ntp.c 10 KB

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  1. /*
  2. * linux/kernel/time/ntp.c
  3. *
  4. * NTP state machine interfaces and logic.
  5. *
  6. * This code was mainly moved from kernel/timer.c and kernel/time.c
  7. * Please see those files for relevant copyright info and historical
  8. * changelogs.
  9. */
  10. #include <linux/mm.h>
  11. #include <linux/time.h>
  12. #include <linux/timex.h>
  13. #include <linux/jiffies.h>
  14. #include <linux/hrtimer.h>
  15. #include <linux/capability.h>
  16. #include <asm/div64.h>
  17. #include <asm/timex.h>
  18. /*
  19. * Timekeeping variables
  20. */
  21. unsigned long tick_usec = TICK_USEC; /* USER_HZ period (usec) */
  22. unsigned long tick_nsec; /* ACTHZ period (nsec) */
  23. static u64 tick_length, tick_length_base;
  24. #define MAX_TICKADJ 500 /* microsecs */
  25. #define MAX_TICKADJ_SCALED (((u64)(MAX_TICKADJ * NSEC_PER_USEC) << \
  26. TICK_LENGTH_SHIFT) / NTP_INTERVAL_FREQ)
  27. /*
  28. * phase-lock loop variables
  29. */
  30. /* TIME_ERROR prevents overwriting the CMOS clock */
  31. static int time_state = TIME_OK; /* clock synchronization status */
  32. int time_status = STA_UNSYNC; /* clock status bits */
  33. static s64 time_offset; /* time adjustment (ns) */
  34. static long time_constant = 2; /* pll time constant */
  35. long time_maxerror = NTP_PHASE_LIMIT; /* maximum error (us) */
  36. long time_esterror = NTP_PHASE_LIMIT; /* estimated error (us) */
  37. long time_freq; /* frequency offset (scaled ppm)*/
  38. static long time_reftime; /* time at last adjustment (s) */
  39. long time_adjust;
  40. #define CLOCK_TICK_OVERFLOW (LATCH * HZ - CLOCK_TICK_RATE)
  41. #define CLOCK_TICK_ADJUST (((s64)CLOCK_TICK_OVERFLOW * NSEC_PER_SEC) / \
  42. (s64)CLOCK_TICK_RATE)
  43. static void ntp_update_frequency(void)
  44. {
  45. u64 second_length = (u64)(tick_usec * NSEC_PER_USEC * USER_HZ)
  46. << TICK_LENGTH_SHIFT;
  47. second_length += (s64)CLOCK_TICK_ADJUST << TICK_LENGTH_SHIFT;
  48. second_length += (s64)time_freq << (TICK_LENGTH_SHIFT - SHIFT_NSEC);
  49. tick_length_base = second_length;
  50. do_div(second_length, HZ);
  51. tick_nsec = second_length >> TICK_LENGTH_SHIFT;
  52. do_div(tick_length_base, NTP_INTERVAL_FREQ);
  53. }
  54. /**
  55. * ntp_clear - Clears the NTP state variables
  56. *
  57. * Must be called while holding a write on the xtime_lock
  58. */
  59. void ntp_clear(void)
  60. {
  61. time_adjust = 0; /* stop active adjtime() */
  62. time_status |= STA_UNSYNC;
  63. time_maxerror = NTP_PHASE_LIMIT;
  64. time_esterror = NTP_PHASE_LIMIT;
  65. ntp_update_frequency();
  66. tick_length = tick_length_base;
  67. time_offset = 0;
  68. }
  69. /*
  70. * this routine handles the overflow of the microsecond field
  71. *
  72. * The tricky bits of code to handle the accurate clock support
  73. * were provided by Dave Mills (Mills@UDEL.EDU) of NTP fame.
  74. * They were originally developed for SUN and DEC kernels.
  75. * All the kudos should go to Dave for this stuff.
  76. */
  77. void second_overflow(void)
  78. {
  79. long time_adj;
  80. /* Bump the maxerror field */
  81. time_maxerror += MAXFREQ >> SHIFT_USEC;
  82. if (time_maxerror > NTP_PHASE_LIMIT) {
  83. time_maxerror = NTP_PHASE_LIMIT;
  84. time_status |= STA_UNSYNC;
  85. }
  86. /*
  87. * Leap second processing. If in leap-insert state at the end of the
  88. * day, the system clock is set back one second; if in leap-delete
  89. * state, the system clock is set ahead one second. The microtime()
  90. * routine or external clock driver will insure that reported time is
  91. * always monotonic. The ugly divides should be replaced.
