aio->aio_srcscope = -1;
888
889 switch(ai.ai_family) {
890 case AF_INET:
891 #ifdef INET6
892 case AF_INET6:
893 #endif
894 break;
895 default: /* ignore unsupported AFs explicitly */
896 return;
897 }
898
899 /* XXX: make a dummy addrinfo to call connect() */
900 ai.ai_socktype = SOCK_DGRAM;
901 ai.ai_protocol = IPPROTO_UDP; /* is UDP too specific? */
902 ai.ai_next = NULL;
903 memset(&ss, 0, sizeof(ss));
904 memcpy(&ss, ai.ai_addr, ai.ai_addrlen);
905 ai.ai_addr = (void *)&ss;
906 get_port(&ai, "1", 0, svd);
907
908 /* open a socket to get the source address for the given dst */
909 if ((s = socket(ai.ai_family, ai.ai_socktype | SOCK_CLOEXEC,
910 ai.ai_protocol)) < 0)
911 return; /* give up */
912 if (connect(s, ai.ai_addr, ai.ai_addrlen) < 0)
913 goto cleanup;
914 srclen = ai.ai_addrlen;
915 if (getsockname(s, &aio->aio_srcsa, &srclen) < 0) {
916 aio->aio_srcsa.sa_family = AF_UNSPEC;
917 goto cleanup;
918 }
919 aio->aio_srcscope = gai_addr2scopetype(&aio->aio_srcsa);
920 aio->aio_srcpolicy = match_addrselectpolicy(&aio->aio_srcsa, ph);
921 aio->aio_matchlen = matchlen(&aio->aio_srcsa, aio->aio_ai->ai_addr);
922 #ifdef INET6
923 if (ai.ai_family == AF_INET6) {
924 struct in6_ifreq ifr6;
925 u_int32_t flags6;
926
927 memset(&ifr6, 0, sizeof(ifr6));
928 memcpy(&ifr6.ifr_addr, ai.ai_addr, ai.ai_addrlen);
929 if (ioctl(s, SIOCGIFAFLAG_IN6, &ifr6) == 0) {
930 flags6 = ifr6.ifr_ifru.ifru_flags6;
931 if ((flags6 & IN6_IFF_DEPRECATED))
932 aio->aio_srcflag |= AIO_SRCFLAG_DEPRECATED;
933 }
934 }
935 #endif
936
937 cleanup:
938 close(s);
939 return;
940 }
941
942 static int
943 matchlen(struct sockaddr *src, struct sockaddr *dst)
944 {
945 int match = 0;
946 u_char *s, *d;
947 u_char *lim;
948 u_int r, addrlen;
949
950 switch (src->sa_family) {
951 #ifdef INET6
952 case AF_INET6:
953 s = sa6addr(src);
954 d = sa6addr(dst);
955 addrlen = sizeof(struct in6_addr);
956 lim = s + addrlen;
957 break;
958 #endif
959 case AF_INET:
960 s = sa4addr(src);
961 d = sa4addr(dst);
962 addrlen = sizeof(struct in_addr);
963 lim = s + addrlen;
964 break;
965 default:
966 return 0;
967 }
968
969 while (s < lim)
970 if ((r = (*d++ ^ *s++)) != 0) {
971 while (r < addrlen * 8) {
972 match++;
973 r <<= 1;
974 }
975 break;
976 } else
977 match += 8;
978 return match;
979 }
980
981 static int
982 comp_dst(const void *arg1, const void *arg2)
983 {
984 const struct ai_order *dst1 = arg1, *dst2 = arg2;
985
986 /*
987 * Rule 1: Avoid unusable destinations.
988 * XXX: we currently do not consider if an appropriate route exists.
989 */
990 if (dst1->aio_srcsa.sa_family != AF_UNSPEC &&
991 dst2->aio_srcsa.sa_family == AF_UNSPEC) {
992 return -1;
993 }
994 if (dst1->aio_srcsa.sa_family == AF_UNSPEC &&
995 dst2->aio_srcsa.sa_family != AF_UNSPEC) {
996 return 1;
997 }
998
999 /* Rule 2: Prefer matching scope. */
1000 if (dst1->aio_dstscope == dst1->aio_srcscope &&
1001 dst2->aio_dstscope != dst2->aio_srcscope) {
1002 return -1;
1003 }
1004 if (dst1->aio_dstscope != dst1->aio_srcscope &&
1005 dst2->aio_dstscope == dst2->aio_srcscope) {
1006 return 1;
1007 }
1008
1009 /* Rule 3: Avoid deprecated addresses. */
1010 if (dst1->aio_srcsa.sa_family != AF_UNSPEC &&
1011 dst2->aio_srcsa.sa_family != AF_UNSPEC) {
1012 if (!(dst1->aio_srcflag & AIO_SRCFLAG_DEPRECATED) &&
1013 (dst2->aio_srcflag & AIO_SRCFLAG_DEPRECATED)) {
1014 return -1;
1015 }
1016 if ((dst1->aio_srcflag & AIO_SRCFLAG_DEPRECATED) &&
1017 !(dst2->aio_srcflag & AIO_SRCFLAG_DEPRECATED)) {
1018 return 1;
1019 }
1020 }
1021
1022 /* Rule 4: Prefer home addresses. */
1023 /* XXX: not implemented yet */
1024
1025 /* Rule 5: Prefer matching label. */
1026 #ifdef INET6
1027 if (dst1->aio_srcpolicy && dst1->aio_dstpolicy &&
1028 dst1->aio_srcpolicy->pc_policy.label ==
1029 dst1->aio_dstpolicy->pc_policy.label &&
1030 (dst2->aio_srcpolicy == NULL || dst2->aio_dstpolicy == NULL ||
1031 dst2->aio_srcpolicy->pc_policy.label !=
1032 dst2->aio_dstpolicy->pc_policy.label)) {
1033 return -1;
1034 }
1035 if (dst2->aio_srcpolicy && dst2->aio_dstpolicy &&
1036 dst2->aio_srcpolicy->pc_policy.label ==
1037 dst2->aio_dstpolicy->pc_policy.label &&
1038 (dst1->aio_srcpolicy == NULL || dst1->aio_dstpolicy == NULL ||
1039 dst1->aio_srcpolicy->pc_policy.label !=
1040 dst1->aio_dstpolicy->pc_policy.label)) {
1041 return 1;
1042 }
1043 #endif
1044
1045 /* Rule 6: Prefer higher precedence. */
1046 #ifdef INET6
1047 if (dst1->aio_dstpolicy &&
1048 (dst2->aio_dstpolicy == NULL ||
1049 dst1->aio_dstpolicy->pc_policy.preced >
1050 dst2->aio_dstpolicy->pc_policy.preced)) {
1051 return -1;
1052 }
1053 if (dst2->aio_dstpolicy &&
1054 (dst1->aio_dstpolicy == NULL ||
1055 dst2->aio_dstpolicy->pc_policy.preced >
1056 dst1->aio_dstpolicy->pc_policy.preced)) {
1057 return 1;
1058 }
1059 #endif
1060
1061 /* Rule 7: Prefer native transport. */
1062 /* XXX: not implemented yet */
1063
1064 /* Rule 8: Prefer smaller scope. */
1065 if (dst1->aio_dstscope >= 0 &&
1066 dst1->aio_dstscope < dst2->aio_dstscope) {
1067 return -1;
1068 }
1069 if (dst2->aio_dstscope >= 0 &&
1070 dst2->aio_dstscope < dst1->aio_dstscope) {
1071 return 1;
1072 }
1073
1074 /*
1075 * Rule 9: Use longest matching prefix.
1076 * We compare the match length in a same AF only.
1077 */
1078 if (dst1->aio_ai->ai_addr->sa_family ==
1079 dst2->aio_ai->ai_addr->sa_family &&
1080 dst1->aio_ai->ai_addr->sa_family != AF_INET) {
1081 if (dst1->aio_matchlen > dst2->aio_matchlen) {
1082 return -1;
1083 }
1084 if (dst1->aio_matchlen < dst2->aio_matchlen) {
1085 return 1;
1086 }
1087 }
1088
1089 /* Rule 10: Otherwise, leave the order unchanged. */
1090 return -1;
1091 }
1092
1093 /*
1094 * Copy from scope.c.
1095 * XXX: we should standardize the functions and link them as standard
1096 * library.
