ntpd.c 95 KB

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  1. /*
  2. * NTP client/server, based on OpenNTPD 3.9p1
  3. *
  4. * Busybox port author: Adam Tkac (C) 2009 <vonsch@gmail.com>
  5. *
  6. * OpenNTPd 3.9p1 copyright holders:
  7. * Copyright (c) 2003, 2004 Henning Brauer <henning@openbsd.org>
  8. * Copyright (c) 2004 Alexander Guy <alexander.guy@andern.org>
  9. *
  10. * OpenNTPd code is licensed under ISC-style licence:
  11. *
  12. * Permission to use, copy, modify, and distribute this software for any
  13. * purpose with or without fee is hereby granted, provided that the above
  14. * copyright notice and this permission notice appear in all copies.
  15. *
  16. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
  17. * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
  18. * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
  19. * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
  20. * WHATSOEVER RESULTING FROM LOSS OF MIND, USE, DATA OR PROFITS, WHETHER
  21. * IN AN ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING
  22. * OUT OF OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
  23. ***********************************************************************
  24. *
  25. * Parts of OpenNTPD clock syncronization code is replaced by
  26. * code which is based on ntp-4.2.6, which carries the following
  27. * copyright notice:
  28. *
  29. * Copyright (c) University of Delaware 1992-2009
  30. *
  31. * Permission to use, copy, modify, and distribute this software and
  32. * its documentation for any purpose with or without fee is hereby
  33. * granted, provided that the above copyright notice appears in all
  34. * copies and that both the copyright notice and this permission
  35. * notice appear in supporting documentation, and that the name
  36. * University of Delaware not be used in advertising or publicity
  37. * pertaining to distribution of the software without specific,
  38. * written prior permission. The University of Delaware makes no
  39. * representations about the suitability this software for any
  40. * purpose. It is provided "as is" without express or implied warranty.
  41. ***********************************************************************
  42. */
  43. //config:config NTPD
  44. //config: bool "ntpd (22 kb)"
  45. //config: default y
  46. //config: select PLATFORM_LINUX
  47. //config: help
  48. //config: The NTP client/server daemon.
  49. //config:
  50. //config:config FEATURE_NTPD_SERVER
  51. //config: bool "Make ntpd usable as a NTP server"
  52. //config: default y
  53. //config: depends on NTPD
  54. //config: help
  55. //config: Make ntpd usable as a NTP server. If you disable this option
  56. //config: ntpd will be usable only as a NTP client.
  57. //config:
  58. //config:config FEATURE_NTPD_CONF
  59. //config: bool "Make ntpd understand /etc/ntp.conf"
  60. //config: default y
  61. //config: depends on NTPD
  62. //config: help
  63. //config: Make ntpd look in /etc/ntp.conf for peers. Only "server address"
  64. //config: is supported.
  65. //config:
  66. //config:config FEATURE_NTP_AUTH
  67. //config: bool "Support md5/sha1 message authentication codes"
  68. //config: default y
  69. //config: depends on NTPD
  70. //applet:IF_NTPD(APPLET(ntpd, BB_DIR_USR_SBIN, BB_SUID_DROP))
  71. //kbuild:lib-$(CONFIG_NTPD) += ntpd.o
  72. //usage:#define ntpd_trivial_usage
  73. //usage: "[-dnqNw"IF_FEATURE_NTPD_SERVER("l] [-I IFACE")"] [-S PROG]"
  74. //usage: IF_NOT_FEATURE_NTP_AUTH(" [-p PEER]...")
  75. //usage: IF_FEATURE_NTP_AUTH(" [-k KEYFILE] [-p [keyno:N:]PEER]...")
  76. //usage:#define ntpd_full_usage "\n\n"
  77. //usage: "NTP client/server\n"
  78. //usage: "\n -d Verbose (may be repeated)"
  79. //usage: "\n -n Do not daemonize"
  80. //usage: "\n -q Quit after clock is set"
  81. //usage: "\n -N Run at high priority"
  82. //usage: "\n -w Do not set time (only query peers), implies -n"
  83. //usage: "\n -S PROG Run PROG after stepping time, stratum change, and every 11 min"
  84. //usage: IF_NOT_FEATURE_NTP_AUTH(
  85. //usage: "\n -p PEER Obtain time from PEER (may be repeated)"
  86. //usage: )
  87. //usage: IF_FEATURE_NTP_AUTH(
  88. //usage: "\n -k FILE Key file (ntp.keys compatible)"
  89. //usage: "\n -p [keyno:NUM:]PEER"
  90. //usage: "\n Obtain time from PEER (may be repeated)"
  91. //usage: "\n Use key NUM for authentication"
  92. //usage: )
  93. //usage: IF_FEATURE_NTPD_CONF(
  94. //usage: "\n If -p is not given, 'server HOST' lines"
  95. //usage: "\n from /etc/ntp.conf are used"
  96. //usage: )
  97. //usage: IF_FEATURE_NTPD_SERVER(
  98. //usage: "\n -l Also run as server on port 123"
  99. //usage: "\n -I IFACE Bind server to IFACE, implies -l"
  100. //usage: )
  101. // -l and -p options are not compatible with "standard" ntpd:
  102. // it has them as "-l logfile" and "-p pidfile".
  103. // -S and -w are not compat either, "standard" ntpd has no such opts.
  104. #include "libbb.h"
  105. #include <math.h>
  106. #include <netinet/ip.h> /* For IPTOS_DSCP_AF21 definition */
  107. #include <sys/timex.h>
  108. #ifndef IPTOS_DSCP_AF21
  109. # define IPTOS_DSCP_AF21 0x48
  110. #endif
  111. /* Verbosity control (max level of -dddd options accepted).
  112. * max 6 is very talkative (and bloated). 3 is non-bloated,
  113. * production level setting.
  114. */
  115. #define MAX_VERBOSE 3
  116. /* High-level description of the algorithm:
  117. *
  118. * We start running with very small poll_exp, BURSTPOLL,
  119. * in order to quickly accumulate INITIAL_SAMPLES datapoints
  120. * for each peer. Then, time is stepped if the offset is larger
  121. * than STEP_THRESHOLD, otherwise it isn't; anyway, we enlarge
  122. * poll_exp to MINPOLL and enter frequency measurement step:
  123. * we collect new datapoints but ignore them for WATCH_THRESHOLD
  124. * seconds. After WATCH_THRESHOLD seconds we look at accumulated
  125. * offset and estimate frequency drift.
  126. *
  127. * (frequency measurement step seems to not be strictly needed,
  128. * it is conditionally disabled with USING_INITIAL_FREQ_ESTIMATION
  129. * define set to 0)
  130. *
  131. * After this, we enter "steady state": we collect a datapoint,
  132. * we select the best peer, if this datapoint is not a new one
  133. * (IOW: if this datapoint isn't for selected peer), sleep
  134. * and collect another one; otherwise, use its offset to update
  135. * frequency drift, if offset is somewhat large, reduce poll_exp,
  136. * otherwise increase poll_exp.
  137. *
  138. * If offset is larger than STEP_THRESHOLD, which shouldn't normally
  139. * happen, we assume that something "bad" happened (computer
  140. * was hibernated, someone set totally wrong date, etc),
  141. * then the time is stepped, all datapoints are discarded,
  142. * and we go back to steady state.
  143. *
  144. * Made some changes to speed up re-syncing after our clock goes bad
  145. * (tested with suspending my laptop):
  146. * - if largish offset (>= STEP_THRESHOLD == 1 sec) is seen
  147. * from a peer, schedule next query for this peer soon
  148. * without drastically lowering poll interval for everybody.
  149. * This makes us collect enough data for step much faster:
  150. * e.g. at poll = 10 (1024 secs), step was done within 5 minutes
  151. * after first reply which indicated that our clock is 14 seconds off.
  152. * - on step, do not discard d_dispersion data of the existing datapoints,
  153. * do not clear reachable_bits. This prevents discarding first ~8
  154. * datapoints after the step.
  155. */
  156. #define INITIAL_SAMPLES 4 /* how many samples do we want for init */
  157. #define MIN_FREQHOLD 12 /* adjust offset, but not freq in this many first adjustments */
  158. #define BAD_DELAY_GROWTH 4 /* drop packet if its delay grew by more than this factor */
  159. #define RETRY_INTERVAL 32 /* on send/recv error, retry in N secs (need to be power of 2) */
  160. #define NOREPLY_INTERVAL 512 /* sent, but got no reply: cap next query by this many seconds */
  161. #define RESPONSE_INTERVAL 16 /* wait for reply up to N secs */
  162. #define HOSTNAME_INTERVAL 4 /* hostname lookup failed. Wait N * peer->dns_errors secs for next try */
  163. #define DNS_ERRORS_CAP 0x3f /* peer->dns_errors is in [0..63] */
  164. /* Step threshold (sec). std ntpd uses 0.128.
  165. */
  166. #define STEP_THRESHOLD 1
  167. /* Slew threshold (sec): adjtimex() won't accept offsets larger than this.
  168. * Using exact power of 2 (1/8, 1/2 etc) results in smaller code
  169. */
  170. #define SLEW_THRESHOLD 0.5
  171. // ^^^^ used to be 0.125.
  172. // Since Linux 2.6.26 (circa 2006), kernel accepts (-0.5s, +0.5s) range
  173. /* Stepout threshold (sec). std ntpd uses 900 (11 mins (!)) */
  174. //UNUSED: #define WATCH_THRESHOLD 128
  175. /* NB: set WATCH_THRESHOLD to ~60 when debugging to save time) */
  176. //UNUSED: #define PANIC_THRESHOLD 1000 /* panic threshold (sec) */
  177. /*
  178. * If we got |offset| > BIGOFF from a peer, cap next query interval
  179. * for this peer by this many seconds:
  180. */
  181. #define BIGOFF STEP_THRESHOLD
  182. #define BIGOFF_INTERVAL (1 << 7) /* 128 s */
  183. #define FREQ_TOLERANCE 0.000015 /* frequency tolerance (15 PPM) */
  184. #define BURSTPOLL 0 /* initial poll */
  185. #define MINPOLL 5 /* minimum poll interval. std ntpd uses 6 (6: 64 sec) */
  186. /*
  187. * If offset > discipline_jitter * POLLADJ_GATE, and poll interval is > 2^BIGPOLL,
  188. * then it is decreased _at once_. (If <= 2^BIGPOLL, it will be decreased _eventually_).
  189. */
  190. #define BIGPOLL 9 /* 2^9 sec ~= 8.5 min */
  191. #define MAXPOLL 12 /* maximum poll interval (12: 1.1h, 17: 36.4h). std ntpd uses 17 */
  192. /*
  193. * Actively lower poll when we see such big offsets.
  194. * With SLEW_THRESHOLD = 0.125, it means we try to sync more aggressively
  195. * if offset increases over ~0.04 sec
  196. */
  197. //#define POLLDOWN_OFFSET (SLEW_THRESHOLD / 3)
  198. #define MINDISP 0.01 /* minimum dispersion (sec) */
  199. #define MAXDISP 16 /* maximum dispersion (sec) */
  200. #define MAXSTRAT 16 /* maximum stratum (infinity metric) */
  201. #define MAXDIST 1 /* distance threshold (sec) */
  202. #define MIN_SELECTED 1 /* minimum intersection survivors */
  203. #define MIN_CLUSTERED 3 /* minimum cluster survivors */
  204. #define MAXDRIFT 0.000500 /* frequency drift we can correct (500 PPM) */
  205. /* Poll-adjust threshold.
  206. * When we see that offset is small enough compared to discipline jitter,
  207. * we grow a counter: += MINPOLL. When counter goes over POLLADJ_LIMIT,
  208. * we poll_exp++. If offset isn't small, counter -= poll_exp*2,
  209. * and when it goes below -POLLADJ_LIMIT, we poll_exp--.
  210. * (Bumped from 30 to 40 since otherwise I often see poll_exp going *2* steps down)
  211. */
  212. #define POLLADJ_LIMIT 40
  213. /* If offset < discipline_jitter * POLLADJ_GATE, then we decide to increase
  214. * poll interval (we think we can't improve timekeeping
  215. * by staying at smaller poll).
  216. */
  217. #define POLLADJ_GATE 4
  218. #define TIMECONST_HACK_GATE 2
  219. /* Compromise Allan intercept (sec). doc uses 1500, std ntpd uses 512 */
  220. #define ALLAN 512
  221. /* PLL loop gain */
  222. #define PLL 65536
  223. /* FLL loop gain [why it depends on MAXPOLL??] */
  224. #define FLL (MAXPOLL + 1)
  225. /* Parameter averaging constant */
  226. #define AVG 4
  227. #define MAX_KEY_NUMBER 65535
  228. #define KEYID_SIZE sizeof(uint32_t)
  229. enum {
  230. NTP_VERSION = 4,
  231. NTP_MAXSTRATUM = 15,
  232. NTP_MD5_DIGESTSIZE = 16,
  233. NTP_MSGSIZE_NOAUTH = 48,
  234. NTP_MSGSIZE_MD5_AUTH = NTP_MSGSIZE_NOAUTH + KEYID_SIZE + NTP_MD5_DIGESTSIZE,
  235. NTP_SHA1_DIGESTSIZE = 20,
  236. NTP_MSGSIZE_SHA1_AUTH = NTP_MSGSIZE_NOAUTH + KEYID_SIZE + NTP_SHA1_DIGESTSIZE,
  237. /* Status Masks */
  238. MODE_MASK = (7 << 0),
  239. VERSION_MASK = (7 << 3),
  240. VERSION_SHIFT = 3,
  241. LI_MASK = (3 << 6),
  242. /* Leap Second Codes (high order two bits of m_status) */
  243. LI_NOWARNING = (0 << 6), /* no warning */
  244. LI_PLUSSEC = (1 << 6), /* add a second (61 seconds) */
  245. LI_MINUSSEC = (2 << 6), /* minus a second (59 seconds) */
  246. LI_ALARM = (3 << 6), /* alarm condition */
  247. /* Mode values */
  248. MODE_RES0 = 0, /* reserved */
  249. MODE_SYM_ACT = 1, /* symmetric active */
  250. MODE_SYM_PAS = 2, /* symmetric passive */
  251. MODE_CLIENT = 3, /* client */
  252. MODE_SERVER = 4, /* server */
  253. MODE_BROADCAST = 5, /* broadcast */
  254. MODE_RES1 = 6, /* reserved for NTP control message */
  255. MODE_RES2 = 7, /* reserved for private use */
  256. };
  257. //TODO: better base selection
  258. #define OFFSET_1900_1970 2208988800UL /* 1970 - 1900 in seconds */
  259. #define NUM_DATAPOINTS 8
  260. typedef struct {
  261. uint32_t int_partl;
  262. uint32_t fractionl;
  263. } l_fixedpt_t;
  264. typedef struct {
  265. uint16_t int_parts;
  266. uint16_t fractions;
  267. } s_fixedpt_t;
  268. typedef struct {
  269. uint8_t m_status; /* status of local clock and leap info */
  270. uint8_t m_stratum;
  271. uint8_t m_ppoll; /* poll value */
  272. int8_t m_precision_exp;
  273. s_fixedpt_t m_rootdelay;
  274. s_fixedpt_t m_rootdisp;
  275. uint32_t m_refid;
  276. l_fixedpt_t m_reftime;
  277. l_fixedpt_t m_orgtime;
  278. l_fixedpt_t m_rectime;
  279. l_fixedpt_t m_xmttime;
  280. uint32_t m_keyid;
  281. uint8_t m_digest[ENABLE_FEATURE_NTP_AUTH ? NTP_SHA1_DIGESTSIZE : NTP_MD5_DIGESTSIZE];
  282. } msg_t;
  283. typedef struct {
  284. double d_offset;
  285. double d_recv_time;
  286. double d_dispersion;
  287. } datapoint_t;
  288. #if ENABLE_FEATURE_NTP_AUTH
  289. enum {
  290. HASH_MD5,
  291. HASH_SHA1,
  292. };
  293. typedef struct {
  294. unsigned id; //try uint16_t?
