time.c 32 KB

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  1. /*
  2. * Common time routines among all ppc machines.
  3. *
  4. * Written by Cort Dougan (cort@cs.nmt.edu) to merge
  5. * Paul Mackerras' version and mine for PReP and Pmac.
  6. * MPC8xx/MBX changes by Dan Malek (dmalek@jlc.net).
  7. * Converted for 64-bit by Mike Corrigan (mikejc@us.ibm.com)
  8. *
  9. * First round of bugfixes by Gabriel Paubert (paubert@iram.es)
  10. * to make clock more stable (2.4.0-test5). The only thing
  11. * that this code assumes is that the timebases have been synchronized
  12. * by firmware on SMP and are never stopped (never do sleep
  13. * on SMP then, nap and doze are OK).
  14. *
  15. * Speeded up do_gettimeofday by getting rid of references to
  16. * xtime (which required locks for consistency). (mikejc@us.ibm.com)
  17. *
  18. * TODO (not necessarily in this file):
  19. * - improve precision and reproducibility of timebase frequency
  20. * measurement at boot time. (for iSeries, we calibrate the timebase
  21. * against the Titan chip's clock.)
  22. * - for astronomical applications: add a new function to get
  23. * non ambiguous timestamps even around leap seconds. This needs
  24. * a new timestamp format and a good name.
  25. *
  26. * 1997-09-10 Updated NTP code according to technical memorandum Jan '96
  27. * "A Kernel Model for Precision Timekeeping" by Dave Mills
  28. *
  29. * This program is free software; you can redistribute it and/or
  30. * modify it under the terms of the GNU General Public License
  31. * as published by the Free Software Foundation; either version
  32. * 2 of the License, or (at your option) any later version.
  33. */
  34. #include <linux/errno.h>
  35. #include <linux/module.h>
  36. #include <linux/sched.h>
  37. #include <linux/kernel.h>
  38. #include <linux/param.h>
  39. #include <linux/string.h>
  40. #include <linux/mm.h>
  41. #include <linux/interrupt.h>
  42. #include <linux/timex.h>
  43. #include <linux/kernel_stat.h>
  44. #include <linux/time.h>
  45. #include <linux/init.h>
  46. #include <linux/profile.h>
  47. #include <linux/cpu.h>
  48. #include <linux/security.h>
  49. #include <linux/percpu.h>
  50. #include <linux/rtc.h>
  51. #include <linux/jiffies.h>
  52. #include <linux/posix-timers.h>
  53. #include <linux/irq.h>
  54. #include <linux/delay.h>
  55. #include <linux/perf_event.h>
  56. #include <asm/io.h>
  57. #include <asm/processor.h>
  58. #include <asm/nvram.h>
  59. #include <asm/cache.h>
  60. #include <asm/machdep.h>
  61. #include <asm/uaccess.h>
  62. #include <asm/time.h>
  63. #include <asm/prom.h>
  64. #include <asm/irq.h>
  65. #include <asm/div64.h>
  66. #include <asm/smp.h>
  67. #include <asm/vdso_datapage.h>
  68. #include <asm/firmware.h>
  69. #include <asm/cputime.h>
  70. #ifdef CONFIG_PPC_ISERIES
  71. #include <asm/iseries/it_lp_queue.h>
  72. #include <asm/iseries/hv_call_xm.h>
  73. #endif
  74. /* powerpc clocksource/clockevent code */
  75. #include <linux/clockchips.h>
  76. #include <linux/clocksource.h>
  77. static cycle_t rtc_read(struct clocksource *);
  78. static struct clocksource clocksource_rtc = {
  79. .name = "rtc",
  80. .rating = 400,
  81. .flags = CLOCK_SOURCE_IS_CONTINUOUS,
  82. .mask = CLOCKSOURCE_MASK(64),
  83. .shift = 22,
  84. .mult = 0, /* To be filled in */
  85. .read = rtc_read,
  86. };
  87. static cycle_t timebase_read(struct clocksource *);
  88. static struct clocksource clocksource_timebase = {
  89. .name = "timebase",
  90. .rating = 400,
  91. .flags = CLOCK_SOURCE_IS_CONTINUOUS,
  92. .mask = CLOCKSOURCE_MASK(64),
  93. .shift = 22,
  94. .mult = 0, /* To be filled in */
  95. .read = timebase_read,
  96. };
  97. #define DECREMENTER_MAX 0x7fffffff
  98. static int decrementer_set_next_event(unsigned long evt,
  99. struct clock_event_device *dev);
  100. static void decrementer_set_mode(enum clock_event_mode mode,
  101. struct clock_event_device *dev);
  102. static struct clock_event_device decrementer_clockevent = {
  103. .name = "decrementer",
  104. .rating = 200,
  105. .shift = 0, /* To be filled in */
  106. .mult = 0, /* To be filled in */
  107. .irq = 0,
  108. .set_next_event = decrementer_set_next_event,
  109. .set_mode = decrementer_set_mode,
  110. .features = CLOCK_EVT_FEAT_ONESHOT,
  111. };
  112. struct decrementer_clock {
  113. struct clock_event_device event;
  114. u64 next_tb;
  115. };
  116. static DEFINE_PER_CPU(struct decrementer_clock, decrementers);
  117. #ifdef CONFIG_PPC_ISERIES
  118. static unsigned long __initdata iSeries_recal_titan;
  119. static signed long __initdata iSeries_recal_tb;
  120. /* Forward declaration is only needed for iSereis compiles */
  121. static void __init clocksource_init(void);
  122. #endif
  123. #define XSEC_PER_SEC (1024*1024)
