mm: move MAP_SYNC to asm-generic/mman-common.h
[linux-2.6-block.git] / kernel / time / time.c
CommitLineData
35728b82 1// SPDX-License-Identifier: GPL-2.0
1da177e4 2/*
1da177e4
LT
3 * Copyright (C) 1991, 1992 Linus Torvalds
4 *
58c5fc2b
TG
5 * This file contains the interface functions for the various time related
6 * system calls: time, stime, gettimeofday, settimeofday, adjtime
7 *
8 * Modification history:
6fa6c3b1 9 *
1da177e4 10 * 1993-09-02 Philip Gladstone
0a0fca9d 11 * Created file with time related functions from sched/core.c and adjtimex()
1da177e4
LT
12 * 1993-10-08 Torsten Duwe
13 * adjtime interface update and CMOS clock write code
14 * 1995-08-13 Torsten Duwe
15 * kernel PLL updated to 1994-12-13 specs (rfc-1589)
16 * 1999-01-16 Ulrich Windl
17 * Introduced error checking for many cases in adjtimex().
18 * Updated NTP code according to technical memorandum Jan '96
19 * "A Kernel Model for Precision Timekeeping" by Dave Mills
20 * Allow time_constant larger than MAXTC(6) for NTP v4 (MAXTC == 10)
21 * (Even though the technical memorandum forbids it)
22 * 2004-07-14 Christoph Lameter
23 * Added getnstimeofday to allow the posix timer functions to return
24 * with nanosecond accuracy
25 */
26
9984de1a 27#include <linux/export.h>
abcbcb80 28#include <linux/kernel.h>
1da177e4 29#include <linux/timex.h>
c59ede7b 30#include <linux/capability.h>
189374ae 31#include <linux/timekeeper_internal.h>
1da177e4 32#include <linux/errno.h>
1da177e4
LT
33#include <linux/syscalls.h>
34#include <linux/security.h>
35#include <linux/fs.h>
71abb3af 36#include <linux/math64.h>
e3d5a27d 37#include <linux/ptrace.h>
1da177e4 38
7c0f6ba6 39#include <linux/uaccess.h>
3a4d44b6 40#include <linux/compat.h>
1da177e4
LT
41#include <asm/unistd.h>
42
0a227985 43#include <generated/timeconst.h>
8b094cd0 44#include "timekeeping.h"
bdc80787 45
6fa6c3b1 46/*
1da177e4
LT
47 * The timezone where the local system is located. Used as a default by some
48 * programs who obtain this value by using gettimeofday.
49 */
50struct timezone sys_tz;
51
52EXPORT_SYMBOL(sys_tz);
53
54#ifdef __ARCH_WANT_SYS_TIME
55
56/*
57 * sys_time() can be implemented in user-level using
58 * sys_gettimeofday(). Is this for backwards compatibility? If so,
59 * why not move it into the appropriate arch directory (for those
60 * architectures that need it).
61 */
58fd3aa2 62SYSCALL_DEFINE1(time, time_t __user *, tloc)
1da177e4 63{
f5a89295 64 time_t i = (time_t)ktime_get_real_seconds();
1da177e4
LT
65
66 if (tloc) {
20082208 67 if (put_user(i,tloc))
e3d5a27d 68 return -EFAULT;
1da177e4 69 }
e3d5a27d 70 force_successful_syscall_return();
1da177e4
LT
71 return i;
72}
73
74/*
75 * sys_stime() can be implemented in user-level using
76 * sys_settimeofday(). Is this for backwards compatibility? If so,
77 * why not move it into the appropriate arch directory (for those
78 * architectures that need it).
79 */
6fa6c3b1 80
58fd3aa2 81SYSCALL_DEFINE1(stime, time_t __user *, tptr)
1da177e4 82{
4eb1bca1 83 struct timespec64 tv;
1da177e4
LT
84 int err;
85
86 if (get_user(tv.tv_sec, tptr))
87 return -EFAULT;
88
89 tv.tv_nsec = 0;
90
4eb1bca1 91 err = security_settime64(&tv, NULL);
1da177e4
LT
92 if (err)
93 return err;
94
4eb1bca1 95 do_settimeofday64(&tv);
1da177e4
LT
96 return 0;
97}
98
99#endif /* __ARCH_WANT_SYS_TIME */
100
8dabe724 101#ifdef CONFIG_COMPAT_32BIT_TIME
d33c577c 102#ifdef __ARCH_WANT_SYS_TIME32
b180db2c 103
9afc5eee 104/* old_time32_t is a 32 bit "long" and needs to get converted. */
8dabe724 105SYSCALL_DEFINE1(time32, old_time32_t __user *, tloc)
b180db2c 106{
9afc5eee 107 old_time32_t i;
b180db2c 108
9afc5eee 109 i = (old_time32_t)ktime_get_real_seconds();
b180db2c
AV
110
111 if (tloc) {
112 if (put_user(i,tloc))
113 return -EFAULT;
114 }
115 force_successful_syscall_return();
116 return i;
117}
118
8dabe724 119SYSCALL_DEFINE1(stime32, old_time32_t __user *, tptr)
b180db2c 120{
4eb1bca1 121 struct timespec64 tv;
b180db2c
AV
122 int err;
123
124 if (get_user(tv.tv_sec, tptr))
125 return -EFAULT;
126
127 tv.tv_nsec = 0;
128
4eb1bca1 129 err = security_settime64(&tv, NULL);
b180db2c
AV
130 if (err)
131 return err;
132
4eb1bca1 133 do_settimeofday64(&tv);
b180db2c
AV
134 return 0;
135}
136
d33c577c 137#endif /* __ARCH_WANT_SYS_TIME32 */
b180db2c
AV
138#endif
139
58fd3aa2
HC
140SYSCALL_DEFINE2(gettimeofday, struct timeval __user *, tv,
141 struct timezone __user *, tz)
1da177e4
LT
142{
143 if (likely(tv != NULL)) {
33e26418
AB
144 struct timespec64 ts;
145
146 ktime_get_real_ts64(&ts);
147 if (put_user(ts.tv_sec, &tv->tv_sec) ||
148 put_user(ts.tv_nsec / 1000, &tv->tv_usec))
1da177e4
LT
149 return -EFAULT;
150 }
151 if (unlikely(tz != NULL)) {
152 if (copy_to_user(tz, &sys_tz, sizeof(sys_tz)))
153 return -EFAULT;
154 }
155 return 0;
156}
157
1da177e4
LT
158/*
159 * In case for some reason the CMOS clock has not already been running
160 * in UTC, but in some local time: The first time we set the timezone,
161 * we will warp the clock so that it is ticking UTC time instead of
162 * local time. Presumably, if someone is setting the timezone then we
163 * are running in an environment where the programs understand about
164 * timezones. This should be done at boot time in the /etc/rc script,
165 * as soon as possible, so that the clock can be set right. Otherwise,
166 * various programs will get confused when the clock gets warped.