  295. smalluint type;
  296. smalluint msg_size;
  297. smalluint key_length;
  298. char key[0];
  299. } key_entry_t;
  300. #endif
  301. typedef struct {
  302. len_and_sockaddr *p_lsa;
  303. char *p_dotted;
  304. #if ENABLE_FEATURE_NTP_AUTH
  305. key_entry_t *key_entry;
  306. #endif
  307. int p_fd;
  308. int datapoint_idx;
  309. uint32_t lastpkt_refid;
  310. uint8_t lastpkt_status;
  311. uint8_t lastpkt_stratum;
  312. uint8_t reachable_bits;
  313. uint8_t dns_errors;
  314. /* when to send new query (if p_fd == -1)
  315. * or when receive times out (if p_fd >= 0): */
  316. double next_action_time;
  317. double p_xmttime;
  318. double p_raw_delay;
  319. /* p_raw_delay is set even by "high delay" packets */
  320. /* lastpkt_delay isn't */
  321. double lastpkt_recv_time;
  322. double lastpkt_delay;
  323. double lastpkt_rootdelay;
  324. double lastpkt_rootdisp;
  325. /* produced by filter algorithm: */
  326. double filter_offset;
  327. double filter_dispersion;
  328. double filter_jitter;
  329. datapoint_t filter_datapoint[NUM_DATAPOINTS];
  330. /* last sent packet: */
  331. msg_t p_xmt_msg;
  332. char p_hostname[1];
  333. } peer_t;
  334. #define USING_KERNEL_PLL_LOOP 1
  335. #define USING_INITIAL_FREQ_ESTIMATION 0
  336. enum {
  337. OPT_n = (1 << 0),
  338. OPT_q = (1 << 1),
  339. OPT_N = (1 << 2),
  340. OPT_x = (1 << 3),
  341. OPT_k = (1 << 4) * ENABLE_FEATURE_NTP_AUTH,
  342. /* Insert new options above this line. */
  343. /* Non-compat options: */
  344. OPT_w = (1 << (4+ENABLE_FEATURE_NTP_AUTH)),
  345. OPT_p = (1 << (5+ENABLE_FEATURE_NTP_AUTH)),
  346. OPT_S = (1 << (6+ENABLE_FEATURE_NTP_AUTH)),
  347. OPT_l = (1 << (7+ENABLE_FEATURE_NTP_AUTH)) * ENABLE_FEATURE_NTPD_SERVER,
  348. OPT_I = (1 << (8+ENABLE_FEATURE_NTP_AUTH)) * ENABLE_FEATURE_NTPD_SERVER,
  349. /* We hijack some bits for other purposes */
  350. OPT_qq = (1 << 31),
  351. };
  352. struct globals {
  353. double cur_time;
  354. /* total round trip delay to currently selected reference clock */
  355. double rootdelay;
  356. /* reference timestamp: time when the system clock was last set or corrected */
  357. double reftime;
  358. /* total dispersion to currently selected reference clock */
  359. double rootdisp;
  360. double last_script_run;
  361. char *script_name;
  362. llist_t *ntp_peers;
  363. #if ENABLE_FEATURE_NTPD_SERVER
  364. int listen_fd;
  365. char *if_name;
  366. # define G_listen_fd (G.listen_fd)
  367. #else
  368. # define G_listen_fd (-1)
  369. #endif
  370. unsigned verbose;
  371. unsigned peer_cnt;
  372. /* refid: 32-bit code identifying the particular server or reference clock
  373. * in stratum 0 packets this is a four-character ASCII string,
  374. * called the kiss code, used for debugging and monitoring
  375. * in stratum 1 packets this is a four-character ASCII string
  376. * assigned to the reference clock by IANA. Example: "GPS "
  377. * in stratum 2+ packets, it's IPv4 address or 4 first bytes
  378. * of MD5 hash of IPv6
  379. */
  380. uint32_t refid;
  381. uint8_t ntp_status;
  382. /* precision is defined as the larger of the resolution and time to
  383. * read the clock, in log2 units. For instance, the precision of a
  384. * mains-frequency clock incrementing at 60 Hz is 16 ms, even when the
  385. * system clock hardware representation is to the nanosecond.
  386. *
  387. * Delays, jitters of various kinds are clamped down to precision.
  388. *
  389. * If precision_sec is too large, discipline_jitter gets clamped to it
  390. * and if offset is smaller than discipline_jitter * POLLADJ_GATE, poll
  391. * interval grows even though we really can benefit from staying at
  392. * smaller one, collecting non-lagged datapoits and correcting offset.
  393. * (Lagged datapoits exist when poll_exp is large but we still have
  394. * systematic offset error - the time distance between datapoints
  395. * is significant and older datapoints have smaller offsets.
  396. * This makes our offset estimation a bit smaller than reality)
  397. * Due to this effect, setting G_precision_sec close to
  398. * STEP_THRESHOLD isn't such a good idea - offsets may grow
  399. * too big and we will step. I observed it with -6.
  400. *
  401. * OTOH, setting precision_sec far too small would result in futile
  402. * attempts to synchronize to an unachievable precision.
  403. *
  404. * -6 is 1/64 sec, -7 is 1/128 sec and so on.
  405. * -8 is 1/256 ~= 0.003906 (worked well for me --vda)
  406. * -9 is 1/512 ~= 0.001953 (let's try this for some time)
  407. */
  408. #define G_precision_exp -9
  409. /*
  410. * G_precision_exp is used only for construction outgoing packets.
  411. * It's ok to set G_precision_sec to a slightly different value
  412. * (One which is "nicer looking" in logs).
  413. * Exact value would be (1.0 / (1 << (- G_precision_exp))):
  414. */
  415. #define G_precision_sec 0.002
  416. uint8_t stratum;
  417. #define STATE_NSET 0 /* initial state, "nothing is set" */
  418. //#define STATE_FSET 1 /* frequency set from file */
  419. //#define STATE_SPIK 2 /* spike detected */
  420. //#define STATE_FREQ 3 /* initial frequency */
  421. #define STATE_SYNC 4 /* clock synchronized (normal operation) */
  422. uint8_t discipline_state; // doc calls it c.state
  423. uint8_t poll_exp; // s.poll
  424. int polladj_count; // c.count
  425. int FREQHOLD_cnt;
  426. long kernel_freq_drift;
  427. peer_t *last_update_peer;
  428. double last_update_offset; // c.last
  429. double last_update_recv_time; // s.t
  430. double discipline_jitter; // c.jitter
  431. /* Since we only compare it with ints, can simplify code
  432. * by not making this variable floating point:
  433. */
  434. unsigned offset_to_jitter_ratio;
  435. //double cluster_offset; // s.offset
  436. //double cluster_jitter; // s.jitter
  437. #if !USING_KERNEL_PLL_LOOP
  438. double discipline_freq_drift; // c.freq
  439. /* Maybe conditionally calculate wander? it's used only for logging */
  440. double discipline_wander; // c.wander
  441. #endif
  442. };
  443. #define G (*ptr_to_globals)
  444. #define VERB1 if (MAX_VERBOSE && G.verbose)
  445. #define VERB2 if (MAX_VERBOSE >= 2 && G.verbose >= 2)
  446. #define VERB3 if (MAX_VERBOSE >= 3 && G.verbose >= 3)
  447. #define VERB4 if (MAX_VERBOSE >= 4 && G.verbose >= 4)
  448. #define VERB5 if (MAX_VERBOSE >= 5 && G.verbose >= 5)
  449. #define VERB6 if (MAX_VERBOSE >= 6 && G.verbose >= 6)
  450. static double LOG2D(int a)
  451. {
  452. if (a < 0)
  453. return 1.0 / (1UL << -a);
  454. return 1UL << a;
  455. }
  456. static ALWAYS_INLINE double SQUARE(double x)
  457. {
  458. return x * x;
  459. }
  460. static ALWAYS_INLINE double MAXD(double a, double b)
  461. {
  462. if (a > b)
  463. return a;
  464. return b;
  465. }
  466. static ALWAYS_INLINE double MIND(double a, double b)
  467. {
  468. if (a < b)
  469. return a;
  470. return b;
  471. }
  472. static NOINLINE double my_SQRT(double X)
  473. {
  474. union {
  475. float f;
  476. int32_t i;
  477. } v;
  478. double invsqrt;
  479. double Xhalf = X * 0.5;
  480. /* Fast and good approximation to 1/sqrt(X), black magic */
  481. v.f = X;
  482. /*v.i = 0x5f3759df - (v.i >> 1);*/
  483. v.i = 0x5f375a86 - (v.i >> 1); /* - this constant is slightly better */
  484. invsqrt = v.f; /* better than 0.2% accuracy */
  485. /* Refining it using Newton's method: x1 = x0 - f(x0)/f'(x0)
  486. * f(x) = 1/(x*x) - X (f==0 when x = 1/sqrt(X))
  487. * f'(x) = -2/(x*x*x)
  488. * f(x)/f'(x) = (X - 1/(x*x)) / (2/(x*x*x)) = X*x*x*x/2 - x/2
  489. * x1 = x0 - (X*x0*x0*x0/2 - x0/2) = 1.5*x0 - X*x0*x0*x0/2 = x0*(1.5 - (X/2)*x0*x0)
  490. */
  491. invsqrt = invsqrt * (1.5 - Xhalf * invsqrt * invsqrt); /* ~0.05% accuracy */
  492. /* invsqrt = invsqrt * (1.5 - Xhalf * invsqrt * invsqrt); 2nd iter: ~0.0001% accuracy */
  493. /* With 4 iterations, more than half results will be exact,
  494. * at 6th iterations result stabilizes with about 72% results exact.
  495. * We are well satisfied with 0.05% accuracy.
  496. */
  497. return X * invsqrt; /* X * 1/sqrt(X) ~= sqrt(X) */
  498. }
  499. static ALWAYS_INLINE double SQRT(double X)
  500. {
  501. /* If this arch doesn't use IEEE 754 floats, fall back to using libm */
  502. if (sizeof(float) != 4)
  503. return sqrt(X);
  504. /* This avoids needing libm, saves about 0.5k on x86-32 */
  505. return my_SQRT(X);
  506. }
  507. static double
  508. gettime1900d(void)
  509. {
  510. struct timeval tv;
  511. gettimeofday(&tv, NULL); /* never fails */
  512. G.cur_time = tv.tv_sec + (1.0e-6 * tv.tv_usec) + OFFSET_1900_1970;
  513. return G.cur_time;
  514. }
  515. static void
  516. d_to_tv(double d, struct timeval *tv)
  517. {
  518. tv->tv_sec = (long)d;
  519. tv->tv_usec = (d - tv->tv_sec) * 1000000;
  520. }
  521. static double
  522. lfp_to_d(l_fixedpt_t lfp)
  523. {
  524. double ret;
  525. lfp.int_partl = ntohl(lfp.int_partl);
  526. lfp.fractionl = ntohl(lfp.fractionl);
  527. ret = (double)lfp.int_partl + ((double)lfp.fractionl / UINT_MAX);
  528. return ret;
  529. }
  530. static double
  531. sfp_to_d(s_fixedpt_t sfp)
  532. {
  533. double ret;
  534. sfp.int_parts = ntohs(sfp.int_parts);
  535. sfp.fractions = ntohs(sfp.fractions);
  536. ret = (double)sfp.int_parts + ((double)sfp.fractions / USHRT_MAX);
  537. return ret;
  538. }
  539. #if ENABLE_FEATURE_NTPD_SERVER
  540. static l_fixedpt_t
  541. d_to_lfp(double d)
  542. {
  543. l_fixedpt_t lfp;
  544. lfp.int_partl = (uint32_t)d;
  545. lfp.fractionl = (uint32_t)((d - lfp.int_partl) * UINT_MAX);
  546. lfp.int_partl = htonl(lfp.int_partl);
  547. lfp.fractionl = htonl(lfp.fractionl);
  548. return lfp;
  549. }
  550. static s_fixedpt_t
  551. d_to_sfp(double d)
  552. {
  553. s_fixedpt_t sfp;
  554. sfp.int_parts = (uint16_t)d;
  555. sfp.fractions = (uint16_t)((d - sfp.int_parts) * USHRT_MAX);
  556. sfp.int_parts = htons(sfp.int_parts);
  557. sfp.fractions = htons(sfp.fractions);
  558. return sfp;
  559. }
  560. #endif
  561. static double
  562. dispersion(const datapoint_t *dp)
  563. {
  564. return dp->d_dispersion + FREQ_TOLERANCE * (G.cur_time - dp->d_recv_time);
  565. }
  566. static double
  567. root_distance(peer_t *p)
  568. {
  569. /* The root synchronization distance is the maximum error due to
  570. * all causes of the local clock relative to the primary server.
  571. * It is defined as half the total delay plus total dispersion
  572. * plus peer jitter.
  573. */
  574. return MAXD(MINDISP, p->lastpkt_rootdelay + p->lastpkt_delay) / 2
  575. + p->lastpkt_rootdisp
  576. + p->filter_dispersion
  577. + FREQ_TOLERANCE * (G.cur_time - p->lastpkt_recv_time)
  578. + p->filter_jitter;
  579. }
  580. static void
  581. set_next(peer_t *p, unsigned t)
  582. {
  583. p->next_action_time = G.cur_time + t;
  584. }
  585. /*
  586. * Peer clock filter and its helpers
  587. */
  588. static void
  589. filter_datapoints(peer_t *p)
  590. {
  591. int i, idx;
  592. double sum, wavg;
  593. datapoint_t *fdp;
  594. #if 0
  595. /* Simulations have shown that use of *averaged* offset for p->filter_offset
  596. * is in fact worse than simply using last received one: with large poll intervals
  597. * (>= 2048) averaging code uses offset values which are outdated by hours,
  598. * and time/frequency correction goes totally wrong when fed essentially bogus offsets.
  599. */
  600. int got_newest;
  601. double minoff, maxoff, w;
  602. double x = x; /* for compiler */
  603. double oldest_off = oldest_off;
  604. double oldest_age = oldest_age;
  605. double newest_off = newest_off;
  606. double newest_age = newest_age;
  607. fdp = p->filter_datapoint;
  608. minoff = maxoff = fdp[0].d_offset;
  609. for (i = 1; i < NUM_DATAPOINTS; i++) {
  610. if (minoff > fdp[i].d_offset)
  611. minoff = fdp[i].d_offset;
  612. if (maxoff < fdp[i].d_offset)
  613. maxoff = fdp[i].d_offset;
  614. }
  615. idx = p->datapoint_idx; /* most recent datapoint's index */
  616. /* Average offset:
  617. * Drop two outliers and take weighted average of the rest:
  618. * most_recent/2 + older1/4 + older2/8 ... + older5/32 + older6/32
  619. * we use older6/32, not older6/64 since sum of weights should be 1:
  620. * 1/2 + 1/4 + 1/8 + 1/16 + 1/32 + 1/32 = 1
  621. */
  622. wavg = 0;
  623. w = 0.5;
  624. /* n-1
  625. * --- dispersion(i)
  626. * filter_dispersion = \ -------------
  627. * / (i+1)
  628. * --- 2
  629. * i=0
  630. */
  631. got_newest = 0;
  632. sum = 0;
  633. for (i = 0; i < NUM_DATAPOINTS; i++) {
  634. VERB5 {
  635. bb_error_msg("datapoint[%d]: off:%f disp:%f(%f) age:%f%s",
  636. i,
  637. fdp[idx].d_offset,
  638. fdp[idx].d_dispersion, dispersion(&fdp[idx]),
  639. G.cur_time - fdp[idx].d_recv_time,
  640. (minoff == fdp[idx].d_offset || maxoff == fdp[idx].d_offset)
  641. ? " (outlier by offset)" : ""
  642. );
  643. }
  644. sum += dispersion(&fdp[idx]) / (2 << i);
  645. if (minoff == fdp[idx].d_offset) {
  646. minoff -= 1; /* so that we don't match it ever again */
  647. } else
  648. if (maxoff == fdp[idx].d_offset) {
  649. maxoff += 1;
  650. } else {
  651. oldest_off = fdp[idx].d_offset;
  652. oldest_age = G.cur_time - fdp[idx].d_recv_time;
  653. if (!got_newest) {
  654. got_newest = 1;
  655. newest_off = oldest_off;
  656. newest_age = oldest_age;
  657. }
  658. x = oldest_off * w;
  659. wavg += x;
  660. w /= 2;
  661. }
  662. idx = (idx - 1) & (NUM_DATAPOINTS - 1);
  663. }
  664. p->filter_dispersion = sum;
  665. wavg += x; /* add another older6/64 to form older6/32 */
  666. /* Fix systematic underestimation with large poll intervals.
  667. * Imagine that we still have a bit of uncorrected drift,
  668. * and poll interval is big (say, 100 sec). Offsets form a progression:
  669. * 0.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 - 0.7 is most recent.