  124. #ifdef CONFIG_PPC64
  125. #define SCALE_XSEC(xsec, max) (((xsec) * max) / XSEC_PER_SEC)
  126. #else
  127. /* compute ((xsec << 12) * max) >> 32 */
  128. #define SCALE_XSEC(xsec, max) mulhwu((xsec) << 12, max)
  129. #endif
  130. unsigned long tb_ticks_per_jiffy;
  131. unsigned long tb_ticks_per_usec = 100; /* sane default */
  132. EXPORT_SYMBOL(tb_ticks_per_usec);
  133. unsigned long tb_ticks_per_sec;
  134. EXPORT_SYMBOL(tb_ticks_per_sec); /* for cputime_t conversions */
  135. u64 tb_to_xs;
  136. unsigned tb_to_us;
  137. #define TICKLEN_SCALE NTP_SCALE_SHIFT
  138. static u64 last_tick_len; /* units are ns / 2^TICKLEN_SCALE */
  139. static u64 ticklen_to_xs; /* 0.64 fraction */
  140. /* If last_tick_len corresponds to about 1/HZ seconds, then
  141. last_tick_len << TICKLEN_SHIFT will be about 2^63. */
  142. #define TICKLEN_SHIFT (63 - 30 - TICKLEN_SCALE + SHIFT_HZ)
  143. DEFINE_SPINLOCK(rtc_lock);
  144. EXPORT_SYMBOL_GPL(rtc_lock);
  145. static u64 tb_to_ns_scale __read_mostly;
  146. static unsigned tb_to_ns_shift __read_mostly;
  147. static unsigned long boot_tb __read_mostly;
  148. extern struct timezone sys_tz;
  149. static long timezone_offset;
  150. unsigned long ppc_proc_freq;
  151. EXPORT_SYMBOL(ppc_proc_freq);
  152. unsigned long ppc_tb_freq;
  153. static u64 tb_last_jiffy __cacheline_aligned_in_smp;
  154. static DEFINE_PER_CPU(u64, last_jiffy);
  155. #ifdef CONFIG_VIRT_CPU_ACCOUNTING
  156. /*
  157. * Factors for converting from cputime_t (timebase ticks) to
  158. * jiffies, milliseconds, seconds, and clock_t (1/USER_HZ seconds).
  159. * These are all stored as 0.64 fixed-point binary fractions.
  160. */
  161. u64 __cputime_jiffies_factor;
  162. EXPORT_SYMBOL(__cputime_jiffies_factor);
  163. u64 __cputime_msec_factor;
  164. EXPORT_SYMBOL(__cputime_msec_factor);
  165. u64 __cputime_sec_factor;
  166. EXPORT_SYMBOL(__cputime_sec_factor);
  167. u64 __cputime_clockt_factor;
  168. EXPORT_SYMBOL(__cputime_clockt_factor);
  169. DEFINE_PER_CPU(unsigned long, cputime_last_delta);
  170. DEFINE_PER_CPU(unsigned long, cputime_scaled_last_delta);
  171. cputime_t cputime_one_jiffy;
  172. static void calc_cputime_factors(void)
  173. {
  174. struct div_result res;
  175. div128_by_32(HZ, 0, tb_ticks_per_sec, &res);
  176. __cputime_jiffies_factor = res.result_low;
  177. div128_by_32(1000, 0, tb_ticks_per_sec, &res);
  178. __cputime_msec_factor = res.result_low;
  179. div128_by_32(1, 0, tb_ticks_per_sec, &res);
  180. __cputime_sec_factor = res.result_low;
  181. div128_by_32(USER_HZ, 0, tb_ticks_per_sec, &res);
  182. __cputime_clockt_factor = res.result_low;
  183. }
  184. /*
  185. * Read the PURR on systems that have it, otherwise the timebase.
  186. */
  187. static u64 read_purr(void)
  188. {
  189. if (cpu_has_feature(CPU_FTR_PURR))
  190. return mfspr(SPRN_PURR);
  191. return mftb();
  192. }
  193. /*
  194. * Read the SPURR on systems that have it, otherwise the purr
  195. */
  196. static u64 read_spurr(u64 purr)
  197. {
  198. /*
  199. * cpus without PURR won't have a SPURR
  200. * We already know the former when we use this, so tell gcc
  201. */
  202. if (cpu_has_feature(CPU_FTR_PURR) && cpu_has_feature(CPU_FTR_SPURR))
  203. return mfspr(SPRN_SPURR);
  204. return purr;
  205. }
  206. /*
  207. * Account time for a transition between system, hard irq
  208. * or soft irq state.
  209. */
  210. void account_system_vtime(struct task_struct *tsk)
  211. {
  212. u64 now, nowscaled, delta, deltascaled, sys_time;
  213. unsigned long flags;
  214. local_irq_save(flags);
  215. now = read_purr();
  216. nowscaled = read_spurr(now);
  217. delta = now - get_paca()->startpurr;
  218. deltascaled = nowscaled - get_paca()->startspurr;
  219. get_paca()->startpurr = now;
  220. get_paca()->startspurr = nowscaled;
  221. if (!in_interrupt()) {
  222. /* deltascaled includes both user and system time.
  223. * Hence scale it based on the purr ratio to estimate
  224. * the system time */
  225. sys_time = get_paca()->system_time;
  226. if (get_paca()->user_time)
  227. deltascaled = deltascaled * sys_time /
  228. (sys_time + get_paca()->user_time);
  229. delta += sys_time;
  230. get_paca()->system_time = 0;
  231. }
  232. if (in_irq() || idle_task(smp_processor_id()) != tsk)
  233. account_system_time(tsk, 0, delta, deltascaled);
  234. else
  235. account_idle_time(delta);
  236. per_cpu(cputime_last_delta, smp_processor_id()) = delta;
  237. per_cpu(cputime_scaled_last_delta, smp_processor_id()) = deltascaled;
  238. local_irq_restore(flags);
  239. }
  240. /*
  241. * Transfer the user and system times accumulated in the paca
  242. * by the exception entry and exit code to the generic process
  243. * user and system time records.
  244. * Must be called with interrupts disabled.