167 */
168
86d34732 169int do_sys_settimeofday64(const struct timespec64 *tv, const struct timezone *tz)
1da177e4
LT
170{
171 static int firsttime = 1;
172 int error = 0;
173
7a8e61f8 174 if (tv && !timespec64_valid_settod(tv))
718bcceb
TG
175 return -EINVAL;
176
86d34732 177 error = security_settime64(tv, tz);
1da177e4
LT
178 if (error)
179 return error;
180
181 if (tz) {
6f7d7984
SL
182 /* Verify we're witin the +-15 hrs range */
183 if (tz->tz_minuteswest > 15*60 || tz->tz_minuteswest < -15*60)
184 return -EINVAL;
185
1da177e4 186 sys_tz = *tz;
2c622148 187 update_vsyscall_tz();
1da177e4
LT
188 if (firsttime) {
189 firsttime = 0;
190 if (!tv)
e0956dcc 191 timekeeping_warp_clock();
1da177e4
LT
192 }
193 }
194 if (tv)
86d34732 195 return do_settimeofday64(tv);
1da177e4
LT
196 return 0;
197}
198
58fd3aa2
HC
199SYSCALL_DEFINE2(settimeofday, struct timeval __user *, tv,
200 struct timezone __user *, tz)
1da177e4 201{
2ac00f17 202 struct timespec64 new_ts;
1da177e4 203 struct timeval user_tv;
1da177e4
LT
204 struct timezone new_tz;
205
206 if (tv) {
207 if (copy_from_user(&user_tv, tv, sizeof(*tv)))
208 return -EFAULT;
6ada1fc0
SL
209
210 if (!timeval_valid(&user_tv))
211 return -EINVAL;
212
1da177e4
LT
213 new_ts.tv_sec = user_tv.tv_sec;
214 new_ts.tv_nsec = user_tv.tv_usec * NSEC_PER_USEC;
215 }
216 if (tz) {
217 if (copy_from_user(&new_tz, tz, sizeof(*tz)))
218 return -EFAULT;
219 }
220
2ac00f17 221 return do_sys_settimeofday64(tv ? &new_ts : NULL, tz ? &new_tz : NULL);
1da177e4
LT
222}
223
2b2d0285 224#ifdef CONFIG_COMPAT
9afc5eee 225COMPAT_SYSCALL_DEFINE2(gettimeofday, struct old_timeval32 __user *, tv,
2b2d0285
AV
226 struct timezone __user *, tz)
227{
228 if (tv) {
33e26418 229 struct timespec64 ts;
2b2d0285 230
33e26418
AB
231 ktime_get_real_ts64(&ts);
232 if (put_user(ts.tv_sec, &tv->tv_sec) ||
233 put_user(ts.tv_nsec / 1000, &tv->tv_usec))
2b2d0285
AV
234 return -EFAULT;
235 }
236 if (tz) {
237 if (copy_to_user(tz, &sys_tz, sizeof(sys_tz)))
238 return -EFAULT;
239 }
240
241 return 0;
242}
243
9afc5eee 244COMPAT_SYSCALL_DEFINE2(settimeofday, struct old_timeval32 __user *, tv,
2b2d0285
AV
245 struct timezone __user *, tz)
246{
247 struct timespec64 new_ts;
248 struct timeval user_tv;
249 struct timezone new_tz;
250
251 if (tv) {
252 if (compat_get_timeval(&user_tv, tv))
253 return -EFAULT;
9176ab1b 254
255 if (!timeval_valid(&user_tv))
256 return -EINVAL;
257
2b2d0285
AV
258 new_ts.tv_sec = user_tv.tv_sec;
259 new_ts.tv_nsec = user_tv.tv_usec * NSEC_PER_USEC;
260 }
261 if (tz) {
262 if (copy_from_user(&new_tz, tz, sizeof(*tz)))
263 return -EFAULT;
264 }
265
266 return do_sys_settimeofday64(tv ? &new_ts : NULL, tz ? &new_tz : NULL);
267}
268#endif
269
3876ced4
DD
270#if !defined(CONFIG_64BIT_TIME) || defined(CONFIG_64BIT)
271SYSCALL_DEFINE1(adjtimex, struct __kernel_timex __user *, txc_p)
1da177e4 272{
ead25417 273 struct __kernel_timex txc; /* Local copy of parameter */
1da177e4
LT
274 int ret;
275
276 /* Copy the user data space into the kernel copy
277 * structure. But bear in mind that the structures
278 * may change
279 */
ead25417 280 if (copy_from_user(&txc, txc_p, sizeof(struct __kernel_timex)))
1da177e4
LT
281 return -EFAULT;
282 ret = do_adjtimex(&txc);
ead25417 283 return copy_to_user(txc_p, &txc, sizeof(struct __kernel_timex)) ? -EFAULT : ret;
1da177e4 284}
3876ced4 285#endif
1da177e4 286