1097 */
1098 static int
1099 gai_addr2scopetype(struct sockaddr *sa)
1100 {
1101 #ifdef INET6
1102 struct sockaddr_in6 *sa6;
1103 #endif
1104 struct sockaddr_in *sa4;
1105 u_char *p;
1106
1107 switch(sa->sa_family) {
1108 #ifdef INET6
1109 case AF_INET6:
1110 sa6 = (void *)sa;
1111 if (IN6_IS_ADDR_MULTICAST(&sa6->sin6_addr)) {
1112 /* just use the scope field of the multicast address */
1113 return sa6->sin6_addr.s6_addr[2] & 0x0f;
1114 }
1115 /*
1116 * Unicast addresses: map scope type to corresponding scope
1117 * value defined for multcast addresses.
1118 * XXX: hardcoded scope type values are bad...
1119 */
1120 if (IN6_IS_ADDR_LOOPBACK(&sa6->sin6_addr))
1121 return 1; /* node local scope */
1122 if (IN6_IS_ADDR_LINKLOCAL(&sa6->sin6_addr))
1123 return 2; /* link-local scope */
1124 if (IN6_IS_ADDR_SITELOCAL(&sa6->sin6_addr))
1125 return 5; /* site-local scope */
1126 return 14; /* global scope */
1127 #endif
1128 case AF_INET:
1129 /*
1130 * IPv4 pseudo scoping according to RFC 3484.
1131 */
1132 sa4 = (void *)sa;
1133 p = (u_char *)(void *)&sa4->sin_addr;
1134 /* IPv4 autoconfiguration addresses have link-local scope. */
1135 if (p[0] == 169 && p[1] == 254)
1136 return 2;
1137 /* Private addresses have site-local scope. */
1138 if (p[0] == 10 ||
1139 (p[0] == 172 && (p[1] & 0xf0) == 16) ||
1140 (p[0] == 192 && p[1] == 168))
1141 return 14; /* XXX: It should be 5 unless NAT */
1142 /* Loopback addresses have link-local scope. */
1143 if (p[0] == 127)
1144 return 2;
1145 return 14;
1146 default:
1147 errno = EAFNOSUPPORT; /* is this a good error? */
1148 return -1;
1149 }
1150 }
1151
1152 /*
1153 * FQDN hostname, DNS lookup
1154 */
1155 static int
1156 explore_fqdn(const struct addrinfo *pai, const char *hostname,
1157 const char *servname, struct addrinfo **res, struct servent_data *svd)
1158 {
1159 struct addrinfo *result;
1160 struct addrinfo *cur;
1161 int error = 0;
1162 static const ns_dtab dtab[] = {
1163 NS_FILES_CB(_files_getaddrinfo, NULL)
1164 { NSSRC_DNS, _dns_getaddrinfo, NULL }, /* force -DHESIOD */
1165 NS_NIS_CB(_yp_getaddrinfo, NULL)
1166 NS_NULL_CB
1167 };
1168
1169 _DIAGASSERT(pai != NULL);
1170 /* hostname may be NULL */
1171 /* servname may be NULL */
1172 _DIAGASSERT(res != NULL);
1173
1174 result = NULL;
1175
1176 /*
1177 * if the servname does not match socktype/protocol, ignore it.
1178 */
1179 if (get_portmatch(pai, servname, svd) != 0)
1180 return 0;
1181
1182 switch (nsdispatch(&result, dtab, NSDB_HOSTS, "getaddrinfo",
1183 default_dns_files, hostname, pai, servname)) {
1184 case NS_TRYAGAIN:
1185 error = EAI_AGAIN;
1186 goto free;
1187 case NS_UNAVAIL:
1188 error = EAI_FAIL;
1189 goto free;
1190 case NS_NOTFOUND:
1191 error = EAI_NONAME;
1192 goto free;
1193 case NS_SUCCESS:
1194 error = 0;
1195 for (cur = result; cur; cur = cur->ai_next) {
1196 /* Check for already filled port. */
1197 if (*getport(cur))
1198 continue;
1199 GET_PORT(cur, servname, svd);
1200 /* canonname should be filled already */
1201 }
1202 break;
1203 }
1204
1205 *res = result;
1206
1207 return 0;
1208
1209 free:
1210 if (result)
1211 freeaddrinfo(result);
1212 return error;
1213 }
1214
1215 /*
1216 * hostname == NULL.
1217 * passive socket -> anyaddr (0.0.0.0 or ::)
1218 * non-passive socket -> localhost (127.0.0.1 or ::1)
1219 */
1220 static int
1221 explore_null(const struct addrinfo *pai, const char *servname,
1222 struct addrinfo **res, struct servent_data *svd)
1223 {
1224 int s;
1225 const struct afd *afd;
1226 struct addrinfo *cur;
1227 struct addrinfo sentinel;
1228 int error;
1229
1230 _DIAGASSERT(pai != NULL);
1231 /* servname may be NULL */
1232 _DIAGASSERT(res != NULL);
1233
1234 *res = NULL;
1235 sentinel.ai_next = NULL;
1236 cur = &sentinel;
1237
1238 /*
1239 * filter out AFs that are not supported by the kernel
1240 * XXX errno?
1241 */
1242 s = socket(pai->ai_family, SOCK_DGRAM, 0);
1243 if (s < 0) {
1244 if (errno != EMFILE)
1245 return 0;
1246 } else
1247 close(s);
1248
1249 /*
1250 * if the servname does not match socktype/protocol, ignore it.
1251 */
1252 if (get_portmatch(pai, servname, svd) != 0)
1253 return 0;
1254
1255 afd = find_afd(pai->ai_family);
1256 if (afd == NULL)
1257 return 0;
1258
1259 if (pai->ai_flags & AI_PASSIVE) {
1260 GET_AI(cur->ai_next, afd, afd->a_addrany);
1261 /* xxx meaningless?
1262 * GET_CANONNAME(cur->ai_next, "anyaddr");
1263 */
1264 GET_PORT(cur->ai_next, servname, svd);
1265 } else {
1266 GET_AI(cur->ai_next, afd, afd->a_loopback);
1267 /* xxx meaningless?
1268 * GET_CANONNAME(cur->ai_next, "localhost");
1269 */
1270 GET_PORT(cur->ai_next, servname, svd);
1271 }
1272 cur = cur->ai_next;
1273
1274 *res = sentinel.ai_next;
1275 return 0;
1276
1277 free:
1278 if (sentinel.ai_next)
1279 freeaddrinfo(sentinel.ai_next);
1280 return error;
1281 }
1282
1283 /*
1284 * numeric hostname
1285 */
1286 static int
1287 explore_numeric(const struct addrinfo *pai, const char *hostname,
1288 const char *servname, struct addrinfo **res, const char *canonname,
1289 struct servent_data *svd)
1290 {
1291 const struct afd *afd;
1292 struct addrinfo *cur;
1293 struct addrinfo sentinel;
1294 int error;
1295 char pton[PTON_MAX];
1296
1297 _DIAGASSERT(pai != NULL);
1298 /* hostname may be NULL */
1299 /* servname may be NULL */
1300 _DIAGASSERT(res != NULL);
1301
1302 *res = NULL;
1303 sentinel.ai_next = NULL;
1304 cur = &sentinel;
1305
1306 /*
1307 * if the servname does not match socktype/protocol, ignore it.
1308 */
1309 if (get_portmatch(pai, servname, svd) != 0)
1310 return 0;
1311
1312 afd = find_afd(pai->ai_family);
1313 if (afd == NULL)
1314 return 0;
1315
1316 switch (afd->a_af) {
1317 case AF_INET:
1318 /*
1319 * RFC3493 section 6.1, requires getaddrinfo() to accept
1320 * AF_INET formats that are accepted by inet_addr(); here
1321 * we use the equivalent inet_aton() function so we can
1322 * check for errors. inet_pton() only accepts addresses
1323 * in the dotted quad format and only in base 10, so we
1324 * need to treat AF_INET specially.
1325 */
1326 if (inet_aton(hostname, (void *)pton) == 1) {
1327 if (pai->ai_family == afd->a_af ||
1328 pai->ai_family == PF_UNSPEC /*?*/) {
1329 GET_AI(cur->ai_next, afd, pton);
1330 GET_PORT(cur->ai_next, servname, svd);
1331 if ((pai->ai_flags & AI_CANONNAME)) {
1332 /*
1333 * Set the numeric address itself as
1334 * the canonical name, based on a
1335 * clarification in rfc2553bis-03.
1336 */
1337 GET_CANONNAME(cur->ai_next, canonname);
1338 }
1339 while (cur && cur->ai_next)
1340 cur = cur->ai_next;
1341 } else
1342 ERR(EAI_FAMILY); /*xxx*/
1343 }
1344 break;
1345 default:
1346 if (inet_pton(afd->a_af, hostname, pton) == 1) {
1347 if (pai->ai_family == afd->a_af ||
1348 pai->ai_family == PF_UNSPEC /*?*/) {
1349 GET_AI(cur->ai_next, afd, pton);
1350 GET_PORT(cur->ai_next, servname, svd);
1351 if ((pai->ai_flags & AI_CANONNAME)) {
1352 /*
1353 * Set the numeric address itself as
1354 * the canonical name, based on a
1355 * clarification in rfc2553bis-03.