  92. */
  93. switch (time_state) {
  94. case TIME_OK:
  95. if (time_status & STA_INS)
  96. time_state = TIME_INS;
  97. else if (time_status & STA_DEL)
  98. time_state = TIME_DEL;
  99. break;
  100. case TIME_INS:
  101. if (xtime.tv_sec % 86400 == 0) {
  102. xtime.tv_sec--;
  103. wall_to_monotonic.tv_sec++;
  104. /*
  105. * The timer interpolator will make time change
  106. * gradually instead of an immediate jump by one second
  107. */
  108. time_interpolator_update(-NSEC_PER_SEC);
  109. time_state = TIME_OOP;
  110. printk(KERN_NOTICE "Clock: inserting leap second "
  111. "23:59:60 UTC\n");
  112. }
  113. break;
  114. case TIME_DEL:
  115. if ((xtime.tv_sec + 1) % 86400 == 0) {
  116. xtime.tv_sec++;
  117. wall_to_monotonic.tv_sec--;
  118. /*
  119. * Use of time interpolator for a gradual change of
  120. * time
  121. */
  122. time_interpolator_update(NSEC_PER_SEC);
  123. time_state = TIME_WAIT;
  124. printk(KERN_NOTICE "Clock: deleting leap second "
  125. "23:59:59 UTC\n");
  126. }
  127. break;
  128. case TIME_OOP:
  129. time_state = TIME_WAIT;
  130. break;
  131. case TIME_WAIT:
  132. if (!(time_status & (STA_INS | STA_DEL)))
  133. time_state = TIME_OK;
  134. }
  135. /*
  136. * Compute the phase adjustment for the next second. The offset is
  137. * reduced by a fixed factor times the time constant.
  138. */
  139. tick_length = tick_length_base;
  140. time_adj = shift_right(time_offset, SHIFT_PLL + time_constant);
  141. time_offset -= time_adj;
  142. tick_length += (s64)time_adj << (TICK_LENGTH_SHIFT - SHIFT_UPDATE);
  143. if (unlikely(time_adjust)) {
  144. if (time_adjust > MAX_TICKADJ) {
  145. time_adjust -= MAX_TICKADJ;
  146. tick_length += MAX_TICKADJ_SCALED;
  147. } else if (time_adjust < -MAX_TICKADJ) {
  148. time_adjust += MAX_TICKADJ;
  149. tick_length -= MAX_TICKADJ_SCALED;
  150. } else {
  151. tick_length += (s64)(time_adjust * NSEC_PER_USEC /
  152. NTP_INTERVAL_FREQ) << TICK_LENGTH_SHIFT;
  153. time_adjust = 0;
  154. }
  155. }
  156. }
  157. /*
  158. * Return how long ticks are at the moment, that is, how much time
  159. * update_wall_time_one_tick will add to xtime next time we call it
  160. * (assuming no calls to do_adjtimex in the meantime).
  161. * The return value is in fixed-point nanoseconds shifted by the
  162. * specified number of bits to the right of the binary point.
  163. * This function has no side-effects.
  164. */
  165. u64 current_tick_length(void)
  166. {
  167. return tick_length;
  168. }
  169. void __attribute__ ((weak)) notify_arch_cmos_timer(void)
  170. {
  171. return;
  172. }
  173. /* adjtimex mainly allows reading (and writing, if superuser) of
  174. * kernel time-keeping variables. used by xntpd.
  175. */
  176. int do_adjtimex(struct timex *txc)
  177. {
  178. long mtemp, save_adjust, rem;
  179. s64 freq_adj, temp64;
  180. int result;
  181. /* In order to modify anything, you gotta be super-user! */
  182. if (txc->modes && !capable(CAP_SYS_TIME))
  183. return -EPERM;
  184. /* Now we validate the data before disabling interrupts */
  185. if ((txc->modes & ADJ_OFFSET_SINGLESHOT) == ADJ_OFFSET_SINGLESHOT)
  186. /* singleshot must not be used with any other mode bits */
  187. if (txc->modes != ADJ_OFFSET_SINGLESHOT)
  188. return -EINVAL;
  189. if (txc->modes != ADJ_OFFSET_SINGLESHOT && (txc->modes & ADJ_OFFSET))
  190. /* adjustment Offset limited to +- .512 seconds */
  191. if (txc->offset <= - MAXPHASE || txc->offset >= MAXPHASE )
  192. return -EINVAL;
  193. /* if the quartz is off by more than 10% something is VERY wrong ! */
  194. if (txc->modes & ADJ_TICK)
  195. if (txc->tick < 900000/USER_HZ ||
  196. txc->tick > 1100000/USER_HZ)
  197. return -EINVAL;
  198. write_seqlock_irq(&xtime_lock);
  199. result = time_state; /* mostly `TIME_OK' */
  200. /* Save for later - semantics of adjtime is to return old value */
  201. save_adjust = time_adjust;
  202. #if 0 /* STA_CLOCKERR is never set yet */
  203. time_status &= ~STA_CLOCKERR; /* reset STA_CLOCKERR */
  204. #endif
  205. /* If there are input parameters, then process them */
  206. if (txc->modes)
  207. {
  208. if (txc->modes & ADJ_STATUS) /* only set allowed bits */
  209. time_status = (txc->status & ~STA_RONLY) |
  210. (time_status & STA_RONLY);
  211. if (txc->modes & ADJ_FREQUENCY) { /* p. 22 */
  212. if (txc->freq > MAXFREQ || txc->freq < -MAXFREQ) {
  213. result = -EINVAL;
  214. goto leave;
  215. }
  216. time_freq = ((s64)txc->freq * NSEC_PER_USEC)
  217. >> (SHIFT_USEC - SHIFT_NSEC);
  218. }
  219. if (txc->modes & ADJ_MAXERROR) {
  220. if (txc->maxerror < 0 || txc->maxerror >= NTP_PHASE_LIMIT) {
  221. result = -EINVAL;
  222. goto leave;
  223. }
  224. time_maxerror = txc->maxerror;
  225. }
  226. if (txc->modes & ADJ_ESTERROR) {
  227. if (txc->esterror < 0 || txc->esterror >= NTP_PHASE_LIMIT) {
  228. result = -EINVAL;
  229. goto leave;
  230. }
  231. time_esterror = txc->esterror;
  232. }
  233. if (txc->modes & ADJ_TIMECONST) { /* p. 24 */
  234. if (txc->constant < 0) { /* NTP v4 uses values > 6 */
  235. result = -EINVAL;
  236. goto leave;
  237. }
  238. time_constant = min(txc->constant + 4, (long)MAXTC);
  239. }
  240. if (txc->modes & ADJ_OFFSET) { /* values checked earlier */
  241. if (txc->modes == ADJ_OFFSET_SINGLESHOT) {
  242. /* adjtime() is independent from ntp_adjtime() */
  243. time_adjust = txc->offset;
  244. }
  245. else if (time_status & STA_PLL) {
  246. time_offset = txc->offset * NSEC_PER_USEC;
  247. /*
  248. * Scale the phase adjustment and
  249. * clamp to the operating range.