4d5f007e 287#ifdef CONFIG_COMPAT_32BIT_TIME
ead25417 288int get_old_timex32(struct __kernel_timex *txc, const struct old_timex32 __user *utp)
4d5f007e
AB
289{
290 struct old_timex32 tx32;
291
ead25417 292 memset(txc, 0, sizeof(struct __kernel_timex));
4d5f007e
AB
293 if (copy_from_user(&tx32, utp, sizeof(struct old_timex32)))
294 return -EFAULT;
295
296 txc->modes = tx32.modes;
297 txc->offset = tx32.offset;
298 txc->freq = tx32.freq;
299 txc->maxerror = tx32.maxerror;
300 txc->esterror = tx32.esterror;
301 txc->status = tx32.status;
302 txc->constant = tx32.constant;
303 txc->precision = tx32.precision;
304 txc->tolerance = tx32.tolerance;
305 txc->time.tv_sec = tx32.time.tv_sec;
306 txc->time.tv_usec = tx32.time.tv_usec;
307 txc->tick = tx32.tick;
308 txc->ppsfreq = tx32.ppsfreq;
309 txc->jitter = tx32.jitter;
310 txc->shift = tx32.shift;
311 txc->stabil = tx32.stabil;
312 txc->jitcnt = tx32.jitcnt;
313 txc->calcnt = tx32.calcnt;
314 txc->errcnt = tx32.errcnt;
315 txc->stbcnt = tx32.stbcnt;
316
317 return 0;
318}
319
ead25417 320int put_old_timex32(struct old_timex32 __user *utp, const struct __kernel_timex *txc)
4d5f007e
AB
321{
322 struct old_timex32 tx32;
323
324 memset(&tx32, 0, sizeof(struct old_timex32));
325 tx32.modes = txc->modes;
326 tx32.offset = txc->offset;
327 tx32.freq = txc->freq;
328 tx32.maxerror = txc->maxerror;
329 tx32.esterror = txc->esterror;
330 tx32.status = txc->status;
331 tx32.constant = txc->constant;
332 tx32.precision = txc->precision;
333 tx32.tolerance = txc->tolerance;
334 tx32.time.tv_sec = txc->time.tv_sec;
335 tx32.time.tv_usec = txc->time.tv_usec;
336 tx32.tick = txc->tick;
337 tx32.ppsfreq = txc->ppsfreq;
338 tx32.jitter = txc->jitter;
339 tx32.shift = txc->shift;
340 tx32.stabil = txc->stabil;
341 tx32.jitcnt = txc->jitcnt;
342 tx32.calcnt = txc->calcnt;
343 tx32.errcnt = txc->errcnt;
344 tx32.stbcnt = txc->stbcnt;
345 tx32.tai = txc->tai;
346 if (copy_to_user(utp, &tx32, sizeof(struct old_timex32)))
347 return -EFAULT;
348 return 0;
349}
3a4d44b6 350
8dabe724 351SYSCALL_DEFINE1(adjtimex_time32, struct old_timex32 __user *, utp)
3a4d44b6 352{
ead25417 353 struct __kernel_timex txc;
3a4d44b6
AV
354 int err, ret;
355
4d5f007e 356 err = get_old_timex32(&txc, utp);
3a4d44b6
AV
357 if (err)
358 return err;
359
360 ret = do_adjtimex(&txc);
361
4d5f007e 362 err = put_old_timex32(utp, &txc);
3a4d44b6
AV
363 if (err)
364 return err;
365
366 return ret;
367}
368#endif
369
753e9c5c
ED
370/*
371 * Convert jiffies to milliseconds and back.
372 *
373 * Avoid unnecessary multiplications/divisions in the
374 * two most common HZ cases:
375 */
af3b5628 376unsigned int jiffies_to_msecs(const unsigned long j)
753e9c5c
ED
377{
378#if HZ <= MSEC_PER_SEC && !(MSEC_PER_SEC % HZ)
379 return (MSEC_PER_SEC / HZ) * j;
380#elif HZ > MSEC_PER_SEC && !(HZ % MSEC_PER_SEC)
381 return (j + (HZ / MSEC_PER_SEC) - 1)/(HZ / MSEC_PER_SEC);
382#else
bdc80787 383# if BITS_PER_LONG == 32
abcbcb80
GU
384 return (HZ_TO_MSEC_MUL32 * j + (1ULL << HZ_TO_MSEC_SHR32) - 1) >>
385 HZ_TO_MSEC_SHR32;
bdc80787 386# else
abcbcb80 387 return DIV_ROUND_UP(j * HZ_TO_MSEC_NUM, HZ_TO_MSEC_DEN);
bdc80787 388# endif
753e9c5c
ED
389#endif
390}
391EXPORT_SYMBOL(jiffies_to_msecs);
392
af3b5628 393unsigned int jiffies_to_usecs(const unsigned long j)
753e9c5c 394{
e0758676
FW
395 /*
396 * Hz usually doesn't go much further MSEC_PER_SEC.
