time.c 21 KB

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  1. /*
  2. * linux/kernel/time.c
  3. *
  4. * Copyright (C) 1991, 1992 Linus Torvalds
  5. *
  6. * This file contains the interface functions for the various
  7. * time related system calls: time, stime, gettimeofday, settimeofday,
  8. * adjtime
  9. */
  10. /*
  11. * Modification history kernel/time.c
  12. *
  13. * 1993-09-02 Philip Gladstone
  14. * Created file with time related functions from sched/core.c and adjtimex()
  15. * 1993-10-08 Torsten Duwe
  16. * adjtime interface update and CMOS clock write code
  17. * 1995-08-13 Torsten Duwe
  18. * kernel PLL updated to 1994-12-13 specs (rfc-1589)
  19. * 1999-01-16 Ulrich Windl
  20. * Introduced error checking for many cases in adjtimex().
  21. * Updated NTP code according to technical memorandum Jan '96
  22. * "A Kernel Model for Precision Timekeeping" by Dave Mills
  23. * Allow time_constant larger than MAXTC(6) for NTP v4 (MAXTC == 10)
  24. * (Even though the technical memorandum forbids it)
  25. * 2004-07-14 Christoph Lameter
  26. * Added getnstimeofday to allow the posix timer functions to return
  27. * with nanosecond accuracy
  28. */
  29. #include <linux/export.h>
  30. #include <linux/timex.h>
  31. #include <linux/capability.h>
  32. #include <linux/timekeeper_internal.h>
  33. #include <linux/errno.h>
  34. #include <linux/syscalls.h>
  35. #include <linux/security.h>
  36. #include <linux/fs.h>
  37. #include <linux/math64.h>
  38. #include <linux/ptrace.h>
  39. #include <asm/uaccess.h>
  40. #include <asm/unistd.h>
  41. #include "timeconst.h"
  42. #include "timekeeping.h"
  43. /*
  44. * The timezone where the local system is located. Used as a default by some
  45. * programs who obtain this value by using gettimeofday.
  46. */
  47. struct timezone sys_tz;
  48. EXPORT_SYMBOL(sys_tz);
  49. #ifdef __ARCH_WANT_SYS_TIME
  50. /*
  51. * sys_time() can be implemented in user-level using
  52. * sys_gettimeofday(). Is this for backwards compatibility? If so,
  53. * why not move it into the appropriate arch directory (for those
  54. * architectures that need it).
  55. */
  56. SYSCALL_DEFINE1(time, time_t __user *, tloc)
  57. {
  58. time_t i = get_seconds();
  59. if (tloc) {
  60. if (put_user(i,tloc))
  61. return -EFAULT;
  62. }
  63. force_successful_syscall_return();
  64. return i;
  65. }
  66. /*
  67. * sys_stime() can be implemented in user-level using
  68. * sys_settimeofday(). Is this for backwards compatibility? If so,
  69. * why not move it into the appropriate arch directory (for those
  70. * architectures that need it).
  71. */
  72. SYSCALL_DEFINE1(stime, time_t __user *, tptr)
  73. {
  74. struct timespec tv;
  75. int err;
  76. if (get_user(tv.tv_sec, tptr))
  77. return -EFAULT;
  78. tv.tv_nsec = 0;
  79. err = security_settime(&tv, NULL);
  80. if (err)
  81. return err;
  82. do_settimeofday(&tv);
  83. return 0;
  84. }
  85. #endif /* __ARCH_WANT_SYS_TIME */
  86. SYSCALL_DEFINE2(gettimeofday, struct timeval __user *, tv,
  87. struct timezone __user *, tz)
  88. {
  89. if (likely(tv != NULL)) {
  90. struct timeval ktv;
  91. do_gettimeofday(&ktv);
  92. if (copy_to_user(tv, &ktv, sizeof(ktv)))
  93. return -EFAULT;
  94. }
  95. if (unlikely(tz != NULL)) {
  96. if (copy_to_user(tz, &sys_tz, sizeof(sys_tz)))
  97. return -EFAULT;
  98. }
  99. return 0;
  100. }
  101. /*
  102. * Indicates if there is an offset between the system clock and the hardware
  103. * clock/persistent clock/rtc.
