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8524070b
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1/*
2 * linux/kernel/time/timekeeping.c
3 *
4 * Kernel timekeeping code and accessor functions
5 *
6 * This code was moved from linux/kernel/timer.c.
7 * Please see that file for copyright and history logs.
8 *
9 */
10
d7b4202e 11#include <linux/timekeeper_internal.h>
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12#include <linux/module.h>
13#include <linux/interrupt.h>
14#include <linux/percpu.h>
15#include <linux/init.h>
16#include <linux/mm.h>
d43c36dc 17#include <linux/sched.h>
e1a85b2c 18#include <linux/syscore_ops.h>
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19#include <linux/clocksource.h>
20#include <linux/jiffies.h>
21#include <linux/time.h>
22#include <linux/tick.h>
75c5158f 23#include <linux/stop_machine.h>
e0b306fe 24#include <linux/pvclock_gtod.h>
52f5684c 25#include <linux/compiler.h>
8524070b 26
eb93e4d9 27#include "tick-internal.h"
aa6f9c59 28#include "ntp_internal.h"
5c83545f 29#include "timekeeping_internal.h"
155ec602 30
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31#define TK_CLEAR_NTP (1 << 0)
32#define TK_MIRROR (1 << 1)
780427f0 33#define TK_CLOCK_WAS_SET (1 << 2)
04397fe9 34
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35/*
36 * The most important data for readout fits into a single 64 byte
37 * cache line.
38 */
39static struct {
40 seqcount_t seq;
41 struct timekeeper timekeeper;
42} tk_core ____cacheline_aligned;
43
9a7a71b1 44static DEFINE_RAW_SPINLOCK(timekeeper_lock);
48cdc135 45static struct timekeeper shadow_timekeeper;
155ec602 46
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47/**
48 * struct tk_fast - NMI safe timekeeper
49 * @seq: Sequence counter for protecting updates. The lowest bit
50 * is the index for the tk_read_base array
51 * @base: tk_read_base array. Access is indexed by the lowest bit of
52 * @seq.
53 *
54 * See @update_fast_timekeeper() below.
55 */
56struct tk_fast {
57 seqcount_t seq;
58 struct tk_read_base base[2];
59};
60
61static struct tk_fast tk_fast_mono ____cacheline_aligned;
f09cb9a1 62static struct tk_fast tk_fast_raw ____cacheline_aligned;
4396e058 63
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64/* flag for if timekeeping is suspended */
65int __read_mostly timekeeping_suspended;
66
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67static inline void tk_normalize_xtime(struct timekeeper *tk)
68{
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69 while (tk->tkr_mono.xtime_nsec >= ((u64)NSEC_PER_SEC << tk->tkr_mono.shift)) {
70 tk->tkr_mono.xtime_nsec -= (u64)NSEC_PER_SEC << tk->tkr_mono.shift;
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71 tk->xtime_sec++;
72 }
73}
74
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75static inline struct timespec64 tk_xtime(struct timekeeper *tk)
76{
77 struct timespec64 ts;
78
79 ts.tv_sec = tk->xtime_sec;
876e7881 80 ts.tv_nsec = (long)(tk->tkr_mono.xtime_nsec >> tk->tkr_mono.shift);
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81 return ts;
82}
83
7d489d15 84static void tk_set_xtime(struct timekeeper *tk, const struct timespec64 *ts)
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85{
86 tk->xtime_sec = ts->tv_sec;
876e7881 87 tk->tkr_mono.xtime_nsec = (u64)ts->tv_nsec << tk->tkr_mono.shift;
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88}
89
7d489d15 90static void tk_xtime_add(struct timekeeper *tk, const struct timespec64 *ts)
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91{
92 tk->xtime_sec += ts->tv_sec;
876e7881 93 tk->tkr_mono.xtime_nsec += (u64)ts->tv_nsec << tk->tkr_mono.shift;
784ffcbb 94 tk_normalize_xtime(tk);
1e75fa8b 95}
8fcce546 96
7d489d15 97static void tk_set_wall_to_mono(struct timekeeper *tk, struct timespec64 wtm)
6d0ef903 98{
7d489d15 99 struct timespec64 tmp;
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100
101 /*
102 * Verify consistency of: offset_real = -wall_to_monotonic
103 * before modifying anything
104 */
7d489d15 105 set_normalized_timespec64(&tmp, -tk->wall_to_monotonic.tv_sec,
6d0ef903 106 -tk->wall_to_monotonic.tv_nsec);
7d489d15 107 WARN_ON_ONCE(tk->offs_real.tv64 != timespec64_to_ktime(tmp).tv64);
6d0ef903 108 tk->wall_to_monotonic = wtm;
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109 set_normalized_timespec64(&tmp, -wtm.tv_sec, -wtm.tv_nsec);
110 tk->offs_real = timespec64_to_ktime(tmp);
04005f60 111 tk->offs_tai = ktime_add(tk->offs_real, ktime_set(tk->tai_offset, 0));
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112}
113
47da70d3 114static inline void tk_update_sleep_time(struct timekeeper *tk, ktime_t delta)
6d0ef903 115{
47da70d3 116 tk->offs_boot = ktime_add(tk->offs_boot, delta);
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117}
118
3c17ad19 119#ifdef CONFIG_DEBUG_TIMEKEEPING
4ca22c26 120#define WARNING_FREQ (HZ*300) /* 5 minute rate-limiting */
4ca22c26 121
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122static void timekeeping_check_update(struct timekeeper *tk, cycle_t offset)
123{
124
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125 cycle_t max_cycles = tk->tkr_mono.clock->max_cycles;
126 const char *name = tk->tkr_mono.clock->name;
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127
128 if (offset > max_cycles) {
a558cd02 129 printk_deferred("WARNING: timekeeping: Cycle offset (%lld) is larger than allowed by the '%s' clock's max_cycles value (%lld): time overflow danger\n",
3c17ad19 130 offset, name, max_cycles);
a558cd02 131 printk_deferred(" timekeeping: Your kernel is sick, but tries to cope by capping time updates\n");
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132 } else {
133 if (offset > (max_cycles >> 1)) {
134 printk_deferred("INFO: timekeeping: Cycle offset (%lld) is larger than the the '%s' clock's 50%% safety margin (%lld)\n",
135 offset, name, max_cycles >> 1);
136 printk_deferred(" timekeeping: Your kernel is still fine, but is feeling a bit nervous\n");
137 }
138 }
4ca22c26 139
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140 if (tk->underflow_seen) {
141 if (jiffies - tk->last_warning > WARNING_FREQ) {
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142 printk_deferred("WARNING: Underflow in clocksource '%s' observed, time update ignored.\n", name);
143 printk_deferred(" Please report this, consider using a different clocksource, if possible.\n");
144 printk_deferred(" Your kernel is probably still fine.\n");
57d05a93 145 tk->last_warning = jiffies;
4ca22c26 146 }
57d05a93 147 tk->underflow_seen = 0;
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148 }
149
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150 if (tk->overflow_seen) {
151 if (jiffies - tk->last_warning > WARNING_FREQ) {
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152 printk_deferred("WARNING: Overflow in clocksource '%s' observed, time update capped.\n", name);
153 printk_deferred(" Please report this, consider using a different clocksource, if possible.\n");
154 printk_deferred(" Your kernel is probably still fine.\n");
57d05a93 155 tk->last_warning = jiffies;
4ca22c26 156 }
57d05a93 157 tk->overflow_seen = 0;
4ca22c26 158 }
3c17ad19 159}
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160
161static inline cycle_t timekeeping_get_delta(struct tk_read_base *tkr)
162{
57d05a93 163 struct timekeeper *tk = &tk_core.timekeeper;
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164 cycle_t now, last, mask, max, delta;
165 unsigned int seq;
a558cd02 166
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167 /*
168 * Since we're called holding a seqlock, the data may shift
169 * under us while we're doing the calculation. This can cause
170 * false positives, since we'd note a problem but throw the
171 * results away. So nest another seqlock here to atomically
172 * grab the points we are checking with.
173 */
174 do {
175 seq = read_seqcount_begin(&tk_core.seq);
176 now = tkr->read(tkr->clock);
177 last = tkr->cycle_last;
178 mask = tkr->mask;
179 max = tkr->clock->max_cycles;
180 } while (read_seqcount_retry(&tk_core.seq, seq));
a558cd02 181
4ca22c26 182 delta = clocksource_delta(now, last, mask);
a558cd02 183
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184 /*
185 * Try to catch underflows by checking if we are seeing small
186 * mask-relative negative values.
187 */
4ca22c26 188 if (unlikely((~delta & mask) < (mask >> 3))) {
57d05a93 189 tk->underflow_seen = 1;
057b87e3 190 delta = 0;
4ca22c26 191 }
057b87e3 192
a558cd02 193 /* Cap delta value to the max_cycles values to avoid mult overflows */
4ca22c26 194 if (unlikely(delta > max)) {
57d05a93 195 tk->overflow_seen = 1;
a558cd02 196 delta = tkr->clock->max_cycles;
4ca22c26 197 }
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198
199 return delta;
200}
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201#else
202static inline void timekeeping_check_update(struct timekeeper *tk, cycle_t offset)
203{
204}
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205static inline cycle_t timekeeping_get_delta(struct tk_read_base *tkr)
206{
207 cycle_t cycle_now, delta;
208
209 /* read clocksource */
210 cycle_now = tkr->read(tkr->clock);
211
212 /* calculate the delta since the last update_wall_time */
213 delta = clocksource_delta(cycle_now, tkr->cycle_last, tkr->mask);
214
215 return delta;
216}
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217#endif
218
155ec602 219/**
d26e4fe0 220 * tk_setup_internals - Set up internals to use clocksource clock.
155ec602 221 *
d26e4fe0 222 * @tk: The target timekeeper to setup.
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223 * @clock: Pointer to clocksource.
224 *
225 * Calculates a fixed cycle/nsec interval for a given clocksource/adjustment
226 * pair and interval request.
227 *
228 * Unless you're the timekeeping code, you should not be using this!
229 */
f726a697 230static void tk_setup_internals(struct timekeeper *tk, struct clocksource *clock)
155ec602
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231{
232 cycle_t interval;
a386b5af 233 u64 tmp, ntpinterval;
1e75fa8b 234 struct clocksource *old_clock;
155ec602 235
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236 old_clock = tk->tkr_mono.clock;
237 tk->tkr_mono.clock = clock;
238 tk->tkr_mono.read = clock->read;
239 tk->tkr_mono.mask = clock->mask;
240 tk->tkr_mono.cycle_last = tk->tkr_mono.read(clock);
155ec602 241
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242 tk->tkr_raw.clock = clock;
243 tk->tkr_raw.read = clock->read;
244 tk->tkr_raw.mask = clock->mask;
245 tk->tkr_raw.cycle_last = tk->tkr_mono.cycle_last;
246
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247 /* Do the ns -> cycle conversion first, using original mult */
248 tmp = NTP_INTERVAL_LENGTH;
249 tmp <<= clock->shift;
a386b5af 250 ntpinterval = tmp;
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251 tmp += clock->mult/2;
252 do_div(tmp, clock->mult);
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253 if (tmp == 0)
254 tmp = 1;
255
256 interval = (cycle_t) tmp;
f726a697 257 tk->cycle_interval = interval;
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258
259 /* Go back from cycles -> shifted ns */
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260 tk->xtime_interval = (u64) interval * clock->mult;
261 tk->xtime_remainder = ntpinterval - tk->xtime_interval;
262 tk->raw_interval =
0a544198 263 ((u64) interval * clock->mult) >> clock->shift;
155ec602 264
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265 /* if changing clocks, convert xtime_nsec shift units */
266 if (old_clock) {
267 int shift_change = clock->shift - old_clock->shift;
268 if (shift_change < 0)
876e7881 269 tk->tkr_mono.xtime_nsec >>= -shift_change;
1e75fa8b 270 else
876e7881 271 tk->tkr_mono.xtime_nsec <<= shift_change;
1e75fa8b 272 }
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273 tk->tkr_raw.xtime_nsec = 0;
274
876e7881 275 tk->tkr_mono.shift = clock->shift;
4a4ad80d 276 tk->tkr_raw.shift = clock->shift;
155ec602 277
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278 tk->ntp_error = 0;
279 tk->ntp_error_shift = NTP_SCALE_SHIFT - clock->shift;
375f45b5 280 tk->ntp_tick = ntpinterval << tk->ntp_error_shift;
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281
282 /*
283 * The timekeeper keeps its own mult values for the currently
284 * active clocksource. These value will be adjusted via NTP
285 * to counteract clock drifting.
