blob: ed8cfdf16983fce8ad31bbd10ae59c036d8c5204 [file] [log] [blame]
john stultz4c7ee8d2006-09-30 23:28:22 -07001/*
john stultz4c7ee8d2006-09-30 23:28:22 -07002 * NTP state machine interfaces and logic.
3 *
4 * This code was mainly moved from kernel/timer.c and kernel/time.c
5 * Please see those files for relevant copyright info and historical
6 * changelogs.
7 */
Alexey Dobriyanaa0ac362007-07-15 23:40:39 -07008#include <linux/capability.h>
Roman Zippel7dffa3c2008-05-01 04:34:41 -07009#include <linux/clocksource.h>
Maciej W. Rozyckieb3f9382008-09-22 14:42:40 -070010#include <linux/workqueue.h>
Ingo Molnar53bbfa92008-02-20 07:58:42 +010011#include <linux/hrtimer.h>
12#include <linux/jiffies.h>
13#include <linux/math64.h>
14#include <linux/timex.h>
15#include <linux/time.h>
16#include <linux/mm.h>
Alexander Gordeev025b40a2011-01-12 17:00:56 -080017#include <linux/module.h>
john stultz4c7ee8d2006-09-30 23:28:22 -070018
Torben Hohne2830b52011-01-27 16:00:32 +010019#include "tick-internal.h"
20
Roman Zippelb0ee7552006-09-30 23:28:22 -070021/*
Ingo Molnar53bbfa92008-02-20 07:58:42 +010022 * NTP timekeeping variables:
Roman Zippelb0ee7552006-09-30 23:28:22 -070023 */
Roman Zippelb0ee7552006-09-30 23:28:22 -070024
Ingo Molnar53bbfa92008-02-20 07:58:42 +010025/* USER_HZ period (usecs): */
26unsigned long tick_usec = TICK_USEC;
Roman Zippel7dffa3c2008-05-01 04:34:41 -070027
Ingo Molnar53bbfa92008-02-20 07:58:42 +010028/* ACTHZ period (nsecs): */
29unsigned long tick_nsec;
30
31u64 tick_length;
32static u64 tick_length_base;
33
34static struct hrtimer leap_timer;
35
Ingo Molnarbbd12672009-02-22 12:11:11 +010036#define MAX_TICKADJ 500LL /* usecs */
Ingo Molnar53bbfa92008-02-20 07:58:42 +010037#define MAX_TICKADJ_SCALED \
Ingo Molnarbbd12672009-02-22 12:11:11 +010038 (((MAX_TICKADJ * NSEC_PER_USEC) << NTP_SCALE_SHIFT) / NTP_INTERVAL_FREQ)
john stultz4c7ee8d2006-09-30 23:28:22 -070039
40/*
41 * phase-lock loop variables
42 */
Ingo Molnar53bbfa92008-02-20 07:58:42 +010043
44/*
45 * clock synchronization status
46 *
47 * (TIME_ERROR prevents overwriting the CMOS clock)
48 */
49static int time_state = TIME_OK;
50
51/* clock status bits: */
52int time_status = STA_UNSYNC;
53
54/* TAI offset (secs): */
55static long time_tai;
56
57/* time adjustment (nsecs): */
58static s64 time_offset;
59
60/* pll time constant: */
61static long time_constant = 2;
62
63/* maximum error (usecs): */
john stultz1f5b8f82010-01-28 15:02:41 -080064static long time_maxerror = NTP_PHASE_LIMIT;
Ingo Molnar53bbfa92008-02-20 07:58:42 +010065
66/* estimated error (usecs): */
john stultz1f5b8f82010-01-28 15:02:41 -080067static long time_esterror = NTP_PHASE_LIMIT;
Ingo Molnar53bbfa92008-02-20 07:58:42 +010068
69/* frequency offset (scaled nsecs/secs): */
70static s64 time_freq;
71
72/* time at last adjustment (secs): */
73static long time_reftime;
74
John Stultze1292ba2010-03-18 20:19:27 -070075static long time_adjust;
Ingo Molnar53bbfa92008-02-20 07:58:42 +010076
Ingo Molnar069569e2009-02-22 16:03:37 +010077/* constant (boot-param configurable) NTP tick adjustment (upscaled) */
78static s64 ntp_tick_adj;
Ingo Molnar53bbfa92008-02-20 07:58:42 +010079
Alexander Gordeev025b40a2011-01-12 17:00:56 -080080#ifdef CONFIG_NTP_PPS
81
82/*
83 * The following variables are used when a pulse-per-second (PPS) signal
84 * is available. They establish the engineering parameters of the clock
85 * discipline loop when controlled by the PPS signal.
86 */
87#define PPS_VALID 10 /* PPS signal watchdog max (s) */
88#define PPS_POPCORN 4 /* popcorn spike threshold (shift) */
89#define PPS_INTMIN 2 /* min freq interval (s) (shift) */
90#define PPS_INTMAX 8 /* max freq interval (s) (shift) */
91#define PPS_INTCOUNT 4 /* number of consecutive good intervals to
92 increase pps_shift or consecutive bad
93 intervals to decrease it */
94#define PPS_MAXWANDER 100000 /* max PPS freq wander (ns/s) */
95
96static int pps_valid; /* signal watchdog counter */
97static long pps_tf[3]; /* phase median filter */
98static long pps_jitter; /* current jitter (ns) */
99static struct timespec pps_fbase; /* beginning of the last freq interval */
100static int pps_shift; /* current interval duration (s) (shift) */
101static int pps_intcnt; /* interval counter */
102static s64 pps_freq; /* frequency offset (scaled ns/s) */
103static long pps_stabil; /* current stability (scaled ns/s) */
104
105/*
106 * PPS signal quality monitors
107 */
108static long pps_calcnt; /* calibration intervals */
109static long pps_jitcnt; /* jitter limit exceeded */
110static long pps_stbcnt; /* stability limit exceeded */
111static long pps_errcnt; /* calibration errors */
112
113
114/* PPS kernel consumer compensates the whole phase error immediately.