  104. */
  105. int persistent_clock_is_local;
  106. /*
  107. * Adjust the time obtained from the CMOS to be UTC time instead of
  108. * local time.
  109. *
  110. * This is ugly, but preferable to the alternatives. Otherwise we
  111. * would either need to write a program to do it in /etc/rc (and risk
  112. * confusion if the program gets run more than once; it would also be
  113. * hard to make the program warp the clock precisely n hours) or
  114. * compile in the timezone information into the kernel. Bad, bad....
  115. *
  116. * - TYT, 1992-01-01
  117. *
  118. * The best thing to do is to keep the CMOS clock in universal time (UTC)
  119. * as real UNIX machines always do it. This avoids all headaches about
  120. * daylight saving times and warping kernel clocks.
  121. */
  122. static inline void warp_clock(void)
  123. {
  124. if (sys_tz.tz_minuteswest != 0) {
  125. struct timespec adjust;
  126. persistent_clock_is_local = 1;
  127. adjust.tv_sec = sys_tz.tz_minuteswest * 60;
  128. adjust.tv_nsec = 0;
  129. timekeeping_inject_offset(&adjust);
  130. }
  131. }
  132. /*
  133. * In case for some reason the CMOS clock has not already been running
  134. * in UTC, but in some local time: The first time we set the timezone,
  135. * we will warp the clock so that it is ticking UTC time instead of
  136. * local time. Presumably, if someone is setting the timezone then we
  137. * are running in an environment where the programs understand about
  138. * timezones. This should be done at boot time in the /etc/rc script,
  139. * as soon as possible, so that the clock can be set right. Otherwise,
  140. * various programs will get confused when the clock gets warped.
  141. */
  142. int do_sys_settimeofday(const struct timespec *tv, const struct timezone *tz)
  143. {
  144. static int firsttime = 1;
  145. int error = 0;
  146. if (tv && !timespec_valid(tv))
  147. return -EINVAL;
  148. error = security_settime(tv, tz);
  149. if (error)
  150. return error;
  151. if (tz) {
  152. sys_tz = *tz;
  153. update_vsyscall_tz();
  154. if (firsttime) {
  155. firsttime = 0;
  156. if (!tv)
  157. warp_clock();
  158. }
  159. }
  160. if (tv)
  161. return do_settimeofday(tv);
  162. return 0;
  163. }
  164. SYSCALL_DEFINE2(settimeofday, struct timeval __user *, tv,
  165. struct timezone __user *, tz)
  166. {
  167. struct timeval user_tv;
  168. struct timespec new_ts;
  169. struct timezone new_tz;
  170. if (tv) {
  171. if (copy_from_user(&user_tv, tv, sizeof(*tv)))
  172. return -EFAULT;
  173. if (!timeval_valid(&user_tv))
  174. return -EINVAL;
  175. new_ts.tv_sec = user_tv.tv_sec;
  176. new_ts.tv_nsec = user_tv.tv_usec * NSEC_PER_USEC;
  177. }
  178. if (tz) {
  179. if (copy_from_user(&new_tz, tz, sizeof(*tz)))
  180. return -EFAULT;
  181. }
  182. return do_sys_settimeofday(tv ? &new_ts : NULL, tz ? &new_tz : NULL);
  183. }
  184. SYSCALL_DEFINE1(adjtimex, struct timex __user *, txc_p)
  185. {
  186. struct timex txc; /* Local copy of parameter */
  187. int ret;
  188. /* Copy the user data space into the kernel copy
  189. * structure. But bear in mind that the structures
  190. * may change
  191. */
  192. if(copy_from_user(&txc, txc_p, sizeof(struct timex)))
  193. return -EFAULT;
  194. ret = do_adjtimex(&txc);
  195. return copy_to_user(txc_p, &txc, sizeof(struct timex)) ? -EFAULT : ret;
  196. }
  197. /**
  198. * current_fs_time - Return FS time
  199. * @sb: Superblock.