286 */
876e7881 287 tk->tkr_mono.mult = clock->mult;
4a4ad80d 288 tk->tkr_raw.mult = clock->mult;
dc491596 289 tk->ntp_err_mult = 0;
155ec602 290}
8524070b 291
2ba2a305 292/* Timekeeper helper functions. */
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293
294#ifdef CONFIG_ARCH_USES_GETTIMEOFFSET
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295static u32 default_arch_gettimeoffset(void) { return 0; }
296u32 (*arch_gettimeoffset)(void) = default_arch_gettimeoffset;
7b1f6207 297#else
e06fde37 298static inline u32 arch_gettimeoffset(void) { return 0; }
7b1f6207
SW
299#endif
300
0e5ac3a8 301static inline s64 timekeeping_get_ns(struct tk_read_base *tkr)
2ba2a305 302{
a558cd02 303 cycle_t delta;
1e75fa8b 304 s64 nsec;
2ba2a305 305
a558cd02 306 delta = timekeeping_get_delta(tkr);
2ba2a305 307
35a4933a 308 nsec = (delta * tkr->mult + tkr->xtime_nsec) >> tkr->shift;
f2a5a085 309
7b1f6207 310 /* If arch requires, add in get_arch_timeoffset() */
e06fde37 311 return nsec + arch_gettimeoffset();
2ba2a305
MS
312}
313
4396e058
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314/**
315 * update_fast_timekeeper - Update the fast and NMI safe monotonic timekeeper.
affe3e85 316 * @tkr: Timekeeping readout base from which we take the update
4396e058
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317 *
318 * We want to use this from any context including NMI and tracing /
319 * instrumenting the timekeeping code itself.
320 *
6695b92a 321 * Employ the latch technique; see @raw_write_seqcount_latch.
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TG
322 *
323 * So if a NMI hits the update of base[0] then it will use base[1]
324 * which is still consistent. In the worst case this can result is a
325 * slightly wrong timestamp (a few nanoseconds). See
326 * @ktime_get_mono_fast_ns.
327 */
4498e746 328static void update_fast_timekeeper(struct tk_read_base *tkr, struct tk_fast *tkf)
4396e058 329{
4498e746 330 struct tk_read_base *base = tkf->base;
4396e058
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331
332 /* Force readers off to base[1] */
4498e746 333 raw_write_seqcount_latch(&tkf->seq);
4396e058
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334
335 /* Update base[0] */
affe3e85 336 memcpy(base, tkr, sizeof(*base));
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337
338 /* Force readers back to base[0] */
4498e746 339 raw_write_seqcount_latch(&tkf->seq);
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340
341 /* Update base[1] */
342 memcpy(base + 1, base, sizeof(*base));
343}
344
345/**
346 * ktime_get_mono_fast_ns - Fast NMI safe access to clock monotonic
347 *
348 * This timestamp is not guaranteed to be monotonic across an update.
349 * The timestamp is calculated by:
350 *
351 * now = base_mono + clock_delta * slope
352 *
353 * So if the update lowers the slope, readers who are forced to the
354 * not yet updated second array are still using the old steeper slope.
355 *
356 * tmono
357 * ^
358 * | o n
359 * | o n
360 * | u
361 * | o
362 * |o
363 * |12345678---> reader order
364 *
365 * o = old slope
366 * u = update
367 * n = new slope
368 *
369 * So reader 6 will observe time going backwards versus reader 5.
370 *
371 * While other CPUs are likely to be able observe that, the only way
372 * for a CPU local observation is when an NMI hits in the middle of
373 * the update. Timestamps taken from that NMI context might be ahead
374 * of the following timestamps. Callers need to be aware of that and
375 * deal with it.
376 */
4498e746 377static __always_inline u64 __ktime_get_fast_ns(struct tk_fast *tkf)
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TG
378{
379 struct tk_read_base *tkr;
380 unsigned int seq;
381 u64 now;
382
383 do {
7fc26327 384 seq = raw_read_seqcount_latch(&tkf->seq);
4498e746 385 tkr = tkf->base + (seq & 0x01);
876e7881 386 now = ktime_to_ns(tkr->base) + timekeeping_get_ns(tkr);
4498e746 387 } while (read_seqcount_retry(&tkf->seq, seq));
4396e058 388
4396e058
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389 return now;
390}
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391
392u64 ktime_get_mono_fast_ns(void)
393{
394 return __ktime_get_fast_ns(&tk_fast_mono);
395}
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396EXPORT_SYMBOL_GPL(ktime_get_mono_fast_ns);
397
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398u64 ktime_get_raw_fast_ns(void)
399{
400 return __ktime_get_fast_ns(&tk_fast_raw);
401}
402EXPORT_SYMBOL_GPL(ktime_get_raw_fast_ns);
403
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404/* Suspend-time cycles value for halted fast timekeeper. */
405static cycle_t cycles_at_suspend;
406
407static cycle_t dummy_clock_read(struct clocksource *cs)
408{
409 return cycles_at_suspend;
410}
411
412/**
413 * halt_fast_timekeeper - Prevent fast timekeeper from accessing clocksource.
414 * @tk: Timekeeper to snapshot.
415 *
416 * It generally is unsafe to access the clocksource after timekeeping has been
417 * suspended, so take a snapshot of the readout base of @tk and use it as the
418 * fast timekeeper's readout base while suspended. It will return the same
419 * number of cycles every time until timekeeping is resumed at which time the
420 * proper readout base for the fast timekeeper will be restored automatically.
421 */
422static void halt_fast_timekeeper(struct timekeeper *tk)
423{
424 static struct tk_read_base tkr_dummy;
876e7881 425 struct tk_read_base *tkr = &tk->tkr_mono;
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426
427 memcpy(&tkr_dummy, tkr, sizeof(tkr_dummy));
428 cycles_at_suspend = tkr->read(tkr->clock);
429 tkr_dummy.read = dummy_clock_read;
4498e746 430 update_fast_timekeeper(&tkr_dummy, &tk_fast_mono);
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431
432 tkr = &tk->tkr_raw;
433 memcpy(&tkr_dummy, tkr, sizeof(tkr_dummy));
434 tkr_dummy.read = dummy_clock_read;
435 update_fast_timekeeper(&tkr_dummy, &tk_fast_raw);
060407ae
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436}
437
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438#ifdef CONFIG_GENERIC_TIME_VSYSCALL_OLD
439
440static inline void update_vsyscall(struct timekeeper *tk)
441{
0680eb1f 442 struct timespec xt, wm;
c905fae4 443
e2dff1ec 444 xt = timespec64_to_timespec(tk_xtime(tk));
0680eb1f 445 wm = timespec64_to_timespec(tk->wall_to_monotonic);
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446 update_vsyscall_old(&xt, &wm, tk->tkr_mono.clock, tk->tkr_mono.mult,
447 tk->tkr_mono.cycle_last);
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448}
449
450static inline void old_vsyscall_fixup(struct timekeeper *tk)
451{
452 s64 remainder;
453
454 /*
455 * Store only full nanoseconds into xtime_nsec after rounding
456 * it up and add the remainder to the error difference.
457 * XXX - This is necessary to avoid small 1ns inconsistnecies caused
458 * by truncating the remainder in vsyscalls. However, it causes
459 * additional work to be done in timekeeping_adjust(). Once
460 * the vsyscall implementations are converted to use xtime_nsec
461 * (shifted nanoseconds), and CONFIG_GENERIC_TIME_VSYSCALL_OLD
462 * users are removed, this can be killed.
463 */
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464 remainder = tk->tkr_mono.xtime_nsec & ((1ULL << tk->tkr_mono.shift) - 1);
465 tk->tkr_mono.xtime_nsec -= remainder;
466 tk->tkr_mono.xtime_nsec += 1ULL << tk->tkr_mono.shift;
c905fae4 467 tk->ntp_error += remainder << tk->ntp_error_shift;
876e7881 468 tk->ntp_error -= (1ULL << tk->tkr_mono.shift) << tk->ntp_error_shift;
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469}
470#else
471#define old_vsyscall_fixup(tk)
472#endif
473
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474static RAW_NOTIFIER_HEAD(pvclock_gtod_chain);
475
780427f0 476static void update_pvclock_gtod(struct timekeeper *tk, bool was_set)
e0b306fe 477{
780427f0 478 raw_notifier_call_chain(&pvclock_gtod_chain, was_set, tk);
e0b306fe
MT
479}
480
481/**
482 * pvclock_gtod_register_notifier - register a pvclock timedata update listener
e0b306fe
MT
483 */
484int pvclock_gtod_register_notifier(struct notifier_block *nb)
485{
3fdb14fd 486 struct timekeeper *tk = &tk_core.timekeeper;
e0b306fe
MT
487 unsigned long flags;
488 int ret;
489
9a7a71b1 490 raw_spin_lock_irqsave(&timekeeper_lock, flags);
e0b306fe 491 ret = raw_notifier_chain_register(&pvclock_gtod_chain, nb);
780427f0 492 update_pvclock_gtod(tk, true);
9a7a71b1 493 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
e0b306fe
MT
494
495 return ret;
496}
497EXPORT_SYMBOL_GPL(pvclock_gtod_register_notifier);
498
499/**
500 * pvclock_gtod_unregister_notifier - unregister a pvclock
501 * timedata update listener
e0b306fe
MT
502 */
503int pvclock_gtod_unregister_notifier(struct notifier_block *nb)
504{
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MT
505 unsigned long flags;
506 int ret;
507
9a7a71b1 508 raw_spin_lock_irqsave(&timekeeper_lock, flags);
e0b306fe 509 ret = raw_notifier_chain_unregister(&pvclock_gtod_chain, nb);
9a7a71b1 510 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
e0b306fe
MT
511
512 return ret;
513}
514EXPORT_SYMBOL_GPL(pvclock_gtod_unregister_notifier);
515
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516/*
517 * tk_update_leap_state - helper to update the next_leap_ktime
518 */
519static inline void tk_update_leap_state(struct timekeeper *tk)
520{
521 tk->next_leap_ktime = ntp_get_next_leap();
522 if (tk->next_leap_ktime.tv64 != KTIME_MAX)
523 /* Convert to monotonic time */
524 tk->next_leap_ktime = ktime_sub(tk->next_leap_ktime, tk->offs_real);
525}
526
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527/*
528 * Update the ktime_t based scalar nsec members of the timekeeper
529 */
530static inline void tk_update_ktime_data(struct timekeeper *tk)
531{
9e3680b1
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532 u64 seconds;
533 u32 nsec;
7c032df5
TG
534
535 /*
536 * The xtime based monotonic readout is:
537 * nsec = (xtime_sec + wtm_sec) * 1e9 + wtm_nsec + now();
538 * The ktime based monotonic readout is:
539 * nsec = base_mono + now();
540 * ==> base_mono = (xtime_sec + wtm_sec) * 1e9 + wtm_nsec
541 */
9e3680b1
HS
542 seconds = (u64)(tk->xtime_sec + tk->wall_to_monotonic.tv_sec);
543 nsec = (u32) tk->wall_to_monotonic.tv_nsec;
876e7881 544 tk->tkr_mono.base = ns_to_ktime(seconds * NSEC_PER_SEC + nsec);
f519b1a2
TG
545
546 /* Update the monotonic raw base */
4a4ad80d 547 tk->tkr_raw.base = timespec64_to_ktime(tk->raw_time);
9e3680b1
HS
548
549 /*
550 * The sum of the nanoseconds portions of xtime and
551 * wall_to_monotonic can be greater/equal one second. Take
552 * this into account before updating tk->ktime_sec.