115 * Otherwise, reduce the offset by a fixed factor times the time constant.
116 */
117static inline s64 ntp_offset_chunk(s64 offset)
118{
119 if (time_status & STA_PPSTIME && time_status & STA_PPSSIGNAL)
120 return offset;
121 else
122 return shift_right(offset, SHIFT_PLL + time_constant);
123}
124
125static inline void pps_reset_freq_interval(void)
126{
127 /* the PPS calibration interval may end
128 surprisingly early */
129 pps_shift = PPS_INTMIN;
130 pps_intcnt = 0;
131}
132
133/**
134 * pps_clear - Clears the PPS state variables
135 *
136 * Must be called while holding a write on the xtime_lock
137 */
138static inline void pps_clear(void)
139{
140 pps_reset_freq_interval();
141 pps_tf[0] = 0;
142 pps_tf[1] = 0;
143 pps_tf[2] = 0;
144 pps_fbase.tv_sec = pps_fbase.tv_nsec = 0;
145 pps_freq = 0;
146}
147
148/* Decrease pps_valid to indicate that another second has passed since
149 * the last PPS signal. When it reaches 0, indicate that PPS signal is
150 * missing.
151 *
152 * Must be called while holding a write on the xtime_lock
153 */
154static inline void pps_dec_valid(void)
155{
156 if (pps_valid > 0)
157 pps_valid--;
158 else {
159 time_status &= ~(STA_PPSSIGNAL | STA_PPSJITTER |
160 STA_PPSWANDER | STA_PPSERROR);
161 pps_clear();
162 }
163}
164
165static inline void pps_set_freq(s64 freq)
166{
167 pps_freq = freq;
168}
169
170static inline int is_error_status(int status)
171{
172 return (time_status & (STA_UNSYNC|STA_CLOCKERR))
173 /* PPS signal lost when either PPS time or
174 * PPS frequency synchronization requested
175 */
176 || ((time_status & (STA_PPSFREQ|STA_PPSTIME))
177 && !(time_status & STA_PPSSIGNAL))
178 /* PPS jitter exceeded when
179 * PPS time synchronization requested */
180 || ((time_status & (STA_PPSTIME|STA_PPSJITTER))
181 == (STA_PPSTIME|STA_PPSJITTER))
182 /* PPS wander exceeded or calibration error when
183 * PPS frequency synchronization requested
184 */
185 || ((time_status & STA_PPSFREQ)
186 && (time_status & (STA_PPSWANDER|STA_PPSERROR)));
187}
188
189static inline void pps_fill_timex(struct timex *txc)
190{
191 txc->ppsfreq = shift_right((pps_freq >> PPM_SCALE_INV_SHIFT) *
192 PPM_SCALE_INV, NTP_SCALE_SHIFT);
193 txc->jitter = pps_jitter;
194 if (!(time_status & STA_NANO))
195 txc->jitter /= NSEC_PER_USEC;
196 txc->shift = pps_shift;
197 txc->stabil = pps_stabil;
198 txc->jitcnt = pps_jitcnt;
199 txc->calcnt = pps_calcnt;
200 txc->errcnt = pps_errcnt;
201 txc->stbcnt = pps_stbcnt;
202}
203
204#else /* !CONFIG_NTP_PPS */
205
206static inline s64 ntp_offset_chunk(s64 offset)
207{
208 return shift_right(offset, SHIFT_PLL + time_constant);
209}
210
211static inline void pps_reset_freq_interval(void) {}
212static inline void pps_clear(void) {}
213static inline void pps_dec_valid(void) {}
214static inline void pps_set_freq(s64 freq) {}
215
216static inline int is_error_status(int status)
217{
218 return status & (STA_UNSYNC|STA_CLOCKERR);
219}
220
221static inline void pps_fill_timex(struct timex *txc)
222{
223 /* PPS is not implemented, so these are zero */
224 txc->ppsfreq = 0;
225 txc->jitter = 0;
226 txc->shift = 0;
227 txc->stabil = 0;
228 txc->jitcnt = 0;
229 txc->calcnt = 0;
230 txc->errcnt = 0;
231 txc->stbcnt = 0;
232}
233
234#endif /* CONFIG_NTP_PPS */
235
Ingo Molnar53bbfa92008-02-20 07:58:42 +0100236/*
237 * NTP methods:
238 */
john stultz4c7ee8d2006-09-30 23:28:22 -0700239
Ingo Molnar9ce616a2009-02-22 12:42:59 +0100240/*
241 * Update (tick_length, tick_length_base, tick_nsec), based
242 * on (tick_usec, ntp_tick_adj, time_freq):
243 */
Adrian Bunk70bc42f2006-09-30 23:28:29 -0700244static void ntp_update_frequency(void)
245{
Ingo Molnar9ce616a2009-02-22 12:42:59 +0100246 u64 second_length;
Ingo Molnarbc26c312009-02-22 12:17:36 +0100247 u64 new_base;
Adrian Bunk70bc42f2006-09-30 23:28:29 -0700248
Ingo Molnar9ce616a2009-02-22 12:42:59 +0100249 second_length = (u64)(tick_usec * NSEC_PER_USEC * USER_HZ)
250 << NTP_SCALE_SHIFT;
251
Ingo Molnar069569e2009-02-22 16:03:37 +0100252 second_length += ntp_tick_adj;
Ingo Molnar9ce616a2009-02-22 12:42:59 +0100253 second_length += time_freq;
254
Ingo Molnar9ce616a2009-02-22 12:42:59 +0100255 tick_nsec = div_u64(second_length, HZ) >> NTP_SCALE_SHIFT;
Ingo Molnarbc26c312009-02-22 12:17:36 +0100256 new_base = div_u64(second_length, NTP_INTERVAL_FREQ);
