Source code pulled from OpenBSD for OpenNTPD. The place to contribute to this code is via the OpenBSD CVS tree.
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  1. /* $OpenBSD: client.c,v 1.79 2008/01/28 11:45:59 mpf Exp $ */
  2. /*
  3. * Copyright (c) 2003, 2004 Henning Brauer <henning@openbsd.org>
  4. * Copyright (c) 2004 Alexander Guy <alexander.guy@andern.org>
  5. *
  6. * Permission to use, copy, modify, and distribute this software for any
  7. * purpose with or without fee is hereby granted, provided that the above
  8. * copyright notice and this permission notice appear in all copies.
  9. *
  10. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
  11. * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
  12. * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
  13. * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
  14. * WHATSOEVER RESULTING FROM LOSS OF MIND, USE, DATA OR PROFITS, WHETHER
  15. * IN AN ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING
  16. * OUT OF OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
  17. */
  18. #include <sys/param.h>
  19. #include <errno.h>
  20. #include <stdlib.h>
  21. #include <string.h>
  22. #include <time.h>
  23. #include <unistd.h>
  24. #include "ntpd.h"
  25. int client_update(struct ntp_peer *);
  26. void set_deadline(struct ntp_peer *, time_t);
  27. void
  28. set_next(struct ntp_peer *p, time_t t)
  29. {
  30. p->next = getmonotime() + t;
  31. p->deadline = 0;
  32. }
  33. void
  34. set_deadline(struct ntp_peer *p, time_t t)
  35. {
  36. p->deadline = getmonotime() + t;
  37. p->next = 0;
  38. }
  39. int
  40. client_peer_init(struct ntp_peer *p)
  41. {
  42. if ((p->query = calloc(1, sizeof(struct ntp_query))) == NULL)
  43. fatal("client_peer_init calloc");
  44. p->query->fd = -1;
  45. p->query->msg.status = MODE_CLIENT | (NTP_VERSION << 3);
  46. p->state = STATE_NONE;
  47. p->shift = 0;
  48. p->trustlevel = TRUSTLEVEL_PATHETIC;
  49. p->lasterror = 0;
  50. p->senderrors = 0;
  51. return (client_addr_init(p));
  52. }
  53. int
  54. client_addr_init(struct ntp_peer *p)
  55. {
  56. struct sockaddr_in *sa_in;
  57. struct sockaddr_in6 *sa_in6;
  58. struct ntp_addr *h;
  59. for (h = p->addr; h != NULL; h = h->next) {
  60. switch (h->ss.ss_family) {
  61. case AF_INET:
  62. sa_in = (struct sockaddr_in *)&h->ss;
  63. if (ntohs(sa_in->sin_port) == 0)
  64. sa_in->sin_port = htons(123);
  65. p->state = STATE_DNS_DONE;
  66. break;
  67. case AF_INET6:
  68. sa_in6 = (struct sockaddr_in6 *)&h->ss;
  69. if (ntohs(sa_in6->sin6_port) == 0)
  70. sa_in6->sin6_port = htons(123);
  71. p->state = STATE_DNS_DONE;
  72. break;
  73. default:
  74. fatalx("king bula sez: wrong AF in client_addr_init");
  75. /* not reached */
  76. }
  77. }
  78. p->query->fd = -1;
  79. set_next(p, 0);
  80. return (0);
  81. }
  82. int
  83. client_nextaddr(struct ntp_peer *p)
  84. {
  85. if (p->query->fd != -1) {
  86. close(p->query->fd);
  87. p->query->fd = -1;
  88. }
  89. if (p->state == STATE_DNS_INPROGRESS)
  90. return (-1);
  91. if (p->addr_head.a == NULL) {
  92. priv_host_dns(p->addr_head.name, p->id);
  93. p->state = STATE_DNS_INPROGRESS;
  94. return (-1);
  95. }
  96. if ((p->addr = p->addr->next) == NULL)
  97. p->addr = p->addr_head.a;
  98. p->shift = 0;
  99. p->trustlevel = TRUSTLEVEL_PATHETIC;
  100. return (0);
  101. }
  102. int
  103. client_query(struct ntp_peer *p)
  104. {
  105. int tos = IPTOS_LOWDELAY;
  106. if (p->addr == NULL && client_nextaddr(p) == -1) {
  107. set_next(p, MAX(SETTIME_TIMEOUT,
  108. scale_interval(INTERVAL_QUERY_AGGRESSIVE)));
  109. return (0);
  110. }
  111. if (p->state < STATE_DNS_DONE || p->addr == NULL)
  112. return (-1);
  113. if (p->query->fd == -1) {
  114. struct sockaddr *sa = (struct sockaddr *)&p->addr->ss;
  115. if ((p->query->fd = socket(p->addr->ss.ss_family, SOCK_DGRAM,
  116. 0)) == -1)
  117. fatal("client_query socket");
  118. if (connect(p->query->fd, sa, SA_LEN(sa)) == -1) {
  119. if (errno == ECONNREFUSED || errno == ENETUNREACH ||
  120. errno == EHOSTUNREACH || errno == EADDRNOTAVAIL) {
  121. client_nextaddr(p);
  122. set_next(p, MAX(SETTIME_TIMEOUT,
  123. scale_interval(INTERVAL_QUERY_AGGRESSIVE)));
  124. return (-1);
  125. } else
  126. fatal("client_query connect");
  127. }
  128. if (p->addr->ss.ss_family == AF_INET && setsockopt(p->query->fd,
  129. IPPROTO_IP, IP_TOS, &tos, sizeof(tos)) == -1)
  130. log_warn("setsockopt IPTOS_LOWDELAY");
  131. }
  132. /*
  133. * Send out a random 64-bit number as our transmit time. The NTP
  134. * server will copy said number into the originate field on the
  135. * response that it sends us. This is totally legal per the SNTP spec.