397 * jiffies_to_usecs() and usecs_to_jiffies() depend on that.
398 */
399 BUILD_BUG_ON(HZ > USEC_PER_SEC);
400
401#if !(USEC_PER_SEC % HZ)
753e9c5c 402 return (USEC_PER_SEC / HZ) * j;
753e9c5c 403#else
bdc80787 404# if BITS_PER_LONG == 32
b9095fd8 405 return (HZ_TO_USEC_MUL32 * j) >> HZ_TO_USEC_SHR32;
bdc80787
PA
406# else
407 return (j * HZ_TO_USEC_NUM) / HZ_TO_USEC_DEN;
408# endif
753e9c5c
ED
409#endif
410}
411EXPORT_SYMBOL(jiffies_to_usecs);
412
90b6ce9c 413/*
414 * mktime64 - Converts date to seconds.
415 * Converts Gregorian date to seconds since 1970-01-01 00:00:00.
753be622
TG
416 * Assumes input in normal date format, i.e. 1980-12-31 23:59:59
417 * => year=1980, mon=12, day=31, hour=23, min=59, sec=59.
418 *
419 * [For the Julian calendar (which was used in Russia before 1917,
420 * Britain & colonies before 1752, anywhere else before 1582,
421 * and is still in use by some communities) leave out the
422 * -year/100+year/400 terms, and add 10.]
423 *
424 * This algorithm was first published by Gauss (I think).
ede5147d
DH
425 *
426 * A leap second can be indicated by calling this function with sec as
427 * 60 (allowable under ISO 8601). The leap second is treated the same
428 * as the following second since they don't exist in UNIX time.
429 *
430 * An encoding of midnight at the end of the day as 24:00:00 - ie. midnight
431 * tomorrow - (allowable under ISO 8601) is supported.
753be622 432 */
90b6ce9c 433time64_t mktime64(const unsigned int year0, const unsigned int mon0,
434 const unsigned int day, const unsigned int hour,
435 const unsigned int min, const unsigned int sec)
753be622 436{
f4818900
IM
437 unsigned int mon = mon0, year = year0;
438
439 /* 1..12 -> 11,12,1..10 */
440 if (0 >= (int) (mon -= 2)) {
441 mon += 12; /* Puts Feb last since it has leap day */
753be622
TG
442 year -= 1;
443 }
444
90b6ce9c 445 return ((((time64_t)
753be622
TG
446 (year/4 - year/100 + year/400 + 367*mon/12 + day) +
447 year*365 - 719499
ede5147d 448 )*24 + hour /* now have hours - midnight tomorrow handled here */
753be622
TG
449 )*60 + min /* now have minutes */
450 )*60 + sec; /* finally seconds */
451}
90b6ce9c 452EXPORT_SYMBOL(mktime64);
199e7056 453
f8f46da3
TG
454/**
455 * ns_to_timespec - Convert nanoseconds to timespec
456 * @nsec: the nanoseconds value to be converted
457 *
458 * Returns the timespec representation of the nsec parameter.
459 */
df869b63 460struct timespec ns_to_timespec(const s64 nsec)
f8f46da3
TG
461{
462 struct timespec ts;
f8bd2258 463 s32 rem;
f8f46da3 464
88fc3897
GA
465 if (!nsec)
466 return (struct timespec) {0, 0};
467
f8bd2258
RZ
468 ts.tv_sec = div_s64_rem(nsec, NSEC_PER_SEC, &rem);
469 if (unlikely(rem < 0)) {
470 ts.tv_sec--;
471 rem += NSEC_PER_SEC;
472 }
473 ts.tv_nsec = rem;
f8f46da3
TG
474
475 return ts;
476}
85795d64 477EXPORT_SYMBOL(ns_to_timespec);
f8f46da3
TG
478
479/**
480 * ns_to_timeval - Convert nanoseconds to timeval
481 * @nsec: the nanoseconds value to be converted
482 *
483 * Returns the timeval representation of the nsec parameter.
484 */
df869b63 485struct timeval ns_to_timeval(const s64 nsec)
f8f46da3
TG
486{
487 struct timespec ts = ns_to_timespec(nsec);
488 struct timeval tv;
489
490 tv.tv_sec = ts.tv_sec;
491 tv.tv_usec = (suseconds_t) ts.tv_nsec / 1000;
492
493 return tv;
494}
b7aa0bf7 495EXPORT_SYMBOL(ns_to_timeval);
f8f46da3 496
a84d1169
AB
497struct __kernel_old_timeval ns_to_kernel_old_timeval(const s64 nsec)
498{
499 struct timespec64 ts = ns_to_timespec64(nsec);
500 struct __kernel_old_timeval tv;
501
502 tv.tv_sec = ts.tv_sec;
503 tv.tv_usec = (suseconds_t)ts.tv_nsec / 1000;
504
505 return tv;
506}
507EXPORT_SYMBOL(ns_to_kernel_old_timeval);
508
49cd6f86
JS
509/**
510 * set_normalized_timespec - set timespec sec and nsec parts and normalize
511 *
512 * @ts: pointer to timespec variable to be set
513 * @sec: seconds to set
514 * @nsec: nanoseconds to set
515 *
516 * Set seconds and nanoseconds field of a timespec variable and
517 * normalize to the timespec storage format
518 *
519 * Note: The tv_nsec part is always in the range of
520 * 0 <= tv_nsec < NSEC_PER_SEC
521 * For negative values only the tv_sec field is negative !