553 */
876e7881 554 nsec += (u32)(tk->tkr_mono.xtime_nsec >> tk->tkr_mono.shift);
9e3680b1
HS
555 if (nsec >= NSEC_PER_SEC)
556 seconds++;
557 tk->ktime_sec = seconds;
7c032df5
TG
558}
559
9a7a71b1 560/* must hold timekeeper_lock */
04397fe9 561static void timekeeping_update(struct timekeeper *tk, unsigned int action)
cc06268c 562{
04397fe9 563 if (action & TK_CLEAR_NTP) {
f726a697 564 tk->ntp_error = 0;
cc06268c
TG
565 ntp_clear();
566 }
48cdc135 567
833f32d7 568 tk_update_leap_state(tk);
7c032df5
TG
569 tk_update_ktime_data(tk);
570
9bf2419f
TG
571 update_vsyscall(tk);
572 update_pvclock_gtod(tk, action & TK_CLOCK_WAS_SET);
573
4498e746 574 update_fast_timekeeper(&tk->tkr_mono, &tk_fast_mono);
f09cb9a1 575 update_fast_timekeeper(&tk->tkr_raw, &tk_fast_raw);
868a3e91
TG
576
577 if (action & TK_CLOCK_WAS_SET)
578 tk->clock_was_set_seq++;
d1518326
JS
579 /*
580 * The mirroring of the data to the shadow-timekeeper needs
581 * to happen last here to ensure we don't over-write the
582 * timekeeper structure on the next update with stale data
583 */
584 if (action & TK_MIRROR)
585 memcpy(&shadow_timekeeper, &tk_core.timekeeper,
586 sizeof(tk_core.timekeeper));
cc06268c
TG
587}
588
8524070b 589/**
155ec602 590 * timekeeping_forward_now - update clock to the current time
8524070b 591 *
9a055117
RZ
592 * Forward the current clock to update its state since the last call to
593 * update_wall_time(). This is useful before significant clock changes,
594 * as it avoids having to deal with this time offset explicitly.
8524070b 595 */
f726a697 596static void timekeeping_forward_now(struct timekeeper *tk)
8524070b 597{
876e7881 598 struct clocksource *clock = tk->tkr_mono.clock;
3a978377 599 cycle_t cycle_now, delta;
9a055117 600 s64 nsec;
8524070b 601
876e7881
PZ
602 cycle_now = tk->tkr_mono.read(clock);
603 delta = clocksource_delta(cycle_now, tk->tkr_mono.cycle_last, tk->tkr_mono.mask);
604 tk->tkr_mono.cycle_last = cycle_now;
4a4ad80d 605 tk->tkr_raw.cycle_last = cycle_now;
8524070b 606
876e7881 607 tk->tkr_mono.xtime_nsec += delta * tk->tkr_mono.mult;
7d27558c 608
7b1f6207 609 /* If arch requires, add in get_arch_timeoffset() */
876e7881 610 tk->tkr_mono.xtime_nsec += (u64)arch_gettimeoffset() << tk->tkr_mono.shift;
7d27558c 611
f726a697 612 tk_normalize_xtime(tk);
2d42244a 613
4a4ad80d 614 nsec = clocksource_cyc2ns(delta, tk->tkr_raw.mult, tk->tkr_raw.shift);
7d489d15 615 timespec64_add_ns(&tk->raw_time, nsec);
8524070b
JS
616}
617
618/**
d6d29896 619 * __getnstimeofday64 - Returns the time of day in a timespec64.
8524070b
JS
620 * @ts: pointer to the timespec to be set
621 *
1e817fb6
KC
622 * Updates the time of day in the timespec.
623 * Returns 0 on success, or -ve when suspended (timespec will be undefined).
8524070b 624 */
d6d29896 625int __getnstimeofday64(struct timespec64 *ts)
8524070b 626{
3fdb14fd 627 struct timekeeper *tk = &tk_core.timekeeper;
8524070b 628 unsigned long seq;
1e75fa8b 629 s64 nsecs = 0;
8524070b
JS
630
631 do {
3fdb14fd 632 seq = read_seqcount_begin(&tk_core.seq);
8524070b 633
4e250fdd 634 ts->tv_sec = tk->xtime_sec;
876e7881 635 nsecs = timekeeping_get_ns(&tk->tkr_mono);
8524070b 636
3fdb14fd 637 } while (read_seqcount_retry(&tk_core.seq, seq));
8524070b 638
ec145bab 639 ts->tv_nsec = 0;
d6d29896 640 timespec64_add_ns(ts, nsecs);
1e817fb6
KC
641
642 /*
643 * Do not bail out early, in case there were callers still using
644 * the value, even in the face of the WARN_ON.
645 */
646 if (unlikely(timekeeping_suspended))
647 return -EAGAIN;
648 return 0;
649}
d6d29896 650EXPORT_SYMBOL(__getnstimeofday64);
1e817fb6
KC
651
652/**
d6d29896 653 * getnstimeofday64 - Returns the time of day in a timespec64.
5322e4c2 654 * @ts: pointer to the timespec64 to be set
1e817fb6 655 *
5322e4c2 656 * Returns the time of day in a timespec64 (WARN if suspended).
1e817fb6 657 */
d6d29896 658void getnstimeofday64(struct timespec64 *ts)
1e817fb6 659{
d6d29896 660 WARN_ON(__getnstimeofday64(ts));
8524070b 661}
d6d29896 662EXPORT_SYMBOL(getnstimeofday64);
8524070b 663
951ed4d3
MS
664ktime_t ktime_get(void)
665{
3fdb14fd 666 struct timekeeper *tk = &tk_core.timekeeper;
951ed4d3 667 unsigned int seq;
a016a5bd
TG
668 ktime_t base;
669 s64 nsecs;
951ed4d3
MS
670
671 WARN_ON(timekeeping_suspended);
672
673 do {
3fdb14fd 674 seq = read_seqcount_begin(&tk_core.seq);
876e7881
PZ
675 base = tk->tkr_mono.base;
676 nsecs = timekeeping_get_ns(&tk->tkr_mono);
951ed4d3 677
3fdb14fd 678 } while (read_seqcount_retry(&tk_core.seq, seq));
24e4a8c3 679
a016a5bd 680 return ktime_add_ns(base, nsecs);
951ed4d3
MS
681}
682EXPORT_SYMBOL_GPL(ktime_get);
683
6374f912
HG
684u32 ktime_get_resolution_ns(void)
685{
686 struct timekeeper *tk = &tk_core.timekeeper;
687 unsigned int seq;
688 u32 nsecs;
689
690 WARN_ON(timekeeping_suspended);
691
692 do {
693 seq = read_seqcount_begin(&tk_core.seq);
694 nsecs = tk->tkr_mono.mult >> tk->tkr_mono.shift;
695 } while (read_seqcount_retry(&tk_core.seq, seq));
696
697 return nsecs;
698}
699EXPORT_SYMBOL_GPL(ktime_get_resolution_ns);
700
0077dc60
TG
701static ktime_t *offsets[TK_OFFS_MAX] = {
702 [TK_OFFS_REAL] = &tk_core.timekeeper.offs_real,
703 [TK_OFFS_BOOT] = &tk_core.timekeeper.offs_boot,
704 [TK_OFFS_TAI] = &tk_core.timekeeper.offs_tai,
705};
706
707ktime_t ktime_get_with_offset(enum tk_offsets offs)
708{
709 struct timekeeper *tk = &tk_core.timekeeper;
710 unsigned int seq;
711 ktime_t base, *offset = offsets[offs];
712 s64 nsecs;
713
714 WARN_ON(timekeeping_suspended);
715
716 do {
717 seq = read_seqcount_begin(&tk_core.seq);
876e7881
PZ
718 base = ktime_add(tk->tkr_mono.base, *offset);
719 nsecs = timekeeping_get_ns(&tk->tkr_mono);
0077dc60
TG
720
721 } while (read_seqcount_retry(&tk_core.seq, seq));
722
723 return ktime_add_ns(base, nsecs);
724
725}
726EXPORT_SYMBOL_GPL(ktime_get_with_offset);
727
9a6b5197
TG
728/**
729 * ktime_mono_to_any() - convert mononotic time to any other time
730 * @tmono: time to convert.
731 * @offs: which offset to use
732 */
733ktime_t ktime_mono_to_any(ktime_t tmono, enum tk_offsets offs)
734{
735 ktime_t *offset = offsets[offs];
736 unsigned long seq;
737 ktime_t tconv;
738
739 do {
740 seq = read_seqcount_begin(&tk_core.seq);
741 tconv = ktime_add(tmono, *offset);
742 } while (read_seqcount_retry(&tk_core.seq, seq));
743
744 return tconv;
745}
746EXPORT_SYMBOL_GPL(ktime_mono_to_any);
747
f519b1a2
TG
748/**
749 * ktime_get_raw - Returns the raw monotonic time in ktime_t format
750 */
751ktime_t ktime_get_raw(void)
752{
753 struct timekeeper *tk = &tk_core.timekeeper;
754 unsigned int seq;
755 ktime_t base;
756 s64 nsecs;
757
758 do {
759 seq = read_seqcount_begin(&tk_core.seq);
4a4ad80d
PZ
760 base = tk->tkr_raw.base;
761 nsecs = timekeeping_get_ns(&tk->tkr_raw);
f519b1a2
TG
762
763 } while (read_seqcount_retry(&tk_core.seq, seq));
764
765 return ktime_add_ns(base, nsecs);
766}
767EXPORT_SYMBOL_GPL(ktime_get_raw);
768
951ed4d3 769/**
d6d29896 770 * ktime_get_ts64 - get the monotonic clock in timespec64 format
951ed4d3
MS
771 * @ts: pointer to timespec variable
772 *
773 * The function calculates the monotonic clock from the realtime
774 * clock and the wall_to_monotonic offset and stores the result
5322e4c2 775 * in normalized timespec64 format in the variable pointed to by @ts.
951ed4d3 776 */
d6d29896 777void ktime_get_ts64(struct timespec64 *ts)
951ed4d3 778{
3fdb14fd 779 struct timekeeper *tk = &tk_core.timekeeper;
d6d29896 780 struct timespec64 tomono;
ec145bab 781 s64 nsec;
951ed4d3 782 unsigned int seq;
951ed4d3
MS
783
784 WARN_ON(timekeeping_suspended);
785
786 do {
3fdb14fd 787 seq = read_seqcount_begin(&tk_core.seq);
d6d29896 788 ts->tv_sec = tk->xtime_sec;
876e7881 789 nsec = timekeeping_get_ns(&tk->tkr_mono);
4e250fdd 790 tomono = tk->wall_to_monotonic;
951ed4d3 791
3fdb14fd 792 } while (read_seqcount_retry(&tk_core.seq, seq));
951ed4d3 793
d6d29896
TG
794 ts->tv_sec += tomono.tv_sec;
795 ts->tv_nsec = 0;
796 timespec64_add_ns(ts, nsec + tomono.tv_nsec);
951ed4d3 797}
d6d29896 798EXPORT_SYMBOL_GPL(ktime_get_ts64);
951ed4d3 799
9e3680b1
HS
800/**
801 * ktime_get_seconds - Get the seconds portion of CLOCK_MONOTONIC
802 *
803 * Returns the seconds portion of CLOCK_MONOTONIC with a single non
804 * serialized read. tk->ktime_sec is of type 'unsigned long' so this
805 * works on both 32 and 64 bit systems. On 32 bit systems the readout
806 * covers ~136 years of uptime which should be enough to prevent
807 * premature wrap arounds.