  136. *
  137. * The impact of this is two fold: we no longer send out the current
  138. * system time for the world to see (which may aid an attacker), and
  139. * it gives us a (not very secure) way of knowing that we're not
  140. * getting spoofed by an attacker that can't capture our traffic
  141. * but can spoof packets from the NTP server we're communicating with.
  142. *
  143. * Save the real transmit timestamp locally.
  144. */
  145. p->query->msg.xmttime.int_partl = arc4random();
  146. p->query->msg.xmttime.fractionl = arc4random();
  147. p->query->xmttime = gettime_corrected();
  148. if (ntp_sendmsg(p->query->fd, NULL, &p->query->msg,
  149. NTP_MSGSIZE_NOAUTH, 0) == -1) {
  150. p->senderrors++;
  151. set_next(p, INTERVAL_QUERY_PATHETIC);
  152. p->trustlevel = TRUSTLEVEL_PATHETIC;
  153. return (-1);
  154. }
  155. p->senderrors = 0;
  156. p->state = STATE_QUERY_SENT;
  157. set_deadline(p, QUERYTIME_MAX);
  158. return (0);
  159. }
  160. int
  161. client_dispatch(struct ntp_peer *p, u_int8_t settime)
  162. {
  163. char buf[NTP_MSGSIZE];
  164. ssize_t size;
  165. struct ntp_msg msg;
  166. double T1, T2, T3, T4;
  167. time_t interval;
  168. if ((size = recvfrom(p->query->fd, &buf, sizeof(buf), 0,
  169. NULL, NULL)) == -1) {
  170. if (errno == EHOSTUNREACH || errno == EHOSTDOWN ||
  171. errno == ENETUNREACH || errno == ENETDOWN ||
  172. errno == ECONNREFUSED || errno == EADDRNOTAVAIL) {
  173. client_log_error(p, "recvfrom", errno);
  174. set_next(p, error_interval());
  175. return (0);
  176. } else
  177. fatal("recvfrom");
  178. }
  179. T4 = gettime_corrected();
  180. ntp_getmsg((struct sockaddr *)&p->addr->ss, buf, size, &msg);
  181. if (msg.orgtime.int_partl != p->query->msg.xmttime.int_partl ||
  182. msg.orgtime.fractionl != p->query->msg.xmttime.fractionl)
  183. return (0);
  184. if ((msg.status & LI_ALARM) == LI_ALARM || msg.stratum == 0 ||
  185. msg.stratum > NTP_MAXSTRATUM) {
  186. interval = error_interval();
  187. set_next(p, interval);
  188. log_info("reply from %s: not synced, next query %ds",
  189. log_sockaddr((struct sockaddr *)&p->addr->ss), interval);
  190. return (0);
  191. }
  192. /*
  193. * From RFC 2030 (with a correction to the delay math):
  194. *
  195. * Timestamp Name ID When Generated
  196. * ------------------------------------------------------------
  197. * Originate Timestamp T1 time request sent by client
  198. * Receive Timestamp T2 time request received by server
  199. * Transmit Timestamp T3 time reply sent by server
  200. * Destination Timestamp T4 time reply received by client
  201. *
  202. * The roundtrip delay d and local clock offset t are defined as
  203. *
  204. * d = (T4 - T1) - (T3 - T2) t = ((T2 - T1) + (T3 - T4)) / 2.