  670. * The algorithm above drops 0.0 and 0.7 as outliers,
  671. * and then we have this estimation, ~25% off from 0.7:
  672. * 0.1/32 + 0.2/32 + 0.3/16 + 0.4/8 + 0.5/4 + 0.6/2 = 0.503125
  673. */
  674. x = oldest_age - newest_age;
  675. if (x != 0) {
  676. x = newest_age / x; /* in above example, 100 / (600 - 100) */
  677. if (x < 1) { /* paranoia check */
  678. x = (newest_off - oldest_off) * x; /* 0.5 * 100/500 = 0.1 */
  679. wavg += x;
  680. }
  681. }
  682. p->filter_offset = wavg;
  683. #else
  684. fdp = p->filter_datapoint;
  685. idx = p->datapoint_idx; /* most recent datapoint's index */
  686. /* filter_offset: simply use the most recent value */
  687. p->filter_offset = fdp[idx].d_offset;
  688. /* n-1
  689. * --- dispersion(i)
  690. * filter_dispersion = \ -------------
  691. * / (i+1)
  692. * --- 2
  693. * i=0
  694. */
  695. wavg = 0;
  696. sum = 0;
  697. for (i = 0; i < NUM_DATAPOINTS; i++) {
  698. sum += dispersion(&fdp[idx]) / (2 << i);
  699. wavg += fdp[idx].d_offset;
  700. idx = (idx - 1) & (NUM_DATAPOINTS - 1);
  701. }
  702. wavg /= NUM_DATAPOINTS;
  703. p->filter_dispersion = sum;
  704. #endif
  705. /* +----- -----+ ^ 1/2
  706. * | n-1 |
  707. * | --- |
  708. * | 1 \ 2 |
  709. * filter_jitter = | --- * / (avg-offset_j) |
  710. * | n --- |
  711. * | j=0 |
  712. * +----- -----+
  713. * where n is the number of valid datapoints in the filter (n > 1);
  714. * if filter_jitter < precision then filter_jitter = precision
  715. */
  716. sum = 0;
  717. for (i = 0; i < NUM_DATAPOINTS; i++) {
  718. sum += SQUARE(wavg - fdp[i].d_offset);
  719. }
  720. sum = SQRT(sum / NUM_DATAPOINTS);
  721. p->filter_jitter = sum > G_precision_sec ? sum : G_precision_sec;
  722. VERB4 bb_error_msg("filter offset:%+f disp:%f jitter:%f",
  723. p->filter_offset,
  724. p->filter_dispersion,
  725. p->filter_jitter);
  726. }
  727. static void
  728. reset_peer_stats(peer_t *p, double offset)
  729. {
  730. int i;
  731. bool small_ofs = fabs(offset) < STEP_THRESHOLD;
  732. /* Used to set p->filter_datapoint[i].d_dispersion = MAXDISP
  733. * and clear reachable bits, but this proved to be too aggressive:
  734. * after step (tested with suspending laptop for ~30 secs),
  735. * this caused all previous data to be considered invalid,
  736. * making us needing to collect full ~8 datapoints per peer
  737. * after step in order to start trusting them.
  738. * In turn, this was making poll interval decrease even after
  739. * step was done. (Poll interval decreases already before step
  740. * in this scenario, because we see large offsets and end up with
  741. * no good peer to select).
  742. */
  743. for (i = 0; i < NUM_DATAPOINTS; i++) {
  744. if (small_ofs) {
  745. p->filter_datapoint[i].d_recv_time += offset;
  746. if (p->filter_datapoint[i].d_offset != 0) {
  747. p->filter_datapoint[i].d_offset -= offset;
  748. //bb_error_msg("p->filter_datapoint[%d].d_offset %f -> %f",
  749. // i,
  750. // p->filter_datapoint[i].d_offset + offset,
  751. // p->filter_datapoint[i].d_offset);
  752. }
  753. } else {
  754. p->filter_datapoint[i].d_recv_time = G.cur_time;
  755. p->filter_datapoint[i].d_offset = 0;
  756. /*p->filter_datapoint[i].d_dispersion = MAXDISP;*/
  757. }
  758. }
  759. if (small_ofs) {
  760. p->lastpkt_recv_time += offset;
  761. } else {
  762. /*p->reachable_bits = 0;*/
  763. p->lastpkt_recv_time = G.cur_time;
  764. }
  765. filter_datapoints(p); /* recalc p->filter_xxx */
  766. VERB6 bb_error_msg("%s->lastpkt_recv_time=%f", p->p_dotted, p->lastpkt_recv_time);
  767. }
  768. static len_and_sockaddr*
  769. resolve_peer_hostname(peer_t *p)
  770. {
  771. len_and_sockaddr *lsa = host2sockaddr(p->p_hostname, 123);
  772. if (lsa) {
  773. free(p->p_lsa);
  774. free(p->p_dotted);
  775. p->p_lsa = lsa;
  776. p->p_dotted = xmalloc_sockaddr2dotted_noport(&lsa->u.sa);
  777. VERB1 if (strcmp(p->p_hostname, p->p_dotted) != 0)
  778. bb_error_msg("'%s' is %s", p->p_hostname, p->p_dotted);
  779. p->dns_errors = 0;
  780. return lsa;
  781. }
  782. p->dns_errors = ((p->dns_errors << 1) | 1) & DNS_ERRORS_CAP;
  783. return lsa;
  784. }
  785. #if !ENABLE_FEATURE_NTP_AUTH
  786. #define add_peers(s, key_entry) \
  787. add_peers(s)
  788. #endif
  789. static void
  790. add_peers(const char *s, key_entry_t *key_entry)
  791. {
  792. llist_t *item;
  793. peer_t *p;
  794. p = xzalloc(sizeof(*p) + strlen(s));
  795. strcpy(p->p_hostname, s);
  796. p->p_fd = -1;
  797. p->p_xmt_msg.m_status = MODE_CLIENT | (NTP_VERSION << 3);
  798. p->next_action_time = G.cur_time; /* = set_next(p, 0); */
  799. reset_peer_stats(p, STEP_THRESHOLD);
  800. /* Names like N.<country2chars>.pool.ntp.org are randomly resolved
  801. * to a pool of machines. Sometimes different N's resolve to the same IP.
  802. * It is not useful to have two peers with same IP. We skip duplicates.
  803. */
  804. if (resolve_peer_hostname(p)) {
  805. for (item = G.ntp_peers; item != NULL; item = item->link) {
  806. peer_t *pp = (peer_t *) item->data;
  807. if (pp->p_dotted && strcmp(p->p_dotted, pp->p_dotted) == 0) {
  808. bb_error_msg("duplicate peer %s (%s)", s, p->p_dotted);
  809. free(p->p_lsa);
  810. free(p->p_dotted);
  811. free(p);
  812. return;
  813. }
  814. }
  815. }
  816. IF_FEATURE_NTP_AUTH(p->key_entry = key_entry;)
  817. llist_add_to(&G.ntp_peers, p);
  818. G.peer_cnt++;
  819. }
  820. static int
  821. do_sendto(int fd,
  822. const struct sockaddr *from, const struct sockaddr *to, socklen_t addrlen,
  823. msg_t *msg, ssize_t len)
  824. {
  825. ssize_t ret;
  826. errno = 0;
  827. if (!from) {
  828. ret = sendto(fd, msg, len, MSG_DONTWAIT, to, addrlen);
  829. } else {
  830. ret = send_to_from(fd, msg, len, MSG_DONTWAIT, to, from, addrlen);
  831. }
  832. if (ret != len) {
  833. bb_perror_msg("send failed");
  834. return -1;
  835. }
  836. return 0;
  837. }
  838. #if ENABLE_FEATURE_NTP_AUTH
  839. static void
  840. hash(key_entry_t *key_entry, const msg_t *msg, uint8_t *output)
  841. {
  842. union {
  843. md5_ctx_t m;
  844. sha1_ctx_t s;
  845. } ctx;
  846. unsigned hash_size = sizeof(*msg) - sizeof(msg->m_keyid) - sizeof(msg->m_digest);
  847. switch (key_entry->type) {
  848. case HASH_MD5:
  849. md5_begin(&ctx.m);
  850. md5_hash(&ctx.m, key_entry->key, key_entry->key_length);
  851. md5_hash(&ctx.m, msg, hash_size);
  852. md5_end(&ctx.m, output);
  853. break;
  854. default: /* it's HASH_SHA1 */
  855. sha1_begin(&ctx.s);
  856. sha1_hash(&ctx.s, key_entry->key, key_entry->key_length);
  857. sha1_hash(&ctx.s, msg, hash_size);
  858. sha1_end(&ctx.s, output);
  859. break;
  860. }
  861. }
  862. static void
  863. hash_peer(peer_t *p)
  864. {
  865. p->p_xmt_msg.m_keyid = htonl(p->key_entry->id);
  866. hash(p->key_entry, &p->p_xmt_msg, p->p_xmt_msg.m_digest);
  867. }
  868. static int
  869. hashes_differ(peer_t *p, const msg_t *msg)
  870. {
  871. uint8_t digest[NTP_SHA1_DIGESTSIZE];
  872. hash(p->key_entry, msg, digest);
  873. return memcmp(digest, msg->m_digest, p->key_entry->msg_size - NTP_MSGSIZE_NOAUTH - KEYID_SIZE);
  874. }
  875. #endif
  876. static void
  877. send_query_to_peer(peer_t *p)
  878. {
  879. if (!p->p_lsa)
  880. return;
  881. /* Why do we need to bind()?
  882. * See what happens when we don't bind:
  883. *
  884. * socket(PF_INET, SOCK_DGRAM, IPPROTO_IP) = 3
  885. * setsockopt(3, SOL_IP, IP_TOS, [16], 4) = 0
  886. * gettimeofday({1259071266, 327885}, NULL) = 0
  887. * sendto(3, "xxx", 48, MSG_DONTWAIT, {sa_family=AF_INET, sin_port=htons(123), sin_addr=inet_addr("10.34.32.125")}, 16) = 48
  888. * ^^^ we sent it from some source port picked by kernel.
  889. * time(NULL) = 1259071266
  890. * write(2, "ntpd: entering poll 15 secs\n", 28) = 28
  891. * poll([{fd=3, events=POLLIN}], 1, 15000) = 1 ([{fd=3, revents=POLLIN}])
  892. * recv(3, "yyy", 68, MSG_DONTWAIT) = 48
  893. * ^^^ this recv will receive packets to any local port!
  894. *
  895. * Uncomment this and use strace to see it in action:
  896. */
  897. #define PROBE_LOCAL_ADDR /* { len_and_sockaddr lsa; lsa.len = LSA_SIZEOF_SA; getsockname(p->query.fd, &lsa.u.sa, &lsa.len); } */
  898. if (p->p_fd == -1) {
  899. int fd, family;
  900. len_and_sockaddr *local_lsa;
  901. family = p->p_lsa->u.sa.sa_family;
  902. p->p_fd = fd = xsocket_type(&local_lsa, family, SOCK_DGRAM);
  903. /* local_lsa has "null" address and port 0 now.
  904. * bind() ensures we have a *particular port* selected by kernel
  905. * and remembered in p->p_fd, thus later recv(p->p_fd)
  906. * receives only packets sent to this port.
  907. */
  908. PROBE_LOCAL_ADDR
  909. xbind(fd, &local_lsa->u.sa, local_lsa->len);
  910. PROBE_LOCAL_ADDR
  911. #if ENABLE_FEATURE_IPV6
  912. if (family == AF_INET)
  913. #endif
  914. setsockopt_int(fd, IPPROTO_IP, IP_TOS, IPTOS_DSCP_AF21);
  915. free(local_lsa);
  916. }
  917. /* Emit message _before_ attempted send. Think of a very short
  918. * roundtrip networks: we need to go back to recv loop ASAP,
  919. * to reduce delay. Printing messages after send works against that.
  920. */
  921. VERB1 bb_error_msg("sending query to %s", p->p_dotted);
  922. /*
  923. * Send out a random 64-bit number as our transmit time. The NTP
  924. * server will copy said number into the originate field on the
  925. * response that it sends us. This is totally legal per the SNTP spec.
  926. *
  927. * The impact of this is two fold: we no longer send out the current
  928. * system time for the world to see (which may aid an attacker), and
  929. * it gives us a (not very secure) way of knowing that we're not
  930. * getting spoofed by an attacker that can't capture our traffic
  931. * but can spoof packets from the NTP server we're communicating with.
  932. *
  933. * Save the real transmit timestamp locally.
  934. */
  935. p->p_xmt_msg.m_xmttime.int_partl = rand();
  936. p->p_xmt_msg.m_xmttime.fractionl = rand();
  937. p->p_xmttime = gettime1900d();
  938. /* Were doing it only if sendto worked, but
  939. * loss of sync detection needs reachable_bits updated
  940. * even if sending fails *locally*:
  941. * "network is unreachable" because cable was pulled?
  942. * We still need to declare "unsync" if this condition persists.
  943. */
  944. p->reachable_bits <<= 1;
  945. #if ENABLE_FEATURE_NTP_AUTH
  946. if (p->key_entry)
  947. hash_peer(p);
  948. if (do_sendto(p->p_fd, /*from:*/ NULL, /*to:*/ &p->p_lsa->u.sa, /*addrlen:*/ p->p_lsa->len,
  949. &p->p_xmt_msg, !p->key_entry ? NTP_MSGSIZE_NOAUTH : p->key_entry->msg_size) == -1
  950. )
  951. #else
  952. if (do_sendto(p->p_fd, /*from:*/ NULL, /*to:*/ &p->p_lsa->u.sa, /*addrlen:*/ p->p_lsa->len,
  953. &p->p_xmt_msg, NTP_MSGSIZE_NOAUTH) == -1
  954. )
  955. #endif
  956. {
  957. close(p->p_fd);
  958. p->p_fd = -1;
  959. /*
  960. * We know that we sent nothing.
  961. * We can retry *soon* without fearing
  962. * that we are flooding the peer.
  963. */
  964. set_next(p, RETRY_INTERVAL);
  965. return;
  966. }
  967. set_next(p, RESPONSE_INTERVAL);
  968. }
  969. /* Note that there is no provision to prevent several run_scripts
  970. * to be started in quick succession. In fact, it happens rather often
  971. * if initial syncronization results in a step.
  972. * You will see "step" and then "stratum" script runs, sometimes
  973. * as close as only 0.002 seconds apart.
  974. * Script should be ready to deal with this.
  975. */
  976. static void run_script(const char *action, double offset)
  977. {
  978. char *argv[3];
  979. char *env1, *env2, *env3, *env4;
  980. G.last_script_run = G.cur_time;
  981. if (!G.script_name)
  982. return;
  983. argv[0] = (char*) G.script_name;
  984. argv[1] = (char*) action;
  985. argv[2] = NULL;
  986. VERB1 bb_error_msg("executing '%s %s'", G.script_name, action);
  987. env1 = xasprintf("%s=%u", "stratum", G.stratum);
  988. putenv(env1);
  989. env2 = xasprintf("%s=%ld", "freq_drift_ppm", G.kernel_freq_drift);
  990. putenv(env2);
  991. env3 = xasprintf("%s=%u", "poll_interval", 1 << G.poll_exp);
  992. putenv(env3);
  993. env4 = xasprintf("%s=%f", "offset", offset);
  994. putenv(env4);
  995. /* Other items of potential interest: selected peer,
  996. * rootdelay, reftime, rootdisp, refid, ntp_status,
  997. * last_update_offset, last_update_recv_time, discipline_jitter,
  998. * how many peers have reachable_bits = 0?
  999. */
  1000. /* Don't want to wait: it may run hwclock --systohc, and that
  1001. * may take some time (seconds): */
  1002. /*spawn_and_wait(argv);*/
  1003. spawn(argv);
  1004. unsetenv("stratum");
  1005. unsetenv("freq_drift_ppm");
  1006. unsetenv("poll_interval");
  1007. unsetenv("offset");
  1008. free(env1);
  1009. free(env2);
  1010. free(env3);
  1011. free(env4);
  1012. }
  1013. static NOINLINE void
  1014. step_time(double offset)
  1015. {
  1016. llist_t *item;
  1017. double dtime;
  1018. struct timeval tvc, tvn;
  1019. char buf[sizeof("yyyy-mm-dd hh:mm:ss") + /*paranoia:*/ 4];
  1020. time_t tval;
  1021. gettimeofday(&tvc, NULL); /* never fails */
  1022. dtime = tvc.tv_sec + (1.0e-6 * tvc.tv_usec) + offset;
  1023. d_to_tv(dtime, &tvn);
  1024. if (settimeofday(&tvn, NULL) == -1)
  1025. bb_perror_msg_and_die("settimeofday");
  1026. VERB2 {
  1027. tval = tvc.tv_sec;
  1028. strftime_YYYYMMDDHHMMSS(buf, sizeof(buf), &tval);
  1029. bb_error_msg("current time is %s.%06u", buf, (unsigned)tvc.tv_usec);
  1030. }
  1031. tval = tvn.tv_sec;
  1032. strftime_YYYYMMDDHHMMSS(buf, sizeof(buf), &tval);
  1033. bb_error_msg("setting time to %s.%06u (offset %+fs)", buf, (unsigned)tvn.tv_usec, offset);
  1034. //maybe? G.FREQHOLD_cnt = 0;
  1035. /* Correct various fields which contain time-relative values: */
  1036. /* Globals: */
  1037. G.cur_time += offset;
  1038. G.last_update_recv_time += offset;
  1039. G.last_script_run += offset;
  1040. /* p->lastpkt_recv_time, p->next_action_time and such: */
  1041. for (item = G.ntp_peers; item != NULL; item = item->link) {
  1042. peer_t *pp = (peer_t *) item->data;
  1043. reset_peer_stats(pp, offset);
  1044. //bb_error_msg("offset:%+f pp->next_action_time:%f -> %f",
  1045. // offset, pp->next_action_time, pp->next_action_time + offset);
  1046. pp->next_action_time += offset;
  1047. if (pp->p_fd >= 0) {
  1048. /* We wait for reply from this peer too.