522 */
523void set_normalized_timespec64(struct timespec64 *ts, time64_t sec, s64 nsec)
524{
525 while (nsec >= NSEC_PER_SEC) {
526 /*
527 * The following asm() prevents the compiler from
528 * optimising this loop into a modulo operation. See
529 * also __iter_div_u64_rem() in include/linux/time.h
530 */
531 asm("" : "+rm"(nsec));
532 nsec -= NSEC_PER_SEC;
533 ++sec;
534 }
535 while (nsec < 0) {
536 asm("" : "+rm"(nsec));
537 nsec += NSEC_PER_SEC;
538 --sec;
539 }
540 ts->tv_sec = sec;
541 ts->tv_nsec = nsec;
542}
543EXPORT_SYMBOL(set_normalized_timespec64);
544
545/**
546 * ns_to_timespec64 - Convert nanoseconds to timespec64
547 * @nsec: the nanoseconds value to be converted
548 *
549 * Returns the timespec64 representation of the nsec parameter.
550 */
551struct timespec64 ns_to_timespec64(const s64 nsec)
552{
553 struct timespec64 ts;
554 s32 rem;
555
556 if (!nsec)
557 return (struct timespec64) {0, 0};
558
559 ts.tv_sec = div_s64_rem(nsec, NSEC_PER_SEC, &rem);
560 if (unlikely(rem < 0)) {
561 ts.tv_sec--;
562 rem += NSEC_PER_SEC;
563 }
564 ts.tv_nsec = rem;
565
566 return ts;
567}
568EXPORT_SYMBOL(ns_to_timespec64);
abc8f96e 569
ca42aaf0
NMG
570/**
571 * msecs_to_jiffies: - convert milliseconds to jiffies
572 * @m: time in milliseconds
573 *
574 * conversion is done as follows:
41cf5445
IM
575 *
576 * - negative values mean 'infinite timeout' (MAX_JIFFY_OFFSET)
577 *
578 * - 'too large' values [that would result in larger than
579 * MAX_JIFFY_OFFSET values] mean 'infinite timeout' too.
580 *
581 * - all other values are converted to jiffies by either multiplying
ca42aaf0
NMG
582 * the input value by a factor or dividing it with a factor and
583 * handling any 32-bit overflows.
584 * for the details see __msecs_to_jiffies()
41cf5445 585 *
ca42aaf0
NMG
586 * msecs_to_jiffies() checks for the passed in value being a constant
587 * via __builtin_constant_p() allowing gcc to eliminate most of the
588 * code, __msecs_to_jiffies() is called if the value passed does not
589 * allow constant folding and the actual conversion must be done at
590 * runtime.
591 * the _msecs_to_jiffies helpers are the HZ dependent conversion
592 * routines found in include/linux/jiffies.h
41cf5445 593 */
ca42aaf0 594unsigned long __msecs_to_jiffies(const unsigned int m)
8b9365d7 595{
41cf5445
IM
596 /*
597 * Negative value, means infinite timeout:
598 */
599 if ((int)m < 0)
8b9365d7 600 return MAX_JIFFY_OFFSET;
ca42aaf0 601 return _msecs_to_jiffies(m);
8b9365d7 602}
ca42aaf0 603EXPORT_SYMBOL(__msecs_to_jiffies);
8b9365d7 604
ae60d6a0 605unsigned long __usecs_to_jiffies(const unsigned int u)
8b9365d7
IM
606{
607 if (u > jiffies_to_usecs(MAX_JIFFY_OFFSET))
608 return MAX_JIFFY_OFFSET;
ae60d6a0 609 return _usecs_to_jiffies(u);
8b9365d7 610}
ae60d6a0 611EXPORT_SYMBOL(__usecs_to_jiffies);
8b9365d7
IM
612
613/*
614 * The TICK_NSEC - 1 rounds up the value to the next resolution. Note
615 * that a remainder subtract here would not do the right thing as the
616 * resolution values don't fall on second boundries. I.e. the line:
617 * nsec -= nsec % TICK_NSEC; is NOT a correct resolution rounding.
d78c9300
AH
618 * Note that due to the small error in the multiplier here, this
619 * rounding is incorrect for sufficiently large values of tv_nsec, but
620 * well formed timespecs should have tv_nsec < NSEC_PER_SEC, so we're
621 * OK.
8b9365d7
IM
622 *
623 * Rather, we just shift the bits off the right.
624 *
625 * The >> (NSEC_JIFFIE_SC - SEC_JIFFIE_SC) converts the scaled nsec
626 * value to a scaled second value.