808 */
809time64_t ktime_get_seconds(void)
810{
811 struct timekeeper *tk = &tk_core.timekeeper;
812
813 WARN_ON(timekeeping_suspended);
814 return tk->ktime_sec;
815}
816EXPORT_SYMBOL_GPL(ktime_get_seconds);
817
dbe7aa62
HS
818/**
819 * ktime_get_real_seconds - Get the seconds portion of CLOCK_REALTIME
820 *
821 * Returns the wall clock seconds since 1970. This replaces the
822 * get_seconds() interface which is not y2038 safe on 32bit systems.
823 *
824 * For 64bit systems the fast access to tk->xtime_sec is preserved. On
825 * 32bit systems the access must be protected with the sequence
826 * counter to provide "atomic" access to the 64bit tk->xtime_sec
827 * value.
828 */
829time64_t ktime_get_real_seconds(void)
830{
831 struct timekeeper *tk = &tk_core.timekeeper;
832 time64_t seconds;
833 unsigned int seq;
834
835 if (IS_ENABLED(CONFIG_64BIT))
836 return tk->xtime_sec;
837
838 do {
839 seq = read_seqcount_begin(&tk_core.seq);
840 seconds = tk->xtime_sec;
841
842 } while (read_seqcount_retry(&tk_core.seq, seq));
843
844 return seconds;
845}
846EXPORT_SYMBOL_GPL(ktime_get_real_seconds);
847
e2c18e49
AG
848#ifdef CONFIG_NTP_PPS
849
850/**
071eee45 851 * ktime_get_raw_and_real_ts64 - get day and raw monotonic time in timespec format
e2c18e49
AG
852 * @ts_raw: pointer to the timespec to be set to raw monotonic time
853 * @ts_real: pointer to the timespec to be set to the time of day
854 *
855 * This function reads both the time of day and raw monotonic time at the
856 * same time atomically and stores the resulting timestamps in timespec
857 * format.
858 */
071eee45 859void ktime_get_raw_and_real_ts64(struct timespec64 *ts_raw, struct timespec64 *ts_real)
e2c18e49 860{
3fdb14fd 861 struct timekeeper *tk = &tk_core.timekeeper;
e2c18e49
AG
862 unsigned long seq;
863 s64 nsecs_raw, nsecs_real;
864
865 WARN_ON_ONCE(timekeeping_suspended);
866
867 do {
3fdb14fd 868 seq = read_seqcount_begin(&tk_core.seq);
e2c18e49 869
071eee45 870 *ts_raw = tk->raw_time;
4e250fdd 871 ts_real->tv_sec = tk->xtime_sec;
1e75fa8b 872 ts_real->tv_nsec = 0;
e2c18e49 873
4a4ad80d 874 nsecs_raw = timekeeping_get_ns(&tk->tkr_raw);
876e7881 875 nsecs_real = timekeeping_get_ns(&tk->tkr_mono);
e2c18e49 876
3fdb14fd 877 } while (read_seqcount_retry(&tk_core.seq, seq));
e2c18e49 878
071eee45
AB
879 timespec64_add_ns(ts_raw, nsecs_raw);
880 timespec64_add_ns(ts_real, nsecs_real);
e2c18e49 881}
071eee45 882EXPORT_SYMBOL(ktime_get_raw_and_real_ts64);
e2c18e49
AG
883
884#endif /* CONFIG_NTP_PPS */
885
8524070b
JS
886/**
887 * do_gettimeofday - Returns the time of day in a timeval
888 * @tv: pointer to the timeval to be set
889 *
efd9ac86 890 * NOTE: Users should be converted to using getnstimeofday()
8524070b
JS
891 */
892void do_gettimeofday(struct timeval *tv)
893{
d6d29896 894 struct timespec64 now;
8524070b 895
d6d29896 896 getnstimeofday64(&now);
8524070b
JS
897 tv->tv_sec = now.tv_sec;
898 tv->tv_usec = now.tv_nsec/1000;
899}
8524070b 900EXPORT_SYMBOL(do_gettimeofday);
d239f49d 901
8524070b 902/**
21f7eca5 903 * do_settimeofday64 - Sets the time of day.
904 * @ts: pointer to the timespec64 variable containing the new time
8524070b
JS
905 *
906 * Sets the time of day to the new time and update NTP and notify hrtimers
907 */
21f7eca5 908int do_settimeofday64(const struct timespec64 *ts)
8524070b 909{
3fdb14fd 910 struct timekeeper *tk = &tk_core.timekeeper;
21f7eca5 911 struct timespec64 ts_delta, xt;
92c1d3ed 912 unsigned long flags;
e1d7ba87 913 int ret = 0;
8524070b 914
21f7eca5 915 if (!timespec64_valid_strict(ts))
8524070b
JS
916 return -EINVAL;
917
9a7a71b1 918 raw_spin_lock_irqsave(&timekeeper_lock, flags);
3fdb14fd 919 write_seqcount_begin(&tk_core.seq);
8524070b 920
4e250fdd 921 timekeeping_forward_now(tk);
9a055117 922
4e250fdd 923 xt = tk_xtime(tk);
21f7eca5 924 ts_delta.tv_sec = ts->tv_sec - xt.tv_sec;
925 ts_delta.tv_nsec = ts->tv_nsec - xt.tv_nsec;
1e75fa8b 926
e1d7ba87
WY
927 if (timespec64_compare(&tk->wall_to_monotonic, &ts_delta) > 0) {
928 ret = -EINVAL;
929 goto out;
930 }
931
7d489d15 932 tk_set_wall_to_mono(tk, timespec64_sub(tk->wall_to_monotonic, ts_delta));
8524070b 933
21f7eca5 934 tk_set_xtime(tk, ts);
e1d7ba87 935out:
780427f0 936 timekeeping_update(tk, TK_CLEAR_NTP | TK_MIRROR | TK_CLOCK_WAS_SET);
8524070b 937
3fdb14fd 938 write_seqcount_end(&tk_core.seq);
9a7a71b1 939 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
8524070b
JS
940
941 /* signal hrtimers about time change */
942 clock_was_set();
943
e1d7ba87 944 return ret;
8524070b 945}
21f7eca5 946EXPORT_SYMBOL(do_settimeofday64);
8524070b 947
c528f7c6
JS
948/**
949 * timekeeping_inject_offset - Adds or subtracts from the current time.
950 * @tv: pointer to the timespec variable containing the offset
951 *
952 * Adds or subtracts an offset value from the current time.
953 */
954int timekeeping_inject_offset(struct timespec *ts)
955{
3fdb14fd 956 struct timekeeper *tk = &tk_core.timekeeper;
92c1d3ed 957 unsigned long flags;
7d489d15 958 struct timespec64 ts64, tmp;
4e8b1452 959 int ret = 0;
c528f7c6
JS
960
961 if ((unsigned long)ts->tv_nsec >= NSEC_PER_SEC)
962 return -EINVAL;
963
7d489d15
JS
964 ts64 = timespec_to_timespec64(*ts);
965
9a7a71b1 966 raw_spin_lock_irqsave(&timekeeper_lock, flags);
3fdb14fd 967 write_seqcount_begin(&tk_core.seq);
c528f7c6 968
4e250fdd 969 timekeeping_forward_now(tk);
c528f7c6 970
4e8b1452 971 /* Make sure the proposed value is valid */
7d489d15 972 tmp = timespec64_add(tk_xtime(tk), ts64);
e1d7ba87
WY
973 if (timespec64_compare(&tk->wall_to_monotonic, &ts64) > 0 ||
974 !timespec64_valid_strict(&tmp)) {
4e8b1452
JS
975 ret = -EINVAL;
976 goto error;
977 }
1e75fa8b 978
7d489d15
JS
979 tk_xtime_add(tk, &ts64);
980 tk_set_wall_to_mono(tk, timespec64_sub(tk->wall_to_monotonic, ts64));
c528f7c6 981
4e8b1452 982error: /* even if we error out, we forwarded the time, so call update */
780427f0 983 timekeeping_update(tk, TK_CLEAR_NTP | TK_MIRROR | TK_CLOCK_WAS_SET);
c528f7c6 984
3fdb14fd 985 write_seqcount_end(&tk_core.seq);
9a7a71b1 986 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
c528f7c6
JS
987
988 /* signal hrtimers about time change */
989 clock_was_set();
990
4e8b1452 991 return ret;
c528f7c6
JS
992}
993EXPORT_SYMBOL(timekeeping_inject_offset);
994
cc244dda
JS
995
996/**
997 * timekeeping_get_tai_offset - Returns current TAI offset from UTC
998 *
999 */
1000s32 timekeeping_get_tai_offset(void)
1001{
3fdb14fd 1002 struct timekeeper *tk = &tk_core.timekeeper;
cc244dda
JS
1003 unsigned int seq;
1004 s32 ret;
1005
1006 do {
3fdb14fd 1007 seq = read_seqcount_begin(&tk_core.seq);
cc244dda 1008 ret = tk->tai_offset;
3fdb14fd 1009 } while (read_seqcount_retry(&tk_core.seq, seq));
cc244dda
JS
1010
1011 return ret;
1012}
1013
1014/**
1015 * __timekeeping_set_tai_offset - Lock free worker function
1016 *
1017 */
dd5d70e8 1018static void __timekeeping_set_tai_offset(struct timekeeper *tk, s32 tai_offset)
cc244dda
JS
1019{
1020 tk->tai_offset = tai_offset;
04005f60 1021 tk->offs_tai = ktime_add(tk->offs_real, ktime_set(tai_offset, 0));
cc244dda
JS
1022}
1023
1024/**
1025 * timekeeping_set_tai_offset - Sets the current TAI offset from UTC
1026 *
1027 */
1028void timekeeping_set_tai_offset(s32 tai_offset)
1029{
3fdb14fd 1030 struct timekeeper *tk = &tk_core.timekeeper;
cc244dda
JS
1031 unsigned long flags;
1032
9a7a71b1 1033 raw_spin_lock_irqsave(&timekeeper_lock, flags);
3fdb14fd 1034 write_seqcount_begin(&tk_core.seq);
cc244dda 1035 __timekeeping_set_tai_offset(tk, tai_offset);
f55c0760 1036 timekeeping_update(tk, TK_MIRROR | TK_CLOCK_WAS_SET);
3fdb14fd 1037 write_seqcount_end(&tk_core.seq);
9a7a71b1 1038 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
4e8f8b34 1039 clock_was_set();
cc244dda
JS
1040}
1041
8524070b
JS
1042/**
1043 * change_clocksource - Swaps clocksources if a new one is available
1044 *
1045 * Accumulates current time interval and initializes new clocksource
1046 */
75c5158f 1047static int change_clocksource(void *data)
8524070b 1048{
3fdb14fd 1049 struct timekeeper *tk = &tk_core.timekeeper;
4614e6ad 1050 struct clocksource *new, *old;
f695cf94 1051 unsigned long flags;
8524070b 1052
75c5158f 1053 new = (struct clocksource *) data;
8524070b 1054
9a7a71b1 1055 raw_spin_lock_irqsave(&timekeeper_lock, flags);
3fdb14fd 1056 write_seqcount_begin(&tk_core.seq);
f695cf94 1057
4e250fdd 1058 timekeeping_forward_now(tk);
09ac369c
TG
1059 /*
1060 * If the cs is in module, get a module reference. Succeeds
1061 * for built-in code (owner == NULL) as well.