  1049. * But due to step we are doing, reply's data is no longer
  1050. * useful (in fact, it'll be bogus). Stop waiting for it.
  1051. */
  1052. close(pp->p_fd);
  1053. pp->p_fd = -1;
  1054. set_next(pp, RETRY_INTERVAL);
  1055. }
  1056. }
  1057. }
  1058. static void clamp_pollexp_and_set_MAXSTRAT(void)
  1059. {
  1060. if (G.poll_exp < MINPOLL)
  1061. G.poll_exp = MINPOLL;
  1062. if (G.poll_exp > BIGPOLL)
  1063. G.poll_exp = BIGPOLL;
  1064. G.polladj_count = 0;
  1065. G.stratum = MAXSTRAT;
  1066. }
  1067. /*
  1068. * Selection and clustering, and their helpers
  1069. */
  1070. typedef struct {
  1071. peer_t *p;
  1072. int type;
  1073. double edge;
  1074. double opt_rd; /* optimization */
  1075. } point_t;
  1076. static int
  1077. compare_point_edge(const void *aa, const void *bb)
  1078. {
  1079. const point_t *a = aa;
  1080. const point_t *b = bb;
  1081. if (a->edge < b->edge) {
  1082. return -1;
  1083. }
  1084. return (a->edge > b->edge);
  1085. }
  1086. typedef struct {
  1087. peer_t *p;
  1088. double metric;
  1089. } survivor_t;
  1090. static int
  1091. compare_survivor_metric(const void *aa, const void *bb)
  1092. {
  1093. const survivor_t *a = aa;
  1094. const survivor_t *b = bb;
  1095. if (a->metric < b->metric) {
  1096. return -1;
  1097. }
  1098. return (a->metric > b->metric);
  1099. }
  1100. static int
  1101. fit(peer_t *p, double rd)
  1102. {
  1103. if ((p->reachable_bits & (p->reachable_bits-1)) == 0) {
  1104. /* One or zero bits in reachable_bits */
  1105. VERB4 bb_error_msg("peer %s unfit for selection: "
  1106. "unreachable", p->p_dotted);
  1107. return 0;
  1108. }
  1109. #if 0 /* we filter out such packets earlier */
  1110. if ((p->lastpkt_status & LI_ALARM) == LI_ALARM
  1111. || p->lastpkt_stratum >= MAXSTRAT
  1112. ) {
  1113. VERB4 bb_error_msg("peer %s unfit for selection: "
  1114. "bad status/stratum", p->p_dotted);
  1115. return 0;
  1116. }
  1117. #endif
  1118. /* rd is root_distance(p) */
  1119. if (rd > MAXDIST + FREQ_TOLERANCE * (1 << G.poll_exp)) {
  1120. VERB3 bb_error_msg("peer %s unfit for selection: "
  1121. "root distance %f too high, jitter:%f",
  1122. p->p_dotted, rd, p->filter_jitter
  1123. );
  1124. return 0;
  1125. }
  1126. //TODO
  1127. // /* Do we have a loop? */
  1128. // if (p->refid == p->dstaddr || p->refid == s.refid)
  1129. // return 0;
  1130. return 1;
  1131. }
  1132. static peer_t*
  1133. select_and_cluster(void)
  1134. {
  1135. peer_t *p;
  1136. llist_t *item;
  1137. int i, j;
  1138. int size = 3 * G.peer_cnt;
  1139. /* for selection algorithm */
  1140. point_t point[size];
  1141. unsigned num_points, num_candidates;
  1142. double low, high;
  1143. unsigned num_falsetickers;
  1144. /* for cluster algorithm */
  1145. survivor_t survivor[size];
  1146. unsigned num_survivors;
  1147. /* Selection */
  1148. num_points = 0;
  1149. item = G.ntp_peers;
  1150. while (item != NULL) {
  1151. double rd, offset;
  1152. p = (peer_t *) item->data;
  1153. rd = root_distance(p);
  1154. offset = p->filter_offset;
  1155. if (!fit(p, rd)) {
  1156. item = item->link;
  1157. continue;
  1158. }
  1159. VERB5 bb_error_msg("interval: [%f %f %f] %s",
  1160. offset - rd,
  1161. offset,
  1162. offset + rd,
  1163. p->p_dotted
  1164. );
  1165. point[num_points].p = p;
  1166. point[num_points].type = -1;
  1167. point[num_points].edge = offset - rd;
  1168. point[num_points].opt_rd = rd;
  1169. num_points++;
  1170. point[num_points].p = p;
  1171. point[num_points].type = 0;
  1172. point[num_points].edge = offset;
  1173. point[num_points].opt_rd = rd;
  1174. num_points++;
  1175. point[num_points].p = p;
  1176. point[num_points].type = 1;
  1177. point[num_points].edge = offset + rd;
  1178. point[num_points].opt_rd = rd;
  1179. num_points++;
  1180. item = item->link;
  1181. }
  1182. num_candidates = num_points / 3;
  1183. if (num_candidates == 0) {
  1184. VERB3 bb_error_msg("no valid datapoints%s", ", no peer selected");
  1185. return NULL;
  1186. }
  1187. //TODO: sorting does not seem to be done in reference code
  1188. qsort(point, num_points, sizeof(point[0]), compare_point_edge);
  1189. /* Start with the assumption that there are no falsetickers.
  1190. * Attempt to find a nonempty intersection interval containing
  1191. * the midpoints of all truechimers.
  1192. * If a nonempty interval cannot be found, increase the number
  1193. * of assumed falsetickers by one and try again.
  1194. * If a nonempty interval is found and the number of falsetickers
  1195. * is less than the number of truechimers, a majority has been found
  1196. * and the midpoint of each truechimer represents
  1197. * the candidates available to the cluster algorithm.
  1198. */
  1199. num_falsetickers = 0;
  1200. while (1) {
  1201. int c;
  1202. unsigned num_midpoints = 0;
  1203. low = 1 << 9;
  1204. high = - (1 << 9);
  1205. c = 0;
  1206. for (i = 0; i < num_points; i++) {
  1207. /* We want to do:
  1208. * if (point[i].type == -1) c++;
  1209. * if (point[i].type == 1) c--;
  1210. * and it's simpler to do it this way:
  1211. */
  1212. c -= point[i].type;
  1213. if (c >= num_candidates - num_falsetickers) {
  1214. /* If it was c++ and it got big enough... */
  1215. low = point[i].edge;
  1216. break;
  1217. }
  1218. if (point[i].type == 0)
  1219. num_midpoints++;
  1220. }
  1221. c = 0;
  1222. for (i = num_points-1; i >= 0; i--) {
  1223. c += point[i].type;
  1224. if (c >= num_candidates - num_falsetickers) {
  1225. high = point[i].edge;
  1226. break;
  1227. }
  1228. if (point[i].type == 0)
  1229. num_midpoints++;
  1230. }
  1231. /* If the number of midpoints is greater than the number
  1232. * of allowed falsetickers, the intersection contains at
  1233. * least one truechimer with no midpoint - bad.
  1234. * Also, interval should be nonempty.
  1235. */
  1236. if (num_midpoints <= num_falsetickers && low < high)
  1237. break;
  1238. num_falsetickers++;
  1239. if (num_falsetickers * 2 >= num_candidates) {
  1240. VERB3 bb_error_msg("falsetickers:%d, candidates:%d%s",
  1241. num_falsetickers, num_candidates,
  1242. ", no peer selected");
  1243. return NULL;
  1244. }
  1245. }
  1246. VERB4 bb_error_msg("selected interval: [%f, %f]; candidates:%d falsetickers:%d",
  1247. low, high, num_candidates, num_falsetickers);
  1248. /* Clustering */
  1249. /* Construct a list of survivors (p, metric)
  1250. * from the chime list, where metric is dominated
  1251. * first by stratum and then by root distance.
  1252. * All other things being equal, this is the order of preference.
  1253. */
  1254. num_survivors = 0;
  1255. for (i = 0; i < num_points; i++) {
  1256. if (point[i].edge < low || point[i].edge > high)
  1257. continue;
  1258. p = point[i].p;
  1259. survivor[num_survivors].p = p;
  1260. /* x.opt_rd == root_distance(p); */
  1261. survivor[num_survivors].metric = MAXDIST * p->lastpkt_stratum + point[i].opt_rd;
  1262. VERB5 bb_error_msg("survivor[%d] metric:%f peer:%s",
  1263. num_survivors, survivor[num_survivors].metric, p->p_dotted);
  1264. num_survivors++;
  1265. }
  1266. /* There must be at least MIN_SELECTED survivors to satisfy the
  1267. * correctness assertions. Ordinarily, the Byzantine criteria
  1268. * require four survivors, but for the demonstration here, one
  1269. * is acceptable.
  1270. */
  1271. if (num_survivors < MIN_SELECTED) {
  1272. VERB3 bb_error_msg("survivors:%d%s",
  1273. num_survivors,
  1274. ", no peer selected");
  1275. return NULL;
  1276. }
  1277. //looks like this is ONLY used by the fact that later we pick survivor[0].
  1278. //we can avoid sorting then, just find the minimum once!
  1279. qsort(survivor, num_survivors, sizeof(survivor[0]), compare_survivor_metric);
  1280. /* For each association p in turn, calculate the selection
  1281. * jitter p->sjitter as the square root of the sum of squares
  1282. * (p->offset - q->offset) over all q associations. The idea is
  1283. * to repeatedly discard the survivor with maximum selection
  1284. * jitter until a termination condition is met.
  1285. */
  1286. while (1) {
  1287. unsigned max_idx = max_idx;
  1288. double max_selection_jitter = max_selection_jitter;
  1289. double min_jitter = min_jitter;
  1290. if (num_survivors <= MIN_CLUSTERED) {
  1291. VERB4 bb_error_msg("num_survivors %d <= %d, not discarding more",
  1292. num_survivors, MIN_CLUSTERED);
  1293. break;
  1294. }
  1295. /* To make sure a few survivors are left
  1296. * for the clustering algorithm to chew on,
  1297. * we stop if the number of survivors
  1298. * is less than or equal to MIN_CLUSTERED (3).
  1299. */
  1300. for (i = 0; i < num_survivors; i++) {
  1301. double selection_jitter_sq;
  1302. p = survivor[i].p;
  1303. if (i == 0 || p->filter_jitter < min_jitter)
  1304. min_jitter = p->filter_jitter;
  1305. selection_jitter_sq = 0;
  1306. for (j = 0; j < num_survivors; j++) {
  1307. peer_t *q = survivor[j].p;
  1308. selection_jitter_sq += SQUARE(p->filter_offset - q->filter_offset);
  1309. }
  1310. if (i == 0 || selection_jitter_sq > max_selection_jitter) {
  1311. max_selection_jitter = selection_jitter_sq;
  1312. max_idx = i;
  1313. }
  1314. VERB6 bb_error_msg("survivor %d selection_jitter^2:%f",
  1315. i, selection_jitter_sq);
  1316. }
  1317. max_selection_jitter = SQRT(max_selection_jitter / num_survivors);
  1318. VERB5 bb_error_msg("max_selection_jitter (at %d):%f min_jitter:%f",
  1319. max_idx, max_selection_jitter, min_jitter);
  1320. /* If the maximum selection jitter is less than the
  1321. * minimum peer jitter, then tossing out more survivors
  1322. * will not lower the minimum peer jitter, so we might
  1323. * as well stop.
  1324. */
  1325. if (max_selection_jitter < min_jitter) {
  1326. VERB4 bb_error_msg("max_selection_jitter:%f < min_jitter:%f, num_survivors:%d, not discarding more",
  1327. max_selection_jitter, min_jitter, num_survivors);
  1328. break;
  1329. }
  1330. /* Delete survivor[max_idx] from the list
  1331. * and go around again.
  1332. */
  1333. VERB6 bb_error_msg("dropping survivor %d", max_idx);
  1334. num_survivors--;
  1335. while (max_idx < num_survivors) {
  1336. survivor[max_idx] = survivor[max_idx + 1];
  1337. max_idx++;
  1338. }
  1339. }
  1340. if (0) {
  1341. /* Combine the offsets of the clustering algorithm survivors
  1342. * using a weighted average with weight determined by the root
  1343. * distance. Compute the selection jitter as the weighted RMS
  1344. * difference between the first survivor and the remaining
  1345. * survivors. In some cases the inherent clock jitter can be
  1346. * reduced by not using this algorithm, especially when frequent
  1347. * clockhopping is involved. bbox: thus we don't do it.
  1348. */
  1349. double x, y, z, w;
  1350. y = z = w = 0;
  1351. for (i = 0; i < num_survivors; i++) {
  1352. p = survivor[i].p;
  1353. x = root_distance(p);
  1354. y += 1 / x;
  1355. z += p->filter_offset / x;
  1356. w += SQUARE(p->filter_offset - survivor[0].p->filter_offset) / x;
  1357. }
  1358. //G.cluster_offset = z / y;
  1359. //G.cluster_jitter = SQRT(w / y);
  1360. }
  1361. /* Pick the best clock. If the old system peer is on the list
  1362. * and at the same stratum as the first survivor on the list,
  1363. * then don't do a clock hop. Otherwise, select the first
  1364. * survivor on the list as the new system peer.
  1365. */
  1366. p = survivor[0].p;
  1367. if (G.last_update_peer
  1368. && G.last_update_peer->lastpkt_stratum <= p->lastpkt_stratum
  1369. ) {
  1370. /* Starting from 1 is ok here */
  1371. for (i = 1; i < num_survivors; i++) {
  1372. if (G.last_update_peer == survivor[i].p) {
  1373. VERB5 bb_error_msg("keeping old synced peer");
  1374. p = G.last_update_peer;
  1375. goto keep_old;
  1376. }
  1377. }
  1378. }
  1379. G.last_update_peer = p;
  1380. keep_old:
  1381. VERB4 bb_error_msg("selected peer %s filter_offset:%+f age:%f",
  1382. p->p_dotted,
  1383. p->filter_offset,
  1384. G.cur_time - p->lastpkt_recv_time
  1385. );
  1386. return p;
  1387. }
  1388. /*
  1389. * Local clock discipline and its helpers
  1390. */
  1391. static void
  1392. set_new_values(int disc_state, double offset, double recv_time)
  1393. {
  1394. /* Enter new state and set state variables. Note we use the time
  1395. * of the last clock filter sample, which must be earlier than
  1396. * the current time.
  1397. */
  1398. VERB4 bb_error_msg("disc_state=%d last update offset=%f recv_time=%f",
  1399. disc_state, offset, recv_time);
  1400. G.discipline_state = disc_state;
  1401. G.last_update_offset = offset;
  1402. G.last_update_recv_time = recv_time;
  1403. }
  1404. /* Return: -1: decrease poll interval, 0: leave as is, 1: increase */
  1405. static NOINLINE int
  1406. update_local_clock(peer_t *p)
  1407. {
  1408. int rc;
  1409. struct timex tmx;
  1410. /* Note: can use G.cluster_offset instead: */
  1411. double offset = p->filter_offset;
  1412. double recv_time = p->lastpkt_recv_time;
  1413. double abs_offset;
  1414. #if !USING_KERNEL_PLL_LOOP
  1415. double freq_drift;
  1416. #endif
  1417. #if !USING_KERNEL_PLL_LOOP || USING_INITIAL_FREQ_ESTIMATION
  1418. double since_last_update;
  1419. #endif
  1420. double etemp, dtemp;
  1421. abs_offset = fabs(offset);
  1422. #if 0
  1423. /* If needed, -S script can do it by looking at $offset
  1424. * env var and killing parent */
  1425. /* If the offset is too large, give up and go home */
  1426. if (abs_offset > PANIC_THRESHOLD) {
  1427. bb_error_msg_and_die("offset %f far too big, exiting", offset);
  1428. }
  1429. #endif
  1430. /* If this is an old update, for instance as the result
  1431. * of a system peer change, avoid it. We never use
  1432. * an old sample or the same sample twice.
  1433. */
  1434. if (recv_time <= G.last_update_recv_time) {
  1435. VERB3 bb_error_msg("update from %s: same or older datapoint, not using it",
  1436. p->p_dotted);
  1437. return 0; /* "leave poll interval as is" */
  1438. }
  1439. /* Clock state machine transition function. This is where the
  1440. * action is and defines how the system reacts to large time
  1441. * and frequency errors.