  245. */
  246. void account_process_tick(struct task_struct *tsk, int user_tick)
  247. {
  248. cputime_t utime, utimescaled;
  249. utime = get_paca()->user_time;
  250. get_paca()->user_time = 0;
  251. utimescaled = cputime_to_scaled(utime);
  252. account_user_time(tsk, utime, utimescaled);
  253. }
  254. /*
  255. * Stuff for accounting stolen time.
  256. */
  257. struct cpu_purr_data {
  258. int initialized; /* thread is running */
  259. u64 tb; /* last TB value read */
  260. u64 purr; /* last PURR value read */
  261. u64 spurr; /* last SPURR value read */
  262. };
  263. /*
  264. * Each entry in the cpu_purr_data array is manipulated only by its
  265. * "owner" cpu -- usually in the timer interrupt but also occasionally
  266. * in process context for cpu online. As long as cpus do not touch
  267. * each others' cpu_purr_data, disabling local interrupts is
  268. * sufficient to serialize accesses.
  269. */
  270. static DEFINE_PER_CPU(struct cpu_purr_data, cpu_purr_data);
  271. static void snapshot_tb_and_purr(void *data)
  272. {
  273. unsigned long flags;
  274. struct cpu_purr_data *p = &__get_cpu_var(cpu_purr_data);
  275. local_irq_save(flags);
  276. p->tb = get_tb_or_rtc();
  277. p->purr = mfspr(SPRN_PURR);
  278. wmb();
  279. p->initialized = 1;
  280. local_irq_restore(flags);
  281. }
  282. /*
  283. * Called during boot when all cpus have come up.
  284. */
  285. void snapshot_timebases(void)
  286. {
  287. if (!cpu_has_feature(CPU_FTR_PURR))
  288. return;
  289. on_each_cpu(snapshot_tb_and_purr, NULL, 1);
  290. }
  291. /*
  292. * Must be called with interrupts disabled.
  293. */
  294. void calculate_steal_time(void)
  295. {
  296. u64 tb, purr;
  297. s64 stolen;
  298. struct cpu_purr_data *pme;
  299. pme = &__get_cpu_var(cpu_purr_data);
  300. if (!pme->initialized)
  301. return; /* !CPU_FTR_PURR or early in early boot */
  302. tb = mftb();
  303. purr = mfspr(SPRN_PURR);
  304. stolen = (tb - pme->tb) - (purr - pme->purr);
  305. if (stolen > 0) {
  306. if (idle_task(smp_processor_id()) != current)
  307. account_steal_time(stolen);
  308. else
  309. account_idle_time(stolen);
  310. }
  311. pme->tb = tb;
  312. pme->purr = purr;
  313. }
  314. #ifdef CONFIG_PPC_SPLPAR
  315. /*
  316. * Must be called before the cpu is added to the online map when
  317. * a cpu is being brought up at runtime.
  318. */
  319. static void snapshot_purr(void)
  320. {
  321. struct cpu_purr_data *pme;
  322. unsigned long flags;
  323. if (!cpu_has_feature(CPU_FTR_PURR))
  324. return;
  325. local_irq_save(flags);
  326. pme = &__get_cpu_var(cpu_purr_data);
  327. pme->tb = mftb();
  328. pme->purr = mfspr(SPRN_PURR);
  329. pme->initialized = 1;
  330. local_irq_restore(flags);
  331. }
  332. #endif /* CONFIG_PPC_SPLPAR */
  333. #else /* ! CONFIG_VIRT_CPU_ACCOUNTING */
  334. #define calc_cputime_factors()
  335. #define calculate_steal_time() do { } while (0)
  336. #endif
  337. #if !(defined(CONFIG_VIRT_CPU_ACCOUNTING) && defined(CONFIG_PPC_SPLPAR))
  338. #define snapshot_purr() do { } while (0)
  339. #endif
  340. /*
  341. * Called when a cpu comes up after the system has finished booting,
  342. * i.e. as a result of a hotplug cpu action.
  343. */
  344. void snapshot_timebase(void)
  345. {
  346. __get_cpu_var(last_jiffy) = get_tb_or_rtc();
  347. snapshot_purr();
  348. }
  349. void __delay(unsigned long loops)
  350. {
  351. unsigned long start;
  352. int diff;
  353. if (__USE_RTC()) {
  354. start = get_rtcl();
  355. do {
  356. /* the RTCL register wraps at 1000000000 */
  357. diff = get_rtcl() - start;
  358. if (diff < 0)
  359. diff += 1000000000;
  360. } while (diff < loops);
  361. } else {
  362. start = get_tbl();
  363. while (get_tbl() - start < loops)
  364. HMT_low();
  365. HMT_medium();
  366. }
  367. }
  368. EXPORT_SYMBOL(__delay);
  369. void udelay(unsigned long usecs)
  370. {
  371. __delay(tb_ticks_per_usec * usecs);
  372. }
  373. EXPORT_SYMBOL(udelay);
  374. static inline void update_gtod(u64 new_tb_stamp, u64 new_stamp_xsec,
  375. u64 new_tb_to_xs)
  376. {
  377. /*
  378. * tb_update_count is used to allow the userspace gettimeofday code
  379. * to assure itself that it sees a consistent view of the tb_to_xs and
  380. * stamp_xsec variables. It reads the tb_update_count, then reads
  381. * tb_to_xs and stamp_xsec and then reads tb_update_count again. If
  382. * the two values of tb_update_count match and are even then the
  383. * tb_to_xs and stamp_xsec values are consistent. If not, then it
  384. * loops back and reads them again until this criteria is met.
  385. * We expect the caller to have done the first increment of
  386. * vdso_data->tb_update_count already.