  205. */
  206. T1 = p->query->xmttime;
  207. T2 = lfp_to_d(msg.rectime);
  208. T3 = lfp_to_d(msg.xmttime);
  209. p->reply[p->shift].offset = ((T2 - T1) + (T3 - T4)) / 2;
  210. p->reply[p->shift].delay = (T4 - T1) - (T3 - T2);
  211. if (p->reply[p->shift].delay < 0) {
  212. interval = error_interval();
  213. set_next(p, interval);
  214. log_info("reply from %s: negative delay %fs, "
  215. "next query %ds",
  216. log_sockaddr((struct sockaddr *)&p->addr->ss),
  217. p->reply[p->shift].delay, interval);
  218. return (0);
  219. }
  220. p->reply[p->shift].error = (T2 - T1) - (T3 - T4);
  221. p->reply[p->shift].rcvd = getmonotime();
  222. p->reply[p->shift].good = 1;
  223. p->reply[p->shift].status.leap = (msg.status & LIMASK);
  224. p->reply[p->shift].status.precision = msg.precision;
  225. p->reply[p->shift].status.rootdelay = sfp_to_d(msg.rootdelay);
  226. p->reply[p->shift].status.rootdispersion = sfp_to_d(msg.dispersion);
  227. p->reply[p->shift].status.refid = ntohl(msg.refid);
  228. p->reply[p->shift].status.refid4 = msg.xmttime.fractionl;
  229. p->reply[p->shift].status.reftime = lfp_to_d(msg.reftime);
  230. p->reply[p->shift].status.poll = msg.ppoll;
  231. p->reply[p->shift].status.stratum = msg.stratum;
  232. if (p->addr->ss.ss_family == AF_INET)
  233. p->reply[p->shift].status.send_refid =
  234. ((struct sockaddr_in *)&p->addr->ss)->sin_addr.s_addr;
  235. else
  236. p->reply[p->shift].status.send_refid = msg.xmttime.fractionl;
  237. if (p->trustlevel < TRUSTLEVEL_PATHETIC)
  238. interval = scale_interval(INTERVAL_QUERY_PATHETIC);
  239. else if (p->trustlevel < TRUSTLEVEL_AGGRESSIVE)
  240. interval = scale_interval(INTERVAL_QUERY_AGGRESSIVE);
  241. else
  242. interval = scale_interval(INTERVAL_QUERY_NORMAL);
  243. set_next(p, interval);
  244. p->state = STATE_REPLY_RECEIVED;
  245. /* every received reply which we do not discard increases trust */
  246. if (p->trustlevel < TRUSTLEVEL_MAX) {
  247. if (p->trustlevel < TRUSTLEVEL_BADPEER &&
  248. p->trustlevel + 1 >= TRUSTLEVEL_BADPEER)
  249. log_info("peer %s now valid",
  250. log_sockaddr((struct sockaddr *)&p->addr->ss));
  251. p->trustlevel++;
  252. }
  253. log_debug("reply from %s: offset %f delay %f, "
  254. "next query %ds", log_sockaddr((struct sockaddr *)&p->addr->ss),
  255. p->reply[p->shift].offset, p->reply[p->shift].delay, interval);
  256. client_update(p);
  257. if (settime)
  258. priv_settime(p->reply[p->shift].offset);
  259. if (++p->shift >= OFFSET_ARRAY_SIZE)
  260. p->shift = 0;
  261. return (0);
  262. }
  263. int
  264. client_update(struct ntp_peer *p)
  265. {
  266. int i, best = 0, good = 0;
  267. /*
  268. * clock filter
  269. * find the offset which arrived with the lowest delay
  270. * use that as the peer update
  271. * invalidate it and all older ones
  272. */
  273. for (i = 0; good == 0 && i < OFFSET_ARRAY_SIZE; i++)
  274. if (p->reply[i].good) {
  275. good++;
  276. best = i;
  277. }
  278. for (; i < OFFSET_ARRAY_SIZE; i++)
  279. if (p->reply[i].good) {
  280. good++;
  281. if (p->reply[i].delay < p->reply[best].delay)
  282. best = i;
  283. }
  284. if (good < 8)
  285. return (-1);
  286. memcpy(&p->update, &p->reply[best], sizeof(p->update));
  287. if (priv_adjtime() == 0) {
  288. for (i = 0; i < OFFSET_ARRAY_SIZE; i++)
  289. if (p->reply[i].rcvd <= p->reply[best].rcvd)
  290. p->reply[i].good = 0;
  291. }
  292. return (0);
  293. }
  294. void
  295. client_log_error(struct ntp_peer *peer, const char *operation, int error)
  296. {
  297. const char *address;
  298. address = log_sockaddr((struct sockaddr *)&peer->addr->ss);
  299. if (peer->lasterror == error) {
  300. log_debug("%s %s: %s", operation, address, strerror(error));
  301. return;
  302. }
  303. peer->lasterror = error;
  304. log_warn("%s %s", operation, address);
  305. }