john stultzfdcedf72009-02-18 16:02:22 -0800257
258 /*
259 * Don't wait for the next second_overflow, apply
Ingo Molnarbc26c312009-02-22 12:17:36 +0100260 * the change to the tick length immediately:
john stultzfdcedf72009-02-18 16:02:22 -0800261 */
Ingo Molnarbc26c312009-02-22 12:17:36 +0100262 tick_length += new_base - tick_length_base;
263 tick_length_base = new_base;
Adrian Bunk70bc42f2006-09-30 23:28:29 -0700264}
265
Ingo Molnar478b7aa2009-02-22 13:22:23 +0100266static inline s64 ntp_update_offset_fll(s64 offset64, long secs)
Ingo Molnarf9398902009-02-22 12:57:49 +0100267{
268 time_status &= ~STA_MODE;
269
270 if (secs < MINSEC)
Ingo Molnar478b7aa2009-02-22 13:22:23 +0100271 return 0;
Ingo Molnarf9398902009-02-22 12:57:49 +0100272
273 if (!(time_status & STA_FLL) && (secs <= MAXSEC))
Ingo Molnar478b7aa2009-02-22 13:22:23 +0100274 return 0;
Ingo Molnarf9398902009-02-22 12:57:49 +0100275
Ingo Molnarf9398902009-02-22 12:57:49 +0100276 time_status |= STA_MODE;
277
Ingo Molnar478b7aa2009-02-22 13:22:23 +0100278 return div_s64(offset64 << (NTP_SCALE_SHIFT - SHIFT_FLL), secs);
Ingo Molnarf9398902009-02-22 12:57:49 +0100279}
280
Roman Zippelee9851b2008-05-01 04:34:32 -0700281static void ntp_update_offset(long offset)
282{
Roman Zippelee9851b2008-05-01 04:34:32 -0700283 s64 freq_adj;
Ingo Molnarf9398902009-02-22 12:57:49 +0100284 s64 offset64;
285 long secs;
Roman Zippelee9851b2008-05-01 04:34:32 -0700286
287 if (!(time_status & STA_PLL))
288 return;
289
Roman Zippeleea83d82008-05-01 04:34:33 -0700290 if (!(time_status & STA_NANO))
Roman Zippel9f14f662008-05-01 04:34:36 -0700291 offset *= NSEC_PER_USEC;
Roman Zippelee9851b2008-05-01 04:34:32 -0700292
293 /*
294 * Scale the phase adjustment and
295 * clamp to the operating range.
296 */
Roman Zippel9f14f662008-05-01 04:34:36 -0700297 offset = min(offset, MAXPHASE);
298 offset = max(offset, -MAXPHASE);
Roman Zippelee9851b2008-05-01 04:34:32 -0700299
300 /*
301 * Select how the frequency is to be controlled
302 * and in which mode (PLL or FLL).
303 */
John Stultz7e1b5842010-01-28 20:20:44 -0800304 secs = get_seconds() - time_reftime;
Ingo Molnar10dd31a2009-02-22 13:38:40 +0100305 if (unlikely(time_status & STA_FREQHOLD))
Ingo Molnarc7986ac2009-02-22 13:29:09 +0100306 secs = 0;
307
John Stultz7e1b5842010-01-28 20:20:44 -0800308 time_reftime = get_seconds();
Roman Zippelee9851b2008-05-01 04:34:32 -0700309
Ingo Molnarf9398902009-02-22 12:57:49 +0100310 offset64 = offset;
Miroslav Lichvar8af3c152010-09-07 16:43:46 +0200311 freq_adj = ntp_update_offset_fll(offset64, secs);
Roman Zippel9f14f662008-05-01 04:34:36 -0700312
Miroslav Lichvar8af3c152010-09-07 16:43:46 +0200313 /*
314 * Clamp update interval to reduce PLL gain with low
315 * sampling rate (e.g. intermittent network connection)
316 * to avoid instability.
317 */
318 if (unlikely(secs > 1 << (SHIFT_PLL + 1 + time_constant)))
319 secs = 1 << (SHIFT_PLL + 1 + time_constant);
320
321 freq_adj += (offset64 * secs) <<
322 (NTP_SCALE_SHIFT - 2 * (SHIFT_PLL + 2 + time_constant));
Ingo Molnarf9398902009-02-22 12:57:49 +0100323
324 freq_adj = min(freq_adj + time_freq, MAXFREQ_SCALED);
325
326 time_freq = max(freq_adj, -MAXFREQ_SCALED);
327
328 time_offset = div_s64(offset64 << NTP_SCALE_SHIFT, NTP_INTERVAL_FREQ);
Roman Zippelee9851b2008-05-01 04:34:32 -0700329}
330
Roman Zippelb0ee7552006-09-30 23:28:22 -0700331/**
332 * ntp_clear - Clears the NTP state variables
333 *
334 * Must be called while holding a write on the xtime_lock
335 */
336void ntp_clear(void)
337{
Ingo Molnar53bbfa92008-02-20 07:58:42 +0100338 time_adjust = 0; /* stop active adjtime() */
339 time_status |= STA_UNSYNC;
340 time_maxerror = NTP_PHASE_LIMIT;
341 time_esterror = NTP_PHASE_LIMIT;
Roman Zippelb0ee7552006-09-30 23:28:22 -0700342
343 ntp_update_frequency();
344
Ingo Molnar53bbfa92008-02-20 07:58:42 +0100345 tick_length = tick_length_base;
346 time_offset = 0;
Alexander Gordeev025b40a2011-01-12 17:00:56 -0800347
348 /* Clear PPS state variables */
349 pps_clear();
Roman Zippelb0ee7552006-09-30 23:28:22 -0700350}
351
john stultz4c7ee8d2006-09-30 23:28:22 -0700352/*
Roman Zippel7dffa3c2008-05-01 04:34:41 -0700353 * Leap second processing. If in leap-insert state at the end of the
354 * day, the system clock is set back one second; if in leap-delete
355 * state, the system clock is set ahead one second.