  1442. */
  1443. #if !USING_KERNEL_PLL_LOOP || USING_INITIAL_FREQ_ESTIMATION
  1444. since_last_update = recv_time - G.reftime;
  1445. #endif
  1446. #if !USING_KERNEL_PLL_LOOP
  1447. freq_drift = 0;
  1448. #endif
  1449. #if USING_INITIAL_FREQ_ESTIMATION
  1450. if (G.discipline_state == STATE_FREQ) {
  1451. /* Ignore updates until the stepout threshold */
  1452. if (since_last_update < WATCH_THRESHOLD) {
  1453. VERB4 bb_error_msg("measuring drift, datapoint ignored, %f sec remains",
  1454. WATCH_THRESHOLD - since_last_update);
  1455. return 0; /* "leave poll interval as is" */
  1456. }
  1457. # if !USING_KERNEL_PLL_LOOP
  1458. freq_drift = (offset - G.last_update_offset) / since_last_update;
  1459. # endif
  1460. }
  1461. #endif
  1462. /* There are two main regimes: when the
  1463. * offset exceeds the step threshold and when it does not.
  1464. */
  1465. if (abs_offset > STEP_THRESHOLD) {
  1466. #if 0
  1467. double remains;
  1468. // This "spike state" seems to be useless, peer selection already drops
  1469. // occassional "bad" datapoints. If we are here, there were _many_
  1470. // large offsets. When a few first large offsets are seen,
  1471. // we end up in "no valid datapoints, no peer selected" state.
  1472. // Only when enough of them are seen (which means it's not a fluke),
  1473. // we end up here. Looks like _our_ clock is off.
  1474. switch (G.discipline_state) {
  1475. case STATE_SYNC:
  1476. /* The first outlyer: ignore it, switch to SPIK state */
  1477. VERB3 bb_error_msg("update from %s: offset:%+f, spike%s",
  1478. p->p_dotted, offset,
  1479. "");
  1480. G.discipline_state = STATE_SPIK;
  1481. return -1; /* "decrease poll interval" */
  1482. case STATE_SPIK:
  1483. /* Ignore succeeding outlyers until either an inlyer
  1484. * is found or the stepout threshold is exceeded.
  1485. */
  1486. remains = WATCH_THRESHOLD - since_last_update;
  1487. if (remains > 0) {
  1488. VERB3 bb_error_msg("update from %s: offset:%+f, spike%s",
  1489. p->p_dotted, offset,
  1490. ", datapoint ignored");
  1491. return -1; /* "decrease poll interval" */
  1492. }
  1493. /* fall through: we need to step */
  1494. } /* switch */
  1495. #endif
  1496. /* Step the time and clamp down the poll interval.
  1497. *
  1498. * In NSET state an initial frequency correction is
  1499. * not available, usually because the frequency file has
  1500. * not yet been written. Since the time is outside the
  1501. * capture range, the clock is stepped. The frequency
  1502. * will be set directly following the stepout interval.
  1503. *
  1504. * In FSET state the initial frequency has been set
  1505. * from the frequency file. Since the time is outside
  1506. * the capture range, the clock is stepped immediately,
  1507. * rather than after the stepout interval. Guys get
  1508. * nervous if it takes 17 minutes to set the clock for
  1509. * the first time.
  1510. *
  1511. * In SPIK state the stepout threshold has expired and
  1512. * the phase is still above the step threshold. Note
  1513. * that a single spike greater than the step threshold
  1514. * is always suppressed, even at the longer poll
  1515. * intervals.
  1516. */
  1517. VERB4 bb_error_msg("stepping time by %+f; poll_exp=MINPOLL", offset);
  1518. step_time(offset);
  1519. if (option_mask32 & OPT_q) {
  1520. /* We were only asked to set time once. Done. */
  1521. exit(0);
  1522. }
  1523. clamp_pollexp_and_set_MAXSTRAT();
  1524. run_script("step", offset);
  1525. recv_time += offset;
  1526. #if USING_INITIAL_FREQ_ESTIMATION
  1527. if (G.discipline_state == STATE_NSET) {
  1528. set_new_values(STATE_FREQ, /*offset:*/ 0, recv_time);
  1529. return 1; /* "ok to increase poll interval" */
  1530. }
  1531. #endif
  1532. abs_offset = offset = 0;
  1533. set_new_values(STATE_SYNC, offset, recv_time);
  1534. } else { /* abs_offset <= STEP_THRESHOLD */
  1535. /* The ratio is calculated before jitter is updated to make
  1536. * poll adjust code more sensitive to large offsets.
  1537. */
  1538. G.offset_to_jitter_ratio = abs_offset / G.discipline_jitter;
  1539. /* Compute the clock jitter as the RMS of exponentially
  1540. * weighted offset differences. Used by the poll adjust code.
  1541. */
  1542. etemp = SQUARE(G.discipline_jitter);
  1543. dtemp = SQUARE(offset - G.last_update_offset);
  1544. G.discipline_jitter = SQRT(etemp + (dtemp - etemp) / AVG);
  1545. if (G.discipline_jitter < G_precision_sec)
  1546. G.discipline_jitter = G_precision_sec;
  1547. switch (G.discipline_state) {
  1548. case STATE_NSET:
  1549. if (option_mask32 & OPT_q) {
  1550. /* We were only asked to set time once.
  1551. * The clock is precise enough, no need to step.
  1552. */
  1553. exit(0);
  1554. }
  1555. #if USING_INITIAL_FREQ_ESTIMATION
  1556. /* This is the first update received and the frequency
  1557. * has not been initialized. The first thing to do
  1558. * is directly measure the oscillator frequency.
  1559. */
  1560. set_new_values(STATE_FREQ, offset, recv_time);
  1561. #else
  1562. set_new_values(STATE_SYNC, offset, recv_time);
  1563. #endif
  1564. VERB4 bb_error_msg("transitioning to FREQ, datapoint ignored");
  1565. return 0; /* "leave poll interval as is" */
  1566. #if 0 /* this is dead code for now */
  1567. case STATE_FSET:
  1568. /* This is the first update and the frequency
  1569. * has been initialized. Adjust the phase, but
  1570. * don't adjust the frequency until the next update.
  1571. */
  1572. set_new_values(STATE_SYNC, offset, recv_time);
  1573. /* freq_drift remains 0 */
  1574. break;
  1575. #endif
  1576. #if USING_INITIAL_FREQ_ESTIMATION
  1577. case STATE_FREQ:
  1578. /* since_last_update >= WATCH_THRESHOLD, we waited enough.
  1579. * Correct the phase and frequency and switch to SYNC state.
  1580. * freq_drift was already estimated (see code above)
  1581. */
  1582. set_new_values(STATE_SYNC, offset, recv_time);
  1583. break;
  1584. #endif
  1585. default:
  1586. #if !USING_KERNEL_PLL_LOOP
  1587. /* Compute freq_drift due to PLL and FLL contributions.
  1588. *
  1589. * The FLL and PLL frequency gain constants
  1590. * depend on the poll interval and Allan
  1591. * intercept. The FLL is not used below one-half
  1592. * the Allan intercept. Above that the loop gain
  1593. * increases in steps to 1 / AVG.
  1594. */
  1595. if ((1 << G.poll_exp) > ALLAN / 2) {
  1596. etemp = FLL - G.poll_exp;
  1597. if (etemp < AVG)
  1598. etemp = AVG;
  1599. freq_drift += (offset - G.last_update_offset) / (MAXD(since_last_update, ALLAN) * etemp);
  1600. }
  1601. /* For the PLL the integration interval
  1602. * (numerator) is the minimum of the update
  1603. * interval and poll interval. This allows
  1604. * oversampling, but not undersampling.
  1605. */
  1606. etemp = MIND(since_last_update, (1 << G.poll_exp));
  1607. dtemp = (4 * PLL) << G.poll_exp;
  1608. freq_drift += offset * etemp / SQUARE(dtemp);
  1609. #endif
  1610. set_new_values(STATE_SYNC, offset, recv_time);
  1611. break;
  1612. }
  1613. if (G.stratum != p->lastpkt_stratum + 1) {
  1614. G.stratum = p->lastpkt_stratum + 1;
  1615. run_script("stratum", offset);
  1616. }
  1617. }
  1618. G.reftime = G.cur_time;
  1619. G.ntp_status = p->lastpkt_status;
  1620. G.refid = p->lastpkt_refid;
  1621. G.rootdelay = p->lastpkt_rootdelay + p->lastpkt_delay;
  1622. dtemp = p->filter_jitter; // SQRT(SQUARE(p->filter_jitter) + SQUARE(G.cluster_jitter));
  1623. dtemp += MAXD(p->filter_dispersion + FREQ_TOLERANCE * (G.cur_time - p->lastpkt_recv_time) + abs_offset, MINDISP);
  1624. G.rootdisp = p->lastpkt_rootdisp + dtemp;
  1625. VERB4 bb_error_msg("updating leap/refid/reftime/rootdisp from peer %s", p->p_dotted);
  1626. /* We are in STATE_SYNC now, but did not do adjtimex yet.
  1627. * (Any other state does not reach this, they all return earlier)
  1628. * By this time, freq_drift and offset are set
  1629. * to values suitable for adjtimex.
  1630. */
  1631. #if !USING_KERNEL_PLL_LOOP
  1632. /* Calculate the new frequency drift and frequency stability (wander).
  1633. * Compute the clock wander as the RMS of exponentially weighted
  1634. * frequency differences. This is not used directly, but can,
  1635. * along with the jitter, be a highly useful monitoring and
  1636. * debugging tool.
  1637. */
  1638. dtemp = G.discipline_freq_drift + freq_drift;
  1639. G.discipline_freq_drift = MAXD(MIND(MAXDRIFT, dtemp), -MAXDRIFT);
  1640. etemp = SQUARE(G.discipline_wander);
  1641. dtemp = SQUARE(dtemp);
  1642. G.discipline_wander = SQRT(etemp + (dtemp - etemp) / AVG);
  1643. VERB4 bb_error_msg("discipline freq_drift=%.9f(int:%ld corr:%e) wander=%f",
  1644. G.discipline_freq_drift,
  1645. (long)(G.discipline_freq_drift * 65536e6),
  1646. freq_drift,
  1647. G.discipline_wander);
  1648. #endif
  1649. VERB4 {
  1650. memset(&tmx, 0, sizeof(tmx));
  1651. if (adjtimex(&tmx) < 0)
  1652. bb_perror_msg_and_die("adjtimex");
  1653. bb_error_msg("p adjtimex freq:%ld offset:%+ld status:0x%x tc:%ld",
  1654. tmx.freq, tmx.offset, tmx.status, tmx.constant);
  1655. }
  1656. memset(&tmx, 0, sizeof(tmx));
  1657. #if 0
  1658. //doesn't work, offset remains 0 (!) in kernel:
  1659. //ntpd: set adjtimex freq:1786097 tmx.offset:77487
  1660. //ntpd: prev adjtimex freq:1786097 tmx.offset:0
  1661. //ntpd: cur adjtimex freq:1786097 tmx.offset:0
  1662. tmx.modes = ADJ_FREQUENCY | ADJ_OFFSET;
  1663. /* 65536 is one ppm */
  1664. tmx.freq = G.discipline_freq_drift * 65536e6;
  1665. #endif
  1666. tmx.modes = ADJ_OFFSET | ADJ_STATUS | ADJ_TIMECONST;// | ADJ_MAXERROR | ADJ_ESTERROR;
  1667. tmx.offset = (long)(offset * 1000000); /* usec */
  1668. if (SLEW_THRESHOLD < STEP_THRESHOLD) {
  1669. if (tmx.offset > (long)(SLEW_THRESHOLD * 1000000)) {
  1670. tmx.offset = (long)(SLEW_THRESHOLD * 1000000);
  1671. }
  1672. if (tmx.offset < -(long)(SLEW_THRESHOLD * 1000000)) {
  1673. tmx.offset = -(long)(SLEW_THRESHOLD * 1000000);
  1674. }
  1675. }
  1676. tmx.status = STA_PLL;
  1677. if (G.FREQHOLD_cnt != 0) {
  1678. /* man adjtimex on STA_FREQHOLD:
  1679. * "Normally adjustments made via ADJ_OFFSET result in dampened
  1680. * frequency adjustments also being made.
  1681. * This flag prevents the small frequency adjustment from being
  1682. * made when correcting for an ADJ_OFFSET value."
  1683. *
  1684. * Use this flag for a few first adjustments at the beginning
  1685. * of ntpd execution, otherwise even relatively small initial
  1686. * offset tend to cause largish changes to in-kernel tmx.freq.
  1687. * If ntpd was restarted due to e.g. switch to another network,
  1688. * this destroys already well-established tmx.freq value.
  1689. */
  1690. if (G.FREQHOLD_cnt < 0) {
  1691. /* Initialize it */
  1692. // Example: a laptop whose clock runs slower when hibernated,
  1693. // after wake up it still has good tmx.freq, but accumulated ~0.5 sec offset:
  1694. // Run with code where initial G.FREQHOLD_cnt was always 8:
  1695. //15:17:52.947 no valid datapoints, no peer selected
  1696. //15:17:56.515 update from:<IP> offset:+0.485133 delay:0.157762 jitter:0.209310 clock drift:-1.393ppm tc:4
  1697. //15:17:57.719 update from:<IP> offset:+0.483825 delay:0.158070 jitter:0.181159 clock drift:-1.393ppm tc:4
  1698. //15:17:59.925 update from:<IP> offset:+0.479504 delay:0.158147 jitter:0.156657 clock drift:-1.393ppm tc:4
  1699. //15:18:33.322 update from:<IP> offset:+0.428119 delay:0.158317 jitter:0.138071 clock drift:-1.393ppm tc:4
  1700. //15:19:06.718 update from:<IP> offset:+0.376932 delay:0.158276 jitter:0.122075 clock drift:-1.393ppm tc:4
  1701. //15:19:39.114 update from:<IP> offset:+0.327022 delay:0.158384 jitter:0.108538 clock drift:-1.393ppm tc:4
  1702. //15:20:12.715 update from:<IP> offset:+0.275596 delay:0.158297 jitter:0.097292 clock drift:-1.393ppm tc:4
  1703. //15:20:45.111 update from:<IP> offset:+0.225715 delay:0.158271 jitter:0.087841 clock drift:-1.393ppm tc:4
  1704. // If allowed to continue, it would start increasing tmx.freq now.
  1705. // Instead, it was ^Ced, and started anew:
  1706. //15:21:15.043 no valid datapoints, no peer selected
  1707. //15:21:17.408 update from:<IP> offset:+0.175910 delay:0.158314 jitter:0.076683 clock drift:-1.393ppm tc:4
  1708. //15:21:19.774 update from:<IP> offset:+0.171784 delay:0.158401 jitter:0.066436 clock drift:-1.393ppm tc:4
  1709. //15:21:22.140 update from:<IP> offset:+0.171660 delay:0.158592 jitter:0.057536 clock drift:-1.393ppm tc:4
  1710. //15:21:22.140 update from:<IP> offset:+0.167126 delay:0.158507 jitter:0.049792 clock drift:-1.393ppm tc:4
  1711. //15:21:55.696 update from:<IP> offset:+0.115223 delay:0.158277 jitter:0.050240 clock drift:-1.393ppm tc:4
  1712. //15:22:29.093 update from:<IP> offset:+0.068051 delay:0.158243 jitter:0.049405 clock drift:-1.393ppm tc:5
  1713. //15:23:02.490 update from:<IP> offset:+0.051632 delay:0.158215 jitter:0.043545 clock drift:-1.393ppm tc:5
  1714. //15:23:34.726 update from:<IP> offset:+0.039984 delay:0.158157 jitter:0.038106 clock drift:-1.393ppm tc:5
  1715. // STA_FREQHOLD no longer set, started increasing tmx.freq now:
  1716. //15:24:06.961 update from:<IP> offset:+0.030968 delay:0.158190 jitter:0.033306 clock drift:+2.387ppm tc:5
  1717. //15:24:40.357 update from:<IP> offset:+0.023648 delay:0.158211 jitter:0.029072 clock drift:+5.454ppm tc:5
  1718. //15:25:13.774 update from:<IP> offset:+0.018068 delay:0.157660 jitter:0.025288 clock drift:+7.728ppm tc:5
  1719. //15:26:19.173 update from:<IP> offset:+0.010057 delay:0.157969 jitter:0.022255 clock drift:+8.361ppm tc:6
  1720. //15:27:26.602 update from:<IP> offset:+0.006737 delay:0.158103 jitter:0.019316 clock drift:+8.792ppm tc:6
  1721. //15:28:33.030 update from:<IP> offset:+0.004513 delay:0.158294 jitter:0.016765 clock drift:+9.080ppm tc:6
  1722. //15:29:40.617 update from:<IP> offset:+0.002787 delay:0.157745 jitter:0.014543 clock drift:+9.258ppm tc:6
  1723. //15:30:47.045 update from:<IP> offset:+0.001324 delay:0.157709 jitter:0.012594 clock drift:+9.342ppm tc:6
  1724. //15:31:53.473 update from:<IP> offset:+0.000007 delay:0.158142 jitter:0.010922 clock drift:+9.343ppm tc:6
  1725. //15:32:58.902 update from:<IP> offset:-0.000728 delay:0.158222 jitter:0.009454 clock drift:+9.298ppm tc:6
  1726. /*
  1727. * This expression would choose MIN_FREQHOLD + 8 in the above example.
