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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.
21 * - for astronomical applications: add a new function to get
22 * non ambiguous timestamps even around leap seconds. This needs
23 * a new timestamp format and a good name.
24 *
25 * 1997-09-10 Updated NTP code according to technical memorandum Jan '96
26 * "A Kernel Model for Precision Timekeeping" by Dave Mills
27 *
28 * This program is free software; you can redistribute it and/or
29 * modify it under the terms of the GNU General Public License
30 * as published by the Free Software Foundation; either version
31 * 2 of the License, or (at your option) any later version.
32 */
33
34 #include <linux/errno.h>
35 #include <linux/export.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/clockchips.h>
46 #include <linux/init.h>
47 #include <linux/profile.h>
48 #include <linux/cpu.h>
49 #include <linux/security.h>
50 #include <linux/percpu.h>
51 #include <linux/rtc.h>
52 #include <linux/jiffies.h>
53 #include <linux/posix-timers.h>
54 #include <linux/irq.h>
55 #include <linux/delay.h>
56 #include <linux/irq_work.h>
57 #include <linux/clk-provider.h>
58 #include <linux/suspend.h>
59 #include <linux/rtc.h>
60 #include <asm/trace.h>
61
62 #include <asm/io.h>
63 #include <asm/processor.h>
64 #include <asm/nvram.h>
65 #include <asm/cache.h>
66 #include <asm/machdep.h>
67 #include <asm/uaccess.h>
68 #include <asm/time.h>
69 #include <asm/prom.h>
70 #include <asm/irq.h>
71 #include <asm/div64.h>
72 #include <asm/smp.h>
73 #include <asm/vdso_datapage.h>
74 #include <asm/firmware.h>
75 #include <asm/cputime.h>
76 #include <asm/asm-prototypes.h>
77
78 /* powerpc clocksource/clockevent code */
79
80 #include <linux/clockchips.h>
81 #include <linux/timekeeper_internal.h>
82
83 static cycle_t rtc_read(struct clocksource *);
84 static struct clocksource clocksource_rtc = {
85 .name = "rtc",
86 .rating = 400,
87 .flags = CLOCK_SOURCE_IS_CONTINUOUS,
88 .mask = CLOCKSOURCE_MASK(64),
89 .read = rtc_read,
90 };
91
92 static cycle_t timebase_read(struct clocksource *);
93 static struct clocksource clocksource_timebase = {
94 .name = "timebase",
95 .rating = 400,
96 .flags = CLOCK_SOURCE_IS_CONTINUOUS,
97 .mask = CLOCKSOURCE_MASK(64),
98 .read = timebase_read,
99 };
100
101 #define DECREMENTER_DEFAULT_MAX 0x7FFFFFFF
102 u64 decrementer_max = DECREMENTER_DEFAULT_MAX;
103
104 static int decrementer_set_next_event(unsigned long evt,
105 struct clock_event_device *dev);
106 static int decrementer_shutdown(struct clock_event_device *evt);
107
108 struct clock_event_device decrementer_clockevent = {
109 .name = "decrementer",
110 .rating = 200,
111 .irq = 0,
112 .set_next_event = decrementer_set_next_event,
113 .set_state_shutdown = decrementer_shutdown,
114 .tick_resume = decrementer_shutdown,
115 .features = CLOCK_EVT_FEAT_ONESHOT |
116 CLOCK_EVT_FEAT_C3STOP,
117 };
118 EXPORT_SYMBOL(decrementer_clockevent);
119
120 DEFINE_PER_CPU(u64, decrementers_next_tb);
121 static DEFINE_PER_CPU(struct clock_event_device, decrementers);
122
123 #define XSEC_PER_SEC (1024*1024)
124
125 #ifdef CONFIG_PPC64
126 #define SCALE_XSEC(xsec, max) (((xsec) * max) / XSEC_PER_SEC)
127 #else
128 /* compute ((xsec << 12) * max) >> 32 */
129 #define SCALE_XSEC(xsec, max) mulhwu((xsec) << 12, max)
130 #endif
131
132 unsigned long tb_ticks_per_jiffy;
133 unsigned long tb_ticks_per_usec = 100; /* sane default */
134 EXPORT_SYMBOL(tb_ticks_per_usec);
135 unsigned long tb_ticks_per_sec;
136 EXPORT_SYMBOL(tb_ticks_per_sec); /* for cputime_t conversions */
137
138 DEFINE_SPINLOCK(rtc_lock);
139 EXPORT_SYMBOL_GPL(rtc_lock);
140
141 static u64 tb_to_ns_scale __read_mostly;
142 static unsigned tb_to_ns_shift __read_mostly;
143 static u64 boot_tb __read_mostly;
144
145 extern struct timezone sys_tz;
146 static long timezone_offset;
147
148 unsigned long ppc_proc_freq;
149 EXPORT_SYMBOL_GPL(ppc_proc_freq);
150 unsigned long ppc_tb_freq;
151 EXPORT_SYMBOL_GPL(ppc_tb_freq);
152
153 #ifdef CONFIG_VIRT_CPU_ACCOUNTING_NATIVE
154 /*
155 * Factors for converting from cputime_t (timebase ticks) to
156 * jiffies, microseconds, seconds, and clock_t (1/USER_HZ seconds).
157 * These are all stored as 0.64 fixed-point binary fractions.