356 */
357static enum hrtimer_restart ntp_leap_second(struct hrtimer *timer)
358{
359 enum hrtimer_restart res = HRTIMER_NORESTART;
360
Peter Zijlstraca109492008-11-25 12:43:51 +0100361 write_seqlock(&xtime_lock);
Roman Zippel7dffa3c2008-05-01 04:34:41 -0700362
363 switch (time_state) {
364 case TIME_OK:
365 break;
366 case TIME_INS:
John Stultz31089c12009-08-14 15:47:18 +0200367 timekeeping_leap_insert(-1);
Roman Zippel7dffa3c2008-05-01 04:34:41 -0700368 time_state = TIME_OOP;
Ingo Molnar53bbfa92008-02-20 07:58:42 +0100369 printk(KERN_NOTICE
370 "Clock: inserting leap second 23:59:60 UTC\n");
Arjan van de Vencc584b22008-09-01 15:02:30 -0700371 hrtimer_add_expires_ns(&leap_timer, NSEC_PER_SEC);
Roman Zippel7dffa3c2008-05-01 04:34:41 -0700372 res = HRTIMER_RESTART;
373 break;
374 case TIME_DEL:
John Stultz31089c12009-08-14 15:47:18 +0200375 timekeeping_leap_insert(1);
Roman Zippel7dffa3c2008-05-01 04:34:41 -0700376 time_tai--;
Roman Zippel7dffa3c2008-05-01 04:34:41 -0700377 time_state = TIME_WAIT;
Ingo Molnar53bbfa92008-02-20 07:58:42 +0100378 printk(KERN_NOTICE
379 "Clock: deleting leap second 23:59:59 UTC\n");
Roman Zippel7dffa3c2008-05-01 04:34:41 -0700380 break;
381 case TIME_OOP:
382 time_tai++;
383 time_state = TIME_WAIT;
384 /* fall through */
385 case TIME_WAIT:
386 if (!(time_status & (STA_INS | STA_DEL)))
387 time_state = TIME_OK;
388 break;
389 }
Roman Zippel7dffa3c2008-05-01 04:34:41 -0700390
Peter Zijlstraca109492008-11-25 12:43:51 +0100391 write_sequnlock(&xtime_lock);
Roman Zippel7dffa3c2008-05-01 04:34:41 -0700392
393 return res;
394}
395
396/*
john stultz4c7ee8d2006-09-30 23:28:22 -0700397 * this routine handles the overflow of the microsecond field
398 *
399 * The tricky bits of code to handle the accurate clock support
400 * were provided by Dave Mills (Mills@UDEL.EDU) of NTP fame.
401 * They were originally developed for SUN and DEC kernels.
402 * All the kudos should go to Dave for this stuff.
403 */
404void second_overflow(void)
405{
Ingo Molnar39854fe2009-02-22 16:06:58 +0100406 s64 delta;
john stultz4c7ee8d2006-09-30 23:28:22 -0700407
408 /* Bump the maxerror field */
Roman Zippel074b3b82008-05-01 04:34:34 -0700409 time_maxerror += MAXFREQ / NSEC_PER_USEC;
john stultz4c7ee8d2006-09-30 23:28:22 -0700410 if (time_maxerror > NTP_PHASE_LIMIT) {
411 time_maxerror = NTP_PHASE_LIMIT;
412 time_status |= STA_UNSYNC;
413 }
414
Alexander Gordeev025b40a2011-01-12 17:00:56 -0800415 /* Compute the phase adjustment for the next second */
Ingo Molnar39854fe2009-02-22 16:06:58 +0100416 tick_length = tick_length_base;
417
Alexander Gordeev025b40a2011-01-12 17:00:56 -0800418 delta = ntp_offset_chunk(time_offset);
Ingo Molnar39854fe2009-02-22 16:06:58 +0100419 time_offset -= delta;
420 tick_length += delta;
john stultz4c7ee8d2006-09-30 23:28:22 -0700421
Alexander Gordeev025b40a2011-01-12 17:00:56 -0800422 /* Check PPS signal */
423 pps_dec_valid();
424
Ingo Molnar3c972c22009-02-22 12:06:57 +0100425 if (!time_adjust)
426 return;
427
428 if (time_adjust > MAX_TICKADJ) {
429 time_adjust -= MAX_TICKADJ;
430 tick_length += MAX_TICKADJ_SCALED;
431 return;
john stultz4c7ee8d2006-09-30 23:28:22 -0700432 }
Ingo Molnar3c972c22009-02-22 12:06:57 +0100433
434 if (time_adjust < -MAX_TICKADJ) {
435 time_adjust += MAX_TICKADJ;
436 tick_length -= MAX_TICKADJ_SCALED;
437 return;
438 }
439
440 tick_length += (s64)(time_adjust * NSEC_PER_USEC / NTP_INTERVAL_FREQ)
441 << NTP_SCALE_SHIFT;
442 time_adjust = 0;
john stultz4c7ee8d2006-09-30 23:28:22 -0700443}
444
Thomas Gleixner82644452007-07-21 04:37:37 -0700445#ifdef CONFIG_GENERIC_CMOS_UPDATE
john stultz4c7ee8d2006-09-30 23:28:22 -0700446
Thomas Gleixner82644452007-07-21 04:37:37 -0700447/* Disable the cmos update - used by virtualization and embedded */
448int no_sync_cmos_clock __read_mostly;
449
Maciej W. Rozyckieb3f9382008-09-22 14:42:40 -0700450static void sync_cmos_clock(struct work_struct *work);
Thomas Gleixner82644452007-07-21 04:37:37 -0700451
Maciej W. Rozyckieb3f9382008-09-22 14:42:40 -0700452static DECLARE_DELAYED_WORK(sync_cmos_work, sync_cmos_clock);
Thomas Gleixner82644452007-07-21 04:37:37 -0700453
Maciej W. Rozyckieb3f9382008-09-22 14:42:40 -0700454static void sync_cmos_clock(struct work_struct *work)
john stultz4c7ee8d2006-09-30 23:28:22 -0700455{
Thomas Gleixner82644452007-07-21 04:37:37 -0700456 struct timespec now, next;
457 int fail = 1;
458
459 /*
460 * If we have an externally synchronized Linux clock, then update
461 * CMOS clock accordingly every ~11 minutes. Set_rtc_mmss() has to be
462 * called as close as possible to 500 ms before the new second starts.