  387. */
  388. vdso_data->tb_orig_stamp = new_tb_stamp;
  389. vdso_data->stamp_xsec = new_stamp_xsec;
  390. vdso_data->tb_to_xs = new_tb_to_xs;
  391. vdso_data->wtom_clock_sec = wall_to_monotonic.tv_sec;
  392. vdso_data->wtom_clock_nsec = wall_to_monotonic.tv_nsec;
  393. vdso_data->stamp_xtime = xtime;
  394. smp_wmb();
  395. ++(vdso_data->tb_update_count);
  396. }
  397. #ifdef CONFIG_SMP
  398. unsigned long profile_pc(struct pt_regs *regs)
  399. {
  400. unsigned long pc = instruction_pointer(regs);
  401. if (in_lock_functions(pc))
  402. return regs->link;
  403. return pc;
  404. }
  405. EXPORT_SYMBOL(profile_pc);
  406. #endif
  407. #ifdef CONFIG_PPC_ISERIES
  408. /*
  409. * This function recalibrates the timebase based on the 49-bit time-of-day
  410. * value in the Titan chip. The Titan is much more accurate than the value
  411. * returned by the service processor for the timebase frequency.
  412. */
  413. static int __init iSeries_tb_recal(void)
  414. {
  415. struct div_result divres;
  416. unsigned long titan, tb;
  417. /* Make sure we only run on iSeries */
  418. if (!firmware_has_feature(FW_FEATURE_ISERIES))
  419. return -ENODEV;
  420. tb = get_tb();
  421. titan = HvCallXm_loadTod();
  422. if ( iSeries_recal_titan ) {
  423. unsigned long tb_ticks = tb - iSeries_recal_tb;
  424. unsigned long titan_usec = (titan - iSeries_recal_titan) >> 12;
  425. unsigned long new_tb_ticks_per_sec = (tb_ticks * USEC_PER_SEC)/titan_usec;
  426. unsigned long new_tb_ticks_per_jiffy =
  427. DIV_ROUND_CLOSEST(new_tb_ticks_per_sec, HZ);
  428. long tick_diff = new_tb_ticks_per_jiffy - tb_ticks_per_jiffy;
  429. char sign = '+';
  430. /* make sure tb_ticks_per_sec and tb_ticks_per_jiffy are consistent */
  431. new_tb_ticks_per_sec = new_tb_ticks_per_jiffy * HZ;
  432. if ( tick_diff < 0 ) {
  433. tick_diff = -tick_diff;
  434. sign = '-';
  435. }
  436. if ( tick_diff ) {
  437. if ( tick_diff < tb_ticks_per_jiffy/25 ) {
  438. printk( "Titan recalibrate: new tb_ticks_per_jiffy = %lu (%c%ld)\n",
  439. new_tb_ticks_per_jiffy, sign, tick_diff );
  440. tb_ticks_per_jiffy = new_tb_ticks_per_jiffy;
  441. tb_ticks_per_sec = new_tb_ticks_per_sec;
  442. calc_cputime_factors();
  443. div128_by_32( XSEC_PER_SEC, 0, tb_ticks_per_sec, &divres );
  444. tb_to_xs = divres.result_low;
  445. vdso_data->tb_ticks_per_sec = tb_ticks_per_sec;
  446. vdso_data->tb_to_xs = tb_to_xs;
  447. setup_cputime_one_jiffy();
  448. }
  449. else {
  450. printk( "Titan recalibrate: FAILED (difference > 4 percent)\n"
  451. " new tb_ticks_per_jiffy = %lu\n"
  452. " old tb_ticks_per_jiffy = %lu\n",
  453. new_tb_ticks_per_jiffy, tb_ticks_per_jiffy );
  454. }
  455. }
  456. }
  457. iSeries_recal_titan = titan;
  458. iSeries_recal_tb = tb;
  459. /* Called here as now we know accurate values for the timebase */
  460. clocksource_init();
  461. return 0;
  462. }
  463. late_initcall(iSeries_tb_recal);
  464. /* Called from platform early init */
  465. void __init iSeries_time_init_early(void)
  466. {
  467. iSeries_recal_tb = get_tb();
  468. iSeries_recal_titan = HvCallXm_loadTod();
  469. }
  470. #endif /* CONFIG_PPC_ISERIES */
  471. #if defined(CONFIG_PERF_EVENTS) && defined(CONFIG_PPC32)
  472. DEFINE_PER_CPU(u8, perf_event_pending);
  473. void set_perf_event_pending(void)
  474. {
  475. get_cpu_var(perf_event_pending) = 1;
  476. set_dec(1);
  477. put_cpu_var(perf_event_pending);
  478. }
  479. #define test_perf_event_pending() __get_cpu_var(perf_event_pending)
  480. #define clear_perf_event_pending() __get_cpu_var(perf_event_pending) = 0
  481. #else /* CONFIG_PERF_EVENTS && CONFIG_PPC32 */
  482. #define test_perf_event_pending() 0
  483. #define clear_perf_event_pending()
  484. #endif /* CONFIG_PERF_EVENTS && CONFIG_PPC32 */
  485. /*
  486. * For iSeries shared processors, we have to let the hypervisor
  487. * set the hardware decrementer. We set a virtual decrementer
  488. * in the lppaca and call the hypervisor if the virtual
  489. * decrementer is less than the current value in the hardware
  490. * decrementer. (almost always the new decrementer value will
  491. * be greater than the current hardware decementer so the hypervisor
  492. * call will not be needed)
  493. */
  494. /*
  495. * timer_interrupt - gets called when the decrementer overflows,
  496. * with interrupts disabled.