1356 */
1357 GET_CANONNAME(cur->ai_next, canonname);
1358 }
1359 while (cur->ai_next)
1360 cur = cur->ai_next;
1361 } else
1362 ERR(EAI_FAMILY); /*xxx*/
1363 }
1364 break;
1365 }
1366
1367 *res = sentinel.ai_next;
1368 return 0;
1369
1370 free:
1371 bad:
1372 if (sentinel.ai_next)
1373 freeaddrinfo(sentinel.ai_next);
1374 return error;
1375 }
1376
1377 /*
1378 * numeric hostname with scope
1379 */
1380 static int
1381 explore_numeric_scope(const struct addrinfo *pai, const char *hostname,
1382 const char *servname, struct addrinfo **res, struct servent_data *svd)
1383 {
1384 #if !defined(SCOPE_DELIMITER) || !defined(INET6)
1385 return explore_numeric(pai, hostname, servname, res, hostname, svd);
1386 #else
1387 const struct afd *afd;
1388 struct addrinfo *cur;
1389 int error;
1390 char *cp, *hostname2 = NULL, *scope, *addr;
1391 struct sockaddr_in6 *sin6;
1392
1393 _DIAGASSERT(pai != NULL);
1394 /* hostname may be NULL */
1395 /* servname may be NULL */
1396 _DIAGASSERT(res != NULL);
1397
1398 /*
1399 * if the servname does not match socktype/protocol, ignore it.
1400 */
1401 if (get_portmatch(pai, servname, svd) != 0)
1402 return 0;
1403
1404 afd = find_afd(pai->ai_family);
1405 if (afd == NULL)
1406 return 0;
1407
1408 if (!afd->a_scoped)
1409 return explore_numeric(pai, hostname, servname, res, hostname,
1410 svd);
1411
1412 cp = strchr(hostname, SCOPE_DELIMITER);
1413 if (cp == NULL)
1414 return explore_numeric(pai, hostname, servname, res, hostname,
1415 svd);
1416
1417 /*
1418 * Handle special case of <scoped_address><delimiter><scope id>
1419 */
1420 hostname2 = strdup(hostname);
1421 if (hostname2 == NULL)
1422 return EAI_MEMORY;
1423 /* terminate at the delimiter */
1424 hostname2[cp - hostname] = '\0';
1425 addr = hostname2;
1426 scope = cp + 1;
1427
1428 error = explore_numeric(pai, addr, servname, res, hostname, svd);
1429 if (error == 0) {
1430 u_int32_t scopeid;
1431
1432 for (cur = *res; cur; cur = cur->ai_next) {
1433 if (cur->ai_family != AF_INET6)
1434 continue;
1435 sin6 = (struct sockaddr_in6 *)(void *)cur->ai_addr;
1436 if (ip6_str2scopeid(scope, sin6, &scopeid) == -1) {
1437 free(hostname2);
1438 return EAI_NODATA; /* XXX: is return OK? */
1439 }
1440 sin6->sin6_scope_id = scopeid;
1441 }
1442 }
1443
1444 free(hostname2);
1445
1446 return error;
1447 #endif
1448 }
1449
1450 static int
1451 get_canonname(const struct addrinfo *pai, struct addrinfo *ai, const char *str)
1452 {
1453
1454 _DIAGASSERT(pai != NULL);
1455 _DIAGASSERT(ai != NULL);
1456 _DIAGASSERT(str != NULL);
1457
1458 if ((pai->ai_flags & AI_CANONNAME) != 0) {
1459 ai->ai_canonname = strdup(str);
1460 if (ai->ai_canonname == NULL)
1461 return EAI_MEMORY;
1462 }
1463 return 0;
1464 }
1465
1466 struct addrinfo *
1467 allocaddrinfo(socklen_t addrlen)
1468 {
1469 struct addrinfo *ai;
1470
1471 ai = calloc(sizeof(struct addrinfo) + addrlen, 1);
1472 if (ai) {
1473 ai->ai_addr = (void *)(ai+1);
1474 ai->ai_addrlen = ai->ai_addr->sa_len = addrlen;
1475 }
1476
1477 return ai;
1478 }
1479
1480 static struct addrinfo *
1481 get_ai(const struct addrinfo *pai, const struct afd *afd, const char *addr)
1482 {
1483 char *p;
1484 struct addrinfo *ai;
1485 struct sockaddr *save;
1486
1487 _DIAGASSERT(pai != NULL);
1488 _DIAGASSERT(afd != NULL);
1489 _DIAGASSERT(addr != NULL);
1490
1491 ai = allocaddrinfo((socklen_t)afd->a_socklen);
1492 if (ai == NULL)
1493 return NULL;
1494
1495 save = ai->ai_addr;
1496 memcpy(ai, pai, sizeof(struct addrinfo));
1497
1498 /* since we just overwrote all of ai, we have
1499 to restore ai_addr and ai_addrlen */
1500 ai->ai_addr = save;
1501 ai->ai_addrlen = (socklen_t)afd->a_socklen;
1502
1503 ai->ai_addr->sa_family = ai->ai_family = afd->a_af;
1504 p = (char *)(void *)(ai->ai_addr);
1505 memcpy(p + afd->a_off, addr, (size_t)afd->a_addrlen);
1506 return ai;
1507 }
1508
1509 static int
1510 get_portmatch(const struct addrinfo *ai, const char *servname,
1511 struct servent_data *svd)
1512 {
1513
1514 _DIAGASSERT(ai != NULL);
1515 /* servname may be NULL */
1516
1517 return get_port(ai, servname, 1, svd);
1518 }
1519
1520 static int
1521 get_port(const struct addrinfo *ai, const char *servname, int matchonly,
1522 struct servent_data *svd)
1523 {
1524 const char *proto;
1525 struct servent *sp;
1526 int port;
1527 int allownumeric;
1528
1529 _DIAGASSERT(ai != NULL);
1530 /* servname may be NULL */
1531
1532 if (servname == NULL)
1533 return 0;
1534 switch (ai->ai_family) {
1535 case AF_INET:
1536 #ifdef AF_INET6
1537 case AF_INET6:
1538 #endif
1539 break;
1540 default:
1541 return 0;
1542 }
1543
1544 switch (ai->ai_socktype) {
1545 case SOCK_RAW:
1546 return EAI_SERVICE;
1547 case SOCK_DGRAM:
1548 case SOCK_STREAM:
1549 allownumeric = 1;
1550 break;
1551 case ANY:
1552 /*
1553 * This was 0. It is now 1 so that queries specifying
1554 * a NULL hint, or hint without socktype (but, hopefully,
1555 * with protocol) and numeric address actually work.
1556 */
1557 allownumeric = 1;
1558 break;
1559 default:
1560 return EAI_SOCKTYPE;
1561 }
1562
1563 port = str2number(servname);
1564 if (port >= 0) {
1565 if (!allownumeric)
1566 return EAI_SERVICE;
1567 if (port < 0 || port > 65535)
1568 return EAI_SERVICE;
1569 port = htons(port);
1570 } else {
1571 struct servent sv;
1572 if (ai->ai_flags & AI_NUMERICSERV)
1573 return EAI_NONAME;
1574
1575 switch (ai->ai_socktype) {
1576 case SOCK_DGRAM:
1577 proto = "udp";
1578 break;
1579 case SOCK_STREAM:
1580 proto = "tcp";
1581 break;
1582 default:
1583 proto = NULL;
1584 break;
1585 }
1586
1587 sp = getservbyname_r(servname, proto, &sv, svd);
1588 if (sp == NULL)
1589 return EAI_SERVICE;
1590 port = sp->s_port;
1591 }
1592
1593 if (!matchonly)
1594 *getport(__UNCONST(ai)) = port;
1595 return 0;
1596 }
1597
1598 static const struct afd *
1599 find_afd(int af)
1600 {
1601 const struct afd *afd;
1602
1603 if (af == PF_UNSPEC)
1604 return NULL;
1605 for (afd = afdl; afd->a_af; afd++) {
1606 if (afd->a_af == af)
1607 return afd;
1608 }
1609 return NULL;
1610 }
1611
1612 /*
1613 * AI_ADDRCONFIG check: Build a mask containing a bit set for each address
1614 * family configured in the system.