463 * This code is run on a timer. If the clock is set, that timer
464 * may not expire at the correct time. Thus, we adjust...
465 */
Ingo Molnar53bbfa92008-02-20 07:58:42 +0100466 if (!ntp_synced()) {
Thomas Gleixner82644452007-07-21 04:37:37 -0700467 /*
468 * Not synced, exit, do not restart a timer (if one is
469 * running, let it run out).
470 */
471 return;
Ingo Molnar53bbfa92008-02-20 07:58:42 +0100472 }
Thomas Gleixner82644452007-07-21 04:37:37 -0700473
474 getnstimeofday(&now);
David P. Reedfa6a1a52007-11-14 17:49:21 -0500475 if (abs(now.tv_nsec - (NSEC_PER_SEC / 2)) <= tick_nsec / 2)
Thomas Gleixner82644452007-07-21 04:37:37 -0700476 fail = update_persistent_clock(now);
477
Maciej W. Rozycki4ff4b9e2008-09-05 14:05:31 -0700478 next.tv_nsec = (NSEC_PER_SEC / 2) - now.tv_nsec - (TICK_NSEC / 2);
Thomas Gleixner82644452007-07-21 04:37:37 -0700479 if (next.tv_nsec <= 0)
480 next.tv_nsec += NSEC_PER_SEC;
481
482 if (!fail)
483 next.tv_sec = 659;
484 else
485 next.tv_sec = 0;
486
487 if (next.tv_nsec >= NSEC_PER_SEC) {
488 next.tv_sec++;
489 next.tv_nsec -= NSEC_PER_SEC;
490 }
Maciej W. Rozyckieb3f9382008-09-22 14:42:40 -0700491 schedule_delayed_work(&sync_cmos_work, timespec_to_jiffies(&next));
john stultz4c7ee8d2006-09-30 23:28:22 -0700492}
493
Thomas Gleixner82644452007-07-21 04:37:37 -0700494static void notify_cmos_timer(void)
495{
Tony Breeds298a5df2007-09-11 15:24:03 -0700496 if (!no_sync_cmos_clock)
Maciej W. Rozyckieb3f9382008-09-22 14:42:40 -0700497 schedule_delayed_work(&sync_cmos_work, 0);
Thomas Gleixner82644452007-07-21 04:37:37 -0700498}
499
500#else
501static inline void notify_cmos_timer(void) { }
502#endif
503
Ingo Molnare9629162009-02-22 15:35:18 +0100504/*
505 * Start the leap seconds timer:
506 */
507static inline void ntp_start_leap_timer(struct timespec *ts)
508{
509 long now = ts->tv_sec;
510
511 if (time_status & STA_INS) {
512 time_state = TIME_INS;
513 now += 86400 - now % 86400;
514 hrtimer_start(&leap_timer, ktime_set(now, 0), HRTIMER_MODE_ABS);
515
516 return;
517 }
518
519 if (time_status & STA_DEL) {
520 time_state = TIME_DEL;
521 now += 86400 - (now + 1) % 86400;
522 hrtimer_start(&leap_timer, ktime_set(now, 0), HRTIMER_MODE_ABS);
523 }
524}
Ingo Molnar80f225712009-02-22 15:15:32 +0100525
526/*
527 * Propagate a new txc->status value into the NTP state:
528 */
529static inline void process_adj_status(struct timex *txc, struct timespec *ts)
530{
Ingo Molnar80f225712009-02-22 15:15:32 +0100531 if ((time_status & STA_PLL) && !(txc->status & STA_PLL)) {
532 time_state = TIME_OK;
533 time_status = STA_UNSYNC;
Alexander Gordeev025b40a2011-01-12 17:00:56 -0800534 /* restart PPS frequency calibration */
535 pps_reset_freq_interval();
Ingo Molnar80f225712009-02-22 15:15:32 +0100536 }
Ingo Molnar80f225712009-02-22 15:15:32 +0100537
538 /*
539 * If we turn on PLL adjustments then reset the
540 * reference time to current time.
541 */
542 if (!(time_status & STA_PLL) && (txc->status & STA_PLL))
John Stultz7e1b5842010-01-28 20:20:44 -0800543 time_reftime = get_seconds();
Ingo Molnar80f225712009-02-22 15:15:32 +0100544
John Stultza2a5ac82009-02-26 09:46:14 -0800545 /* only set allowed bits */
546 time_status &= STA_RONLY;
Ingo Molnar80f225712009-02-22 15:15:32 +0100547 time_status |= txc->status & ~STA_RONLY;
548
549 switch (time_state) {
550 case TIME_OK:
Ingo Molnare9629162009-02-22 15:35:18 +0100551 ntp_start_leap_timer(ts);
Ingo Molnar80f225712009-02-22 15:15:32 +0100552 break;
553 case TIME_INS:
554 case TIME_DEL:
555 time_state = TIME_OK;
Ingo Molnare9629162009-02-22 15:35:18 +0100556 ntp_start_leap_timer(ts);
Ingo Molnar80f225712009-02-22 15:15:32 +0100557 case TIME_WAIT:
558 if (!(time_status & (STA_INS | STA_DEL)))
559 time_state = TIME_OK;
560 break;
561 case TIME_OOP:
562 hrtimer_restart(&leap_timer);
563 break;
564 }
565}
566/*
567 * Called with the xtime lock held, so we can access and modify
568 * all the global NTP state:
569 */
570static inline void process_adjtimex_modes(struct timex *txc, struct timespec *ts)
571{
572 if (txc->modes & ADJ_STATUS)
573 process_adj_status(txc, ts);
574
575 if (txc->modes & ADJ_NANO)
576 time_status |= STA_NANO;
Ingo Molnare9629162009-02-22 15:35:18 +0100577
Ingo Molnar80f225712009-02-22 15:15:32 +0100578 if (txc->modes & ADJ_MICRO)
579 time_status &= ~STA_NANO;
580