  497. */
  498. void timer_interrupt(struct pt_regs * regs)
  499. {
  500. struct pt_regs *old_regs;
  501. struct decrementer_clock *decrementer = &__get_cpu_var(decrementers);
  502. struct clock_event_device *evt = &decrementer->event;
  503. u64 now;
  504. /* Ensure a positive value is written to the decrementer, or else
  505. * some CPUs will continuue to take decrementer exceptions */
  506. set_dec(DECREMENTER_MAX);
  507. #ifdef CONFIG_PPC32
  508. if (test_perf_event_pending()) {
  509. clear_perf_event_pending();
  510. perf_event_do_pending();
  511. }
  512. if (atomic_read(&ppc_n_lost_interrupts) != 0)
  513. do_IRQ(regs);
  514. #endif
  515. now = get_tb_or_rtc();
  516. if (now < decrementer->next_tb) {
  517. /* not time for this event yet */
  518. now = decrementer->next_tb - now;
  519. if (now <= DECREMENTER_MAX)
  520. set_dec((int)now);
  521. return;
  522. }
  523. old_regs = set_irq_regs(regs);
  524. irq_enter();
  525. calculate_steal_time();
  526. #ifdef CONFIG_PPC_ISERIES
  527. if (firmware_has_feature(FW_FEATURE_ISERIES))
  528. get_lppaca()->int_dword.fields.decr_int = 0;
  529. #endif
  530. if (evt->event_handler)
  531. evt->event_handler(evt);
  532. #ifdef CONFIG_PPC_ISERIES
  533. if (firmware_has_feature(FW_FEATURE_ISERIES) && hvlpevent_is_pending())
  534. process_hvlpevents();
  535. #endif
  536. #ifdef CONFIG_PPC64
  537. /* collect purr register values often, for accurate calculations */
  538. if (firmware_has_feature(FW_FEATURE_SPLPAR)) {
  539. struct cpu_usage *cu = &__get_cpu_var(cpu_usage_array);
  540. cu->current_tb = mfspr(SPRN_PURR);
  541. }
  542. #endif
  543. irq_exit();
  544. set_irq_regs(old_regs);
  545. }
  546. void wakeup_decrementer(void)
  547. {
  548. unsigned long ticks;
  549. /*
  550. * The timebase gets saved on sleep and restored on wakeup,
  551. * so all we need to do is to reset the decrementer.
  552. */
  553. ticks = tb_ticks_since(__get_cpu_var(last_jiffy));
  554. if (ticks < tb_ticks_per_jiffy)
  555. ticks = tb_ticks_per_jiffy - ticks;
  556. else
  557. ticks = 1;
  558. set_dec(ticks);
  559. }
  560. #ifdef CONFIG_SUSPEND
  561. void generic_suspend_disable_irqs(void)
  562. {
  563. preempt_disable();
  564. /* Disable the decrementer, so that it doesn't interfere
  565. * with suspending.
  566. */
  567. set_dec(0x7fffffff);
  568. local_irq_disable();
  569. set_dec(0x7fffffff);
  570. }
  571. void generic_suspend_enable_irqs(void)
  572. {
  573. wakeup_decrementer();
  574. local_irq_enable();
  575. preempt_enable();
  576. }
  577. /* Overrides the weak version in kernel/power/main.c */
  578. void arch_suspend_disable_irqs(void)
  579. {
  580. if (ppc_md.suspend_disable_irqs)
  581. ppc_md.suspend_disable_irqs();
  582. generic_suspend_disable_irqs();
  583. }
  584. /* Overrides the weak version in kernel/power/main.c */
  585. void arch_suspend_enable_irqs(void)
  586. {
  587. generic_suspend_enable_irqs();
  588. if (ppc_md.suspend_enable_irqs)
  589. ppc_md.suspend_enable_irqs();
  590. }
  591. #endif
  592. #ifdef CONFIG_SMP
  593. void __init smp_space_timers(unsigned int max_cpus)
  594. {
  595. int i;
  596. u64 previous_tb = per_cpu(last_jiffy, boot_cpuid);
  597. /* make sure tb > per_cpu(last_jiffy, cpu) for all cpus always */
  598. previous_tb -= tb_ticks_per_jiffy;
  599. for_each_possible_cpu(i) {
  600. if (i == boot_cpuid)
  601. continue;
  602. per_cpu(last_jiffy, i) = previous_tb;
  603. }
  604. }
  605. #endif
  606. /*
  607. * Scheduler clock - returns current time in nanosec units.
  608. *
  609. * Note: mulhdu(a, b) (multiply high double unsigned) returns
  610. * the high 64 bits of a * b, i.e. (a * b) >> 64, where a and b
  611. * are 64-bit unsigned numbers.
  612. */
  613. unsigned long long sched_clock(void)
  614. {
  615. if (__USE_RTC())
  616. return get_rtc();
  617. return mulhdu(get_tb() - boot_tb, tb_to_ns_scale) << tb_to_ns_shift;
  618. }
  619. static int __init get_freq(char *name, int cells, unsigned long *val)
  620. {
  621. struct device_node *cpu;
  622. const unsigned int *fp;
  623. int found = 0;
  624. /* The cpu node should have timebase and clock frequency properties */
  625. cpu = of_find_node_by_type(NULL, "cpu");
  626. if (cpu) {
  627. fp = of_get_property(cpu, name, NULL);
  628. if (fp) {
  629. found = 1;
  630. *val = of_read_ulong(fp, cells);
  631. }
  632. of_node_put(cpu);
  633. }