1615 *
1616 */
1617 static int
1618 addrconfig(uint64_t *mask)
1619 {
1620 struct ifaddrs *ifaddrs, *ifa;
1621
1622 if (getifaddrs(&ifaddrs) == -1)
1623 return -1;
1624
1625 *mask = 0;
1626 for (ifa = ifaddrs; ifa != NULL; ifa = ifa->ifa_next)
1627 if (ifa->ifa_addr && (ifa->ifa_flags & IFF_UP)) {
1628 _DIAGASSERT(ifa->ifa_addr->sa_family < 64);
1629 *mask |= (uint64_t)1 << ifa->ifa_addr->sa_family;
1630 }
1631
1632 freeifaddrs(ifaddrs);
1633 return 0;
1634 }
1635
1636 #ifdef INET6
1637 /* convert a string to a scope identifier. XXX: IPv6 specific */
1638 static int
1639 ip6_str2scopeid(char *scope, struct sockaddr_in6 *sin6, u_int32_t *scopeid)
1640 {
1641 u_long lscopeid;
1642 struct in6_addr *a6;
1643 char *ep;
1644
1645 _DIAGASSERT(scope != NULL);
1646 _DIAGASSERT(sin6 != NULL);
1647 _DIAGASSERT(scopeid != NULL);
1648
1649 a6 = &sin6->sin6_addr;
1650
1651 /* empty scopeid portion is invalid */
1652 if (*scope == '\0')
1653 return -1;
1654
1655 if (IN6_IS_ADDR_LINKLOCAL(a6) || IN6_IS_ADDR_MC_LINKLOCAL(a6)) {
1656 /*
1657 * We currently assume a one-to-one mapping between links
1658 * and interfaces, so we simply use interface indices for
1659 * like-local scopes.
1660 */
1661 *scopeid = if_nametoindex(scope);
1662 if (*scopeid == 0)
1663 goto trynumeric;
1664 return 0;
1665 }
1666
1667 /* still unclear about literal, allow numeric only - placeholder */
1668 if (IN6_IS_ADDR_SITELOCAL(a6) || IN6_IS_ADDR_MC_SITELOCAL(a6))
1669 goto trynumeric;
1670 if (IN6_IS_ADDR_MC_ORGLOCAL(a6))
1671 goto trynumeric;
1672 else
1673 goto trynumeric; /* global */
1674
1675 /* try to convert to a numeric id as a last resort */
1676 trynumeric:
1677 errno = 0;
1678 lscopeid = strtoul(scope, &ep, 10);
1679 *scopeid = (u_int32_t)(lscopeid & 0xffffffffUL);
1680 if (errno == 0 && ep && *ep == '\0' && *scopeid == lscopeid)
1681 return 0;
1682 else
1683 return -1;
1684 }
1685 #endif
1686
1687 /* code duplicate with gethnamaddr.c */
1688
1689 static const char AskedForGot[] =
1690 "gethostby*.getanswer: asked for \"%s\", got \"%s\"";
1691
1692 #define maybe_ok(res, nm, ok) (((res)->options & RES_NOCHECKNAME) != 0U || \
1693 (ok)(nm) != 0)
1694 static struct addrinfo *
1695 getanswer(res_state res, const querybuf *answer, int anslen, const char *qname,
1696 int qtype, const struct addrinfo *pai)
1697 {
1698 struct addrinfo sentinel, *cur;
1699 struct addrinfo ai, *aip;
1700 const struct afd *afd;
1701 char *canonname;
1702 const HEADER *hp;
1703 const u_char *cp;
1704 int n;
1705 const u_char *eom;
1706 char *bp, *ep;
1707 int type, class, ancount, qdcount;
1708 int haveanswer, had_error;
1709 char tbuf[MAXDNAME];
1710 int (*name_ok) (const char *);
1711 char hostbuf[8*1024];
1712 int port, pri, weight;
1713 struct srvinfo *srvlist, *srv, *csrv;
1714
1715 _DIAGASSERT(answer != NULL);
1716 _DIAGASSERT(qname != NULL);
1717 _DIAGASSERT(pai != NULL);
1718 _DIAGASSERT(res != NULL);
1719
1720 memset(&sentinel, 0, sizeof(sentinel));
1721 cur = &sentinel;
1722
1723 canonname = NULL;
1724 eom = answer->buf + anslen;
1725 switch (qtype) {
1726 case T_A:
1727 case T_AAAA:
1728 case T_ANY: /*use T_ANY only for T_A/T_AAAA lookup*/
1729 name_ok = res_hnok;
1730 break;
1731 case T_SRV:
1732 name_ok = gai_srvok;
1733 break;
1734 default:
1735 return NULL; /* XXX should be abort(); */
1736 }
1737 /*
1738 * find first satisfactory answer
1739 */
1740 hp = &answer->hdr;
1741 ancount = ntohs(hp->ancount);
1742 qdcount = ntohs(hp->qdcount);
1743 bp = hostbuf;
1744 ep = hostbuf + sizeof hostbuf;
1745 cp = answer->buf + HFIXEDSZ;
1746 if (qdcount != 1) {
1747 h_errno = NO_RECOVERY;
1748 return NULL;
1749 }
1750 n = dn_expand(answer->buf, eom, cp, bp, (int)(ep - bp));
1751 if ((n < 0) || !maybe_ok(res, bp, name_ok)) {
1752 h_errno = NO_RECOVERY;
1753 return NULL;
1754 }
1755 cp += n + QFIXEDSZ;
1756 if (qtype == T_A || qtype == T_AAAA || qtype == T_ANY) {
1757 /* res_send() has already verified that the query name is the
1758 * same as the one we sent; this just gets the expanded name
1759 * (i.e., with the succeeding search-domain tacked on).
1760 */
1761 n = (int)strlen(bp) + 1; /* for the \0 */
1762 if (n >= MAXHOSTNAMELEN) {
1763 h_errno = NO_RECOVERY;
1764 return NULL;
1765 }
1766 canonname = bp;
1767 bp += n;
1768 /* The qname can be abbreviated, but h_name is now absolute. */
1769 qname = canonname;
1770 }
1771 haveanswer = 0;
1772 had_error = 0;
1773 srvlist = NULL;
1774 while (ancount-- > 0 && cp < eom && !had_error) {
1775 n = dn_expand(answer->buf, eom, cp, bp, (int)(ep - bp));
1776 if ((n < 0) || !maybe_ok(res, bp, name_ok)) {
1777 had_error++;
1778 continue;
1779 }
1780 cp += n; /* name */
1781 type = _getshort(cp);
1782 cp += INT16SZ; /* type */
1783 class = _getshort(cp);
1784 cp += INT16SZ + INT32SZ; /* class, TTL */
1785 n = _getshort(cp);
1786 cp += INT16SZ; /* len */
1787 if (class != C_IN) {
1788 /* XXX - debug? syslog? */
1789 cp += n;
1790 continue; /* XXX - had_error++ ? */
1791 }
1792 if ((qtype == T_A || qtype == T_AAAA || qtype == T_ANY) &&
1793 type == T_CNAME) {
1794 n = dn_expand(answer->buf, eom, cp, tbuf, (int)sizeof tbuf);
1795 if ((n < 0) || !maybe_ok(res, tbuf, name_ok)) {
1796 had_error++;
1797 continue;
1798 }
1799 cp += n;
1800 /* Get canonical name. */
1801 n = (int)strlen(tbuf) + 1; /* for the \0 */
1802 if (n > ep - bp || n >= MAXHOSTNAMELEN) {
1803 had_error++;
1804 continue;
1805 }
1806 strlcpy(bp, tbuf, (size_t)(ep - bp));
1807 canonname = bp;
1808 bp += n;
1809 continue;
1810 }
1811 if (qtype == T_ANY) {
1812 if (!(type == T_A || type == T_AAAA)) {
1813 cp += n;
1814 continue;
1815 }
1816 } else if (type != qtype) {
1817 if (type != T_KEY && type != T_SIG && type != T_DNAME) {
1818 struct syslog_data sd = SYSLOG_DATA_INIT;
1819 syslog_r(LOG_NOTICE|LOG_AUTH, &sd,
1820 "gethostby*.getanswer: asked for \"%s %s %s\", got type \"%s\"",
1821 qname, p_class(C_IN), p_type(qtype),
1822 p_type(type));
1823 }
1824 cp += n;
1825 continue; /* XXX - had_error++ ? */
1826 }
1827 switch (type) {
1828 case T_A:
1829 case T_AAAA:
1830 if (strcasecmp(canonname, bp) != 0) {
1831 struct syslog_data sd = SYSLOG_DATA_INIT;
1832 syslog_r(LOG_NOTICE|LOG_AUTH, &sd,
1833 AskedForGot, canonname, bp);
1834 cp += n;
1835 continue; /* XXX - had_error++ ? */
1836 }
1837 if (type == T_A && n != INADDRSZ) {
1838 cp += n;
1839 continue;
1840 }
1841 if (type == T_AAAA && n != IN6ADDRSZ) {
1842 cp += n;
1843 continue;