627 */
d78c9300 628static unsigned long
9ca30850 629__timespec64_to_jiffies(u64 sec, long nsec)
8b9365d7 630{
d78c9300 631 nsec = nsec + TICK_NSEC - 1;
8b9365d7
IM
632
633 if (sec >= MAX_SEC_IN_JIFFIES){
634 sec = MAX_SEC_IN_JIFFIES;
635 nsec = 0;
636 }
9ca30850 637 return ((sec * SEC_CONVERSION) +
8b9365d7
IM
638 (((u64)nsec * NSEC_CONVERSION) >>
639 (NSEC_JIFFIE_SC - SEC_JIFFIE_SC))) >> SEC_JIFFIE_SC;
640
641}
d78c9300 642
9ca30850
BW
643static unsigned long
644__timespec_to_jiffies(unsigned long sec, long nsec)
d78c9300 645{
9ca30850 646 return __timespec64_to_jiffies((u64)sec, nsec);
d78c9300
AH
647}
648
9ca30850
BW
649unsigned long
650timespec64_to_jiffies(const struct timespec64 *value)
651{
652 return __timespec64_to_jiffies(value->tv_sec, value->tv_nsec);
653}
654EXPORT_SYMBOL(timespec64_to_jiffies);
8b9365d7
IM
655
656void
9ca30850 657jiffies_to_timespec64(const unsigned long jiffies, struct timespec64 *value)
8b9365d7
IM
658{
659 /*
660 * Convert jiffies to nanoseconds and separate with
661 * one divide.
662 */
f8bd2258
RZ
663 u32 rem;
664 value->tv_sec = div_u64_rem((u64)jiffies * TICK_NSEC,
665 NSEC_PER_SEC, &rem);
666 value->tv_nsec = rem;
8b9365d7 667}
9ca30850 668EXPORT_SYMBOL(jiffies_to_timespec64);
8b9365d7 669
d78c9300
AH
670/*
671 * We could use a similar algorithm to timespec_to_jiffies (with a
672 * different multiplier for usec instead of nsec). But this has a
673 * problem with rounding: we can't exactly add TICK_NSEC - 1 to the
674 * usec value, since it's not necessarily integral.
675 *
676 * We could instead round in the intermediate scaled representation
677 * (i.e. in units of 1/2^(large scale) jiffies) but that's also
678 * perilous: the scaling introduces a small positive error, which
679 * combined with a division-rounding-upward (i.e. adding 2^(scale) - 1
680 * units to the intermediate before shifting) leads to accidental
681 * overflow and overestimates.
8b9365d7 682 *
d78c9300
AH
683 * At the cost of one additional multiplication by a constant, just
684 * use the timespec implementation.
8b9365d7
IM
685 */
686unsigned long
687timeval_to_jiffies(const struct timeval *value)
688{
d78c9300
AH
689 return __timespec_to_jiffies(value->tv_sec,
690 value->tv_usec * NSEC_PER_USEC);
8b9365d7 691}
456a09dc 692EXPORT_SYMBOL(timeval_to_jiffies);
8b9365d7
IM
693
694void jiffies_to_timeval(const unsigned long jiffies, struct timeval *value)
695{
696 /*
697 * Convert jiffies to nanoseconds and separate with
698 * one divide.
699 */
f8bd2258 700 u32 rem;
8b9365d7 701
f8bd2258
RZ
702 value->tv_sec = div_u64_rem((u64)jiffies * TICK_NSEC,
703 NSEC_PER_SEC, &rem);
704 value->tv_usec = rem / NSEC_PER_USEC;
8b9365d7 705}
456a09dc 706EXPORT_SYMBOL(jiffies_to_timeval);
8b9365d7
IM
707
708/*
709 * Convert jiffies/jiffies_64 to clock_t and back.
710 */
cbbc719f 711clock_t jiffies_to_clock_t(unsigned long x)
8b9365d7
IM
712{
713#if (TICK_NSEC % (NSEC_PER_SEC / USER_HZ)) == 0
6ffc787a
DF
714# if HZ < USER_HZ
715 return x * (USER_HZ / HZ);
716# else
8b9365d7 717 return x / (HZ / USER_HZ);
6ffc787a 718# endif
8b9365d7 719#else
71abb3af 720 return div_u64((u64)x * TICK_NSEC, NSEC_PER_SEC / USER_HZ);
8b9365d7
IM
721#endif
722}
723EXPORT_SYMBOL(jiffies_to_clock_t);
724
725unsigned long clock_t_to_jiffies(unsigned long x)
726{
727#if (HZ % USER_HZ)==0
728 if (x >= ~0UL / (HZ / USER_HZ))
729 return ~0UL;
730 return x * (HZ / USER_HZ);
731#else
8b9365d7
IM
732 /* Don't worry about loss of precision here .. */
733 if (x >= ~0UL / HZ * USER_HZ)
734 return ~0UL;
735
736 /* .. but do try to contain it here */
71abb3af 737 return div_u64((u64)x * HZ, USER_HZ);
8b9365d7
IM
738#endif
739}
740EXPORT_SYMBOL(clock_t_to_jiffies);
741
742u64 jiffies_64_to_clock_t(u64 x)
743{
744#if (TICK_NSEC % (NSEC_PER_SEC / USER_HZ)) == 0
6ffc787a 745# if HZ < USER_HZ
71abb3af 746 x = div_u64(x * USER_HZ, HZ);
ec03d707 747# elif HZ > USER_HZ
71abb3af 748 x = div_u64(x, HZ / USER_HZ);
ec03d707
AM
749# else
750 /* Nothing to do */
6ffc787a 751# endif
8b9365d7
IM
752#else
753 /*
754 * There are better ways that don't overflow early,
755 * but even this doesn't overflow in hundreds of years
756 * in 64 bits, so..