581 if (txc->modes & ADJ_FREQUENCY) {
Ingo Molnar2b9d1492009-02-22 15:48:43 +0100582 time_freq = txc->freq * PPM_SCALE;
Ingo Molnar80f225712009-02-22 15:15:32 +0100583 time_freq = min(time_freq, MAXFREQ_SCALED);
584 time_freq = max(time_freq, -MAXFREQ_SCALED);
Alexander Gordeev025b40a2011-01-12 17:00:56 -0800585 /* update pps_freq */
586 pps_set_freq(time_freq);
Ingo Molnar80f225712009-02-22 15:15:32 +0100587 }
588
589 if (txc->modes & ADJ_MAXERROR)
590 time_maxerror = txc->maxerror;
Ingo Molnare9629162009-02-22 15:35:18 +0100591
Ingo Molnar80f225712009-02-22 15:15:32 +0100592 if (txc->modes & ADJ_ESTERROR)
593 time_esterror = txc->esterror;
594
595 if (txc->modes & ADJ_TIMECONST) {
596 time_constant = txc->constant;
597 if (!(time_status & STA_NANO))
598 time_constant += 4;
599 time_constant = min(time_constant, (long)MAXTC);
600 time_constant = max(time_constant, 0l);
601 }
602
603 if (txc->modes & ADJ_TAI && txc->constant > 0)
604 time_tai = txc->constant;
605
606 if (txc->modes & ADJ_OFFSET)
607 ntp_update_offset(txc->offset);
Ingo Molnare9629162009-02-22 15:35:18 +0100608
Ingo Molnar80f225712009-02-22 15:15:32 +0100609 if (txc->modes & ADJ_TICK)
610 tick_usec = txc->tick;
611
612 if (txc->modes & (ADJ_TICK|ADJ_FREQUENCY|ADJ_OFFSET))
613 ntp_update_frequency();
614}
615
Ingo Molnar53bbfa92008-02-20 07:58:42 +0100616/*
617 * adjtimex mainly allows reading (and writing, if superuser) of
john stultz4c7ee8d2006-09-30 23:28:22 -0700618 * kernel time-keeping variables. used by xntpd.
619 */
620int do_adjtimex(struct timex *txc)
621{
Roman Zippeleea83d82008-05-01 04:34:33 -0700622 struct timespec ts;
john stultz4c7ee8d2006-09-30 23:28:22 -0700623 int result;
624
Roman Zippel916c7a82008-08-20 16:46:08 -0700625 /* Validate the data before disabling interrupts */
626 if (txc->modes & ADJ_ADJTIME) {
Roman Zippeleea83d82008-05-01 04:34:33 -0700627 /* singleshot must not be used with any other mode bits */
Roman Zippel916c7a82008-08-20 16:46:08 -0700628 if (!(txc->modes & ADJ_OFFSET_SINGLESHOT))
john stultz4c7ee8d2006-09-30 23:28:22 -0700629 return -EINVAL;
Roman Zippel916c7a82008-08-20 16:46:08 -0700630 if (!(txc->modes & ADJ_OFFSET_READONLY) &&
631 !capable(CAP_SYS_TIME))
632 return -EPERM;
633 } else {
634 /* In order to modify anything, you gotta be super-user! */
635 if (txc->modes && !capable(CAP_SYS_TIME))
636 return -EPERM;
637
Ingo Molnar53bbfa92008-02-20 07:58:42 +0100638 /*
639 * if the quartz is off by more than 10% then
640 * something is VERY wrong!
641 */
Roman Zippel916c7a82008-08-20 16:46:08 -0700642 if (txc->modes & ADJ_TICK &&
643 (txc->tick < 900000/USER_HZ ||
644 txc->tick > 1100000/USER_HZ))
Ingo Molnare9629162009-02-22 15:35:18 +0100645 return -EINVAL;
Roman Zippel916c7a82008-08-20 16:46:08 -0700646
647 if (txc->modes & ADJ_STATUS && time_state != TIME_OK)
648 hrtimer_cancel(&leap_timer);
John Stultz52bfb362007-11-26 20:42:19 +0100649 }
john stultz4c7ee8d2006-09-30 23:28:22 -0700650
Roman Zippel7dffa3c2008-05-01 04:34:41 -0700651 getnstimeofday(&ts);
652
john stultz4c7ee8d2006-09-30 23:28:22 -0700653 write_seqlock_irq(&xtime_lock);
john stultz4c7ee8d2006-09-30 23:28:22 -0700654
Roman Zippel916c7a82008-08-20 16:46:08 -0700655 if (txc->modes & ADJ_ADJTIME) {
656 long save_adjust = time_adjust;
657
658 if (!(txc->modes & ADJ_OFFSET_READONLY)) {
659 /* adjtime() is independent from ntp_adjtime() */
660 time_adjust = txc->offset;
661 ntp_update_frequency();
662 }
663 txc->offset = save_adjust;
Ingo Molnare9629162009-02-22 15:35:18 +0100664 } else {
665
666 /* If there are input parameters, then process them: */
667 if (txc->modes)
668 process_adjtimex_modes(txc, &ts);
669
670 txc->offset = shift_right(time_offset * NTP_INTERVAL_FREQ,
671 NTP_SCALE_SHIFT);
672 if (!(time_status & STA_NANO))
673 txc->offset /= NSEC_PER_USEC;
Roman Zippel916c7a82008-08-20 16:46:08 -0700674 }
Roman Zippel916c7a82008-08-20 16:46:08 -0700675
Roman Zippeleea83d82008-05-01 04:34:33 -0700676 result = time_state; /* mostly `TIME_OK' */
Alexander Gordeev025b40a2011-01-12 17:00:56 -0800677 /* check for errors */
678 if (is_error_status(time_status))
john stultz4c7ee8d2006-09-30 23:28:22 -0700679 result = TIME_ERROR;
680
Roman Zippeld40e9442008-09-22 14:42:44 -0700681 txc->freq = shift_right((time_freq >> PPM_SCALE_INV_SHIFT) *
Ingo Molnar2b9d1492009-02-22 15:48:43 +0100682 PPM_SCALE_INV, NTP_SCALE_SHIFT);