  200. *
  201. * Return the current time truncated to the time granularity supported by
  202. * the fs.
  203. */
  204. struct timespec current_fs_time(struct super_block *sb)
  205. {
  206. struct timespec now = current_kernel_time();
  207. return timespec_trunc(now, sb->s_time_gran);
  208. }
  209. EXPORT_SYMBOL(current_fs_time);
  210. /*
  211. * Convert jiffies to milliseconds and back.
  212. *
  213. * Avoid unnecessary multiplications/divisions in the
  214. * two most common HZ cases:
  215. */
  216. unsigned int jiffies_to_msecs(const unsigned long j)
  217. {
  218. #if HZ <= MSEC_PER_SEC && !(MSEC_PER_SEC % HZ)
  219. return (MSEC_PER_SEC / HZ) * j;
  220. #elif HZ > MSEC_PER_SEC && !(HZ % MSEC_PER_SEC)
  221. return (j + (HZ / MSEC_PER_SEC) - 1)/(HZ / MSEC_PER_SEC);
  222. #else
  223. # if BITS_PER_LONG == 32
  224. return (HZ_TO_MSEC_MUL32 * j) >> HZ_TO_MSEC_SHR32;
  225. # else
  226. return (j * HZ_TO_MSEC_NUM) / HZ_TO_MSEC_DEN;
  227. # endif
  228. #endif
  229. }
  230. EXPORT_SYMBOL(jiffies_to_msecs);
  231. unsigned int jiffies_to_usecs(const unsigned long j)
  232. {
  233. #if HZ <= USEC_PER_SEC && !(USEC_PER_SEC % HZ)
  234. return (USEC_PER_SEC / HZ) * j;
  235. #elif HZ > USEC_PER_SEC && !(HZ % USEC_PER_SEC)
  236. return (j + (HZ / USEC_PER_SEC) - 1)/(HZ / USEC_PER_SEC);
  237. #else
  238. # if BITS_PER_LONG == 32
  239. return (HZ_TO_USEC_MUL32 * j) >> HZ_TO_USEC_SHR32;
  240. # else
  241. return (j * HZ_TO_USEC_NUM) / HZ_TO_USEC_DEN;
  242. # endif
  243. #endif
  244. }
  245. EXPORT_SYMBOL(jiffies_to_usecs);
  246. /**
  247. * timespec_trunc - Truncate timespec to a granularity
  248. * @t: Timespec
  249. * @gran: Granularity in ns.
  250. *
  251. * Truncate a timespec to a granularity. gran must be smaller than a second.
  252. * Always rounds down.
  253. *
  254. * This function should be only used for timestamps returned by
  255. * current_kernel_time() or CURRENT_TIME, not with do_gettimeofday() because
  256. * it doesn't handle the better resolution of the latter.
  257. */
  258. struct timespec timespec_trunc(struct timespec t, unsigned gran)
  259. {
  260. /*
  261. * Division is pretty slow so avoid it for common cases.
  262. * Currently current_kernel_time() never returns better than
  263. * jiffies resolution. Exploit that.
  264. */
  265. if (gran <= jiffies_to_usecs(1) * 1000) {
  266. /* nothing */
  267. } else if (gran == 1000000000) {
  268. t.tv_nsec = 0;
  269. } else {
  270. t.tv_nsec -= t.tv_nsec % gran;
  271. }
  272. return t;
  273. }
  274. EXPORT_SYMBOL(timespec_trunc);
  275. /* Converts Gregorian date to seconds since 1970-01-01 00:00:00.
  276. * Assumes input in normal date format, i.e. 1980-12-31 23:59:59
  277. * => year=1980, mon=12, day=31, hour=23, min=59, sec=59.