757 */
71abb3af 758 x = div_u64(x * TICK_NSEC, (NSEC_PER_SEC / USER_HZ));
8b9365d7
IM
759#endif
760 return x;
761}
8b9365d7
IM
762EXPORT_SYMBOL(jiffies_64_to_clock_t);
763
764u64 nsec_to_clock_t(u64 x)
765{
766#if (NSEC_PER_SEC % USER_HZ) == 0
71abb3af 767 return div_u64(x, NSEC_PER_SEC / USER_HZ);
8b9365d7 768#elif (USER_HZ % 512) == 0
71abb3af 769 return div_u64(x * USER_HZ / 512, NSEC_PER_SEC / 512);
8b9365d7
IM
770#else
771 /*
772 * max relative error 5.7e-8 (1.8s per year) for USER_HZ <= 1024,
773 * overflow after 64.99 years.
774 * exact for HZ=60, 72, 90, 120, 144, 180, 300, 600, 900, ...
775 */
71abb3af 776 return div_u64(x * 9, (9ull * NSEC_PER_SEC + (USER_HZ / 2)) / USER_HZ);
8b9365d7 777#endif
8b9365d7
IM
778}
779
07e5f5e3
FW
780u64 jiffies64_to_nsecs(u64 j)
781{
782#if !(NSEC_PER_SEC % HZ)
783 return (NSEC_PER_SEC / HZ) * j;
784# else
785 return div_u64(j * HZ_TO_NSEC_NUM, HZ_TO_NSEC_DEN);
786#endif
787}
788EXPORT_SYMBOL(jiffies64_to_nsecs);
789
3b15d09f
LR
790u64 jiffies64_to_msecs(const u64 j)
791{
792#if HZ <= MSEC_PER_SEC && !(MSEC_PER_SEC % HZ)
793 return (MSEC_PER_SEC / HZ) * j;
794#else
795 return div_u64(j * HZ_TO_MSEC_NUM, HZ_TO_MSEC_DEN);
796#endif
797}
798EXPORT_SYMBOL(jiffies64_to_msecs);
799
b7b20df9 800/**
a1dabb6b 801 * nsecs_to_jiffies64 - Convert nsecs in u64 to jiffies64
b7b20df9
HS
802 *
803 * @n: nsecs in u64
804 *
805 * Unlike {m,u}secs_to_jiffies, type of input is not unsigned int but u64.
806 * And this doesn't return MAX_JIFFY_OFFSET since this function is designed
807 * for scheduler, not for use in device drivers to calculate timeout value.
808 *
809 * note:
810 * NSEC_PER_SEC = 10^9 = (5^9 * 2^9) = (1953125 * 512)
811 * ULLONG_MAX ns = 18446744073.709551615 secs = about 584 years
812 */
a1dabb6b 813u64 nsecs_to_jiffies64(u64 n)
b7b20df9
HS
814{
815#if (NSEC_PER_SEC % HZ) == 0
816 /* Common case, HZ = 100, 128, 200, 250, 256, 500, 512, 1000 etc. */
817 return div_u64(n, NSEC_PER_SEC / HZ);
818#elif (HZ % 512) == 0
819 /* overflow after 292 years if HZ = 1024 */
820 return div_u64(n * HZ / 512, NSEC_PER_SEC / 512);
821#else
822 /*
823 * Generic case - optimized for cases where HZ is a multiple of 3.
824 * overflow after 64.99 years, exact for HZ = 60, 72, 90, 120 etc.
825 */
826 return div_u64(n * 9, (9ull * NSEC_PER_SEC + HZ / 2) / HZ);
827#endif
828}
7bd0e226 829EXPORT_SYMBOL(nsecs_to_jiffies64);
b7b20df9 830
a1dabb6b
VP
831/**
832 * nsecs_to_jiffies - Convert nsecs in u64 to jiffies
833 *
834 * @n: nsecs in u64
835 *
836 * Unlike {m,u}secs_to_jiffies, type of input is not unsigned int but u64.
837 * And this doesn't return MAX_JIFFY_OFFSET since this function is designed
838 * for scheduler, not for use in device drivers to calculate timeout value.
839 *
840 * note:
841 * NSEC_PER_SEC = 10^9 = (5^9 * 2^9) = (1953125 * 512)
842 * ULLONG_MAX ns = 18446744073.709551615 secs = about 584 years
843 */
844unsigned long nsecs_to_jiffies(u64 n)
845{
846 return (unsigned long)nsecs_to_jiffies64(n);
847}
d560fed6 848EXPORT_SYMBOL_GPL(nsecs_to_jiffies);
a1dabb6b 849
bc2c53e5
DD
850/*
851 * Add two timespec64 values and do a safety check for overflow.
852 * It's assumed that both values are valid (>= 0).
853 * And, each timespec64 is in normalized form.