john stultz4c7ee8d2006-09-30 23:28:22 -0700683 txc->maxerror = time_maxerror;
684 txc->esterror = time_esterror;
685 txc->status = time_status;
686 txc->constant = time_constant;
Adrian Bunk70bc42f2006-09-30 23:28:29 -0700687 txc->precision = 1;
Roman Zippel074b3b82008-05-01 04:34:34 -0700688 txc->tolerance = MAXFREQ_SCALED / PPM_SCALE;
john stultz4c7ee8d2006-09-30 23:28:22 -0700689 txc->tick = tick_usec;
Roman Zippel153b5d02008-05-01 04:34:37 -0700690 txc->tai = time_tai;
john stultz4c7ee8d2006-09-30 23:28:22 -0700691
Alexander Gordeev025b40a2011-01-12 17:00:56 -0800692 /* fill PPS status fields */
693 pps_fill_timex(txc);
Ingo Molnare9629162009-02-22 15:35:18 +0100694
john stultz4c7ee8d2006-09-30 23:28:22 -0700695 write_sequnlock_irq(&xtime_lock);
Roman Zippelee9851b2008-05-01 04:34:32 -0700696
Roman Zippeleea83d82008-05-01 04:34:33 -0700697 txc->time.tv_sec = ts.tv_sec;
698 txc->time.tv_usec = ts.tv_nsec;
699 if (!(time_status & STA_NANO))
700 txc->time.tv_usec /= NSEC_PER_USEC;
Roman Zippelee9851b2008-05-01 04:34:32 -0700701
Thomas Gleixner82644452007-07-21 04:37:37 -0700702 notify_cmos_timer();
Roman Zippelee9851b2008-05-01 04:34:32 -0700703
704 return result;
john stultz4c7ee8d2006-09-30 23:28:22 -0700705}
Roman Zippel10a398d2008-03-04 15:14:26 -0800706
Alexander Gordeev025b40a2011-01-12 17:00:56 -0800707#ifdef CONFIG_NTP_PPS
708
709/* actually struct pps_normtime is good old struct timespec, but it is
710 * semantically different (and it is the reason why it was invented):
711 * pps_normtime.nsec has a range of ( -NSEC_PER_SEC / 2, NSEC_PER_SEC / 2 ]
712 * while timespec.tv_nsec has a range of [0, NSEC_PER_SEC) */
713struct pps_normtime {
714 __kernel_time_t sec; /* seconds */
715 long nsec; /* nanoseconds */
716};
717
718/* normalize the timestamp so that nsec is in the
719 ( -NSEC_PER_SEC / 2, NSEC_PER_SEC / 2 ] interval */
720static inline struct pps_normtime pps_normalize_ts(struct timespec ts)
721{
722 struct pps_normtime norm = {
723 .sec = ts.tv_sec,
724 .nsec = ts.tv_nsec
725 };
726
727 if (norm.nsec > (NSEC_PER_SEC >> 1)) {
728 norm.nsec -= NSEC_PER_SEC;
729 norm.sec++;
730 }
731
732 return norm;
733}
734
735/* get current phase correction and jitter */
736static inline long pps_phase_filter_get(long *jitter)
737{
738 *jitter = pps_tf[0] - pps_tf[1];
739 if (*jitter < 0)
740 *jitter = -*jitter;
741
742 /* TODO: test various filters */
743 return pps_tf[0];
744}
745
746/* add the sample to the phase filter */
747static inline void pps_phase_filter_add(long err)
748{
749 pps_tf[2] = pps_tf[1];
750 pps_tf[1] = pps_tf[0];
751 pps_tf[0] = err;
752}
753
754/* decrease frequency calibration interval length.
755 * It is halved after four consecutive unstable intervals.
756 */
757static inline void pps_dec_freq_interval(void)
758{
759 if (--pps_intcnt <= -PPS_INTCOUNT) {
760 pps_intcnt = -PPS_INTCOUNT;
761 if (pps_shift > PPS_INTMIN) {
762 pps_shift--;
763 pps_intcnt = 0;
764 }
765 }
766}
767
768/* increase frequency calibration interval length.
769 * It is doubled after four consecutive stable intervals.
770 */
771static inline void pps_inc_freq_interval(void)
772{
773 if (++pps_intcnt >= PPS_INTCOUNT) {
774 pps_intcnt = PPS_INTCOUNT;
775 if (pps_shift < PPS_INTMAX) {
776 pps_shift++;
777 pps_intcnt = 0;
778 }
779 }
780}
781
782/* update clock frequency based on MONOTONIC_RAW clock PPS signal
783 * timestamps
784 *
785 * At the end of the calibration interval the difference between the
786 * first and last MONOTONIC_RAW clock timestamps divided by the length
787 * of the interval becomes the frequency update. If the interval was
788 * too long, the data are discarded.
789 * Returns the difference between old and new frequency values.
790 */
791static long hardpps_update_freq(struct pps_normtime freq_norm)
792{
793 long delta, delta_mod;
794 s64 ftemp;
795
796 /* check if the frequency interval was too long */
797 if (freq_norm.sec > (2 << pps_shift)) {
798 time_status |= STA_PPSERROR;
799 pps_errcnt++;
800 pps_dec_freq_interval();
801 pr_err("hardpps: PPSERROR: interval too long - %ld s\n",
802 freq_norm.sec);
803 return 0;
804 }
805
806 /* here the raw frequency offset and wander (stability) is
807 * calculated. If the wander is less than the wander threshold
808 * the interval is increased; otherwise it is decreased.