1062 */
1063 if (try_module_get(new->owner)) {
1064 if (!new->enable || new->enable(new) == 0) {
876e7881 1065 old = tk->tkr_mono.clock;
09ac369c
TG
1066 tk_setup_internals(tk, new);
1067 if (old->disable)
1068 old->disable(old);
1069 module_put(old->owner);
1070 } else {
1071 module_put(new->owner);
1072 }
75c5158f 1073 }
780427f0 1074 timekeeping_update(tk, TK_CLEAR_NTP | TK_MIRROR | TK_CLOCK_WAS_SET);
f695cf94 1075
3fdb14fd 1076 write_seqcount_end(&tk_core.seq);
9a7a71b1 1077 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
f695cf94 1078
75c5158f
MS
1079 return 0;
1080}
8524070b 1081
75c5158f
MS
1082/**
1083 * timekeeping_notify - Install a new clock source
1084 * @clock: pointer to the clock source
1085 *
1086 * This function is called from clocksource.c after a new, better clock
1087 * source has been registered. The caller holds the clocksource_mutex.
1088 */
ba919d1c 1089int timekeeping_notify(struct clocksource *clock)
75c5158f 1090{
3fdb14fd 1091 struct timekeeper *tk = &tk_core.timekeeper;
4e250fdd 1092
876e7881 1093 if (tk->tkr_mono.clock == clock)
ba919d1c 1094 return 0;
75c5158f 1095 stop_machine(change_clocksource, clock, NULL);
8524070b 1096 tick_clock_notify();
876e7881 1097 return tk->tkr_mono.clock == clock ? 0 : -1;
8524070b 1098}
75c5158f 1099
2d42244a 1100/**
cdba2ec5
JS
1101 * getrawmonotonic64 - Returns the raw monotonic time in a timespec
1102 * @ts: pointer to the timespec64 to be set
2d42244a
JS
1103 *
1104 * Returns the raw monotonic time (completely un-modified by ntp)
1105 */
cdba2ec5 1106void getrawmonotonic64(struct timespec64 *ts)
2d42244a 1107{
3fdb14fd 1108 struct timekeeper *tk = &tk_core.timekeeper;
7d489d15 1109 struct timespec64 ts64;
2d42244a
JS
1110 unsigned long seq;
1111 s64 nsecs;
2d42244a
JS
1112
1113 do {
3fdb14fd 1114 seq = read_seqcount_begin(&tk_core.seq);
4a4ad80d 1115 nsecs = timekeeping_get_ns(&tk->tkr_raw);
7d489d15 1116 ts64 = tk->raw_time;
2d42244a 1117
3fdb14fd 1118 } while (read_seqcount_retry(&tk_core.seq, seq));
2d42244a 1119
7d489d15 1120 timespec64_add_ns(&ts64, nsecs);
cdba2ec5 1121 *ts = ts64;
2d42244a 1122}
cdba2ec5
JS
1123EXPORT_SYMBOL(getrawmonotonic64);
1124
2d42244a 1125
8524070b 1126/**
cf4fc6cb 1127 * timekeeping_valid_for_hres - Check if timekeeping is suitable for hres
8524070b 1128 */
cf4fc6cb 1129int timekeeping_valid_for_hres(void)
8524070b 1130{
3fdb14fd 1131 struct timekeeper *tk = &tk_core.timekeeper;
8524070b
JS
1132 unsigned long seq;
1133 int ret;
1134
1135 do {
3fdb14fd 1136 seq = read_seqcount_begin(&tk_core.seq);
8524070b 1137
876e7881 1138 ret = tk->tkr_mono.clock->flags & CLOCK_SOURCE_VALID_FOR_HRES;
8524070b 1139
3fdb14fd 1140 } while (read_seqcount_retry(&tk_core.seq, seq));
8524070b
JS
1141
1142 return ret;
1143}
1144
98962465
JH
1145/**
1146 * timekeeping_max_deferment - Returns max time the clocksource can be deferred
98962465
JH
1147 */
1148u64 timekeeping_max_deferment(void)
1149{
3fdb14fd 1150 struct timekeeper *tk = &tk_core.timekeeper;
70471f2f
JS
1151 unsigned long seq;
1152 u64 ret;
42e71e81 1153
70471f2f 1154 do {
3fdb14fd 1155 seq = read_seqcount_begin(&tk_core.seq);
70471f2f 1156
876e7881 1157 ret = tk->tkr_mono.clock->max_idle_ns;
70471f2f 1158
3fdb14fd 1159 } while (read_seqcount_retry(&tk_core.seq, seq));
70471f2f
JS
1160
1161 return ret;
98962465
JH
1162}
1163
8524070b 1164/**
d4f587c6 1165 * read_persistent_clock - Return time from the persistent clock.
8524070b
JS
1166 *
1167 * Weak dummy function for arches that do not yet support it.
d4f587c6
MS
1168 * Reads the time from the battery backed persistent clock.
1169 * Returns a timespec with tv_sec=0 and tv_nsec=0 if unsupported.
8524070b
JS
1170 *
1171 * XXX - Do be sure to remove it once all arches implement it.
1172 */
52f5684c 1173void __weak read_persistent_clock(struct timespec *ts)
8524070b 1174{
d4f587c6
MS
1175 ts->tv_sec = 0;
1176 ts->tv_nsec = 0;
8524070b
JS
1177}
1178
2ee96632
XP
1179void __weak read_persistent_clock64(struct timespec64 *ts64)
1180{
1181 struct timespec ts;
1182
1183 read_persistent_clock(&ts);
1184 *ts64 = timespec_to_timespec64(ts);
1185}
1186
23970e38 1187/**
e83d0a41 1188 * read_boot_clock64 - Return time of the system start.
23970e38
MS
1189 *
1190 * Weak dummy function for arches that do not yet support it.
1191 * Function to read the exact time the system has been started.
e83d0a41 1192 * Returns a timespec64 with tv_sec=0 and tv_nsec=0 if unsupported.
23970e38
MS
1193 *
1194 * XXX - Do be sure to remove it once all arches implement it.
1195 */
e83d0a41 1196void __weak read_boot_clock64(struct timespec64 *ts)
23970e38
MS
1197{
1198 ts->tv_sec = 0;
1199 ts->tv_nsec = 0;
1200}
1201
0fa88cb4
XP
1202/* Flag for if timekeeping_resume() has injected sleeptime */
1203static bool sleeptime_injected;
1204
1205/* Flag for if there is a persistent clock on this platform */
1206static bool persistent_clock_exists;
1207
8524070b
JS
1208/*
1209 * timekeeping_init - Initializes the clocksource and common timekeeping values
1210 */
1211void __init timekeeping_init(void)
1212{
3fdb14fd 1213 struct timekeeper *tk = &tk_core.timekeeper;
155ec602 1214 struct clocksource *clock;
8524070b 1215 unsigned long flags;
7d489d15 1216 struct timespec64 now, boot, tmp;
31ade306 1217
2ee96632 1218 read_persistent_clock64(&now);
7d489d15 1219 if (!timespec64_valid_strict(&now)) {
4e8b1452
JS
1220 pr_warn("WARNING: Persistent clock returned invalid value!\n"
1221 " Check your CMOS/BIOS settings.\n");
1222 now.tv_sec = 0;
1223 now.tv_nsec = 0;
31ade306 1224 } else if (now.tv_sec || now.tv_nsec)
0fa88cb4 1225 persistent_clock_exists = true;
4e8b1452 1226
9a806ddb 1227 read_boot_clock64(&boot);
7d489d15 1228 if (!timespec64_valid_strict(&boot)) {
4e8b1452
JS
1229 pr_warn("WARNING: Boot clock returned invalid value!\n"
1230 " Check your CMOS/BIOS settings.\n");
1231 boot.tv_sec = 0;
1232 boot.tv_nsec = 0;
1233 }
8524070b 1234
9a7a71b1 1235 raw_spin_lock_irqsave(&timekeeper_lock, flags);
3fdb14fd 1236 write_seqcount_begin(&tk_core.seq);
06c017fd
JS
1237 ntp_init();
1238
f1b82746 1239 clock = clocksource_default_clock();
a0f7d48b
MS
1240 if (clock->enable)
1241 clock->enable(clock);
4e250fdd 1242 tk_setup_internals(tk, clock);
8524070b 1243
4e250fdd
JS
1244 tk_set_xtime(tk, &now);
1245 tk->raw_time.tv_sec = 0;
1246 tk->raw_time.tv_nsec = 0;
1e75fa8b 1247 if (boot.tv_sec == 0 && boot.tv_nsec == 0)
4e250fdd 1248 boot = tk_xtime(tk);
1e75fa8b 1249
7d489d15 1250 set_normalized_timespec64(&tmp, -boot.tv_sec, -boot.tv_nsec);
4e250fdd 1251 tk_set_wall_to_mono(tk, tmp);
6d0ef903 1252
56fd16ca 1253 timekeeping_update(tk, TK_MIRROR | TK_CLOCK_WAS_SET);
48cdc135 1254
3fdb14fd 1255 write_seqcount_end(&tk_core.seq);
9a7a71b1 1256 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
8524070b
JS
1257}
1258
264bb3f7 1259/* time in seconds when suspend began for persistent clock */
7d489d15 1260static struct timespec64 timekeeping_suspend_time;
8524070b 1261
304529b1
JS
1262/**
1263 * __timekeeping_inject_sleeptime - Internal function to add sleep interval
1264 * @delta: pointer to a timespec delta value
1265 *
1266 * Takes a timespec offset measuring a suspend interval and properly
1267 * adds the sleep offset to the timekeeping variables.
1268 */
f726a697 1269static void __timekeeping_inject_sleeptime(struct timekeeper *tk,
7d489d15 1270 struct timespec64 *delta)
304529b1 1271{
7d489d15 1272 if (!timespec64_valid_strict(delta)) {
6d9bcb62
JS
1273 printk_deferred(KERN_WARNING
1274 "__timekeeping_inject_sleeptime: Invalid "
1275 "sleep delta value!\n");
cb5de2f8
JS
1276 return;
1277 }
f726a697 1278 tk_xtime_add(tk, delta);
7d489d15 1279 tk_set_wall_to_mono(tk, timespec64_sub(tk->wall_to_monotonic, *delta));
47da70d3 1280 tk_update_sleep_time(tk, timespec64_to_ktime(*delta));
5c83545f 1281 tk_debug_account_sleep_time(delta);
304529b1
JS
1282}
1283
7f298139 1284#if defined(CONFIG_PM_SLEEP) && defined(CONFIG_RTC_HCTOSYS_DEVICE)
0fa88cb4
XP
1285/**
1286 * We have three kinds of time sources to use for sleep time
1287 * injection, the preference order is:
1288 * 1) non-stop clocksource
1289 * 2) persistent clock (ie: RTC accessible when irqs are off)
1290 * 3) RTC
1291 *
1292 * 1) and 2) are used by timekeeping, 3) by RTC subsystem.
1293 * If system has neither 1) nor 2), 3) will be used finally.
1294 *
1295 *
1296 * If timekeeping has injected sleeptime via either 1) or 2),
1297 * 3) becomes needless, so in this case we don't need to call
1298 * rtc_resume(), and this is what timekeeping_rtc_skipresume()
1299 * means.
1300 */
1301bool timekeeping_rtc_skipresume(void)
1302{
1303 return sleeptime_injected;
1304}
1305
1306/**
1307 * 1) can be determined whether to use or not only when doing
1308 * timekeeping_resume() which is invoked after rtc_suspend(),
1309 * so we can't skip rtc_suspend() surely if system has 1).
1310 *
1311 * But if system has 2), 2) will definitely be used, so in this
1312 * case we don't need to call rtc_suspend(), and this is what
1313 * timekeeping_rtc_skipsuspend() means.