  634. return found;
  635. }
  636. /* should become __cpuinit when secondary_cpu_time_init also is */
  637. void start_cpu_decrementer(void)
  638. {
  639. #if defined(CONFIG_BOOKE) || defined(CONFIG_40x)
  640. /* Clear any pending timer interrupts */
  641. mtspr(SPRN_TSR, TSR_ENW | TSR_WIS | TSR_DIS | TSR_FIS);
  642. /* Enable decrementer interrupt */
  643. mtspr(SPRN_TCR, TCR_DIE);
  644. #endif /* defined(CONFIG_BOOKE) || defined(CONFIG_40x) */
  645. }
  646. void __init generic_calibrate_decr(void)
  647. {
  648. ppc_tb_freq = DEFAULT_TB_FREQ; /* hardcoded default */
  649. if (!get_freq("ibm,extended-timebase-frequency", 2, &ppc_tb_freq) &&
  650. !get_freq("timebase-frequency", 1, &ppc_tb_freq)) {
  651. printk(KERN_ERR "WARNING: Estimating decrementer frequency "
  652. "(not found)\n");
  653. }
  654. ppc_proc_freq = DEFAULT_PROC_FREQ; /* hardcoded default */
  655. if (!get_freq("ibm,extended-clock-frequency", 2, &ppc_proc_freq) &&
  656. !get_freq("clock-frequency", 1, &ppc_proc_freq)) {
  657. printk(KERN_ERR "WARNING: Estimating processor frequency "
  658. "(not found)\n");
  659. }
  660. }
  661. int update_persistent_clock(struct timespec now)
  662. {
  663. struct rtc_time tm;
  664. if (!ppc_md.set_rtc_time)
  665. return 0;
  666. to_tm(now.tv_sec + 1 + timezone_offset, &tm);
  667. tm.tm_year -= 1900;
  668. tm.tm_mon -= 1;
  669. return ppc_md.set_rtc_time(&tm);
  670. }
  671. void read_persistent_clock(struct timespec *ts)
  672. {
  673. struct rtc_time tm;
  674. static int first = 1;
  675. ts->tv_nsec = 0;
  676. /* XXX this is a litle fragile but will work okay in the short term */
  677. if (first) {
  678. first = 0;
  679. if (ppc_md.time_init)
  680. timezone_offset = ppc_md.time_init();
  681. /* get_boot_time() isn't guaranteed to be safe to call late */
  682. if (ppc_md.get_boot_time) {
  683. ts->tv_sec = ppc_md.get_boot_time() - timezone_offset;
  684. return;
  685. }
  686. }
  687. if (!ppc_md.get_rtc_time) {
  688. ts->tv_sec = 0;
  689. return;
  690. }
  691. ppc_md.get_rtc_time(&tm);
  692. ts->tv_sec = mktime(tm.tm_year+1900, tm.tm_mon+1, tm.tm_mday,
  693. tm.tm_hour, tm.tm_min, tm.tm_sec);
  694. }
  695. /* clocksource code */
  696. static cycle_t rtc_read(struct clocksource *cs)
  697. {
  698. return (cycle_t)get_rtc();
  699. }
  700. static cycle_t timebase_read(struct clocksource *cs)
  701. {
  702. return (cycle_t)get_tb();
  703. }
  704. void update_vsyscall(struct timespec *wall_time, struct clocksource *clock)
  705. {
  706. u64 t2x, stamp_xsec;
  707. if (clock != &clocksource_timebase)
  708. return;
  709. /* Make userspace gettimeofday spin until we're done. */
  710. ++vdso_data->tb_update_count;
  711. smp_mb();
  712. /* XXX this assumes clock->shift == 22 */
  713. /* 4611686018 ~= 2^(20+64-22) / 1e9 */
  714. t2x = (u64) clock->mult * 4611686018ULL;
  715. stamp_xsec = (u64) xtime.tv_nsec * XSEC_PER_SEC;
  716. do_div(stamp_xsec, 1000000000);
  717. stamp_xsec += (u64) xtime.tv_sec * XSEC_PER_SEC;
  718. update_gtod(clock->cycle_last, stamp_xsec, t2x);
  719. }
  720. void update_vsyscall_tz(void)
  721. {
  722. /* Make userspace gettimeofday spin until we're done. */
  723. ++vdso_data->tb_update_count;
  724. smp_mb();
  725. vdso_data->tz_minuteswest = sys_tz.tz_minuteswest;
  726. vdso_data->tz_dsttime = sys_tz.tz_dsttime;
  727. smp_mb();
  728. ++vdso_data->tb_update_count;
  729. }
  730. static void __init clocksource_init(void)
  731. {
  732. struct clocksource *clock;
  733. if (__USE_RTC())
  734. clock = &clocksource_rtc;
  735. else
  736. clock = &clocksource_timebase;
  737. clock->mult = clocksource_hz2mult(tb_ticks_per_sec, clock->shift);
  738. if (clocksource_register(clock)) {
  739. printk(KERN_ERR "clocksource: %s is already registered\n",
  740. clock->name);
  741. return;
  742. }
  743. printk(KERN_INFO "clocksource: %s mult[%x] shift[%d] registered\n",
  744. clock->name, clock->mult, clock->shift);
  745. }
  746. static int decrementer_set_next_event(unsigned long evt,
  747. struct clock_event_device *dev)
  748. {
  749. __get_cpu_var(decrementers).next_tb = get_tb_or_rtc() + evt;
  750. set_dec(evt);
  751. return 0;
  752. }
  753. static void decrementer_set_mode(enum clock_event_mode mode,
  754. struct clock_event_device *dev)
  755. {
  756. if (mode != CLOCK_EVT_MODE_ONESHOT)
  757. decrementer_set_next_event(DECREMENTER_MAX, dev);
  758. }