  278. *
  279. * [For the Julian calendar (which was used in Russia before 1917,
  280. * Britain & colonies before 1752, anywhere else before 1582,
  281. * and is still in use by some communities) leave out the
  282. * -year/100+year/400 terms, and add 10.]
  283. *
  284. * This algorithm was first published by Gauss (I think).
  285. *
  286. * WARNING: this function will overflow on 2106-02-07 06:28:16 on
  287. * machines where long is 32-bit! (However, as time_t is signed, we
  288. * will already get problems at other places on 2038-01-19 03:14:08)
  289. */
  290. unsigned long
  291. mktime(const unsigned int year0, const unsigned int mon0,
  292. const unsigned int day, const unsigned int hour,
  293. const unsigned int min, const unsigned int sec)
  294. {
  295. unsigned int mon = mon0, year = year0;
  296. /* 1..12 -> 11,12,1..10 */
  297. if (0 >= (int) (mon -= 2)) {
  298. mon += 12; /* Puts Feb last since it has leap day */
  299. year -= 1;
  300. }
  301. return ((((unsigned long)
  302. (year/4 - year/100 + year/400 + 367*mon/12 + day) +
  303. year*365 - 719499
  304. )*24 + hour /* now have hours */
  305. )*60 + min /* now have minutes */
  306. )*60 + sec; /* finally seconds */
  307. }
  308. EXPORT_SYMBOL(mktime);
  309. /**
  310. * set_normalized_timespec - set timespec sec and nsec parts and normalize
  311. *
  312. * @ts: pointer to timespec variable to be set
  313. * @sec: seconds to set
  314. * @nsec: nanoseconds to set
  315. *
  316. * Set seconds and nanoseconds field of a timespec variable and
  317. * normalize to the timespec storage format
  318. *
  319. * Note: The tv_nsec part is always in the range of
  320. * 0 <= tv_nsec < NSEC_PER_SEC
  321. * For negative values only the tv_sec field is negative !
  322. */
  323. void set_normalized_timespec(struct timespec *ts, time_t sec, s64 nsec)
  324. {
  325. while (nsec >= NSEC_PER_SEC) {
  326. /*
  327. * The following asm() prevents the compiler from
  328. * optimising this loop into a modulo operation. See
  329. * also __iter_div_u64_rem() in include/linux/time.h
  330. */
  331. asm("" : "+rm"(nsec));
  332. nsec -= NSEC_PER_SEC;
  333. ++sec;
  334. }
  335. while (nsec < 0) {
  336. asm("" : "+rm"(nsec));
  337. nsec += NSEC_PER_SEC;
  338. --sec;
  339. }
  340. ts->tv_sec = sec;
  341. ts->tv_nsec = nsec;
  342. }
  343. EXPORT_SYMBOL(set_normalized_timespec);
  344. /**
  345. * ns_to_timespec - Convert nanoseconds to timespec
  346. * @nsec: the nanoseconds value to be converted
  347. *
  348. * Returns the timespec representation of the nsec parameter.
  349. */
  350. struct timespec ns_to_timespec(const s64 nsec)
  351. {
  352. struct timespec ts;
  353. s32 rem;
  354. if (!nsec)
  355. return (struct timespec) {0, 0};
  356. ts.tv_sec = div_s64_rem(nsec, NSEC_PER_SEC, &rem);
  357. if (unlikely(rem < 0)) {
  358. ts.tv_sec--;
  359. rem += NSEC_PER_SEC;
  360. }
  361. ts.tv_nsec = rem;
  362. return ts;
  363. }
  364. EXPORT_SYMBOL(ns_to_timespec);
  365. /**
  366. * ns_to_timeval - Convert nanoseconds to timeval
  367. * @nsec: the nanoseconds value to be converted
  368. *
  369. * Returns the timeval representation of the nsec parameter.