1314 */
1315bool timekeeping_rtc_skipsuspend(void)
1316{
1317 return persistent_clock_exists;
1318}
1319
304529b1 1320/**
04d90890 1321 * timekeeping_inject_sleeptime64 - Adds suspend interval to timeekeeping values
1322 * @delta: pointer to a timespec64 delta value
304529b1 1323 *
2ee96632 1324 * This hook is for architectures that cannot support read_persistent_clock64
304529b1 1325 * because their RTC/persistent clock is only accessible when irqs are enabled.
0fa88cb4 1326 * and also don't have an effective nonstop clocksource.
304529b1
JS
1327 *
1328 * This function should only be called by rtc_resume(), and allows
1329 * a suspend offset to be injected into the timekeeping values.
1330 */
04d90890 1331void timekeeping_inject_sleeptime64(struct timespec64 *delta)
304529b1 1332{
3fdb14fd 1333 struct timekeeper *tk = &tk_core.timekeeper;
92c1d3ed 1334 unsigned long flags;
304529b1 1335
9a7a71b1 1336 raw_spin_lock_irqsave(&timekeeper_lock, flags);
3fdb14fd 1337 write_seqcount_begin(&tk_core.seq);
70471f2f 1338
4e250fdd 1339 timekeeping_forward_now(tk);
304529b1 1340
04d90890 1341 __timekeeping_inject_sleeptime(tk, delta);
304529b1 1342
780427f0 1343 timekeeping_update(tk, TK_CLEAR_NTP | TK_MIRROR | TK_CLOCK_WAS_SET);
304529b1 1344
3fdb14fd 1345 write_seqcount_end(&tk_core.seq);
9a7a71b1 1346 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
304529b1
JS
1347
1348 /* signal hrtimers about time change */
1349 clock_was_set();
1350}
7f298139 1351#endif
304529b1 1352
8524070b
JS
1353/**
1354 * timekeeping_resume - Resumes the generic timekeeping subsystem.
8524070b 1355 */
124cf911 1356void timekeeping_resume(void)
8524070b 1357{
3fdb14fd 1358 struct timekeeper *tk = &tk_core.timekeeper;
876e7881 1359 struct clocksource *clock = tk->tkr_mono.clock;
92c1d3ed 1360 unsigned long flags;
7d489d15 1361 struct timespec64 ts_new, ts_delta;
e445cf1c 1362 cycle_t cycle_now, cycle_delta;
d4f587c6 1363
0fa88cb4 1364 sleeptime_injected = false;
2ee96632 1365 read_persistent_clock64(&ts_new);
8524070b 1366
adc78e6b 1367 clockevents_resume();
d10ff3fb
TG
1368 clocksource_resume();
1369
9a7a71b1 1370 raw_spin_lock_irqsave(&timekeeper_lock, flags);
3fdb14fd 1371 write_seqcount_begin(&tk_core.seq);
8524070b 1372
e445cf1c
FT
1373 /*
1374 * After system resumes, we need to calculate the suspended time and
1375 * compensate it for the OS time. There are 3 sources that could be
1376 * used: Nonstop clocksource during suspend, persistent clock and rtc
1377 * device.
1378 *
1379 * One specific platform may have 1 or 2 or all of them, and the
1380 * preference will be:
1381 * suspend-nonstop clocksource -> persistent clock -> rtc
1382 * The less preferred source will only be tried if there is no better
1383 * usable source. The rtc part is handled separately in rtc core code.
1384 */
876e7881 1385 cycle_now = tk->tkr_mono.read(clock);
e445cf1c 1386 if ((clock->flags & CLOCK_SOURCE_SUSPEND_NONSTOP) &&
876e7881 1387 cycle_now > tk->tkr_mono.cycle_last) {
e445cf1c
FT
1388 u64 num, max = ULLONG_MAX;
1389 u32 mult = clock->mult;
1390 u32 shift = clock->shift;
1391 s64 nsec = 0;
1392
876e7881
PZ
1393 cycle_delta = clocksource_delta(cycle_now, tk->tkr_mono.cycle_last,
1394 tk->tkr_mono.mask);
e445cf1c
FT
1395
1396 /*
1397 * "cycle_delta * mutl" may cause 64 bits overflow, if the
1398 * suspended time is too long. In that case we need do the
1399 * 64 bits math carefully
1400 */
1401 do_div(max, mult);
1402 if (cycle_delta > max) {
1403 num = div64_u64(cycle_delta, max);
1404 nsec = (((u64) max * mult) >> shift) * num;
1405 cycle_delta -= num * max;
1406 }
1407 nsec += ((u64) cycle_delta * mult) >> shift;
1408
7d489d15 1409 ts_delta = ns_to_timespec64(nsec);
0fa88cb4 1410 sleeptime_injected = true;
7d489d15
JS
1411 } else if (timespec64_compare(&ts_new, &timekeeping_suspend_time) > 0) {
1412 ts_delta = timespec64_sub(ts_new, timekeeping_suspend_time);
0fa88cb4 1413 sleeptime_injected = true;
8524070b 1414 }
e445cf1c 1415
0fa88cb4 1416 if (sleeptime_injected)
e445cf1c
FT
1417 __timekeeping_inject_sleeptime(tk, &ts_delta);
1418
1419 /* Re-base the last cycle value */
876e7881 1420 tk->tkr_mono.cycle_last = cycle_now;
4a4ad80d
PZ
1421 tk->tkr_raw.cycle_last = cycle_now;
1422
4e250fdd 1423 tk->ntp_error = 0;
8524070b 1424 timekeeping_suspended = 0;
780427f0 1425 timekeeping_update(tk, TK_MIRROR | TK_CLOCK_WAS_SET);
3fdb14fd 1426 write_seqcount_end(&tk_core.seq);
9a7a71b1 1427 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
8524070b
JS
1428
1429 touch_softlockup_watchdog();
1430
4ffee521 1431 tick_resume();
b12a03ce 1432 hrtimers_resume();
8524070b
JS
1433}
1434
124cf911 1435int timekeeping_suspend(void)
8524070b 1436{
3fdb14fd 1437 struct timekeeper *tk = &tk_core.timekeeper;
92c1d3ed 1438 unsigned long flags;
7d489d15
JS
1439 struct timespec64 delta, delta_delta;
1440 static struct timespec64 old_delta;
8524070b 1441
2ee96632 1442 read_persistent_clock64(&timekeeping_suspend_time);
3be90950 1443
0d6bd995
ZM
1444 /*
1445 * On some systems the persistent_clock can not be detected at
1446 * timekeeping_init by its return value, so if we see a valid
1447 * value returned, update the persistent_clock_exists flag.
1448 */
1449 if (timekeeping_suspend_time.tv_sec || timekeeping_suspend_time.tv_nsec)
0fa88cb4 1450 persistent_clock_exists = true;
0d6bd995 1451
9a7a71b1 1452 raw_spin_lock_irqsave(&timekeeper_lock, flags);
3fdb14fd 1453 write_seqcount_begin(&tk_core.seq);
4e250fdd 1454 timekeeping_forward_now(tk);
8524070b 1455 timekeeping_suspended = 1;
cb33217b 1456
0fa88cb4 1457 if (persistent_clock_exists) {
cb33217b 1458 /*
264bb3f7
XP
1459 * To avoid drift caused by repeated suspend/resumes,
1460 * which each can add ~1 second drift error,
1461 * try to compensate so the difference in system time
1462 * and persistent_clock time stays close to constant.
cb33217b 1463 */
264bb3f7
XP
1464 delta = timespec64_sub(tk_xtime(tk), timekeeping_suspend_time);
1465 delta_delta = timespec64_sub(delta, old_delta);
1466 if (abs(delta_delta.tv_sec) >= 2) {
1467 /*
1468 * if delta_delta is too large, assume time correction
1469 * has occurred and set old_delta to the current delta.
1470 */
1471 old_delta = delta;
1472 } else {
1473 /* Otherwise try to adjust old_system to compensate */
1474 timekeeping_suspend_time =
1475 timespec64_add(timekeeping_suspend_time, delta_delta);
1476 }
cb33217b 1477 }
330a1617
JS
1478
1479 timekeeping_update(tk, TK_MIRROR);
060407ae 1480 halt_fast_timekeeper(tk);
3fdb14fd 1481 write_seqcount_end(&tk_core.seq);
9a7a71b1 1482 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
8524070b 1483
4ffee521 1484 tick_suspend();
c54a42b1 1485 clocksource_suspend();
adc78e6b 1486 clockevents_suspend();
8524070b
JS
1487
1488 return 0;
1489}
1490
1491/* sysfs resume/suspend bits for timekeeping */
e1a85b2c 1492static struct syscore_ops timekeeping_syscore_ops = {
8524070b
JS
1493 .resume = timekeeping_resume,
1494 .suspend = timekeeping_suspend,
8524070b
JS
1495};
1496
e1a85b2c 1497static int __init timekeeping_init_ops(void)
8524070b 1498{
e1a85b2c
RW
1499 register_syscore_ops(&timekeeping_syscore_ops);
1500 return 0;
8524070b 1501}
e1a85b2c 1502device_initcall(timekeeping_init_ops);
8524070b
JS
1503
1504/*
dc491596 1505 * Apply a multiplier adjustment to the timekeeper
8524070b 1506 */
dc491596
JS
1507static __always_inline void timekeeping_apply_adjustment(struct timekeeper *tk,
1508 s64 offset,
1509 bool negative,
1510 int adj_scale)
8524070b 1511{
dc491596
JS
1512 s64 interval = tk->cycle_interval;
1513 s32 mult_adj = 1;
8524070b 1514
dc491596
JS
1515 if (negative) {
1516 mult_adj = -mult_adj;
1517 interval = -interval;
1518 offset = -offset;
1d17d174 1519 }
dc491596
JS
1520 mult_adj <<= adj_scale;
1521 interval <<= adj_scale;
1522 offset <<= adj_scale;
8524070b 1523
c2bc1111
JS
1524 /*
1525 * So the following can be confusing.
1526 *
dc491596 1527 * To keep things simple, lets assume mult_adj == 1 for now.
c2bc1111 1528 *
dc491596 1529 * When mult_adj != 1, remember that the interval and offset values
c2bc1111
JS
1530 * have been appropriately scaled so the math is the same.
1531 *
1532 * The basic idea here is that we're increasing the multiplier
1533 * by one, this causes the xtime_interval to be incremented by
1534 * one cycle_interval. This is because:
1535 * xtime_interval = cycle_interval * mult
1536 * So if mult is being incremented by one:
1537 * xtime_interval = cycle_interval * (mult + 1)
1538 * Its the same as:
1539 * xtime_interval = (cycle_interval * mult) + cycle_interval
1540 * Which can be shortened to:
1541 * xtime_interval += cycle_interval
1542 *
1543 * So offset stores the non-accumulated cycles. Thus the current
1544 * time (in shifted nanoseconds) is:
1545 * now = (offset * adj) + xtime_nsec
1546 * Now, even though we're adjusting the clock frequency, we have
1547 * to keep time consistent. In other words, we can't jump back
1548 * in time, and we also want to avoid jumping forward in time.
1549 *
1550 * So given the same offset value, we need the time to be the same
1551 * both before and after the freq adjustment.
1552 * now = (offset * adj_1) + xtime_nsec_1
1553 * now = (offset * adj_2) + xtime_nsec_2
1554 * So:
1555 * (offset * adj_1) + xtime_nsec_1 =
1556 * (offset * adj_2) + xtime_nsec_2
1557 * And we know:
1558 * adj_2 = adj_1 + 1
1559 * So:
1560 * (offset * adj_1) + xtime_nsec_1 =
1561 * (offset * (adj_1+1)) + xtime_nsec_2
1562 * (offset * adj_1) + xtime_nsec_1 =
1563 * (offset * adj_1) + offset + xtime_nsec_2
1564 * Canceling the sides:
1565 * xtime_nsec_1 = offset + xtime_nsec_2
1566 * Which gives us:
1567 * xtime_nsec_2 = xtime_nsec_1 - offset
1568 * Which simplfies to:
1569 * xtime_nsec -= offset
1570 *
1571 * XXX - TODO: Doc ntp_error calculation.