  250. */
  251. time_offset = min(time_offset, (s64)MAXPHASE * NSEC_PER_USEC);
  252. time_offset = max(time_offset, (s64)-MAXPHASE * NSEC_PER_USEC);
  253. /*
  254. * Select whether the frequency is to be controlled
  255. * and in which mode (PLL or FLL). Clamp to the operating
  256. * range. Ugly multiply/divide should be replaced someday.
  257. */
  258. if (time_status & STA_FREQHOLD || time_reftime == 0)
  259. time_reftime = xtime.tv_sec;
  260. mtemp = xtime.tv_sec - time_reftime;
  261. time_reftime = xtime.tv_sec;
  262. freq_adj = time_offset * mtemp;
  263. freq_adj = shift_right(freq_adj, time_constant * 2 +
  264. (SHIFT_PLL + 2) * 2 - SHIFT_NSEC);
  265. if (mtemp >= MINSEC && (time_status & STA_FLL || mtemp > MAXSEC)) {
  266. temp64 = time_offset << (SHIFT_NSEC - SHIFT_FLL);
  267. if (time_offset < 0) {
  268. temp64 = -temp64;
  269. do_div(temp64, mtemp);
  270. freq_adj -= temp64;
  271. } else {
  272. do_div(temp64, mtemp);
  273. freq_adj += temp64;
  274. }
  275. }
  276. freq_adj += time_freq;
  277. freq_adj = min(freq_adj, (s64)MAXFREQ_NSEC);
  278. time_freq = max(freq_adj, (s64)-MAXFREQ_NSEC);
  279. time_offset = div_long_long_rem_signed(time_offset,
  280. NTP_INTERVAL_FREQ,
  281. &rem);
  282. time_offset <<= SHIFT_UPDATE;
  283. } /* STA_PLL */
  284. } /* txc->modes & ADJ_OFFSET */
  285. if (txc->modes & ADJ_TICK)
  286. tick_usec = txc->tick;
  287. if (txc->modes & (ADJ_TICK|ADJ_FREQUENCY|ADJ_OFFSET))
  288. ntp_update_frequency();
  289. } /* txc->modes */
  290. leave: if ((time_status & (STA_UNSYNC|STA_CLOCKERR)) != 0)
  291. result = TIME_ERROR;
  292. if ((txc->modes & ADJ_OFFSET_SINGLESHOT) == ADJ_OFFSET_SINGLESHOT)
  293. txc->offset = save_adjust;
  294. else
  295. txc->offset = ((long)shift_right(time_offset, SHIFT_UPDATE)) *
  296. NTP_INTERVAL_FREQ / 1000;
  297. txc->freq = (time_freq / NSEC_PER_USEC) <<
  298. (SHIFT_USEC - SHIFT_NSEC);
  299. txc->maxerror = time_maxerror;
  300. txc->esterror = time_esterror;
  301. txc->status = time_status;
  302. txc->constant = time_constant;
  303. txc->precision = 1;
  304. txc->tolerance = MAXFREQ;
  305. txc->tick = tick_usec;
  306. /* PPS is not implemented, so these are zero */
  307. txc->ppsfreq = 0;
  308. txc->jitter = 0;
  309. txc->shift = 0;
  310. txc->stabil = 0;
  311. txc->jitcnt = 0;
  312. txc->calcnt = 0;
  313. txc->errcnt = 0;
  314. txc->stbcnt = 0;
  315. write_sequnlock_irq(&xtime_lock);
  316. do_gettimeofday(&txc->time);
  317. notify_arch_cmos_timer();
  318. return(result);
  319. }