  1728. */
  1729. G.FREQHOLD_cnt = 1 + MIN_FREQHOLD + ((unsigned)(abs(tmx.offset)) >> 16);
  1730. }
  1731. G.FREQHOLD_cnt--;
  1732. tmx.status |= STA_FREQHOLD;
  1733. }
  1734. if (G.ntp_status & LI_PLUSSEC)
  1735. tmx.status |= STA_INS;
  1736. if (G.ntp_status & LI_MINUSSEC)
  1737. tmx.status |= STA_DEL;
  1738. tmx.constant = (int)G.poll_exp - 4;
  1739. /* EXPERIMENTAL.
  1740. * The below if statement should be unnecessary, but...
  1741. * It looks like Linux kernel's PLL is far too gentle in changing
  1742. * tmx.freq in response to clock offset. Offset keeps growing
  1743. * and eventually we fall back to smaller poll intervals.
  1744. * We can make correction more aggressive (about x2) by supplying
  1745. * PLL time constant which is one less than the real one.
  1746. * To be on a safe side, let's do it only if offset is significantly
  1747. * larger than jitter.
  1748. */
  1749. if (G.offset_to_jitter_ratio >= TIMECONST_HACK_GATE)
  1750. tmx.constant--;
  1751. if (tmx.constant < 0)
  1752. tmx.constant = 0;
  1753. //tmx.esterror = (uint32_t)(clock_jitter * 1e6);
  1754. //tmx.maxerror = (uint32_t)((sys_rootdelay / 2 + sys_rootdisp) * 1e6);
  1755. rc = adjtimex(&tmx);
  1756. if (rc < 0)
  1757. bb_perror_msg_and_die("adjtimex");
  1758. /* NB: here kernel returns constant == G.poll_exp, not == G.poll_exp - 4.
  1759. * Not sure why. Perhaps it is normal.
  1760. */
  1761. VERB4 bb_error_msg("adjtimex:%d freq:%ld offset:%+ld status:0x%x",
  1762. rc, tmx.freq, tmx.offset, tmx.status);
  1763. G.kernel_freq_drift = tmx.freq / 65536;
  1764. VERB2 bb_error_msg("update from:%s offset:%+f delay:%f jitter:%f clock drift:%+.3fppm tc:%d",
  1765. p->p_dotted,
  1766. offset,
  1767. p->p_raw_delay,
  1768. G.discipline_jitter,
  1769. (double)tmx.freq / 65536,
  1770. (int)tmx.constant
  1771. );
  1772. return 1; /* "ok to increase poll interval" */
  1773. }
  1774. /*
  1775. * We've got a new reply packet from a peer, process it
  1776. * (helpers first)
  1777. */
  1778. static unsigned
  1779. poll_interval(int upper_bound)
  1780. {
  1781. unsigned interval, r, mask;
  1782. interval = 1 << G.poll_exp;
  1783. if (interval > upper_bound)
  1784. interval = upper_bound;
  1785. mask = ((interval-1) >> 4) | 1;
  1786. r = rand();
  1787. interval += r & mask; /* ~ random(0..1) * interval/16 */
  1788. VERB4 bb_error_msg("chose poll interval:%u (poll_exp:%d)", interval, G.poll_exp);
  1789. return interval;
  1790. }
  1791. static void
  1792. adjust_poll(int count)
  1793. {
  1794. G.polladj_count += count;
  1795. if (G.polladj_count > POLLADJ_LIMIT) {
  1796. G.polladj_count = 0;
  1797. if (G.poll_exp < MAXPOLL) {
  1798. G.poll_exp++;
  1799. VERB4 bb_error_msg("polladj: discipline_jitter:%f ++poll_exp=%d",
  1800. G.discipline_jitter, G.poll_exp);
  1801. }
  1802. } else if (G.polladj_count < -POLLADJ_LIMIT || (count < 0 && G.poll_exp > BIGPOLL)) {
  1803. G.polladj_count = 0;
  1804. if (G.poll_exp > MINPOLL) {
  1805. llist_t *item;
  1806. G.poll_exp--;
  1807. /* Correct p->next_action_time in each peer
  1808. * which waits for sending, so that they send earlier.
  1809. * Old pp->next_action_time are on the order
  1810. * of t + (1 << old_poll_exp) + small_random,
  1811. * we simply need to subtract ~half of that.
  1812. */
  1813. for (item = G.ntp_peers; item != NULL; item = item->link) {
  1814. peer_t *pp = (peer_t *) item->data;
  1815. if (pp->p_fd < 0)
  1816. pp->next_action_time -= (1 << G.poll_exp);
  1817. }
  1818. VERB4 bb_error_msg("polladj: discipline_jitter:%f --poll_exp=%d",
  1819. G.discipline_jitter, G.poll_exp);
  1820. }
  1821. } else {
  1822. VERB4 bb_error_msg("polladj: count:%d", G.polladj_count);
  1823. }
  1824. }
  1825. static NOINLINE void
  1826. recv_and_process_peer_pkt(peer_t *p)
  1827. {
  1828. int rc;
  1829. ssize_t size;
  1830. msg_t msg;
  1831. double T1, T2, T3, T4;
  1832. double offset;
  1833. double prev_delay, delay;
  1834. unsigned interval;
  1835. datapoint_t *datapoint;
  1836. peer_t *q;
  1837. offset = 0;
  1838. /* We can recvfrom here and check from.IP, but some multihomed
  1839. * ntp servers reply from their *other IP*.
  1840. * TODO: maybe we should check at least what we can: from.port == 123?
  1841. */
  1842. recv_again:
  1843. size = recv(p->p_fd, &msg, sizeof(msg), MSG_DONTWAIT);
  1844. if (size < 0) {
  1845. if (errno == EINTR)
  1846. /* Signal caught */
  1847. goto recv_again;
  1848. if (errno == EAGAIN)
  1849. /* There was no packet after all
  1850. * (poll() returning POLLIN for a fd
  1851. * is not a ironclad guarantee that data is there)
  1852. */
  1853. return;
  1854. /*
  1855. * If you need a different handling for a specific
  1856. * errno, always explain it in comment.
  1857. */
  1858. bb_perror_msg_and_die("recv(%s) error", p->p_dotted);
  1859. }
  1860. #if ENABLE_FEATURE_NTP_AUTH
  1861. if (size != NTP_MSGSIZE_NOAUTH && size != NTP_MSGSIZE_MD5_AUTH && size != NTP_MSGSIZE_SHA1_AUTH) {
  1862. bb_error_msg("malformed packet received from %s", p->p_dotted);
  1863. return;
  1864. }
  1865. if (p->key_entry && hashes_differ(p, &msg)) {
  1866. bb_error_msg("invalid cryptographic hash received from %s", p->p_dotted);
  1867. return;
  1868. }
  1869. #else
  1870. if (size != NTP_MSGSIZE_NOAUTH && size != NTP_MSGSIZE_MD5_AUTH) {
  1871. bb_error_msg("malformed packet received from %s", p->p_dotted);
  1872. return;
  1873. }
  1874. #endif
  1875. if (msg.m_orgtime.int_partl != p->p_xmt_msg.m_xmttime.int_partl
  1876. || msg.m_orgtime.fractionl != p->p_xmt_msg.m_xmttime.fractionl
  1877. ) {
  1878. /* Somebody else's packet */
  1879. return;
  1880. }
  1881. /* We do not expect any more packets from this peer for now.
  1882. * Closing the socket informs kernel about it.
  1883. * We open a new socket when we send a new query.
  1884. */
  1885. close(p->p_fd);
  1886. p->p_fd = -1;
  1887. if ((msg.m_status & LI_ALARM) == LI_ALARM
  1888. || msg.m_stratum == 0
  1889. || msg.m_stratum > NTP_MAXSTRATUM
  1890. ) {
  1891. bb_error_msg("reply from %s: peer is unsynced", p->p_dotted);
  1892. /*
  1893. * Stratum 0 responses may have commands in 32-bit m_refid field:
  1894. * "DENY", "RSTR" - peer does not like us at all,
  1895. * "RATE" - peer is overloaded, reduce polling freq.
  1896. * If poll interval is small, increase it.
  1897. */
  1898. if (G.poll_exp < BIGPOLL)
  1899. goto increase_interval;
  1900. goto pick_normal_interval;
  1901. }
  1902. // /* Verify valid root distance */
  1903. // if (msg.m_rootdelay / 2 + msg.m_rootdisp >= MAXDISP || p->lastpkt_reftime > msg.m_xmt)
  1904. // return; /* invalid header values */
  1905. /*
  1906. * From RFC 2030 (with a correction to the delay math):
  1907. *
  1908. * Timestamp Name ID When Generated
  1909. * ------------------------------------------------------------
  1910. * Originate Timestamp T1 time request sent by client
  1911. * Receive Timestamp T2 time request received by server
  1912. * Transmit Timestamp T3 time reply sent by server
  1913. * Destination Timestamp T4 time reply received by client
  1914. *
  1915. * The roundtrip delay and local clock offset are defined as
  1916. *
  1917. * delay = (T4 - T1) - (T3 - T2); offset = ((T2 - T1) + (T3 - T4)) / 2
  1918. */
  1919. T1 = p->p_xmttime;
  1920. T2 = lfp_to_d(msg.m_rectime);
  1921. T3 = lfp_to_d(msg.m_xmttime);
  1922. T4 = G.cur_time;
  1923. delay = (T4 - T1) - (T3 - T2);
  1924. /*
  1925. * If this packet's delay is much bigger than the last one,
  1926. * it's better to just ignore it than use its much less precise value.
  1927. */
  1928. prev_delay = p->p_raw_delay;
  1929. p->p_raw_delay = (delay < 0 ? 0.0 : delay);
  1930. if (p->reachable_bits
  1931. && delay > prev_delay * BAD_DELAY_GROWTH
  1932. && delay > 1.0 / (8 * 1024) /* larger than ~0.000122 */
  1933. ) {
  1934. bb_error_msg("reply from %s: delay %f is too high, ignoring", p->p_dotted, delay);
  1935. goto pick_normal_interval;
  1936. }
  1937. /* The delay calculation is a special case. In cases where the
  1938. * server and client clocks are running at different rates and
  1939. * with very fast networks, the delay can appear negative. In
  1940. * order to avoid violating the Principle of Least Astonishment,
  1941. * the delay is clamped not less than the system precision.
  1942. */
  1943. if (delay < G_precision_sec)
  1944. delay = G_precision_sec;
  1945. p->lastpkt_delay = delay;
  1946. p->lastpkt_recv_time = T4;
  1947. VERB6 bb_error_msg("%s->lastpkt_recv_time=%f", p->p_dotted, p->lastpkt_recv_time);
  1948. p->lastpkt_status = msg.m_status;
  1949. p->lastpkt_stratum = msg.m_stratum;
  1950. p->lastpkt_rootdelay = sfp_to_d(msg.m_rootdelay);
  1951. p->lastpkt_rootdisp = sfp_to_d(msg.m_rootdisp);
  1952. p->lastpkt_refid = msg.m_refid;
  1953. p->datapoint_idx = p->reachable_bits ? (p->datapoint_idx + 1) % NUM_DATAPOINTS : 0;
  1954. datapoint = &p->filter_datapoint[p->datapoint_idx];
  1955. datapoint->d_recv_time = T4;
  1956. datapoint->d_offset = offset = ((T2 - T1) + (T3 - T4)) / 2;
  1957. datapoint->d_dispersion = LOG2D(msg.m_precision_exp) + G_precision_sec;
  1958. if (!p->reachable_bits) {
  1959. /* 1st datapoint ever - replicate offset in every element */
  1960. int i;
  1961. for (i = 0; i < NUM_DATAPOINTS; i++) {
  1962. p->filter_datapoint[i].d_offset = offset;
  1963. }
  1964. }
  1965. p->reachable_bits |= 1;
  1966. if ((MAX_VERBOSE && G.verbose) || (option_mask32 & OPT_w)) {
  1967. bb_error_msg("reply from %s: offset:%+f delay:%f status:0x%02x strat:%d refid:0x%08x rootdelay:%f reach:0x%02x",
  1968. p->p_dotted,
  1969. offset,
  1970. p->p_raw_delay,
  1971. p->lastpkt_status,
  1972. p->lastpkt_stratum,
  1973. p->lastpkt_refid,
  1974. p->lastpkt_rootdelay,
  1975. p->reachable_bits
  1976. /* not shown: m_ppoll, m_precision_exp, m_rootdisp,
  1977. * m_reftime, m_orgtime, m_rectime, m_xmttime
  1978. */
  1979. );
  1980. }
  1981. /* Muck with statictics and update the clock */
  1982. filter_datapoints(p);
  1983. q = select_and_cluster();
  1984. rc = 0;
  1985. if (q) {
  1986. if (!(option_mask32 & OPT_w)) {
  1987. rc = update_local_clock(q);
  1988. #if 0
  1989. //Disabled this because there is a case where largish offsets
  1990. //are unavoidable: if network round-trip delay is, say, ~0.6s,
  1991. //error in offset estimation would be ~delay/2 ~= 0.3s.
  1992. //Thus, offsets will be usually in -0.3...0.3s range.
  1993. //In this case, this code would keep poll interval small,
  1994. //but it won't be helping.
  1995. //BIGOFF check below deals with a case of seeing multi-second offsets.
  1996. /* If drift is dangerously large, immediately
  1997. * drop poll interval one step down.
  1998. */
  1999. if (fabs(q->filter_offset) >= POLLDOWN_OFFSET) {
  2000. VERB4 bb_error_msg("offset:%+f > POLLDOWN_OFFSET", q->filter_offset);
  2001. adjust_poll(-POLLADJ_LIMIT * 3);
  2002. rc = 0;
  2003. }
  2004. #endif
  2005. }
  2006. } else {
  2007. /* No peer selected.
  2008. * If poll interval is small, increase it.
  2009. */
  2010. if (G.poll_exp < BIGPOLL)
  2011. goto increase_interval;
  2012. }
  2013. if (rc != 0) {
  2014. /* Adjust the poll interval by comparing the current offset
  2015. * with the clock jitter. If the offset is less than
  2016. * the clock jitter times a constant, then the averaging interval
  2017. * is increased, otherwise it is decreased. A bit of hysteresis
  2018. * helps calm the dance. Works best using burst mode.
  2019. */
  2020. if (rc > 0 && G.offset_to_jitter_ratio <= POLLADJ_GATE) {
  2021. /* was += G.poll_exp but it is a bit
  2022. * too optimistic for my taste at high poll_exp's */
  2023. increase_interval:
  2024. adjust_poll(MINPOLL);
  2025. } else {
  2026. VERB3 if (rc > 0)
  2027. bb_error_msg("want smaller interval: offset/jitter = %u",
  2028. G.offset_to_jitter_ratio);
  2029. adjust_poll(-G.poll_exp * 2);
  2030. }
  2031. }
  2032. /* Decide when to send new query for this peer */
  2033. pick_normal_interval:
  2034. interval = poll_interval(INT_MAX);
  2035. if (fabs(offset) >= BIGOFF && interval > BIGOFF_INTERVAL) {
  2036. /* If we are synced, offsets are less than SLEW_THRESHOLD,
  2037. * or at the very least not much larger than it.
  2038. * Now we see a largish one.
  2039. * Either this peer is feeling bad, or packet got corrupted,
  2040. * or _our_ clock is wrong now and _all_ peers will show similar
  2041. * largish offsets too.
  2042. * I observed this with laptop suspend stopping clock.
  2043. * In any case, it makes sense to make next request soonish:
  2044. * cases 1 and 2: get a better datapoint,
  2045. * case 3: allows to resync faster.