1572 */
876e7881 1573 if ((mult_adj > 0) && (tk->tkr_mono.mult + mult_adj < mult_adj)) {
6067dc5a 1574 /* NTP adjustment caused clocksource mult overflow */
1575 WARN_ON_ONCE(1);
1576 return;
1577 }
1578
876e7881 1579 tk->tkr_mono.mult += mult_adj;
f726a697 1580 tk->xtime_interval += interval;
876e7881 1581 tk->tkr_mono.xtime_nsec -= offset;
f726a697 1582 tk->ntp_error -= (interval - offset) << tk->ntp_error_shift;
dc491596
JS
1583}
1584
1585/*
1586 * Calculate the multiplier adjustment needed to match the frequency
1587 * specified by NTP
1588 */
1589static __always_inline void timekeeping_freqadjust(struct timekeeper *tk,
1590 s64 offset)
1591{
1592 s64 interval = tk->cycle_interval;
1593 s64 xinterval = tk->xtime_interval;
1594 s64 tick_error;
1595 bool negative;
1596 u32 adj;
1597
1598 /* Remove any current error adj from freq calculation */
1599 if (tk->ntp_err_mult)
1600 xinterval -= tk->cycle_interval;
1601
375f45b5
JS
1602 tk->ntp_tick = ntp_tick_length();
1603
dc491596
JS
1604 /* Calculate current error per tick */
1605 tick_error = ntp_tick_length() >> tk->ntp_error_shift;
1606 tick_error -= (xinterval + tk->xtime_remainder);
1607
1608 /* Don't worry about correcting it if its small */
1609 if (likely((tick_error >= 0) && (tick_error <= interval)))
1610 return;
1611
1612 /* preserve the direction of correction */
1613 negative = (tick_error < 0);
1614
1615 /* Sort out the magnitude of the correction */
79211c8e 1616 tick_error = abs(tick_error);
dc491596
JS
1617 for (adj = 0; tick_error > interval; adj++)
1618 tick_error >>= 1;
1619
1620 /* scale the corrections */
1621 timekeeping_apply_adjustment(tk, offset, negative, adj);
1622}
1623
1624/*
1625 * Adjust the timekeeper's multiplier to the correct frequency
1626 * and also to reduce the accumulated error value.
1627 */
1628static void timekeeping_adjust(struct timekeeper *tk, s64 offset)
1629{
1630 /* Correct for the current frequency error */
1631 timekeeping_freqadjust(tk, offset);
1632
1633 /* Next make a small adjustment to fix any cumulative error */
1634 if (!tk->ntp_err_mult && (tk->ntp_error > 0)) {
1635 tk->ntp_err_mult = 1;
1636 timekeeping_apply_adjustment(tk, offset, 0, 0);
1637 } else if (tk->ntp_err_mult && (tk->ntp_error <= 0)) {
1638 /* Undo any existing error adjustment */
1639 timekeeping_apply_adjustment(tk, offset, 1, 0);
1640 tk->ntp_err_mult = 0;
1641 }
1642
876e7881
PZ
1643 if (unlikely(tk->tkr_mono.clock->maxadj &&
1644 (abs(tk->tkr_mono.mult - tk->tkr_mono.clock->mult)
1645 > tk->tkr_mono.clock->maxadj))) {
dc491596
JS
1646 printk_once(KERN_WARNING
1647 "Adjusting %s more than 11%% (%ld vs %ld)\n",
876e7881
PZ
1648 tk->tkr_mono.clock->name, (long)tk->tkr_mono.mult,
1649 (long)tk->tkr_mono.clock->mult + tk->tkr_mono.clock->maxadj);
dc491596 1650 }
2a8c0883
JS
1651
1652 /*
1653 * It may be possible that when we entered this function, xtime_nsec
1654 * was very small. Further, if we're slightly speeding the clocksource
1655 * in the code above, its possible the required corrective factor to
1656 * xtime_nsec could cause it to underflow.
1657 *
1658 * Now, since we already accumulated the second, cannot simply roll
1659 * the accumulated second back, since the NTP subsystem has been
1660 * notified via second_overflow. So instead we push xtime_nsec forward
1661 * by the amount we underflowed, and add that amount into the error.
1662 *
1663 * We'll correct this error next time through this function, when
1664 * xtime_nsec is not as small.
1665 */
876e7881
PZ
1666 if (unlikely((s64)tk->tkr_mono.xtime_nsec < 0)) {
1667 s64 neg = -(s64)tk->tkr_mono.xtime_nsec;
1668 tk->tkr_mono.xtime_nsec = 0;
f726a697 1669 tk->ntp_error += neg << tk->ntp_error_shift;
2a8c0883 1670 }
8524070b
JS
1671}
1672
1f4f9487
JS
1673/**
1674 * accumulate_nsecs_to_secs - Accumulates nsecs into secs
1675 *
571af55a 1676 * Helper function that accumulates the nsecs greater than a second
1f4f9487
JS
1677 * from the xtime_nsec field to the xtime_secs field.
1678 * It also calls into the NTP code to handle leapsecond processing.
1679 *
1680 */
780427f0 1681static inline unsigned int accumulate_nsecs_to_secs(struct timekeeper *tk)
1f4f9487 1682{
876e7881 1683 u64 nsecps = (u64)NSEC_PER_SEC << tk->tkr_mono.shift;
5258d3f2 1684 unsigned int clock_set = 0;
1f4f9487 1685
876e7881 1686 while (tk->tkr_mono.xtime_nsec >= nsecps) {
1f4f9487
JS
1687 int leap;
1688
876e7881 1689 tk->tkr_mono.xtime_nsec -= nsecps;
1f4f9487
JS
1690 tk->xtime_sec++;
1691
1692 /* Figure out if its a leap sec and apply if needed */
1693 leap = second_overflow(tk->xtime_sec);
6d0ef903 1694 if (unlikely(leap)) {
7d489d15 1695 struct timespec64 ts;
6d0ef903
JS
1696
1697 tk->xtime_sec += leap;
1f4f9487 1698
6d0ef903
JS
1699 ts.tv_sec = leap;
1700 ts.tv_nsec = 0;
1701 tk_set_wall_to_mono(tk,
7d489d15 1702 timespec64_sub(tk->wall_to_monotonic, ts));
6d0ef903 1703
cc244dda
JS
1704 __timekeeping_set_tai_offset(tk, tk->tai_offset - leap);
1705
5258d3f2 1706 clock_set = TK_CLOCK_WAS_SET;
6d0ef903 1707 }
1f4f9487 1708 }
5258d3f2 1709 return clock_set;
1f4f9487
JS
1710}
1711
a092ff0f
JS
1712/**
1713 * logarithmic_accumulation - shifted accumulation of cycles
1714 *
1715 * This functions accumulates a shifted interval of cycles into
1716 * into a shifted interval nanoseconds. Allows for O(log) accumulation
1717 * loop.
1718 *
1719 * Returns the unconsumed cycles.
1720 */
f726a697 1721static cycle_t logarithmic_accumulation(struct timekeeper *tk, cycle_t offset,
5258d3f2
JS
1722 u32 shift,
1723 unsigned int *clock_set)
a092ff0f 1724{
23a9537a 1725 cycle_t interval = tk->cycle_interval << shift;
deda2e81 1726 u64 raw_nsecs;
a092ff0f 1727
571af55a 1728 /* If the offset is smaller than a shifted interval, do nothing */
23a9537a 1729 if (offset < interval)
a092ff0f
JS
1730 return offset;
1731
1732 /* Accumulate one shifted interval */
23a9537a 1733 offset -= interval;
876e7881 1734 tk->tkr_mono.cycle_last += interval;
4a4ad80d 1735 tk->tkr_raw.cycle_last += interval;
a092ff0f 1736
876e7881 1737 tk->tkr_mono.xtime_nsec += tk->xtime_interval << shift;
5258d3f2 1738 *clock_set |= accumulate_nsecs_to_secs(tk);
a092ff0f 1739
deda2e81 1740 /* Accumulate raw time */
5b3900cd 1741 raw_nsecs = (u64)tk->raw_interval << shift;
f726a697 1742 raw_nsecs += tk->raw_time.tv_nsec;
c7dcf87a
JS
1743 if (raw_nsecs >= NSEC_PER_SEC) {
1744 u64 raw_secs = raw_nsecs;
1745 raw_nsecs = do_div(raw_secs, NSEC_PER_SEC);
f726a697 1746 tk->raw_time.tv_sec += raw_secs;
a092ff0f 1747 }
f726a697 1748 tk->raw_time.tv_nsec = raw_nsecs;
a092ff0f
JS
1749
1750 /* Accumulate error between NTP and clock interval */
375f45b5 1751 tk->ntp_error += tk->ntp_tick << shift;
f726a697
JS
1752 tk->ntp_error -= (tk->xtime_interval + tk->xtime_remainder) <<
1753 (tk->ntp_error_shift + shift);
a092ff0f
JS
1754
1755 return offset;
1756}
1757
8524070b
JS
1758/**
1759 * update_wall_time - Uses the current clocksource to increment the wall time
1760 *
8524070b 1761 */
47a1b796 1762void update_wall_time(void)
8524070b 1763{
3fdb14fd 1764 struct timekeeper *real_tk = &tk_core.timekeeper;
48cdc135 1765 struct timekeeper *tk = &shadow_timekeeper;
8524070b 1766 cycle_t offset;
a092ff0f 1767 int shift = 0, maxshift;
5258d3f2 1768 unsigned int clock_set = 0;
70471f2f
JS
1769 unsigned long flags;
1770
9a7a71b1 1771 raw_spin_lock_irqsave(&timekeeper_lock, flags);
8524070b
JS
1772
1773 /* Make sure we're fully resumed: */
1774 if (unlikely(timekeeping_suspended))
70471f2f 1775 goto out;
8524070b 1776
592913ec 1777#ifdef CONFIG_ARCH_USES_GETTIMEOFFSET
48cdc135 1778 offset = real_tk->cycle_interval;
592913ec 1779#else
876e7881
PZ
1780 offset = clocksource_delta(tk->tkr_mono.read(tk->tkr_mono.clock),
1781 tk->tkr_mono.cycle_last, tk->tkr_mono.mask);
8524070b 1782#endif
8524070b 1783
bf2ac312 1784 /* Check if there's really nothing to do */
48cdc135 1785 if (offset < real_tk->cycle_interval)
bf2ac312
JS
1786 goto out;
1787
3c17ad19
JS
1788 /* Do some additional sanity checking */
1789 timekeeping_check_update(real_tk, offset);
1790
a092ff0f
JS
1791 /*
1792 * With NO_HZ we may have to accumulate many cycle_intervals
1793 * (think "ticks") worth of time at once. To do this efficiently,
1794 * we calculate the largest doubling multiple of cycle_intervals
88b28adf 1795 * that is smaller than the offset. We then accumulate that
a092ff0f
JS
1796 * chunk in one go, and then try to consume the next smaller
1797 * doubled multiple.