  759. static void __init setup_clockevent_multiplier(unsigned long hz)
  760. {
  761. u64 mult, shift = 32;
  762. while (1) {
  763. mult = div_sc(hz, NSEC_PER_SEC, shift);
  764. if (mult && (mult >> 32UL) == 0UL)
  765. break;
  766. shift--;
  767. }
  768. decrementer_clockevent.shift = shift;
  769. decrementer_clockevent.mult = mult;
  770. }
  771. static void register_decrementer_clockevent(int cpu)
  772. {
  773. struct clock_event_device *dec = &per_cpu(decrementers, cpu).event;
  774. *dec = decrementer_clockevent;
  775. dec->cpumask = cpumask_of(cpu);
  776. printk(KERN_DEBUG "clockevent: %s mult[%lx] shift[%d] cpu[%d]\n",
  777. dec->name, dec->mult, dec->shift, cpu);
  778. clockevents_register_device(dec);
  779. }
  780. static void __init init_decrementer_clockevent(void)
  781. {
  782. int cpu = smp_processor_id();
  783. setup_clockevent_multiplier(ppc_tb_freq);
  784. decrementer_clockevent.max_delta_ns =
  785. clockevent_delta2ns(DECREMENTER_MAX, &decrementer_clockevent);
  786. decrementer_clockevent.min_delta_ns =
  787. clockevent_delta2ns(2, &decrementer_clockevent);
  788. register_decrementer_clockevent(cpu);
  789. }
  790. void secondary_cpu_time_init(void)
  791. {
  792. /* Start the decrementer on CPUs that have manual control
  793. * such as BookE
  794. */
  795. start_cpu_decrementer();
  796. /* FIME: Should make unrelatred change to move snapshot_timebase
  797. * call here ! */
  798. register_decrementer_clockevent(smp_processor_id());
  799. }
  800. /* This function is only called on the boot processor */
  801. void __init time_init(void)
  802. {
  803. unsigned long flags;
  804. struct div_result res;
  805. u64 scale, x;
  806. unsigned shift;
  807. if (__USE_RTC()) {
  808. /* 601 processor: dec counts down by 128 every 128ns */
  809. ppc_tb_freq = 1000000000;
  810. tb_last_jiffy = get_rtcl();
  811. } else {
  812. /* Normal PowerPC with timebase register */
  813. ppc_md.calibrate_decr();
  814. printk(KERN_DEBUG "time_init: decrementer frequency = %lu.%.6lu MHz\n",
  815. ppc_tb_freq / 1000000, ppc_tb_freq % 1000000);
  816. printk(KERN_DEBUG "time_init: processor frequency = %lu.%.6lu MHz\n",
  817. ppc_proc_freq / 1000000, ppc_proc_freq % 1000000);
  818. tb_last_jiffy = get_tb();
  819. }
  820. tb_ticks_per_jiffy = ppc_tb_freq / HZ;
  821. tb_ticks_per_sec = ppc_tb_freq;
  822. tb_ticks_per_usec = ppc_tb_freq / 1000000;
  823. tb_to_us = mulhwu_scale_factor(ppc_tb_freq, 1000000);
  824. calc_cputime_factors();
  825. setup_cputime_one_jiffy();
  826. /*
  827. * Calculate the length of each tick in ns. It will not be
  828. * exactly 1e9/HZ unless ppc_tb_freq is divisible by HZ.
  829. * We compute 1e9 * tb_ticks_per_jiffy / ppc_tb_freq,
  830. * rounded up.
  831. */
  832. x = (u64) NSEC_PER_SEC * tb_ticks_per_jiffy + ppc_tb_freq - 1;
  833. do_div(x, ppc_tb_freq);
  834. tick_nsec = x;
  835. last_tick_len = x << TICKLEN_SCALE;
  836. /*
  837. * Compute ticklen_to_xs, which is a factor which gets multiplied
  838. * by (last_tick_len << TICKLEN_SHIFT) to get a tb_to_xs value.
  839. * It is computed as:
  840. * ticklen_to_xs = 2^N / (tb_ticks_per_jiffy * 1e9)
  841. * where N = 64 + 20 - TICKLEN_SCALE - TICKLEN_SHIFT
  842. * which turns out to be N = 51 - SHIFT_HZ.
  843. * This gives the result as a 0.64 fixed-point fraction.
  844. * That value is reduced by an offset amounting to 1 xsec per
  845. * 2^31 timebase ticks to avoid problems with time going backwards
  846. * by 1 xsec when we do timer_recalc_offset due to losing the
  847. * fractional xsec. That offset is equal to ppc_tb_freq/2^51
  848. * since there are 2^20 xsec in a second.
  849. */
  850. div128_by_32((1ULL << 51) - ppc_tb_freq, 0,
  851. tb_ticks_per_jiffy << SHIFT_HZ, &res);
  852. div128_by_32(res.result_high, res.result_low, NSEC_PER_SEC, &res);
  853. ticklen_to_xs = res.result_low;
  854. /* Compute tb_to_xs from tick_nsec */
  855. tb_to_xs = mulhdu(last_tick_len << TICKLEN_SHIFT, ticklen_to_xs);
  856. /*
  857. * Compute scale factor for sched_clock.
  858. * The calibrate_decr() function has set tb_ticks_per_sec,
  859. * which is the timebase frequency.
  860. * We compute 1e9 * 2^64 / tb_ticks_per_sec and interpret
  861. * the 128-bit result as a 64.64 fixed-point number.
  862. * We then shift that number right until it is less than 1.0,
  863. * giving us the scale factor and shift count to use in
  864. * sched_clock().