854 */
855struct timespec64 timespec64_add_safe(const struct timespec64 lhs,
856 const struct timespec64 rhs)
857{
858 struct timespec64 res;
859
469e857f 860 set_normalized_timespec64(&res, (timeu64_t) lhs.tv_sec + rhs.tv_sec,
bc2c53e5
DD
861 lhs.tv_nsec + rhs.tv_nsec);
862
863 if (unlikely(res.tv_sec < lhs.tv_sec || res.tv_sec < rhs.tv_sec)) {
864 res.tv_sec = TIME64_MAX;
865 res.tv_nsec = 0;
866 }
867
868 return res;
869}
f59dd9c8
DD
870
871int get_timespec64(struct timespec64 *ts,
ea2ce8f3 872 const struct __kernel_timespec __user *uts)
f59dd9c8 873{
ea2ce8f3 874 struct __kernel_timespec kts;
f59dd9c8
DD
875 int ret;
876
877 ret = copy_from_user(&kts, uts, sizeof(kts));
878 if (ret)
879 return -EFAULT;
880
881 ts->tv_sec = kts.tv_sec;
ea2ce8f3
DD
882
883 /* Zero out the padding for 32 bit systems or in compat mode */
98f76206 884 if (IS_ENABLED(CONFIG_64BIT_TIME) && in_compat_syscall())
ea2ce8f3
DD
885 kts.tv_nsec &= 0xFFFFFFFFUL;
886
f59dd9c8
DD
887 ts->tv_nsec = kts.tv_nsec;
888
889 return 0;
890}
891EXPORT_SYMBOL_GPL(get_timespec64);
892
893int put_timespec64(const struct timespec64 *ts,
ea2ce8f3 894 struct __kernel_timespec __user *uts)
f59dd9c8 895{
ea2ce8f3 896 struct __kernel_timespec kts = {
f59dd9c8
DD
897 .tv_sec = ts->tv_sec,
898 .tv_nsec = ts->tv_nsec
899 };
ea2ce8f3 900
f59dd9c8
DD
901 return copy_to_user(uts, &kts, sizeof(kts)) ? -EFAULT : 0;
902}
903EXPORT_SYMBOL_GPL(put_timespec64);
d5b7ffbf 904
743f5cdb 905static int __get_old_timespec32(struct timespec64 *ts64,
9afc5eee 906 const struct old_timespec32 __user *cts)
1c68adf6 907{
9afc5eee 908 struct old_timespec32 ts;
1c68adf6
DD
909 int ret;
910
911 ret = copy_from_user(&ts, cts, sizeof(ts));
912 if (ret)
913 return -EFAULT;
914
915 ts64->tv_sec = ts.tv_sec;
916 ts64->tv_nsec = ts.tv_nsec;
917
918 return 0;
919}
920
743f5cdb 921static int __put_old_timespec32(const struct timespec64 *ts64,
9afc5eee 922 struct old_timespec32 __user *cts)
1c68adf6 923{
9afc5eee 924 struct old_timespec32 ts = {
1c68adf6
DD
925 .tv_sec = ts64->tv_sec,
926 .tv_nsec = ts64->tv_nsec
927 };
928 return copy_to_user(cts, &ts, sizeof(ts)) ? -EFAULT : 0;
929}
930
9afc5eee 931int get_old_timespec32(struct timespec64 *ts, const void __user *uts)
1c68adf6
DD
932{
933 if (COMPAT_USE_64BIT_TIME)
934 return copy_from_user(ts, uts, sizeof(*ts)) ? -EFAULT : 0;
935 else
9afc5eee 936 return __get_old_timespec32(ts, uts);
1c68adf6 937}
9afc5eee 938EXPORT_SYMBOL_GPL(get_old_timespec32);
1c68adf6 939
9afc5eee 940int put_old_timespec32(const struct timespec64 *ts, void __user *uts)
1c68adf6
DD
941{
942 if (COMPAT_USE_64BIT_TIME)
943 return copy_to_user(uts, ts, sizeof(*ts)) ? -EFAULT : 0;
944 else
9afc5eee 945 return __put_old_timespec32(ts, uts);
1c68adf6 946}
9afc5eee 947EXPORT_SYMBOL_GPL(put_old_timespec32);
1c68adf6 948
d5b7ffbf 949int get_itimerspec64(struct itimerspec64 *it,
d0dd63a8 950 const struct __kernel_itimerspec __user *uit)
d5b7ffbf
DD
951{
952 int ret;
953
954 ret = get_timespec64(&it->it_interval, &uit->it_interval);
955 if (ret)
956 return ret;
957
958 ret = get_timespec64(&it->it_value, &uit->it_value);
959
960 return ret;
961}
962EXPORT_SYMBOL_GPL(get_itimerspec64);
963
964int put_itimerspec64(const struct itimerspec64 *it,
d0dd63a8 965 struct __kernel_itimerspec __user *uit)
d5b7ffbf
DD
966{
967 int ret;
968
969 ret = put_timespec64(&it->it_interval, &uit->it_interval);
970 if (ret)
971 return ret;
972
973 ret = put_timespec64(&it->it_value, &uit->it_value);
974
975 return ret;
976}
977EXPORT_SYMBOL_GPL(put_itimerspec64);
afef05cf 978
9afc5eee
AB
979int get_old_itimerspec32(struct itimerspec64 *its,
980 const struct old_itimerspec32 __user *uits)
afef05cf
DD
981{
982
9afc5eee
AB
983 if (__get_old_timespec32(&its->it_interval, &uits->it_interval) ||
984 __get_old_timespec32(&its->it_value, &uits->it_value))
afef05cf
DD
985 return -EFAULT;
986 return 0;
987}
9afc5eee 988EXPORT_SYMBOL_GPL(get_old_itimerspec32);
afef05cf 989
9afc5eee
AB
990int put_old_itimerspec32(const struct itimerspec64 *its,
991 struct old_itimerspec32 __user *uits)
afef05cf 992{
9afc5eee
AB
993 if (__put_old_timespec32(&its->it_interval, &uits->it_interval) ||
994 __put_old_timespec32(&its->it_value, &uits->it_value))
afef05cf
DD
995 return -EFAULT;
996 return 0;
997}
9afc5eee 998EXPORT_SYMBOL_GPL(put_old_itimerspec32);