  370. */
  371. struct timeval ns_to_timeval(const s64 nsec)
  372. {
  373. struct timespec ts = ns_to_timespec(nsec);
  374. struct timeval tv;
  375. tv.tv_sec = ts.tv_sec;
  376. tv.tv_usec = (suseconds_t) ts.tv_nsec / 1000;
  377. return tv;
  378. }
  379. EXPORT_SYMBOL(ns_to_timeval);
  380. #if BITS_PER_LONG == 32
  381. /**
  382. * set_normalized_timespec - set timespec sec and nsec parts and normalize
  383. *
  384. * @ts: pointer to timespec variable to be set
  385. * @sec: seconds to set
  386. * @nsec: nanoseconds to set
  387. *
  388. * Set seconds and nanoseconds field of a timespec variable and
  389. * normalize to the timespec storage format
  390. *
  391. * Note: The tv_nsec part is always in the range of
  392. * 0 <= tv_nsec < NSEC_PER_SEC
  393. * For negative values only the tv_sec field is negative !
  394. */
  395. void set_normalized_timespec64(struct timespec64 *ts, time64_t sec, s64 nsec)
  396. {
  397. while (nsec >= NSEC_PER_SEC) {
  398. /*
  399. * The following asm() prevents the compiler from
  400. * optimising this loop into a modulo operation. See
  401. * also __iter_div_u64_rem() in include/linux/time.h
  402. */
  403. asm("" : "+rm"(nsec));
  404. nsec -= NSEC_PER_SEC;
  405. ++sec;
  406. }
  407. while (nsec < 0) {
  408. asm("" : "+rm"(nsec));
  409. nsec += NSEC_PER_SEC;
  410. --sec;
  411. }
  412. ts->tv_sec = sec;
  413. ts->tv_nsec = nsec;
  414. }
  415. EXPORT_SYMBOL(set_normalized_timespec64);
  416. /**
  417. * ns_to_timespec64 - Convert nanoseconds to timespec64
  418. * @nsec: the nanoseconds value to be converted
  419. *
  420. * Returns the timespec64 representation of the nsec parameter.
  421. */
  422. struct timespec64 ns_to_timespec64(const s64 nsec)
  423. {
  424. struct timespec64 ts;
  425. s32 rem;
  426. if (!nsec)
  427. return (struct timespec64) {0, 0};
  428. ts.tv_sec = div_s64_rem(nsec, NSEC_PER_SEC, &rem);
  429. if (unlikely(rem < 0)) {
  430. ts.tv_sec--;
  431. rem += NSEC_PER_SEC;
  432. }
  433. ts.tv_nsec = rem;
  434. return ts;
  435. }
  436. EXPORT_SYMBOL(ns_to_timespec64);
  437. #endif
  438. /*
  439. * When we convert to jiffies then we interpret incoming values
  440. * the following way:
  441. *
  442. * - negative values mean 'infinite timeout' (MAX_JIFFY_OFFSET)
  443. *
  444. * - 'too large' values [that would result in larger than
  445. * MAX_JIFFY_OFFSET values] mean 'infinite timeout' too.
  446. *
  447. * - all other values are converted to jiffies by either multiplying
  448. * the input value by a factor or dividing it with a factor
  449. *
  450. * We must also be careful about 32-bit overflows.
  451. */
  452. unsigned long msecs_to_jiffies(const unsigned int m)
  453. {
  454. /*
  455. * Negative value, means infinite timeout:
  456. */
  457. if ((int)m < 0)
  458. return MAX_JIFFY_OFFSET;
  459. #if HZ <= MSEC_PER_SEC && !(MSEC_PER_SEC % HZ)
  460. /*
  461. * HZ is equal to or smaller than 1000, and 1000 is a nice
  462. * round multiple of HZ, divide with the factor between them,
  463. * but round upwards:
  464. */
  465. return (m + (MSEC_PER_SEC / HZ) - 1) / (MSEC_PER_SEC / HZ);
  466. #elif HZ > MSEC_PER_SEC && !(HZ % MSEC_PER_SEC)
  467. /*
  468. * HZ is larger than 1000, and HZ is a nice round multiple of
  469. * 1000 - simply multiply with the factor between them.