1844 }
1845 if (type == T_AAAA) {
1846 struct in6_addr in6;
1847 memcpy(&in6, cp, IN6ADDRSZ);
1848 if (IN6_IS_ADDR_V4MAPPED(&in6)) {
1849 cp += n;
1850 continue;
1851 }
1852 }
1853 if (!haveanswer) {
1854 int nn;
1855
1856 canonname = bp;
1857 nn = (int)strlen(bp) + 1; /* for the \0 */
1858 bp += nn;
1859 }
1860
1861 /* don't overwrite pai */
1862 ai = *pai;
1863 ai.ai_family = (type == T_A) ? AF_INET : AF_INET6;
1864 afd = find_afd(ai.ai_family);
1865 if (afd == NULL) {
1866 cp += n;
1867 continue;
1868 }
1869 cur->ai_next = get_ai(&ai, afd, (const char *)cp);
1870 if (cur->ai_next == NULL)
1871 had_error++;
1872 while (cur && cur->ai_next)
1873 cur = cur->ai_next;
1874 cp += n;
1875 break;
1876 case T_SRV:
1877 /* Add to SRV list. Insertion sort on priority. */
1878 pri = _getshort(cp);
1879 cp += INT16SZ;
1880 weight = _getshort(cp);
1881 cp += INT16SZ;
1882 port = _getshort(cp);
1883 cp += INT16SZ;
1884 n = dn_expand(answer->buf, eom, cp, tbuf,
1885 (int)sizeof(tbuf));
1886 if ((n < 0) || !maybe_ok(res, tbuf, res_hnok)) {
1887 had_error++;
1888 continue;
1889 }
1890 cp += n;
1891 if (strlen(tbuf) + 1 >= MAXDNAME) {
1892 had_error++;
1893 continue;
1894 }
1895 srv = malloc(sizeof(*srv));
1896 if (!srv) {
1897 had_error++;
1898 continue;
1899 }
1900 strlcpy(srv->name, tbuf, sizeof(srv->name));
1901 srv->pri = pri;
1902 srv->weight = weight;
1903 srv->port = port;
1904 /* Weight 0 is sorted before other weights. */
1905 if (!srvlist
1906 || srv->pri < srvlist->pri
1907 || (srv->pri == srvlist->pri &&
1908 (!srv->weight || srvlist->weight))) {
1909 srv->next = srvlist;
1910 srvlist = srv;
1911 } else {
1912 for (csrv = srvlist;
1913 csrv->next && csrv->next->pri <= srv->pri;
1914 csrv = csrv->next) {
1915 if (csrv->next->pri == srv->pri
1916 && (!srv->weight ||
1917 csrv->next->weight))
1918 break;
1919 }
1920 srv->next = csrv->next;
1921 csrv->next = srv;
1922 }
1923 continue; /* Don't add to haveanswer yet. */
1924 default:
1925 abort();
1926 }
1927 if (!had_error)
1928 haveanswer++;
1929 }
1930
1931 if (srvlist) {
1932 /*
1933 * Check for explicit rejection.
1934 */
1935 if (!srvlist->next && !srvlist->name[0]) {
1936 free(srvlist);
1937 h_errno = HOST_NOT_FOUND;
1938 return NULL;
1939 }
1940
1941 while (srvlist) {
1942 struct res_target q, q2;
1943
1944 srv = srvlist;
1945 srvlist = srvlist->next;
1946
1947 /*
1948 * Since res_* doesn't give the additional
1949 * section, we always look up.
1950 */
1951 memset(&q, 0, sizeof(q));
1952 memset(&q2, 0, sizeof(q2));
1953
1954 q.name = srv->name;
1955 q.qclass = C_IN;
1956 q.qtype = T_AAAA;
1957 q.next = &q2;
1958 q2.name = srv->name;
1959 q2.qclass = C_IN;
1960 q2.qtype = T_A;
1961
1962 aip = _dns_query(&q, pai, res, 0);
1963
1964 if (aip != NULL) {
1965 cur->ai_next = aip;
1966 while (cur && cur->ai_next) {
1967 cur = cur->ai_next;
1968 *getport(cur) = htons(srv->port);
1969 haveanswer++;
1970 }
1971 }
1972 free(srv);
1973 }
1974 }
1975 if (haveanswer) {
1976 if (!sentinel.ai_next->ai_canonname)
1977 (void)get_canonname(pai, sentinel.ai_next,
1978 canonname ? canonname : qname);
1979 h_errno = NETDB_SUCCESS;
1980 return sentinel.ai_next;
1981 }
1982
1983 /* We could have walked a CNAME chain, */
1984 /* but the ultimate target may not have what we looked for */
1985 h_errno = ntohs(hp->ancount) > 0? NO_DATA : NO_RECOVERY;
1986 return NULL;
1987 }
1988
1989 #define SORTEDADDR(p) (((struct sockaddr_in *)(void *)(p->ai_next->ai_addr))->sin_addr.s_addr)
1990 #define SORTMATCH(p, s) ((SORTEDADDR(p) & (s).mask) == (s).addr.s_addr)
1991
1992 static void
1993 aisort(struct addrinfo *s, res_state res)
1994 {
1995 struct addrinfo head, *t, *p;
1996 int i;
1997
1998 head.ai_next = NULL;
1999 t = &head;
2000
2001 for (i = 0; i < res->nsort; i++) {
2002 p = s;
2003 while (p->ai_next) {
2004 if ((p->ai_next->ai_family != AF_INET)
2005 || SORTMATCH(p, res->sort_list[i])) {
2006 t->ai_next = p->ai_next;
2007 t = t->ai_next;
2008 p->ai_next = p->ai_next->ai_next;
2009 } else {
2010 p = p->ai_next;
2011 }
2012 }
2013 }
2014
2015 /* add rest of list and reset s to the new list*/
2016 t->ai_next = s->ai_next;
2017 s->ai_next = head.ai_next;
2018 }
2019
2020 static struct addrinfo *
2021 _dns_query(struct res_target *q, const struct addrinfo *pai,
2022 res_state res, int dosearch)
2023 {
2024 struct res_target *q2 = q->next;
2025 querybuf *buf, *buf2;
2026 struct addrinfo sentinel, *cur, *ai;
2027
2028 #ifdef DNS_DEBUG
2029 struct res_target *iter;
2030 for (iter = q; iter; iter = iter->next)
2031 printf("Query type %d for %s\n", iter->qtype, iter->name);
2032 #endif
2033
2034 buf = malloc(sizeof(*buf));
2035 if (buf == NULL) {
2036 h_errno = NETDB_INTERNAL;
2037 return NULL;
2038 }
2039 buf2 = malloc(sizeof(*buf2));
2040 if (buf2 == NULL) {
2041 free(buf);
2042 h_errno = NETDB_INTERNAL;
2043 return NULL;
2044 }
2045
2046 memset(&sentinel, 0, sizeof(sentinel));
2047 cur = &sentinel;
2048
2049 q->answer = buf->buf;
2050 q->anslen = sizeof(buf->buf);
2051 if (q2) {
2052 q2->answer = buf2->buf;
2053 q2->anslen = sizeof(buf2->buf);
2054 }
2055
2056 if (dosearch) {
2057 if (res_searchN(q->name, q, res) < 0)
2058 goto out;
2059 } else {
2060 if (res_queryN(q->name, q, res) < 0)
2061 goto out;
2062 }
2063
2064 ai = getanswer(res, buf, q->n, q->name, q->qtype, pai);
2065 if (ai) {
2066 cur->ai_next = ai;
2067 while (cur && cur->ai_next)
2068 cur = cur->ai_next;
2069 }
2070 if (q2) {
2071 ai = getanswer(res, buf2, q2->n, q2->name, q2->qtype, pai);
2072 if (ai)
2073 cur->ai_next = ai;
2074 }
2075 free(buf);
2076 free(buf2);
2077 return sentinel.ai_next;
2078 out:
2079 free(buf);
2080 free(buf2);
2081 return NULL;
2082 }
2083
2084 /*ARGSUSED*/
2085 static struct addrinfo *
2086 _dns_srv_lookup(const char *name, const char *servname,
2087 const struct addrinfo *pai)
2088 {
2089 static const char * const srvprotos[] = { "tcp", "udp" };
2090 static const int srvnottype[] = { SOCK_DGRAM, SOCK_STREAM };
2091 static const int nsrvprotos = 2;
2092 struct addrinfo sentinel, *cur, *ai;
2093 struct servent *serv, sv;
2094 struct servent_data svd;
2095 struct res_target q;
2096 res_state res;
2097 char *tname;
2098 int i;
2099
2100 res = __res_get_state();
2101 if (res == NULL)
2102 return NULL;
2103
2104 memset(&svd, 0, sizeof(svd));
2105 memset(&sentinel, 0, sizeof(sentinel));
2106 cur = &sentinel;
2107
2108 /*
2109 * Iterate over supported SRV protocols.