8524070b 1798 */
4e250fdd 1799 shift = ilog2(offset) - ilog2(tk->cycle_interval);
a092ff0f 1800 shift = max(0, shift);
88b28adf 1801 /* Bound shift to one less than what overflows tick_length */
ea7cf49a 1802 maxshift = (64 - (ilog2(ntp_tick_length())+1)) - 1;
a092ff0f 1803 shift = min(shift, maxshift);
4e250fdd 1804 while (offset >= tk->cycle_interval) {
5258d3f2
JS
1805 offset = logarithmic_accumulation(tk, offset, shift,
1806 &clock_set);
4e250fdd 1807 if (offset < tk->cycle_interval<<shift)
830ec045 1808 shift--;
8524070b
JS
1809 }
1810
1811 /* correct the clock when NTP error is too big */
4e250fdd 1812 timekeeping_adjust(tk, offset);
8524070b 1813
6a867a39 1814 /*
92bb1fcf
JS
1815 * XXX This can be killed once everyone converts
1816 * to the new update_vsyscall.
1817 */
1818 old_vsyscall_fixup(tk);
8524070b 1819
6a867a39
JS
1820 /*
1821 * Finally, make sure that after the rounding
1e75fa8b 1822 * xtime_nsec isn't larger than NSEC_PER_SEC
6a867a39 1823 */
5258d3f2 1824 clock_set |= accumulate_nsecs_to_secs(tk);
83f57a11 1825
3fdb14fd 1826 write_seqcount_begin(&tk_core.seq);
48cdc135
TG
1827 /*
1828 * Update the real timekeeper.
1829 *
1830 * We could avoid this memcpy by switching pointers, but that
1831 * requires changes to all other timekeeper usage sites as
1832 * well, i.e. move the timekeeper pointer getter into the
1833 * spinlocked/seqcount protected sections. And we trade this
3fdb14fd 1834 * memcpy under the tk_core.seq against one before we start
48cdc135
TG
1835 * updating.
1836 */
906c5557 1837 timekeeping_update(tk, clock_set);
48cdc135 1838 memcpy(real_tk, tk, sizeof(*tk));
906c5557 1839 /* The memcpy must come last. Do not put anything here! */
3fdb14fd 1840 write_seqcount_end(&tk_core.seq);
ca4523cd 1841out:
9a7a71b1 1842 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
47a1b796 1843 if (clock_set)
cab5e127
JS
1844 /* Have to call _delayed version, since in irq context*/
1845 clock_was_set_delayed();
8524070b 1846}
7c3f1a57
TJ
1847
1848/**
d08c0cdd
JS
1849 * getboottime64 - Return the real time of system boot.
1850 * @ts: pointer to the timespec64 to be set
7c3f1a57 1851 *
d08c0cdd 1852 * Returns the wall-time of boot in a timespec64.
7c3f1a57
TJ
1853 *
1854 * This is based on the wall_to_monotonic offset and the total suspend
1855 * time. Calls to settimeofday will affect the value returned (which
1856 * basically means that however wrong your real time clock is at boot time,
1857 * you get the right time here).
1858 */
d08c0cdd 1859void getboottime64(struct timespec64 *ts)
7c3f1a57 1860{
3fdb14fd 1861 struct timekeeper *tk = &tk_core.timekeeper;
02cba159
TG
1862 ktime_t t = ktime_sub(tk->offs_real, tk->offs_boot);
1863
d08c0cdd 1864 *ts = ktime_to_timespec64(t);
7c3f1a57 1865}
d08c0cdd 1866EXPORT_SYMBOL_GPL(getboottime64);
7c3f1a57 1867
17c38b74
JS
1868unsigned long get_seconds(void)
1869{
3fdb14fd 1870 struct timekeeper *tk = &tk_core.timekeeper;
4e250fdd
JS
1871
1872 return tk->xtime_sec;
17c38b74
JS
1873}
1874EXPORT_SYMBOL(get_seconds);
1875
da15cfda
JS
1876struct timespec __current_kernel_time(void)
1877{
3fdb14fd 1878 struct timekeeper *tk = &tk_core.timekeeper;
4e250fdd 1879
7d489d15 1880 return timespec64_to_timespec(tk_xtime(tk));
da15cfda 1881}
17c38b74 1882
8758a240 1883struct timespec64 current_kernel_time64(void)
2c6b47de 1884{
3fdb14fd 1885 struct timekeeper *tk = &tk_core.timekeeper;
7d489d15 1886 struct timespec64 now;
2c6b47de
JS
1887 unsigned long seq;
1888
1889 do {
3fdb14fd 1890 seq = read_seqcount_begin(&tk_core.seq);
83f57a11 1891
4e250fdd 1892 now = tk_xtime(tk);
3fdb14fd 1893 } while (read_seqcount_retry(&tk_core.seq, seq));
2c6b47de 1894
8758a240 1895 return now;
2c6b47de 1896}
8758a240 1897EXPORT_SYMBOL(current_kernel_time64);
da15cfda 1898
334334b5 1899struct timespec64 get_monotonic_coarse64(void)
da15cfda 1900{
3fdb14fd 1901 struct timekeeper *tk = &tk_core.timekeeper;
7d489d15 1902 struct timespec64 now, mono;
da15cfda
JS
1903 unsigned long seq;
1904
1905 do {
3fdb14fd 1906 seq = read_seqcount_begin(&tk_core.seq);
83f57a11 1907
4e250fdd
JS
1908 now = tk_xtime(tk);
1909 mono = tk->wall_to_monotonic;
3fdb14fd 1910 } while (read_seqcount_retry(&tk_core.seq, seq));
da15cfda 1911
7d489d15 1912 set_normalized_timespec64(&now, now.tv_sec + mono.tv_sec,
da15cfda 1913 now.tv_nsec + mono.tv_nsec);
7d489d15 1914
334334b5 1915 return now;
da15cfda 1916}
871cf1e5
TH
1917
1918/*
d6ad4187 1919 * Must hold jiffies_lock
871cf1e5
TH
1920 */
1921void do_timer(unsigned long ticks)
1922{
1923 jiffies_64 += ticks;
871cf1e5
TH
1924 calc_global_load(ticks);
1925}
48cf76f7 1926
f6c06abf 1927/**
76f41088 1928 * ktime_get_update_offsets_now - hrtimer helper
868a3e91 1929 * @cwsseq: pointer to check and store the clock was set sequence number
f6c06abf
TG
1930 * @offs_real: pointer to storage for monotonic -> realtime offset
1931 * @offs_boot: pointer to storage for monotonic -> boottime offset
b7bc50e4 1932 * @offs_tai: pointer to storage for monotonic -> clock tai offset
f6c06abf 1933 *
868a3e91
TG
1934 * Returns current monotonic time and updates the offsets if the
1935 * sequence number in @cwsseq and timekeeper.clock_was_set_seq are
1936 * different.
1937 *
b7bc50e4 1938 * Called from hrtimer_interrupt() or retrigger_next_event()
f6c06abf 1939 */
868a3e91
TG
1940ktime_t ktime_get_update_offsets_now(unsigned int *cwsseq, ktime_t *offs_real,
1941 ktime_t *offs_boot, ktime_t *offs_tai)
f6c06abf 1942{
3fdb14fd 1943 struct timekeeper *tk = &tk_core.timekeeper;
f6c06abf 1944 unsigned int seq;
a37c0aad
TG
1945 ktime_t base;
1946 u64 nsecs;
f6c06abf
TG
1947
1948 do {
3fdb14fd 1949 seq = read_seqcount_begin(&tk_core.seq);
f6c06abf 1950
876e7881
PZ
1951 base = tk->tkr_mono.base;
1952 nsecs = timekeeping_get_ns(&tk->tkr_mono);
833f32d7
JS
1953 base = ktime_add_ns(base, nsecs);
1954
868a3e91
TG
1955 if (*cwsseq != tk->clock_was_set_seq) {
1956 *cwsseq = tk->clock_was_set_seq;
1957 *offs_real = tk->offs_real;
1958 *offs_boot = tk->offs_boot;
1959 *offs_tai = tk->offs_tai;
1960 }
833f32d7
JS
1961
1962 /* Handle leapsecond insertion adjustments */
1963 if (unlikely(base.tv64 >= tk->next_leap_ktime.tv64))
1964 *offs_real = ktime_sub(tk->offs_real, ktime_set(1, 0));
1965
3fdb14fd 1966 } while (read_seqcount_retry(&tk_core.seq, seq));
f6c06abf 1967
833f32d7 1968 return base;
f6c06abf 1969}
f6c06abf 1970
aa6f9c59
JS
1971/**
1972 * do_adjtimex() - Accessor function to NTP __do_adjtimex function
1973 */
1974int do_adjtimex(struct timex *txc)
1975{
3fdb14fd 1976 struct timekeeper *tk = &tk_core.timekeeper;
06c017fd 1977 unsigned long flags;
7d489d15 1978 struct timespec64 ts;
4e8f8b34 1979 s32 orig_tai, tai;
e4085693
JS
1980 int ret;
1981
1982 /* Validate the data before disabling interrupts */
1983 ret = ntp_validate_timex(txc);
1984 if (ret)
1985 return ret;
1986
cef90377
JS
1987 if (txc->modes & ADJ_SETOFFSET) {
1988 struct timespec delta;
1989 delta.tv_sec = txc->time.tv_sec;
1990 delta.tv_nsec = txc->time.tv_usec;
1991 if (!(txc->modes & ADJ_NANO))
1992 delta.tv_nsec *= 1000;
1993 ret = timekeeping_inject_offset(&delta);
1994 if (ret)
1995 return ret;
1996 }
1997
d6d29896 1998 getnstimeofday64(&ts);
87ace39b 1999
06c017fd 2000 raw_spin_lock_irqsave(&timekeeper_lock, flags);
3fdb14fd 2001 write_seqcount_begin(&tk_core.seq);
06c017fd 2002
4e8f8b34 2003 orig_tai = tai = tk->tai_offset;
87ace39b 2004 ret = __do_adjtimex(txc, &ts, &tai);
aa6f9c59 2005
4e8f8b34
JS
2006 if (tai != orig_tai) {
2007 __timekeeping_set_tai_offset(tk, tai);
f55c0760 2008 timekeeping_update(tk, TK_MIRROR | TK_CLOCK_WAS_SET);
4e8f8b34 2009 }
833f32d7
JS
2010 tk_update_leap_state(tk);
2011
3fdb14fd 2012 write_seqcount_end(&tk_core.seq);
06c017fd
JS
2013 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
2014
6fdda9a9
JS
2015 if (tai != orig_tai)
2016 clock_was_set();
2017
7bd36014
JS
2018 ntp_notify_cmos_timer();
2019
87ace39b
JS
2020 return ret;
2021}
aa6f9c59
JS
2022
2023#ifdef CONFIG_NTP_PPS
2024/**
2025 * hardpps() - Accessor function to NTP __hardpps function
2026 */
7ec88e4b 2027void hardpps(const struct timespec64 *phase_ts, const struct timespec64 *raw_ts)
aa6f9c59 2028{
06c017fd
JS
2029 unsigned long flags;
2030
2031 raw_spin_lock_irqsave(&timekeeper_lock, flags);
3fdb14fd 2032 write_seqcount_begin(&tk_core.seq);
06c017fd 2033
aa6f9c59 2034 __hardpps(phase_ts, raw_ts);
06c017fd 2035
3fdb14fd 2036 write_seqcount_end(&tk_core.seq);
06c017fd 2037 raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
aa6f9c59
JS
2038}
2039EXPORT_SYMBOL(hardpps);
2040#endif
2041
f0af911a
TH
2042/**
2043 * xtime_update() - advances the timekeeping infrastructure
2044 * @ticks: number of ticks, that have elapsed since the last call.
2045 *
2046 * Must be called with interrupts disabled.
2047 */
2048void xtime_update(unsigned long ticks)
2049{
d6ad4187 2050 write_seqlock(&jiffies_lock);
f0af911a 2051 do_timer(ticks);
d6ad4187 2052 write_sequnlock(&jiffies_lock);
47a1b796 2053 update_wall_time();
f0af911a 2054}