  470. *
  471. * But first make sure the multiplication result cannot
  472. * overflow:
  473. */
  474. if (m > jiffies_to_msecs(MAX_JIFFY_OFFSET))
  475. return MAX_JIFFY_OFFSET;
  476. return m * (HZ / MSEC_PER_SEC);
  477. #else
  478. /*
  479. * Generic case - multiply, round and divide. But first
  480. * check that if we are doing a net multiplication, that
  481. * we wouldn't overflow:
  482. */
  483. if (HZ > MSEC_PER_SEC && m > jiffies_to_msecs(MAX_JIFFY_OFFSET))
  484. return MAX_JIFFY_OFFSET;
  485. return (MSEC_TO_HZ_MUL32 * m + MSEC_TO_HZ_ADJ32)
  486. >> MSEC_TO_HZ_SHR32;
  487. #endif
  488. }
  489. EXPORT_SYMBOL(msecs_to_jiffies);
  490. unsigned long usecs_to_jiffies(const unsigned int u)
  491. {
  492. if (u > jiffies_to_usecs(MAX_JIFFY_OFFSET))
  493. return MAX_JIFFY_OFFSET;
  494. #if HZ <= USEC_PER_SEC && !(USEC_PER_SEC % HZ)
  495. return (u + (USEC_PER_SEC / HZ) - 1) / (USEC_PER_SEC / HZ);
  496. #elif HZ > USEC_PER_SEC && !(HZ % USEC_PER_SEC)
  497. return u * (HZ / USEC_PER_SEC);
  498. #else
  499. return (USEC_TO_HZ_MUL32 * u + USEC_TO_HZ_ADJ32)
  500. >> USEC_TO_HZ_SHR32;
  501. #endif
  502. }
  503. EXPORT_SYMBOL(usecs_to_jiffies);
  504. /*
  505. * The TICK_NSEC - 1 rounds up the value to the next resolution. Note
  506. * that a remainder subtract here would not do the right thing as the
  507. * resolution values don't fall on second boundries. I.e. the line:
  508. * nsec -= nsec % TICK_NSEC; is NOT a correct resolution rounding.
  509. * Note that due to the small error in the multiplier here, this
  510. * rounding is incorrect for sufficiently large values of tv_nsec, but
  511. * well formed timespecs should have tv_nsec < NSEC_PER_SEC, so we're
  512. * OK.
  513. *
  514. * Rather, we just shift the bits off the right.
  515. *
  516. * The >> (NSEC_JIFFIE_SC - SEC_JIFFIE_SC) converts the scaled nsec
  517. * value to a scaled second value.
  518. */
  519. static unsigned long
  520. __timespec_to_jiffies(unsigned long sec, long nsec)
  521. {
  522. nsec = nsec + TICK_NSEC - 1;
  523. if (sec >= MAX_SEC_IN_JIFFIES){
  524. sec = MAX_SEC_IN_JIFFIES;
  525. nsec = 0;
  526. }
  527. return (((u64)sec * SEC_CONVERSION) +
  528. (((u64)nsec * NSEC_CONVERSION) >>
  529. (NSEC_JIFFIE_SC - SEC_JIFFIE_SC))) >> SEC_JIFFIE_SC;
  530. }
  531. unsigned long
  532. timespec_to_jiffies(const struct timespec *value)
  533. {
  534. return __timespec_to_jiffies(value->tv_sec, value->tv_nsec);
  535. }
  536. EXPORT_SYMBOL(timespec_to_jiffies);
  537. void
  538. jiffies_to_timespec(const unsigned long jiffies, struct timespec *value)
  539. {
  540. /*
  541. * Convert jiffies to nanoseconds and separate with
  542. * one divide.