2110 * (currently UDP and TCP only)
2111 */
2112 for (i = 0; i < nsrvprotos; i++) {
2113 /*
2114 * Check that the caller didn't specify a hint
2115 * which precludes this protocol.
2116 */
2117 if (pai->ai_socktype == srvnottype[i])
2118 continue;
2119 /*
2120 * If the caller specified a port,
2121 * then lookup the database for the
2122 * official service name.
2123 */
2124 serv = getservbyname_r(servname, srvprotos[i], &sv, &svd);
2125 if (serv == NULL)
2126 continue;
2127
2128 /*
2129 * Construct service DNS name.
2130 */
2131 if (asprintf(&tname, "_%s._%s.%s", serv->s_name, serv->s_proto,
2132 name) < 0)
2133 continue;
2134
2135 memset(&q, 0, sizeof(q));
2136 q.name = tname;
2137 q.qclass = C_IN;
2138 q.qtype = T_SRV;
2139
2140 /*
2141 * Do SRV query.
2142 */
2143 ai = _dns_query(&q, pai, res, 1);
2144 if (ai) {
2145 cur->ai_next = ai;
2146 while (cur && cur->ai_next)
2147 cur = cur->ai_next;
2148 }
2149 free(tname);
2150 }
2151
2152 if (res->nsort)
2153 aisort(&sentinel, res);
2154
2155 __res_put_state(res);
2156
2157 return sentinel.ai_next;
2158 }
2159
2160 /*ARGSUSED*/
2161 static struct addrinfo *
2162 _dns_host_lookup(const char *name, const struct addrinfo *pai)
2163 {
2164 struct res_target q, q2;
2165 struct addrinfo sentinel, *ai;
2166 res_state res;
2167
2168 res = __res_get_state();
2169 if (res == NULL)
2170 return NULL;
2171
2172 memset(&q, 0, sizeof(q2));
2173 memset(&q2, 0, sizeof(q2));
2174
2175 switch (pai->ai_family) {
2176 case AF_UNSPEC:
2177 /* prefer IPv6 */
2178 q.name = name;
2179 q.qclass = C_IN;
2180 q.qtype = T_AAAA;
2181 q.next = &q2;
2182 q2.name = name;
2183 q2.qclass = C_IN;
2184 q2.qtype = T_A;
2185 break;
2186 case AF_INET:
2187 q.name = name;
2188 q.qclass = C_IN;
2189 q.qtype = T_A;
2190 break;
2191 case AF_INET6:
2192 q.name = name;
2193 q.qclass = C_IN;
2194 q.qtype = T_AAAA;
2195 break;
2196 default:
2197 __res_put_state(res);
2198 h_errno = NETDB_INTERNAL;
2199 return NULL;
2200 }
2201
2202 ai = _dns_query(&q, pai, res, 1);
2203
2204 memset(&sentinel, 0, sizeof(sentinel));
2205 sentinel.ai_next = ai;
2206
2207 if (ai != NULL && res->nsort)
2208 aisort(&sentinel, res);
2209
2210 __res_put_state(res);
2211
2212 return sentinel.ai_next;
2213 }
2214
2215 /*ARGSUSED*/
2216 static int
2217 _dns_getaddrinfo(void *rv, void *cb_data, va_list ap)
2218 {
2219 struct addrinfo *ai = NULL;
2220 const char *name, *servname;
2221 const struct addrinfo *pai;
2222
2223 name = va_arg(ap, char *);
2224 pai = va_arg(ap, const struct addrinfo *);
2225 servname = va_arg(ap, char *);
2226
2227 /*
2228 * Try doing SRV lookup on service first.
2229 */
2230 if (servname
2231 #ifdef AI_SRV
2232 && (pai->ai_flags & AI_SRV)
2233 #endif
2234 && !(pai->ai_flags & AI_NUMERICSERV)
2235 && str2number(servname) == -1) {
2236
2237 #ifdef DNS_DEBUG
2238 printf("%s: try SRV lookup\n", __func__);
2239 #endif
2240 ai = _dns_srv_lookup(name, servname, pai);
2241 }
2242
2243 /*
2244 * Do lookup on name.
2245 */
2246 if (ai == NULL) {
2247
2248 #ifdef DNS_DEBUG
2249 printf("%s: try HOST lookup\n", __func__);
2250 #endif
2251 ai = _dns_host_lookup(name, pai);
2252
2253 if (ai == NULL) {
2254 switch (h_errno) {
2255 case HOST_NOT_FOUND:
2256 case NO_DATA: // XXX: Perhaps we could differentiate
2257 // So that we could return EAI_NODATA?
2258 return NS_NOTFOUND;
2259 case TRY_AGAIN:
2260 return NS_TRYAGAIN;
2261 default:
2262 return NS_UNAVAIL;
2263 }
2264 }
2265 }
2266
2267 *((struct addrinfo **)rv) = ai;
2268 return NS_SUCCESS;
2269 }
2270
2271 static void
2272 _sethtent(FILE **hostf)
2273 {
2274
2275 if (!*hostf)
2276 *hostf = fopen(_PATH_HOSTS, "re");
2277 else
2278 rewind(*hostf);
2279 }
2280
2281 static void
2282 _endhtent(FILE **hostf)
2283 {
2284
2285 if (*hostf) {
2286 (void) fclose(*hostf);
2287 *hostf = NULL;
2288 }
2289 }
2290
2291 static struct addrinfo *
2292 _gethtent(FILE **hostf, const char *name, const struct addrinfo *pai)
2293 {
2294 char *p;
2295 char *cp, *tname, *cname;
2296 struct addrinfo hints, *res0, *res;
2297 int error;
2298 const char *addr;
2299 char hostbuf[8*1024];
2300
2301 _DIAGASSERT(name != NULL);
2302 _DIAGASSERT(pai != NULL);
2303
2304 if (!*hostf && !(*hostf = fopen(_PATH_HOSTS, "re")))
2305 return NULL;
2306 again:
2307 if (!(p = fgets(hostbuf, (int)sizeof hostbuf, *hostf)))
2308 return NULL;
2309 if (*p == '#')
2310 goto again;
2311 if (!(cp = strpbrk(p, "#\n")))
2312 goto again;
2313 *cp = '\0';
2314 if (!(cp = strpbrk(p, " \t")))
2315 goto again;
2316 *cp++ = '\0';
2317 addr = p;
2318 /* if this is not something we're looking for, skip it. */
2319 cname = NULL;
2320 while (cp && *cp) {
2321 if (*cp == ' ' || *cp == '\t') {
2322 cp++;
2323 continue;
2324 }
2325 if (!cname)
2326 cname = cp;
2327 tname = cp;
2328 if ((cp = strpbrk(cp, " \t")) != NULL)
2329 *cp++ = '\0';
2330 if (strcasecmp(name, tname) == 0)
2331 goto found;
2332 }
2333 goto again;
2334
2335 found:
2336 hints = *pai;
2337 hints.ai_flags = AI_NUMERICHOST;
2338 error = getaddrinfo(addr, NULL, &hints, &res0);
2339 if (error)
2340 goto again;
2341 for (res = res0; res; res = res->ai_next) {
2342 /* cover it up */
2343 res->ai_flags = pai->ai_flags;
2344
2345 if (pai->ai_flags & AI_CANONNAME) {
2346 if (get_canonname(pai, res, cname) != 0) {
2347 freeaddrinfo(res0);
2348 goto again;
2349 }
2350 }
2351 }
2352 return res0;
2353 }
2354
2355 /*ARGSUSED*/
2356 static int
2357 _files_getaddrinfo(void *rv, void *cb_data, va_list ap)
2358 {
2359 const char *name;
2360 const struct addrinfo *pai;
2361 struct addrinfo sentinel, *cur;
2362 struct addrinfo *p;
2363 #ifndef _REENTRANT
2364 static
2365 #endif
2366 FILE *hostf = NULL;
2367
2368 name = va_arg(ap, char *);
2369 pai = va_arg(ap, const struct addrinfo *);
2370
2371 memset(&sentinel, 0, sizeof(sentinel));
2372 cur = &sentinel;
2373
2374 _sethtent(&hostf);
2375 while ((p = _gethtent(&hostf, name, pai)) != NULL) {
2376 cur->ai_next = p;
2377 while (cur && cur->ai_next)
2378 cur = cur->ai_next;
2379 }
2380 _endhtent(&hostf);
2381
2382 *((struct addrinfo **)rv) = sentinel.ai_next;
2383 if (sentinel.ai_next == NULL)
2384 return NS_NOTFOUND;
2385 return NS_SUCCESS;
2386 }
2387
2388 #ifdef YP
2389 /*ARGSUSED*/
2390 static struct addrinfo *
2391 _yphostent(char *line, const struct addrinfo *pai)
2392 {
2393 struct addrinfo sentinel, *cur;
2394 struct addrinfo hints, *res, *res0;
2395 int error;
2396 char *p;
2397 const char *addr, *canonname;
2398 char *nextline;
2399 char *cp;
2400