  2046. */
  2047. interval = BIGOFF_INTERVAL;
  2048. }
  2049. set_next(p, interval);
  2050. }
  2051. #if ENABLE_FEATURE_NTPD_SERVER
  2052. static NOINLINE void
  2053. recv_and_process_client_pkt(void /*int fd*/)
  2054. {
  2055. ssize_t size;
  2056. //uint8_t version;
  2057. len_and_sockaddr *to;
  2058. struct sockaddr *from;
  2059. msg_t msg;
  2060. uint8_t query_status;
  2061. l_fixedpt_t query_xmttime;
  2062. to = get_sock_lsa(G_listen_fd);
  2063. from = xzalloc(to->len);
  2064. size = recv_from_to(G_listen_fd, &msg, sizeof(msg), MSG_DONTWAIT, from, &to->u.sa, to->len);
  2065. #if ENABLE_FEATURE_NTP_AUTH
  2066. if (size != NTP_MSGSIZE_NOAUTH && size != NTP_MSGSIZE_MD5_AUTH && size != NTP_MSGSIZE_SHA1_AUTH)
  2067. #else
  2068. if (size != NTP_MSGSIZE_NOAUTH && size != NTP_MSGSIZE_MD5_AUTH)
  2069. #endif
  2070. {
  2071. char *addr;
  2072. if (size < 0) {
  2073. if (errno == EAGAIN)
  2074. goto bail;
  2075. bb_perror_msg_and_die("recv");
  2076. }
  2077. addr = xmalloc_sockaddr2dotted_noport(from);
  2078. bb_error_msg("malformed packet received from %s: size %u", addr, (int)size);
  2079. free(addr);
  2080. goto bail;
  2081. }
  2082. /* Respond only to client and symmetric active packets */
  2083. if ((msg.m_status & MODE_MASK) != MODE_CLIENT
  2084. && (msg.m_status & MODE_MASK) != MODE_SYM_ACT
  2085. ) {
  2086. goto bail;
  2087. }
  2088. query_status = msg.m_status;
  2089. query_xmttime = msg.m_xmttime;
  2090. /* Build a reply packet */
  2091. memset(&msg, 0, sizeof(msg));
  2092. msg.m_status = G.stratum < MAXSTRAT ? (G.ntp_status & LI_MASK) : LI_ALARM;
  2093. msg.m_status |= (query_status & VERSION_MASK);
  2094. msg.m_status |= ((query_status & MODE_MASK) == MODE_CLIENT) ?
  2095. MODE_SERVER : MODE_SYM_PAS;
  2096. msg.m_stratum = G.stratum;
  2097. msg.m_ppoll = G.poll_exp;
  2098. msg.m_precision_exp = G_precision_exp;
  2099. /* this time was obtained between poll() and recv() */
  2100. msg.m_rectime = d_to_lfp(G.cur_time);
  2101. msg.m_xmttime = d_to_lfp(gettime1900d()); /* this instant */
  2102. if (G.peer_cnt == 0) {
  2103. /* we have no peers: "stratum 1 server" mode. reftime = our own time */
  2104. G.reftime = G.cur_time;
  2105. }
  2106. msg.m_reftime = d_to_lfp(G.reftime);
  2107. msg.m_orgtime = query_xmttime;
  2108. msg.m_rootdelay = d_to_sfp(G.rootdelay);
  2109. //simple code does not do this, fix simple code!
  2110. msg.m_rootdisp = d_to_sfp(G.rootdisp);
  2111. //version = (query_status & VERSION_MASK); /* ... >> VERSION_SHIFT - done below instead */
  2112. msg.m_refid = G.refid; // (version > (3 << VERSION_SHIFT)) ? G.refid : G.refid3;
  2113. /* We reply from the local address packet was sent to,
  2114. * this makes to/from look swapped here: */
  2115. do_sendto(G_listen_fd,
  2116. /*from:*/ &to->u.sa, /*to:*/ from, /*addrlen:*/ to->len,
  2117. &msg, size);
  2118. bail:
  2119. free(to);
  2120. free(from);
  2121. }
  2122. #endif
  2123. /* Upstream ntpd's options:
  2124. *
  2125. * -4 Force DNS resolution of host names to the IPv4 namespace.
  2126. * -6 Force DNS resolution of host names to the IPv6 namespace.
  2127. * -a Require cryptographic authentication for broadcast client,
  2128. * multicast client and symmetric passive associations.
  2129. * This is the default.
  2130. * -A Do not require cryptographic authentication for broadcast client,
  2131. * multicast client and symmetric passive associations.
  2132. * This is almost never a good idea.
  2133. * -b Enable the client to synchronize to broadcast servers.
  2134. * -c conffile
  2135. * Specify the name and path of the configuration file,
  2136. * default /etc/ntp.conf
  2137. * -d Specify debugging mode. This option may occur more than once,
  2138. * with each occurrence indicating greater detail of display.
  2139. * -D level
  2140. * Specify debugging level directly.
  2141. * -f driftfile
  2142. * Specify the name and path of the frequency file.
  2143. * This is the same operation as the "driftfile FILE"
  2144. * configuration command.
  2145. * -g Normally, ntpd exits with a message to the system log
  2146. * if the offset exceeds the panic threshold, which is 1000 s
  2147. * by default. This option allows the time to be set to any value
  2148. * without restriction; however, this can happen only once.
  2149. * If the threshold is exceeded after that, ntpd will exit
  2150. * with a message to the system log. This option can be used
  2151. * with the -q and -x options. See the tinker command for other options.
  2152. * -i jaildir
  2153. * Chroot the server to the directory jaildir. This option also implies
  2154. * that the server attempts to drop root privileges at startup
  2155. * (otherwise, chroot gives very little additional security).
  2156. * You may need to also specify a -u option.
  2157. * -k keyfile
  2158. * Specify the name and path of the symmetric key file,
  2159. * default /etc/ntp/keys. This is the same operation
  2160. * as the "keys FILE" configuration command.
  2161. * -l logfile
  2162. * Specify the name and path of the log file. The default
  2163. * is the system log file. This is the same operation as
  2164. * the "logfile FILE" configuration command.
  2165. * -L Do not listen to virtual IPs. The default is to listen.
  2166. * -n Don't fork.
  2167. * -N To the extent permitted by the operating system,
  2168. * run the ntpd at the highest priority.
  2169. * -p pidfile
  2170. * Specify the name and path of the file used to record the ntpd
  2171. * process ID. This is the same operation as the "pidfile FILE"
  2172. * configuration command.
  2173. * -P priority
  2174. * To the extent permitted by the operating system,
  2175. * run the ntpd at the specified priority.
  2176. * -q Exit the ntpd just after the first time the clock is set.
  2177. * This behavior mimics that of the ntpdate program, which is
  2178. * to be retired. The -g and -x options can be used with this option.
  2179. * Note: The kernel time discipline is disabled with this option.
  2180. * -r broadcastdelay
  2181. * Specify the default propagation delay from the broadcast/multicast
  2182. * server to this client. This is necessary only if the delay
  2183. * cannot be computed automatically by the protocol.
  2184. * -s statsdir
  2185. * Specify the directory path for files created by the statistics
  2186. * facility. This is the same operation as the "statsdir DIR"
  2187. * configuration command.
  2188. * -t key
  2189. * Add a key number to the trusted key list. This option can occur
  2190. * more than once.
  2191. * -u user[:group]
  2192. * Specify a user, and optionally a group, to switch to.
  2193. * -v variable
  2194. * -V variable
  2195. * Add a system variable listed by default.
  2196. * -x Normally, the time is slewed if the offset is less than the step
  2197. * threshold, which is 128 ms by default, and stepped if above
  2198. * the threshold. This option sets the threshold to 600 s, which is
  2199. * well within the accuracy window to set the clock manually.
  2200. * Note: since the slew rate of typical Unix kernels is limited
  2201. * to 0.5 ms/s, each second of adjustment requires an amortization
  2202. * interval of 2000 s. Thus, an adjustment as much as 600 s
  2203. * will take almost 14 days to complete. This option can be used
  2204. * with the -g and -q options. See the tinker command for other options.
  2205. * Note: The kernel time discipline is disabled with this option.
  2206. */
  2207. #if ENABLE_FEATURE_NTP_AUTH
  2208. static key_entry_t *
  2209. find_key_entry(llist_t *key_entries, unsigned id)
  2210. {
  2211. while (key_entries) {
  2212. key_entry_t *cur = (key_entry_t*) key_entries->data;
  2213. if (cur->id == id)
  2214. return cur;
  2215. key_entries = key_entries->link;
  2216. }
  2217. bb_error_msg_and_die("key %u is not defined", id);
  2218. }
  2219. #endif
  2220. /* By doing init in a separate function we decrease stack usage
  2221. * in main loop.
  2222. */
  2223. static NOINLINE void ntp_init(char **argv)
  2224. {
  2225. unsigned opts;
  2226. llist_t *peers;
  2227. #if ENABLE_FEATURE_NTP_AUTH
  2228. llist_t *key_entries;
  2229. char *key_file_path;
  2230. #endif
  2231. srand(getpid());
  2232. if (getuid())
  2233. bb_error_msg_and_die(bb_msg_you_must_be_root);
  2234. /* Set some globals */
  2235. G.discipline_jitter = G_precision_sec;
  2236. G.stratum = MAXSTRAT;
  2237. if (BURSTPOLL != 0)
  2238. G.poll_exp = BURSTPOLL; /* speeds up initial sync */
  2239. G.last_script_run = G.reftime = G.last_update_recv_time = gettime1900d(); /* sets G.cur_time too */
  2240. G.FREQHOLD_cnt = -1;
  2241. /* Parse options */
  2242. peers = NULL;
  2243. IF_FEATURE_NTP_AUTH(key_entries = NULL;)
  2244. opts = getopt32(argv, "^"
  2245. "nqNx" /* compat */
  2246. IF_FEATURE_NTP_AUTH("k:") /* compat */
  2247. "wp:*S:"IF_FEATURE_NTPD_SERVER("l") /* NOT compat */
  2248. IF_FEATURE_NTPD_SERVER("I:") /* compat */
  2249. "d" /* compat */
  2250. "46aAbgL" /* compat, ignored */
  2251. "\0"
  2252. "dd:wn" /* -d: counter; -p: list; -w implies -n */
  2253. IF_FEATURE_NTPD_SERVER(":Il") /* -I implies -l */
  2254. IF_FEATURE_NTP_AUTH(, &key_file_path)
  2255. , &peers, &G.script_name
  2256. IF_FEATURE_NTPD_SERVER(, &G.if_name)
  2257. , &G.verbose
  2258. );
  2259. // if (opts & OPT_x) /* disable stepping, only slew is allowed */
  2260. // G.time_was_stepped = 1;
  2261. #if ENABLE_FEATURE_NTPD_SERVER
  2262. G_listen_fd = -1;
  2263. if (opts & OPT_l) {
  2264. G_listen_fd = create_and_bind_dgram_or_die(NULL, 123);
  2265. if (G.if_name) {
  2266. if (setsockopt_bindtodevice(G_listen_fd, G.if_name))
  2267. xfunc_die();
  2268. }
  2269. socket_want_pktinfo(G_listen_fd);
  2270. setsockopt_int(G_listen_fd, IPPROTO_IP, IP_TOS, IPTOS_DSCP_AF21);
  2271. }
  2272. #endif
  2273. /* I hesitate to set -20 prio. -15 should be high enough for timekeeping */
  2274. if (opts & OPT_N)
  2275. setpriority(PRIO_PROCESS, 0, -15);
  2276. if (!(opts & OPT_n)) {
  2277. bb_daemonize_or_rexec(DAEMON_DEVNULL_STDIO, argv);
  2278. logmode = LOGMODE_NONE;
  2279. }
  2280. #if ENABLE_FEATURE_NTP_AUTH
  2281. if (opts & OPT_k) {
  2282. char *tokens[4];
  2283. parser_t *parser;
  2284. parser = config_open(key_file_path);
  2285. while (config_read(parser, tokens, 4, 3, "# \t", PARSE_NORMAL | PARSE_MIN_DIE) == 3) {
  2286. key_entry_t *key_entry;
  2287. char buffer[40];
  2288. smalluint hash_type;
  2289. smalluint msg_size;
  2290. smalluint key_length;
  2291. char *key;
  2292. if ((tokens[1][0] | 0x20) == 'm')
  2293. /* supports 'M' and 'md5' formats */
  2294. hash_type = HASH_MD5;
  2295. else
  2296. if (strncasecmp(tokens[1], "sha", 3) == 0)
  2297. /* supports 'sha' and 'sha1' formats */
  2298. hash_type = HASH_SHA1;
  2299. else
  2300. bb_error_msg_and_die("only MD5 and SHA1 keys supported");
  2301. /* man ntp.keys:
  2302. * MD5 The key is 1 to 16 printable characters terminated by an EOL,
  2303. * whitespace, or a # (which is the "start of comment" character).
  2304. * SHA
  2305. * SHA1
  2306. * RMD160 The key is a hex-encoded ASCII string of 40 characters, which
  2307. * is truncated as necessary.
  2308. */
  2309. key_length = strnlen(tokens[2], sizeof(buffer)+1);
  2310. if (key_length >= sizeof(buffer)+1) {
  2311. err:
  2312. bb_error_msg_and_die("malformed key at line %u", parser->lineno);
  2313. }
  2314. if (hash_type == HASH_MD5) {
  2315. key = tokens[2];
  2316. msg_size = NTP_MSGSIZE_MD5_AUTH;
  2317. } else /* it's hash_type == HASH_SHA1 */
  2318. if (!(key_length & 1)) {
  2319. key_length >>= 1;
  2320. if (!hex2bin(buffer, tokens[2], key_length))
  2321. goto err;
  2322. key = buffer;
  2323. msg_size = NTP_MSGSIZE_SHA1_AUTH;
  2324. } else {
  2325. goto err;
  2326. }
  2327. key_entry = xzalloc(sizeof(*key_entry) + key_length);
  2328. key_entry->type = hash_type;
  2329. key_entry->msg_size = msg_size;
  2330. key_entry->key_length = key_length;
  2331. memcpy(key_entry->key, key, key_length);
  2332. key_entry->id = xatou_range(tokens[0], 1, MAX_KEY_NUMBER);
  2333. llist_add_to(&key_entries, key_entry);
  2334. }
  2335. config_close(parser);
  2336. }
  2337. #endif
  2338. if (peers) {
  2339. #if ENABLE_FEATURE_NTP_AUTH
  2340. while (peers) {
  2341. char *peer = llist_pop(&peers);
  2342. key_entry_t *key_entry = NULL;
  2343. if (strncmp(peer, "keyno:", 6) == 0) {
  2344. char *end;
  2345. int key_id;
  2346. peer += 6;
  2347. end = strchr(peer, ':');
  2348. if (!end) bb_show_usage();
  2349. *end = '\0';
  2350. key_id = xatou_range(peer, 1, MAX_KEY_NUMBER);
  2351. *end = ':';
  2352. key_entry = find_key_entry(key_entries, key_id);
  2353. peer = end + 1;
  2354. }
  2355. add_peers(peer, key_entry);
  2356. }
  2357. #else
  2358. while (peers)
  2359. add_peers(llist_pop(&peers), NULL);
  2360. #endif
  2361. }
  2362. #if ENABLE_FEATURE_NTPD_CONF
  2363. else {
  2364. parser_t *parser;
  2365. char *token[3 + 2*ENABLE_FEATURE_NTP_AUTH];
  2366. parser = config_open("/etc/ntp.conf");
  2367. while (config_read(parser, token, 3 + 2*ENABLE_FEATURE_NTP_AUTH, 1, "# \t", PARSE_NORMAL)) {
  2368. if (strcmp(token[0], "server") == 0 && token[1]) {
  2369. # if ENABLE_FEATURE_NTP_AUTH
  2370. key_entry_t *key_entry = NULL;
  2371. if (token[2] && token[3] && strcmp(token[2], "key") == 0) {
  2372. unsigned key_id = xatou_range(token[3], 1, MAX_KEY_NUMBER);
  2373. key_entry = find_key_entry(key_entries, key_id);
  2374. }
  2375. add_peers(token[1], key_entry);
  2376. # else
  2377. add_peers(token[1], NULL);
  2378. # endif
  2379. continue;
  2380. }
  2381. bb_error_msg("skipping %s:%u: unimplemented command '%s'",
  2382. "/etc/ntp.conf", parser->lineno, token[0]
  2383. );
  2384. }
  2385. config_close(parser);
  2386. }
  2387. #endif
  2388. if (G.peer_cnt == 0) {
  2389. if (!(opts & OPT_l))
  2390. bb_show_usage();
  2391. /* -l but no peers: "stratum 1 server" mode */
  2392. G.stratum = 1;
  2393. }
  2394. /* If network is up, syncronization occurs in ~10 seconds.
  2395. * We give "ntpd -q" 10 seconds to get first reply,
  2396. * then another 50 seconds to finish syncing.
  2397. *
  2398. * I tested ntpd 4.2.6p1 and apparently it never exits
  2399. * (will try forever), but it does not feel right.