  543. */
  544. u32 rem;
  545. value->tv_sec = div_u64_rem((u64)jiffies * TICK_NSEC,
  546. NSEC_PER_SEC, &rem);
  547. value->tv_nsec = rem;
  548. }
  549. EXPORT_SYMBOL(jiffies_to_timespec);
  550. /*
  551. * We could use a similar algorithm to timespec_to_jiffies (with a
  552. * different multiplier for usec instead of nsec). But this has a
  553. * problem with rounding: we can't exactly add TICK_NSEC - 1 to the
  554. * usec value, since it's not necessarily integral.
  555. *
  556. * We could instead round in the intermediate scaled representation
  557. * (i.e. in units of 1/2^(large scale) jiffies) but that's also
  558. * perilous: the scaling introduces a small positive error, which
  559. * combined with a division-rounding-upward (i.e. adding 2^(scale) - 1
  560. * units to the intermediate before shifting) leads to accidental
  561. * overflow and overestimates.
  562. *
  563. * At the cost of one additional multiplication by a constant, just
  564. * use the timespec implementation.
  565. */
  566. unsigned long
  567. timeval_to_jiffies(const struct timeval *value)
  568. {
  569. return __timespec_to_jiffies(value->tv_sec,
  570. value->tv_usec * NSEC_PER_USEC);
  571. }
  572. EXPORT_SYMBOL(timeval_to_jiffies);
  573. void jiffies_to_timeval(const unsigned long jiffies, struct timeval *value)
  574. {
  575. /*
  576. * Convert jiffies to nanoseconds and separate with
  577. * one divide.
  578. */
  579. u32 rem;
  580. value->tv_sec = div_u64_rem((u64)jiffies * TICK_NSEC,
  581. NSEC_PER_SEC, &rem);
  582. value->tv_usec = rem / NSEC_PER_USEC;
  583. }
  584. EXPORT_SYMBOL(jiffies_to_timeval);
  585. /*
  586. * Convert jiffies/jiffies_64 to clock_t and back.
  587. */
  588. clock_t jiffies_to_clock_t(unsigned long x)
  589. {
  590. #if (TICK_NSEC % (NSEC_PER_SEC / USER_HZ)) == 0
  591. # if HZ < USER_HZ
  592. return x * (USER_HZ / HZ);
  593. # else
  594. return x / (HZ / USER_HZ);
  595. # endif
  596. #else
  597. return div_u64((u64)x * TICK_NSEC, NSEC_PER_SEC / USER_HZ);
  598. #endif
  599. }
  600. EXPORT_SYMBOL(jiffies_to_clock_t);
  601. unsigned long clock_t_to_jiffies(unsigned long x)
  602. {
  603. #if (HZ % USER_HZ)==0
  604. if (x >= ~0UL / (HZ / USER_HZ))
  605. return ~0UL;
  606. return x * (HZ / USER_HZ);
  607. #else
  608. /* Don't worry about loss of precision here .. */
  609. if (x >= ~0UL / HZ * USER_HZ)
  610. return ~0UL;
  611. /* .. but do try to contain it here */
  612. return div_u64((u64)x * HZ, USER_HZ);
  613. #endif
  614. }
  615. EXPORT_SYMBOL(clock_t_to_jiffies);
  616. u64 jiffies_64_to_clock_t(u64 x)
  617. {
  618. #if (TICK_NSEC % (NSEC_PER_SEC / USER_HZ)) == 0
  619. # if HZ < USER_HZ
  620. x = div_u64(x * USER_HZ, HZ);
  621. # elif HZ > USER_HZ
  622. x = div_u64(x, HZ / USER_HZ);
  623. # else
  624. /* Nothing to do */
  625. # endif
  626. #else
  627. /*
  628. * There are better ways that don't overflow early,
  629. * but even this doesn't overflow in hundreds of years
  630. * in 64 bits, so..