2401 _DIAGASSERT(line != NULL);
2402 _DIAGASSERT(pai != NULL);
2403
2404 p = line;
2405 addr = canonname = NULL;
2406
2407 memset(&sentinel, 0, sizeof(sentinel));
2408 cur = &sentinel;
2409
2410 nextline:
2411 /* terminate line */
2412 cp = strchr(p, '\n');
2413 if (cp) {
2414 *cp++ = '\0';
2415 nextline = cp;
2416 } else
2417 nextline = NULL;
2418
2419 cp = strpbrk(p, " \t");
2420 if (cp == NULL) {
2421 if (canonname == NULL)
2422 return NULL;
2423 else
2424 goto done;
2425 }
2426 *cp++ = '\0';
2427
2428 addr = p;
2429
2430 while (cp && *cp) {
2431 if (*cp == ' ' || *cp == '\t') {
2432 cp++;
2433 continue;
2434 }
2435 if (!canonname)
2436 canonname = cp;
2437 if ((cp = strpbrk(cp, " \t")) != NULL)
2438 *cp++ = '\0';
2439 }
2440
2441 hints = *pai;
2442 hints.ai_flags = AI_NUMERICHOST;
2443 error = getaddrinfo(addr, NULL, &hints, &res0);
2444 if (error == 0) {
2445 for (res = res0; res; res = res->ai_next) {
2446 /* cover it up */
2447 res->ai_flags = pai->ai_flags;
2448
2449 if (pai->ai_flags & AI_CANONNAME)
2450 (void)get_canonname(pai, res, canonname);
2451 }
2452 } else
2453 res0 = NULL;
2454 if (res0) {
2455 cur->ai_next = res0;
2456 while (cur->ai_next)
2457 cur = cur->ai_next;
2458 }
2459
2460 if (nextline) {
2461 p = nextline;
2462 goto nextline;
2463 }
2464
2465 done:
2466 return sentinel.ai_next;
2467 }
2468
2469 /*ARGSUSED*/
2470 static int
2471 _yp_getaddrinfo(void *rv, void *cb_data, va_list ap)
2472 {
2473 struct addrinfo sentinel, *cur;
2474 struct addrinfo *ai = NULL;
2475 char *ypbuf;
2476 int ypbuflen, r;
2477 const char *name;
2478 const struct addrinfo *pai;
2479 char *ypdomain;
2480
2481 if (_yp_check(&ypdomain) == 0)
2482 return NS_UNAVAIL;
2483
2484 name = va_arg(ap, char *);
2485 pai = va_arg(ap, const struct addrinfo *);
2486
2487 memset(&sentinel, 0, sizeof(sentinel));
2488 cur = &sentinel;
2489
2490 /* hosts.byname is only for IPv4 (Solaris8) */
2491 if (pai->ai_family == PF_UNSPEC || pai->ai_family == PF_INET) {
2492 r = yp_match(ypdomain, "hosts.byname", name,
2493 (int)strlen(name), &ypbuf, &ypbuflen);
2494 if (r == 0) {
2495 struct addrinfo ai4;
2496
2497 ai4 = *pai;
2498 ai4.ai_family = AF_INET;
2499 ai = _yphostent(ypbuf, &ai4);
2500 if (ai) {
2501 cur->ai_next = ai;
2502 while (cur && cur->ai_next)
2503 cur = cur->ai_next;
2504 }
2505 }
2506 free(ypbuf);
2507 }
2508
2509 /* ipnodes.byname can hold both IPv4/v6 */
2510 r = yp_match(ypdomain, "ipnodes.byname", name,
2511 (int)strlen(name), &ypbuf, &ypbuflen);
2512 if (r == 0) {
2513 ai = _yphostent(ypbuf, pai);
2514 if (ai)
2515 cur->ai_next = ai;
2516 free(ypbuf);
2517 }
2518
2519 if (sentinel.ai_next == NULL) {
2520 h_errno = HOST_NOT_FOUND;
2521 return NS_NOTFOUND;
2522 }
2523 *((struct addrinfo **)rv) = sentinel.ai_next;
2524 return NS_SUCCESS;
2525 }
2526 #endif
2527
2528 /* resolver logic */
2529
2530 /*
2531 * Formulate a normal query, send, and await answer.
2532 * Returned answer is placed in supplied buffer "answer".
2533 * Perform preliminary check of answer, returning success only
2534 * if no error is indicated and the answer count is nonzero.
2535 * Return the size of the response on success, -1 on error.
2536 * Error number is left in h_errno.
2537 *
2538 * Caller must parse answer and determine whether it answers the question.
2539 */
2540 static int
2541 res_queryN(const char *name, /* domain name */ struct res_target *target,
2542 res_state statp)
2543 {
2544 u_char buf[MAXPACKET];
2545 HEADER *hp;
2546 int n;
2547 struct res_target *t;
2548 int rcode;
2549 u_char *rdata;
2550 int ancount;
2551
2552 _DIAGASSERT(name != NULL);
2553 /* XXX: target may be NULL??? */
2554
2555 rcode = NOERROR;
2556 ancount = 0;
2557
2558 for (t = target; t; t = t->next) {
2559 int class, type;
2560 u_char *answer;
2561 int anslen;
2562 u_int oflags;
2563
2564 hp = (HEADER *)(void *)t->answer;
2565 oflags = statp->_flags;
2566
2567 again:
2568 hp->rcode = NOERROR; /* default */
2569
2570 /* make it easier... */
2571 class = t->qclass;
2572 type = t->qtype;
2573 answer = t->answer;
2574 anslen = t->anslen;
2575 #ifdef DEBUG
2576 if (statp->options & RES_DEBUG)
2577 printf(";; res_nquery(%s, %d, %d)\n", name, class, type);
2578 #endif
2579
2580 n = res_nmkquery(statp, QUERY, name, class, type, NULL, 0, NULL,
2581 buf, (int)sizeof(buf));
2582 #ifdef RES_USE_EDNS0
2583 if (n > 0 && (statp->_flags & RES_F_EDNS0ERR) == 0 &&
2584 (statp->options & (RES_USE_EDNS0|RES_USE_DNSSEC)) != 0) {
2585 n = res_nopt(statp, n, buf, (int)sizeof(buf), anslen);
2586 rdata = &buf[n];
2587 if (n > 0 && (statp->options & RES_NSID) != 0U) {
2588 n = res_nopt_rdata(statp, n, buf,
2589 (int)sizeof(buf),
2590 rdata, NS_OPT_NSID, 0, NULL);
2591 }
2592 }
2593 #endif
2594 if (n <= 0) {
2595 #ifdef DEBUG
2596 if (statp->options & RES_DEBUG)
2597 printf(";; res_nquery: mkquery failed\n");
2598 #endif
2599 h_errno = NO_RECOVERY;
2600 return n;
2601 }
2602 n = res_nsend(statp, buf, n, answer, anslen);
2603 if (n < 0) {
2604 #ifdef RES_USE_EDNS0
2605 /* if the query choked with EDNS0, retry without EDNS0 */
2606 if ((statp->options & (RES_USE_EDNS0|RES_USE_DNSSEC)) != 0U &&
2607 ((oflags ^ statp->_flags) & RES_F_EDNS0ERR) != 0) {
2608 statp->_flags |= RES_F_EDNS0ERR;
2609 if (statp->options & RES_DEBUG)
2610 printf(";; res_nquery: retry without EDNS0\n");
2611 goto again;
2612 }
2613 #endif
2614 #if 0
2615 #ifdef DEBUG
2616 if (statp->options & RES_DEBUG)
2617 printf(";; res_query: send error\n");
2618 #endif
2619 h_errno = TRY_AGAIN;
2620 return n;
2621 #endif
2622 }
2623
2624 if (n < 0 || hp->rcode != NOERROR || ntohs(hp->ancount) == 0) {
2625 rcode = hp->rcode; /* record most recent error */
2626 #ifdef DEBUG
2627 if (statp->options & RES_DEBUG)
2628 printf(";; rcode = (%s), counts = an:%d ns:%d ar:%d\n",
2629 p_rcode(hp->rcode),
2630 ntohs(hp->ancount),
2631 ntohs(hp->nscount),
2632 ntohs(hp->arcount));
2633 #endif
2634 continue;
2635 }
2636
2637 ancount += ntohs(hp->ancount);
2638
2639 t->n = n;
2640 }
2641
2642 if (ancount == 0) {
2643 switch (rcode) {
2644 case NXDOMAIN:
2645 h_errno = HOST_NOT_FOUND;
2646 break;
2647 case SERVFAIL:
2648 h_errno = TRY_AGAIN;
2649 break;
2650 case NOERROR:
2651 h_errno = NO_DATA;
2652 break;
2653 case FORMERR:
2654 case NOTIMP:
2655 case REFUSED:
2656 default:
2657 h_errno = NO_RECOVERY;
2658 break;
2659 }
2660 return -1;
2661 }
2662 return ancount;
2663 }
2664
2665 /*
2666 * Formulate a normal query, send, and retrieve answer in supplied buffer.