  2400. * The goal of -q is to act like ntpdate: set time
  2401. * after a reasonably small period of polling, or fail.
  2402. */
  2403. if (opts & OPT_q) {
  2404. option_mask32 |= OPT_qq;
  2405. alarm(10);
  2406. }
  2407. bb_signals(0
  2408. | (1 << SIGTERM)
  2409. | (1 << SIGINT)
  2410. | (1 << SIGALRM)
  2411. , record_signo
  2412. );
  2413. bb_signals(0
  2414. | (1 << SIGPIPE)
  2415. | (1 << SIGCHLD)
  2416. , SIG_IGN
  2417. );
  2418. //TODO: free unused elements of key_entries?
  2419. }
  2420. int ntpd_main(int argc UNUSED_PARAM, char **argv) MAIN_EXTERNALLY_VISIBLE;
  2421. int ntpd_main(int argc UNUSED_PARAM, char **argv)
  2422. {
  2423. #undef G
  2424. struct globals G;
  2425. struct pollfd *pfd;
  2426. peer_t **idx2peer;
  2427. unsigned cnt;
  2428. memset(&G, 0, sizeof(G));
  2429. SET_PTR_TO_GLOBALS(&G);
  2430. ntp_init(argv);
  2431. /* If ENABLE_FEATURE_NTPD_SERVER, + 1 for listen_fd: */
  2432. cnt = G.peer_cnt + ENABLE_FEATURE_NTPD_SERVER;
  2433. idx2peer = xzalloc(sizeof(idx2peer[0]) * cnt);
  2434. pfd = xzalloc(sizeof(pfd[0]) * cnt);
  2435. /* Countdown: we never sync before we sent INITIAL_SAMPLES+1
  2436. * packets to each peer.
  2437. * NB: if some peer is not responding, we may end up sending
  2438. * fewer packets to it and more to other peers.
  2439. * NB2: sync usually happens using INITIAL_SAMPLES packets,
  2440. * since last reply does not come back instantaneously.
  2441. */
  2442. cnt = G.peer_cnt * (INITIAL_SAMPLES + 1);
  2443. write_pidfile(CONFIG_PID_FILE_PATH "/ntpd.pid");
  2444. while (!bb_got_signal) {
  2445. llist_t *item;
  2446. unsigned i, j;
  2447. int nfds, timeout;
  2448. double nextaction;
  2449. /* Nothing between here and poll() blocks for any significant time */
  2450. nextaction = G.last_script_run + (11*60);
  2451. if (nextaction < G.cur_time + 1)
  2452. nextaction = G.cur_time + 1;
  2453. i = 0;
  2454. #if ENABLE_FEATURE_NTPD_SERVER
  2455. if (G_listen_fd != -1) {
  2456. pfd[0].fd = G_listen_fd;
  2457. pfd[0].events = POLLIN;
  2458. i++;
  2459. }
  2460. #endif
  2461. /* Pass over peer list, send requests, time out on receives */
  2462. for (item = G.ntp_peers; item != NULL; item = item->link) {
  2463. peer_t *p = (peer_t *) item->data;
  2464. if (p->next_action_time <= G.cur_time) {
  2465. if (p->p_fd == -1) {
  2466. /* Time to send new req */
  2467. if (--cnt == 0) {
  2468. VERB4 bb_error_msg("disabling burst mode");
  2469. G.polladj_count = 0;
  2470. G.poll_exp = MINPOLL;
  2471. }
  2472. send_query_to_peer(p);
  2473. } else {
  2474. /* Timed out waiting for reply */
  2475. close(p->p_fd);
  2476. p->p_fd = -1;
  2477. /* If poll interval is small, increase it */
  2478. if (G.poll_exp < BIGPOLL)
  2479. adjust_poll(MINPOLL);
  2480. timeout = poll_interval(NOREPLY_INTERVAL);
  2481. bb_error_msg("timed out waiting for %s, reach 0x%02x, next query in %us",
  2482. p->p_dotted, p->reachable_bits, timeout);
  2483. /* What if don't see it because it changed its IP? */
  2484. if (p->reachable_bits == 0)
  2485. resolve_peer_hostname(p);
  2486. set_next(p, timeout);
  2487. }
  2488. }
  2489. if (p->next_action_time < nextaction)
  2490. nextaction = p->next_action_time;
  2491. if (p->p_fd >= 0) {
  2492. /* Wait for reply from this peer */
  2493. pfd[i].fd = p->p_fd;
  2494. pfd[i].events = POLLIN;
  2495. idx2peer[i] = p;
  2496. i++;
  2497. }
  2498. }
  2499. timeout = nextaction - G.cur_time;
  2500. if (timeout < 0)
  2501. timeout = 0;
  2502. timeout++; /* (nextaction - G.cur_time) rounds down, compensating */
  2503. /* Here we may block */
  2504. VERB2 {
  2505. if (i > (ENABLE_FEATURE_NTPD_SERVER && G_listen_fd != -1)) {
  2506. /* We wait for at least one reply.
  2507. * Poll for it, without wasting time for message.
  2508. * Since replies often come under 1 second, this also
  2509. * reduces clutter in logs.
  2510. */
  2511. nfds = poll(pfd, i, 1000);
  2512. if (nfds != 0)
  2513. goto did_poll;
  2514. if (--timeout <= 0)
  2515. goto did_poll;
  2516. }
  2517. bb_error_msg("poll:%us sockets:%u interval:%us", timeout, i, 1 << G.poll_exp);
  2518. }
  2519. nfds = poll(pfd, i, timeout * 1000);
  2520. did_poll:
  2521. gettime1900d(); /* sets G.cur_time */
  2522. if (nfds <= 0) {
  2523. double ct;
  2524. int dns_error;
  2525. if (bb_got_signal)
  2526. break; /* poll was interrupted by a signal */
  2527. if (G.cur_time - G.last_script_run > 11*60) {
  2528. /* Useful for updating battery-backed RTC and such */
  2529. run_script("periodic", G.last_update_offset);
  2530. gettime1900d(); /* sets G.cur_time */
  2531. }
  2532. /* Resolve peer names to IPs, if not resolved yet.
  2533. * We do it only when poll timed out:
  2534. * this way, we almost never overlap DNS resolution with
  2535. * "request-reply" packet round trip.
  2536. */
  2537. dns_error = 0;
  2538. ct = G.cur_time;
  2539. for (item = G.ntp_peers; item != NULL; item = item->link) {
  2540. peer_t *p = (peer_t *) item->data;
  2541. if (p->next_action_time <= ct && !p->p_lsa) {
  2542. /* This can take up to ~10 sec per each DNS query */
  2543. dns_error |= (!resolve_peer_hostname(p));
  2544. }
  2545. }
  2546. if (!dns_error)
  2547. goto check_unsync;
  2548. /* Set next time for those which are still not resolved */
  2549. gettime1900d(); /* sets G.cur_time (needed for set_next()) */
  2550. for (item = G.ntp_peers; item != NULL; item = item->link) {
  2551. peer_t *p = (peer_t *) item->data;
  2552. if (p->next_action_time <= ct && !p->p_lsa) {
  2553. set_next(p, HOSTNAME_INTERVAL * p->dns_errors);
  2554. }
  2555. }
  2556. goto check_unsync;
  2557. }
  2558. /* Process any received packets */
  2559. j = 0;
  2560. #if ENABLE_FEATURE_NTPD_SERVER
  2561. if (G.listen_fd != -1) {
  2562. if (pfd[0].revents /* & (POLLIN|POLLERR)*/) {
  2563. nfds--;
  2564. recv_and_process_client_pkt(/*G.listen_fd*/);
  2565. gettime1900d(); /* sets G.cur_time */
  2566. }
  2567. j = 1;
  2568. }
  2569. #endif
  2570. for (; nfds != 0 && j < i; j++) {
  2571. if (pfd[j].revents /* & (POLLIN|POLLERR)*/) {
  2572. /*
  2573. * At init, alarm was set to 10 sec.
  2574. * Now we did get a reply.
  2575. * Increase timeout to 50 seconds to finish syncing.
  2576. */
  2577. if (option_mask32 & OPT_qq) {
  2578. option_mask32 &= ~OPT_qq;
  2579. alarm(50);
  2580. }
  2581. nfds--;
  2582. recv_and_process_peer_pkt(idx2peer[j]);
  2583. gettime1900d(); /* sets G.cur_time */
  2584. }
  2585. }
  2586. check_unsync:
  2587. if (G.ntp_peers && G.stratum != MAXSTRAT) {
  2588. for (item = G.ntp_peers; item != NULL; item = item->link) {
  2589. peer_t *p = (peer_t *) item->data;
  2590. if (p->reachable_bits)
  2591. goto have_reachable_peer;
  2592. }
  2593. /* No peer responded for last 8 packets, panic */
  2594. clamp_pollexp_and_set_MAXSTRAT();
  2595. run_script("unsync", 0.0);
  2596. have_reachable_peer: ;
  2597. }
  2598. } /* while (!bb_got_signal) */
  2599. remove_pidfile(CONFIG_PID_FILE_PATH "/ntpd.pid");
  2600. kill_myself_with_sig(bb_got_signal);
  2601. }
  2602. /*** openntpd-4.6 uses only adjtime, not adjtimex ***/
  2603. /*** ntp-4.2.6/ntpd/ntp_loopfilter.c - adjtimex usage ***/
  2604. #if 0
  2605. static double
  2606. direct_freq(double fp_offset)
  2607. {
  2608. #ifdef KERNEL_PLL
  2609. /*
  2610. * If the kernel is enabled, we need the residual offset to
  2611. * calculate the frequency correction.
  2612. */
  2613. if (pll_control && kern_enable) {
  2614. memset(&ntv, 0, sizeof(ntv));
  2615. ntp_adjtime(&ntv);
  2616. #ifdef STA_NANO
  2617. clock_offset = ntv.offset / 1e9;
  2618. #else /* STA_NANO */
  2619. clock_offset = ntv.offset / 1e6;
  2620. #endif /* STA_NANO */
  2621. drift_comp = FREQTOD(ntv.freq);
  2622. }
  2623. #endif /* KERNEL_PLL */
  2624. set_freq((fp_offset - clock_offset) / (current_time - clock_epoch) + drift_comp);
  2625. wander_resid = 0;
  2626. return drift_comp;
  2627. }
  2628. static void
  2629. set_freq(double freq) /* frequency update */
  2630. {
  2631. char tbuf[80];
  2632. drift_comp = freq;
  2633. #ifdef KERNEL_PLL
  2634. /*
  2635. * If the kernel is enabled, update the kernel frequency.
  2636. */
  2637. if (pll_control && kern_enable) {
  2638. memset(&ntv, 0, sizeof(ntv));
  2639. ntv.modes = MOD_FREQUENCY;
  2640. ntv.freq = DTOFREQ(drift_comp);
  2641. ntp_adjtime(&ntv);
  2642. snprintf(tbuf, sizeof(tbuf), "kernel %.3f PPM", drift_comp * 1e6);
  2643. report_event(EVNT_FSET, NULL, tbuf);
  2644. } else {
  2645. snprintf(tbuf, sizeof(tbuf), "ntpd %.3f PPM", drift_comp * 1e6);
  2646. report_event(EVNT_FSET, NULL, tbuf);
  2647. }
  2648. #else /* KERNEL_PLL */
  2649. snprintf(tbuf, sizeof(tbuf), "ntpd %.3f PPM", drift_comp * 1e6);
  2650. report_event(EVNT_FSET, NULL, tbuf);
  2651. #endif /* KERNEL_PLL */
  2652. }
  2653. ...
  2654. ...
  2655. ...
  2656. #ifdef KERNEL_PLL
  2657. /*
  2658. * This code segment works when clock adjustments are made using
  2659. * precision time kernel support and the ntp_adjtime() system
  2660. * call. This support is available in Solaris 2.6 and later,
  2661. * Digital Unix 4.0 and later, FreeBSD, Linux and specially
  2662. * modified kernels for HP-UX 9 and Ultrix 4. In the case of the
  2663. * DECstation 5000/240 and Alpha AXP, additional kernel
  2664. * modifications provide a true microsecond clock and nanosecond
  2665. * clock, respectively.
  2666. *
  2667. * Important note: The kernel discipline is used only if the
  2668. * step threshold is less than 0.5 s, as anything higher can
  2669. * lead to overflow problems. This might occur if some misguided
  2670. * lad set the step threshold to something ridiculous.
  2671. */
  2672. if (pll_control && kern_enable) {
  2673. #define MOD_BITS (MOD_OFFSET | MOD_MAXERROR | MOD_ESTERROR | MOD_STATUS | MOD_TIMECONST)
  2674. /*
  2675. * We initialize the structure for the ntp_adjtime()
  2676. * system call. We have to convert everything to
  2677. * microseconds or nanoseconds first. Do not update the
  2678. * system variables if the ext_enable flag is set. In
  2679. * this case, the external clock driver will update the
  2680. * variables, which will be read later by the local
  2681. * clock driver. Afterwards, remember the time and
  2682. * frequency offsets for jitter and stability values and
  2683. * to update the frequency file.
  2684. */
  2685. memset(&ntv, 0, sizeof(ntv));
  2686. if (ext_enable) {
  2687. ntv.modes = MOD_STATUS;
  2688. } else {
  2689. #ifdef STA_NANO
  2690. ntv.modes = MOD_BITS | MOD_NANO;
  2691. #else /* STA_NANO */
  2692. ntv.modes = MOD_BITS;
  2693. #endif /* STA_NANO */
  2694. if (clock_offset < 0)
  2695. dtemp = -.5;
  2696. else
  2697. dtemp = .5;
  2698. #ifdef STA_NANO
  2699. ntv.offset = (int32)(clock_offset * 1e9 + dtemp);
  2700. ntv.constant = sys_poll;
  2701. #else /* STA_NANO */
  2702. ntv.offset = (int32)(clock_offset * 1e6 + dtemp);
  2703. ntv.constant = sys_poll - 4;
  2704. #endif /* STA_NANO */
  2705. ntv.esterror = (u_int32)(clock_jitter * 1e6);
  2706. ntv.maxerror = (u_int32)((sys_rootdelay / 2 + sys_rootdisp) * 1e6);
  2707. ntv.status = STA_PLL;
  2708. /*
  2709. * Enable/disable the PPS if requested.
  2710. */
  2711. if (pps_enable) {
  2712. if (!(pll_status & STA_PPSTIME))
  2713. report_event(EVNT_KERN,
  2714. NULL, "PPS enabled");
  2715. ntv.status |= STA_PPSTIME | STA_PPSFREQ;
  2716. } else {
  2717. if (pll_status & STA_PPSTIME)
  2718. report_event(EVNT_KERN,
  2719. NULL, "PPS disabled");
  2720. ntv.status &= ~(STA_PPSTIME | STA_PPSFREQ);
  2721. }
  2722. if (sys_leap == LEAP_ADDSECOND)
  2723. ntv.status |= STA_INS;
  2724. else if (sys_leap == LEAP_DELSECOND)
  2725. ntv.status |= STA_DEL;
  2726. }
  2727. /*
  2728. * Pass the stuff to the kernel. If it squeals, turn off
  2729. * the pps. In any case, fetch the kernel offset,
  2730. * frequency and jitter.
  2731. */
  2732. if (ntp_adjtime(&ntv) == TIME_ERROR) {
  2733. if (!(ntv.status & STA_PPSSIGNAL))
  2734. report_event(EVNT_KERN, NULL,
  2735. "PPS no signal");
  2736. }
  2737. pll_status = ntv.status;
  2738. #ifdef STA_NANO
  2739. clock_offset = ntv.offset / 1e9;
  2740. #else /* STA_NANO */
  2741. clock_offset = ntv.offset / 1e6;
  2742. #endif /* STA_NANO */
  2743. clock_frequency = FREQTOD(ntv.freq);
  2744. /*
  2745. * If the kernel PPS is lit, monitor its performance.
  2746. */
  2747. if (ntv.status & STA_PPSTIME) {
  2748. #ifdef STA_NANO
  2749. clock_jitter = ntv.jitter / 1e9;
  2750. #else /* STA_NANO */
  2751. clock_jitter = ntv.jitter / 1e6;
  2752. #endif /* STA_NANO */
  2753. }
  2754. #if defined(STA_NANO) && NTP_API == 4
  2755. /*
  2756. * If the TAI changes, update the kernel TAI.
  2757. */
  2758. if (loop_tai != sys_tai) {
  2759. loop_tai = sys_tai;
  2760. ntv.modes = MOD_TAI;
  2761. ntv.constant = sys_tai;
  2762. ntp_adjtime(&ntv);
  2763. }
  2764. #endif /* STA_NANO */
  2765. }
  2766. #endif /* KERNEL_PLL */
  2767. #endif