  631. */
  632. x = div_u64(x * TICK_NSEC, (NSEC_PER_SEC / USER_HZ));
  633. #endif
  634. return x;
  635. }
  636. EXPORT_SYMBOL(jiffies_64_to_clock_t);
  637. u64 nsec_to_clock_t(u64 x)
  638. {
  639. #if (NSEC_PER_SEC % USER_HZ) == 0
  640. return div_u64(x, NSEC_PER_SEC / USER_HZ);
  641. #elif (USER_HZ % 512) == 0
  642. return div_u64(x * USER_HZ / 512, NSEC_PER_SEC / 512);
  643. #else
  644. /*
  645. * max relative error 5.7e-8 (1.8s per year) for USER_HZ <= 1024,
  646. * overflow after 64.99 years.
  647. * exact for HZ=60, 72, 90, 120, 144, 180, 300, 600, 900, ...
  648. */
  649. return div_u64(x * 9, (9ull * NSEC_PER_SEC + (USER_HZ / 2)) / USER_HZ);
  650. #endif
  651. }
  652. /**
  653. * nsecs_to_jiffies64 - Convert nsecs in u64 to jiffies64
  654. *
  655. * @n: nsecs in u64
  656. *
  657. * Unlike {m,u}secs_to_jiffies, type of input is not unsigned int but u64.
  658. * And this doesn't return MAX_JIFFY_OFFSET since this function is designed
  659. * for scheduler, not for use in device drivers to calculate timeout value.
  660. *
  661. * note:
  662. * NSEC_PER_SEC = 10^9 = (5^9 * 2^9) = (1953125 * 512)
  663. * ULLONG_MAX ns = 18446744073.709551615 secs = about 584 years
  664. */
  665. u64 nsecs_to_jiffies64(u64 n)
  666. {
  667. #if (NSEC_PER_SEC % HZ) == 0
  668. /* Common case, HZ = 100, 128, 200, 250, 256, 500, 512, 1000 etc. */
  669. return div_u64(n, NSEC_PER_SEC / HZ);
  670. #elif (HZ % 512) == 0
  671. /* overflow after 292 years if HZ = 1024 */
  672. return div_u64(n * HZ / 512, NSEC_PER_SEC / 512);
  673. #else
  674. /*
  675. * Generic case - optimized for cases where HZ is a multiple of 3.
  676. * overflow after 64.99 years, exact for HZ = 60, 72, 90, 120 etc.
  677. */
  678. return div_u64(n * 9, (9ull * NSEC_PER_SEC + HZ / 2) / HZ);
  679. #endif
  680. }
  681. /**
  682. * nsecs_to_jiffies - Convert nsecs in u64 to jiffies
  683. *
  684. * @n: nsecs in u64
  685. *
  686. * Unlike {m,u}secs_to_jiffies, type of input is not unsigned int but u64.
  687. * And this doesn't return MAX_JIFFY_OFFSET since this function is designed
  688. * for scheduler, not for use in device drivers to calculate timeout value.
  689. *
  690. * note:
  691. * NSEC_PER_SEC = 10^9 = (5^9 * 2^9) = (1953125 * 512)
  692. * ULLONG_MAX ns = 18446744073.709551615 secs = about 584 years
  693. */
  694. unsigned long nsecs_to_jiffies(u64 n)
  695. {
  696. return (unsigned long)nsecs_to_jiffies64(n);
  697. }
  698. EXPORT_SYMBOL_GPL(nsecs_to_jiffies);
  699. /*
  700. * Add two timespec values and do a safety check for overflow.
  701. * It's assumed that both values are valid (>= 0)
  702. */
  703. struct timespec timespec_add_safe(const struct timespec lhs,
  704. const struct timespec rhs)
  705. {
  706. struct timespec res;
  707. set_normalized_timespec(&res, lhs.tv_sec + rhs.tv_sec,
  708. lhs.tv_nsec + rhs.tv_nsec);
  709. if (res.tv_sec < lhs.tv_sec || res.tv_sec < rhs.tv_sec)
  710. res.tv_sec = TIME_T_MAX;
  711. return res;
  712. }