809 */
810 ftemp = div_s64(((s64)(-freq_norm.nsec)) << NTP_SCALE_SHIFT,
811 freq_norm.sec);
812 delta = shift_right(ftemp - pps_freq, NTP_SCALE_SHIFT);
813 pps_freq = ftemp;
814 if (delta > PPS_MAXWANDER || delta < -PPS_MAXWANDER) {
815 pr_warning("hardpps: PPSWANDER: change=%ld\n", delta);
816 time_status |= STA_PPSWANDER;
817 pps_stbcnt++;
818 pps_dec_freq_interval();
819 } else { /* good sample */
820 pps_inc_freq_interval();
821 }
822
823 /* the stability metric is calculated as the average of recent
824 * frequency changes, but is used only for performance
825 * monitoring
826 */
827 delta_mod = delta;
828 if (delta_mod < 0)
829 delta_mod = -delta_mod;
830 pps_stabil += (div_s64(((s64)delta_mod) <<
831 (NTP_SCALE_SHIFT - SHIFT_USEC),
832 NSEC_PER_USEC) - pps_stabil) >> PPS_INTMIN;
833
834 /* if enabled, the system clock frequency is updated */
835 if ((time_status & STA_PPSFREQ) != 0 &&
836 (time_status & STA_FREQHOLD) == 0) {
837 time_freq = pps_freq;
838 ntp_update_frequency();
839 }
840
841 return delta;
842}
843
844/* correct REALTIME clock phase error against PPS signal */
845static void hardpps_update_phase(long error)
846{
847 long correction = -error;
848 long jitter;
849
850 /* add the sample to the median filter */
851 pps_phase_filter_add(correction);
852 correction = pps_phase_filter_get(&jitter);
853
854 /* Nominal jitter is due to PPS signal noise. If it exceeds the
855 * threshold, the sample is discarded; otherwise, if so enabled,
856 * the time offset is updated.
857 */
858 if (jitter > (pps_jitter << PPS_POPCORN)) {
859 pr_warning("hardpps: PPSJITTER: jitter=%ld, limit=%ld\n",
860 jitter, (pps_jitter << PPS_POPCORN));
861 time_status |= STA_PPSJITTER;
862 pps_jitcnt++;
863 } else if (time_status & STA_PPSTIME) {
864 /* correct the time using the phase offset */
865 time_offset = div_s64(((s64)correction) << NTP_SCALE_SHIFT,
866 NTP_INTERVAL_FREQ);
867 /* cancel running adjtime() */
868 time_adjust = 0;
869 }
870 /* update jitter */
871 pps_jitter += (jitter - pps_jitter) >> PPS_INTMIN;
872}
873
874/*
875 * hardpps() - discipline CPU clock oscillator to external PPS signal
876 *
877 * This routine is called at each PPS signal arrival in order to
878 * discipline the CPU clock oscillator to the PPS signal. It takes two
879 * parameters: REALTIME and MONOTONIC_RAW clock timestamps. The former
880 * is used to correct clock phase error and the latter is used to
881 * correct the frequency.
882 *
883 * This code is based on David Mills's reference nanokernel
884 * implementation. It was mostly rewritten but keeps the same idea.
885 */
886void hardpps(const struct timespec *phase_ts, const struct timespec *raw_ts)
887{
888 struct pps_normtime pts_norm, freq_norm;
889 unsigned long flags;
890
891 pts_norm = pps_normalize_ts(*phase_ts);
892
893 write_seqlock_irqsave(&xtime_lock, flags);
894
895 /* clear the error bits, they will be set again if needed */
896 time_status &= ~(STA_PPSJITTER | STA_PPSWANDER | STA_PPSERROR);
897
898 /* indicate signal presence */
899 time_status |= STA_PPSSIGNAL;
900 pps_valid = PPS_VALID;
901
902 /* when called for the first time,
903 * just start the frequency interval */
904 if (unlikely(pps_fbase.tv_sec == 0)) {
905 pps_fbase = *raw_ts;
906 write_sequnlock_irqrestore(&xtime_lock, flags);
907 return;
908 }
909
910 /* ok, now we have a base for frequency calculation */
911 freq_norm = pps_normalize_ts(timespec_sub(*raw_ts, pps_fbase));
912
913 /* check that the signal is in the range
914 * [1s - MAXFREQ us, 1s + MAXFREQ us], otherwise reject it */
915 if ((freq_norm.sec == 0) ||
916 (freq_norm.nsec > MAXFREQ * freq_norm.sec) ||
917 (freq_norm.nsec < -MAXFREQ * freq_norm.sec)) {
918 time_status |= STA_PPSJITTER;
919 /* restart the frequency calibration interval */
920 pps_fbase = *raw_ts;
921 write_sequnlock_irqrestore(&xtime_lock, flags);
922 pr_err("hardpps: PPSJITTER: bad pulse\n");
923 return;
924 }
925
926 /* signal is ok */
927
928 /* check if the current frequency interval is finished */
929 if (freq_norm.sec >= (1 << pps_shift)) {
930 pps_calcnt++;
931 /* restart the frequency calibration interval */
932 pps_fbase = *raw_ts;
933 hardpps_update_freq(freq_norm);
934 }
935
936 hardpps_update_phase(pts_norm.nsec);
937
938 write_sequnlock_irqrestore(&xtime_lock, flags);
939}
940EXPORT_SYMBOL(hardpps);
941
942#endif /* CONFIG_NTP_PPS */
943
Roman Zippel10a398d2008-03-04 15:14:26 -0800944static int __init ntp_tick_adj_setup(char *str)
945{
946 ntp_tick_adj = simple_strtol(str, NULL, 0);
Ingo Molnar069569e2009-02-22 16:03:37 +0100947 ntp_tick_adj <<= NTP_SCALE_SHIFT;
948
Roman Zippel10a398d2008-03-04 15:14:26 -0800949 return 1;
950}
951
952__setup("ntp_tick_adj=", ntp_tick_adj_setup);
Roman Zippel7dffa3c2008-05-01 04:34:41 -0700953
954void __init ntp_init(void)
955{
956 ntp_clear();
957 hrtimer_init(&leap_timer, CLOCK_REALTIME, HRTIMER_MODE_ABS);
958 leap_timer.function = ntp_leap_second;
959}