  865. */
  866. div128_by_32(1000000000, 0, tb_ticks_per_sec, &res);
  867. scale = res.result_low;
  868. for (shift = 0; res.result_high != 0; ++shift) {
  869. scale = (scale >> 1) | (res.result_high << 63);
  870. res.result_high >>= 1;
  871. }
  872. tb_to_ns_scale = scale;
  873. tb_to_ns_shift = shift;
  874. /* Save the current timebase to pretty up CONFIG_PRINTK_TIME */
  875. boot_tb = get_tb_or_rtc();
  876. write_seqlock_irqsave(&xtime_lock, flags);
  877. /* If platform provided a timezone (pmac), we correct the time */
  878. if (timezone_offset) {
  879. sys_tz.tz_minuteswest = -timezone_offset / 60;
  880. sys_tz.tz_dsttime = 0;
  881. }
  882. vdso_data->tb_orig_stamp = tb_last_jiffy;
  883. vdso_data->tb_update_count = 0;
  884. vdso_data->tb_ticks_per_sec = tb_ticks_per_sec;
  885. vdso_data->stamp_xsec = (u64) xtime.tv_sec * XSEC_PER_SEC;
  886. vdso_data->tb_to_xs = tb_to_xs;
  887. write_sequnlock_irqrestore(&xtime_lock, flags);
  888. /* Start the decrementer on CPUs that have manual control
  889. * such as BookE
  890. */
  891. start_cpu_decrementer();
  892. /* Register the clocksource, if we're not running on iSeries */
  893. if (!firmware_has_feature(FW_FEATURE_ISERIES))
  894. clocksource_init();
  895. init_decrementer_clockevent();
  896. }
  897. #define FEBRUARY 2
  898. #define STARTOFTIME 1970
  899. #define SECDAY 86400L
  900. #define SECYR (SECDAY * 365)
  901. #define leapyear(year) ((year) % 4 == 0 && \
  902. ((year) % 100 != 0 || (year) % 400 == 0))
  903. #define days_in_year(a) (leapyear(a) ? 366 : 365)
  904. #define days_in_month(a) (month_days[(a) - 1])
  905. static int month_days[12] = {
  906. 31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31
  907. };
  908. /*
  909. * This only works for the Gregorian calendar - i.e. after 1752 (in the UK)
  910. */
  911. void GregorianDay(struct rtc_time * tm)
  912. {
  913. int leapsToDate;
  914. int lastYear;
  915. int day;
  916. int MonthOffset[] = { 0, 31, 59, 90, 120, 151, 181, 212, 243, 273, 304, 334 };
  917. lastYear = tm->tm_year - 1;
  918. /*
  919. * Number of leap corrections to apply up to end of last year
  920. */
  921. leapsToDate = lastYear / 4 - lastYear / 100 + lastYear / 400;
  922. /*
  923. * This year is a leap year if it is divisible by 4 except when it is
  924. * divisible by 100 unless it is divisible by 400
  925. *
  926. * e.g. 1904 was a leap year, 1900 was not, 1996 is, and 2000 was
  927. */
  928. day = tm->tm_mon > 2 && leapyear(tm->tm_year);
  929. day += lastYear*365 + leapsToDate + MonthOffset[tm->tm_mon-1] +
  930. tm->tm_mday;
  931. tm->tm_wday = day % 7;
  932. }
  933. void to_tm(int tim, struct rtc_time * tm)
  934. {
  935. register int i;
  936. register long hms, day;
  937. day = tim / SECDAY;
  938. hms = tim % SECDAY;
  939. /* Hours, minutes, seconds are easy */
  940. tm->tm_hour = hms / 3600;
  941. tm->tm_min = (hms % 3600) / 60;
  942. tm->tm_sec = (hms % 3600) % 60;
  943. /* Number of years in days */
  944. for (i = STARTOFTIME; day >= days_in_year(i); i++)
  945. day -= days_in_year(i);
  946. tm->tm_year = i;
  947. /* Number of months in days left */
  948. if (leapyear(tm->tm_year))
  949. days_in_month(FEBRUARY) = 29;
  950. for (i = 1; day >= days_in_month(i); i++)
  951. day -= days_in_month(i);
  952. days_in_month(FEBRUARY) = 28;
  953. tm->tm_mon = i;
  954. /* Days are what is left over (+1) from all that. */
  955. tm->tm_mday = day + 1;
  956. /*
  957. * Determine the day of week
  958. */
  959. GregorianDay(tm);
  960. }
  961. /* Auxiliary function to compute scaling factors */
  962. /* Actually the choice of a timebase running at 1/4 the of the bus
  963. * frequency giving resolution of a few tens of nanoseconds is quite nice.
  964. * It makes this computation very precise (27-28 bits typically) which
  965. * is optimistic considering the stability of most processor clock
  966. * oscillators and the precision with which the timebase frequency
  967. * is measured but does not harm.
  968. */
  969. unsigned mulhwu_scale_factor(unsigned inscale, unsigned outscale)
  970. {
  971. unsigned mlt=0, tmp, err;
  972. /* No concern for performance, it's done once: use a stupid
  973. * but safe and compact method to find the multiplier.
  974. */
  975. for (tmp = 1U<<31; tmp != 0; tmp >>= 1) {
  976. if (mulhwu(inscale, mlt|tmp) < outscale)
  977. mlt |= tmp;
  978. }
  979. /* We might still be off by 1 for the best approximation.
  980. * A side effect of this is that if outscale is too large
  981. * the returned value will be zero.
  982. * Many corner cases have been checked and seem to work,
  983. * some might have been forgotten in the test however.
  984. */
  985. err = inscale * (mlt+1);
  986. if (err <= inscale/2)
  987. mlt++;
  988. return mlt;
  989. }
  990. /*
  991. * Divide a 128-bit dividend by a 32-bit divisor, leaving a 128 bit
  992. * result.
  993. */
  994. void div128_by_32(u64 dividend_high, u64 dividend_low,
  995. unsigned divisor, struct div_result *dr)
  996. {
  997. unsigned long a, b, c, d;
  998. unsigned long w, x, y, z;
  999. u64 ra, rb, rc;
  1000. a = dividend_high >> 32;
  1001. b = dividend_high & 0xffffffff;
  1002. c = dividend_low >> 32;
  1003. d = dividend_low & 0xffffffff;
  1004. w = a / divisor;
  1005. ra = ((u64)(a - (w * divisor)) << 32) + b;
  1006. rb = ((u64) do_div(ra, divisor) << 32) + c;
  1007. x = ra;
  1008. rc = ((u64) do_div(rb, divisor) << 32) + d;
  1009. y = rb;
  1010. do_div(rc, divisor);
  1011. z = rc;
  1012. dr->result_high = ((u64)w << 32) + x;
  1013. dr->result_low = ((u64)y << 32) + z;
  1014. }
  1015. /* We don't need to calibrate delay, we use the CPU timebase for that */
  1016. void calibrate_delay(void)
  1017. {
  1018. /* Some generic code (such as spinlock debug) use loops_per_jiffy
  1019. * as the number of __delay(1) in a jiffy, so make it so
  1020. */
  1021. loops_per_jiffy = tb_ticks_per_jiffy;
  1022. }
  1023. static int __init rtc_init(void)
  1024. {
  1025. struct platform_device *pdev;
  1026. if (!ppc_md.get_rtc_time)
  1027. return -ENODEV;
  1028. pdev = platform_device_register_simple("rtc-generic", -1, NULL, 0);
  1029. if (IS_ERR(pdev))
  1030. return PTR_ERR(pdev);
  1031. return 0;
  1032. }
  1033. module_init(rtc_init);