2667 * Return the size of the response on success, -1 on error.
2668 * If enabled, implement search rules until answer or unrecoverable failure
2669 * is detected. Error code, if any, is left in h_errno.
2670 */
2671 static int
2672 res_searchN(const char *name, struct res_target *target, res_state res)
2673 {
2674 const char *cp, * const *domain;
2675 HEADER *hp;
2676 u_int dots;
2677 char buf[MAXHOSTNAMELEN];
2678 int trailing_dot, ret, saved_herrno;
2679 int got_nodata = 0, got_servfail = 0, tried_as_is = 0;
2680
2681 _DIAGASSERT(name != NULL);
2682 _DIAGASSERT(target != NULL);
2683
2684 hp = (HEADER *)(void *)target->answer; /*XXX*/
2685
2686 errno = 0;
2687 h_errno = HOST_NOT_FOUND; /* default, if we never query */
2688 dots = 0;
2689 for (cp = name; *cp; cp++)
2690 dots += (*cp == '.');
2691 trailing_dot = 0;
2692 if (cp > name && *--cp == '.')
2693 trailing_dot++;
2694
2695 /*
2696 * if there aren't any dots, it could be a user-level alias
2697 */
2698 if (!dots && (cp = res_hostalias(res, name, buf, sizeof(buf))) != NULL) {
2699 ret = res_queryN(cp, target, res);
2700 return ret;
2701 }
2702
2703 /*
2704 * If there are dots in the name already, let's just give it a try
2705 * 'as is'. The threshold can be set with the "ndots" option.
2706 */
2707 saved_herrno = -1;
2708 if (dots >= res->ndots) {
2709 ret = res_querydomainN(name, NULL, target, res);
2710 if (ret > 0)
2711 return ret;
2712 saved_herrno = h_errno;
2713 tried_as_is++;
2714 }
2715
2716 /*
2717 * We do at least one level of search if
2718 * - there is no dot and RES_DEFNAME is set, or
2719 * - there is at least one dot, there is no trailing dot,
2720 * and RES_DNSRCH is set.
2721 */
2722 if ((!dots && (res->options & RES_DEFNAMES)) ||
2723 (dots && !trailing_dot && (res->options & RES_DNSRCH))) {
2724 int done = 0;
2725
2726 for (domain = (const char * const *)res->dnsrch;
2727 *domain && !done;
2728 domain++) {
2729
2730 ret = res_querydomainN(name, *domain, target, res);
2731 if (ret > 0)
2732 return ret;
2733
2734 /*
2735 * If no server present, give up.
2736 * If name isn't found in this domain,
2737 * keep trying higher domains in the search list
2738 * (if that's enabled).
2739 * On a NO_DATA error, keep trying, otherwise
2740 * a wildcard entry of another type could keep us
2741 * from finding this entry higher in the domain.
2742 * If we get some other error (negative answer or
2743 * server failure), then stop searching up,
2744 * but try the input name below in case it's
2745 * fully-qualified.
2746 */
2747 if (errno == ECONNREFUSED) {
2748 h_errno = TRY_AGAIN;
2749 return -1;
2750 }
2751
2752 switch (h_errno) {
2753 case NO_DATA:
2754 got_nodata++;
2755 /* FALLTHROUGH */
2756 case HOST_NOT_FOUND:
2757 /* keep trying */
2758 break;
2759 case TRY_AGAIN:
2760 if (hp->rcode == SERVFAIL) {
2761 /* try next search element, if any */
2762 got_servfail++;
2763 break;
2764 }
2765 /* FALLTHROUGH */
2766 default:
2767 /* anything else implies that we're done */
2768 done++;
2769 }
2770 /*
2771 * if we got here for some reason other than DNSRCH,
2772 * we only wanted one iteration of the loop, so stop.
2773 */
2774 if (!(res->options & RES_DNSRCH))
2775 done++;
2776 }
2777 }
2778
2779 /*
2780 * if we have not already tried the name "as is", do that now.
2781 * note that we do this regardless of how many dots were in the
2782 * name or whether it ends with a dot.
2783 */
2784 if (!tried_as_is) {
2785 ret = res_querydomainN(name, NULL, target, res);
2786 if (ret > 0)
2787 return ret;
2788 }
2789
2790 /*
2791 * if we got here, we didn't satisfy the search.
2792 * if we did an initial full query, return that query's h_errno
2793 * (note that we wouldn't be here if that query had succeeded).
2794 * else if we ever got a nodata, send that back as the reason.
2795 * else send back meaningless h_errno, that being the one from
2796 * the last DNSRCH we did.
2797 */
2798 if (saved_herrno != -1)
2799 h_errno = saved_herrno;
2800 else if (got_nodata)
2801 h_errno = NO_DATA;
2802 else if (got_servfail)
2803 h_errno = TRY_AGAIN;
2804 return -1;
2805 }
2806
2807 /*
2808 * Perform a call on res_query on the concatenation of name and domain,
2809 * removing a trailing dot from name if domain is NULL.
2810 */
2811 static int
2812 res_querydomainN(const char *name, const char *domain,
2813 struct res_target *target, res_state res)
2814 {
2815 char nbuf[MAXDNAME];
2816 const char *longname = nbuf;
2817 size_t n, d;
2818
2819 _DIAGASSERT(name != NULL);
2820 /* XXX: target may be NULL??? */
2821
2822 #ifdef DEBUG
2823 if (res->options & RES_DEBUG)
2824 printf(";; res_querydomain(%s, %s)\n",
2825 name, domain?domain:"<Nil>");
2826 #endif
2827 if (domain == NULL) {
2828 /*
2829 * Check for trailing '.';
2830 * copy without '.' if present.
2831 */
2832 n = strlen(name);
2833 if (n + 1 > sizeof(nbuf)) {
2834 h_errno = NO_RECOVERY;
2835 return -1;
2836 }
2837 if (n > 0 && name[--n] == '.') {
2838 strncpy(nbuf, name, n);
2839 nbuf[n] = '\0';
2840 } else
2841 longname = name;
2842 } else {
2843 n = strlen(name);
2844 d = strlen(domain);
2845 if (n + 1 + d + 1 > sizeof(nbuf)) {
2846 h_errno = NO_RECOVERY;
2847 return -1;
2848 }
2849 snprintf(nbuf, sizeof(nbuf), "%s.%s", name, domain);
2850 }
2851 return res_queryN(longname, target, res);
2852 }
2853
2854 #ifdef TEST
2855 int
2856 main(int argc, char *argv[]) {
2857 struct addrinfo *ai, *sai;
2858 int i, e;
2859 char buf[1024];
2860
2861 for (i = 1; i < argc; i++) {
2862 if ((e = getaddrinfo(argv[i], NULL, NULL, &sai)) != 0)
2863 warnx("%s: %s", argv[i], gai_strerror(e));
2864 for (ai = sai; ai; ai = ai->ai_next) {
2865 sockaddr_snprintf(buf, sizeof(buf), "%a", ai->ai_addr);
2866 printf("flags=0x%x family=%d socktype=%d protocol=%d "
2867 "addrlen=%zu addr=%s canonname=%s next=%p\n",
2868 ai->ai_flags,
2869 ai->ai_family,
2870 ai->ai_socktype,
2871 ai->ai_protocol,
2872 (size_t)ai->ai_addrlen,
2873 buf,
2874 ai->ai_canonname,
2875 ai->ai_next);
2876 }
2877 if (sai)
2878 freeaddrinfo(sai);
2879 }
2880 return 0;
2881 }
2882 #endif
2883