158 */
159 u64 __cputime_jiffies_factor;
160 EXPORT_SYMBOL(__cputime_jiffies_factor);
161 u64 __cputime_usec_factor;
162 EXPORT_SYMBOL(__cputime_usec_factor);
163 u64 __cputime_sec_factor;
164 EXPORT_SYMBOL(__cputime_sec_factor);
165 u64 __cputime_clockt_factor;
166 EXPORT_SYMBOL(__cputime_clockt_factor);
167
168 cputime_t cputime_one_jiffy;
169
170 #ifdef CONFIG_PPC_SPLPAR
171 void (*dtl_consumer)(struct dtl_entry *, u64);
172 #endif
173
174 #ifdef CONFIG_PPC64
175 #define get_accounting(tsk) (&get_paca()->accounting)
176 #else
177 #define get_accounting(tsk) (&task_thread_info(tsk)->accounting)
178 #endif
179
180 static void calc_cputime_factors(void)
181 {
182 struct div_result res;
183
184 div128_by_32(HZ, 0, tb_ticks_per_sec, &res);
185 __cputime_jiffies_factor = res.result_low;
186 div128_by_32(1000000, 0, tb_ticks_per_sec, &res);
187 __cputime_usec_factor = res.result_low;
188 div128_by_32(1, 0, tb_ticks_per_sec, &res);
189 __cputime_sec_factor = res.result_low;
190 div128_by_32(USER_HZ, 0, tb_ticks_per_sec, &res);
191 __cputime_clockt_factor = res.result_low;
192 }
193
194 /*
195 * Read the SPURR on systems that have it, otherwise the PURR,
196 * or if that doesn't exist return the timebase value passed in.
197 */
198 static unsigned long read_spurr(unsigned long tb)
199 {
200 if (cpu_has_feature(CPU_FTR_SPURR))
201 return mfspr(SPRN_SPURR);
202 if (cpu_has_feature(CPU_FTR_PURR))
203 return mfspr(SPRN_PURR);
204 return tb;
205 }
206
207 #ifdef CONFIG_PPC_SPLPAR
208
209 /*
210 * Scan the dispatch trace log and count up the stolen time.
211 * Should be called with interrupts disabled.
212 */
213 static u64 scan_dispatch_log(u64 stop_tb)
214 {
215 u64 i = local_paca->dtl_ridx;
216 struct dtl_entry *dtl = local_paca->dtl_curr;
217 struct dtl_entry *dtl_end = local_paca->dispatch_log_end;
218 struct lppaca *vpa = local_paca->lppaca_ptr;
219 u64 tb_delta;
220 u64 stolen = 0;
221 u64 dtb;
222
223 if (!dtl)
224 return 0;
225
226 if (i == be64_to_cpu(vpa->dtl_idx))
227 return 0;
228 while (i < be64_to_cpu(vpa->dtl_idx)) {
229 dtb = be64_to_cpu(dtl->timebase);
230 tb_delta = be32_to_cpu(dtl->enqueue_to_dispatch_time) +
231 be32_to_cpu(dtl->ready_to_enqueue_time);
232 barrier();
233 if (i + N_DISPATCH_LOG < be64_to_cpu(vpa->dtl_idx)) {
234 /* buffer has overflowed */
235 i = be64_to_cpu(vpa->dtl_idx) - N_DISPATCH_LOG;
236 dtl = local_paca->dispatch_log + (i % N_DISPATCH_LOG);
237 continue;
238 }
239 if (dtb > stop_tb)
240 break;
241 if (dtl_consumer)
242 dtl_consumer(dtl, i);
243 stolen += tb_delta;
244 ++i;
245 ++dtl;
246 if (dtl == dtl_end)
247 dtl = local_paca->dispatch_log;
248 }
249 local_paca->dtl_ridx = i;
250 local_paca->dtl_curr = dtl;
251 return stolen;
252 }
253
254 /*
255 * Accumulate stolen time by scanning the dispatch trace log.
256 * Called on entry from user mode.
257 */
258 void accumulate_stolen_time(void)
259 {
260 u64 sst, ust;
261 u8 save_soft_enabled = local_paca->soft_enabled;
262 struct cpu_accounting_data *acct = &local_paca->accounting;
263
264 /* We are called early in the exception entry, before
265 * soft/hard_enabled are sync'ed to the expected state
266 * for the exception. We are hard disabled but the PACA
267 * needs to reflect that so various debug stuff doesn't
268 * complain
269 */
270 local_paca->soft_enabled = 0;
271
272 sst = scan_dispatch_log(acct->starttime_user);
273 ust = scan_dispatch_log(acct->starttime);
274 acct->system_time -= sst;
275 acct->user_time -= ust;
276 local_paca->stolen_time += ust + sst;
277
278 local_paca->soft_enabled = save_soft_enabled;
279 }
280
281 static inline u64 calculate_stolen_time(u64 stop_tb)
282 {
283 u64 stolen = 0;
284
285 if (get_paca()->dtl_ridx != be64_to_cpu(get_lppaca()->dtl_idx)) {
286 stolen = scan_dispatch_log(stop_tb);
287 get_paca()->accounting.system_time -= stolen;
288 }
289
290 stolen += get_paca()->stolen_time;
291 get_paca()->stolen_time = 0;
292 return stolen;
293 }
294
295 #else /* CONFIG_PPC_SPLPAR */
296 static inline u64 calculate_stolen_time(u64 stop_tb)
297 {
298 return 0;
299 }
300
301 #endif /* CONFIG_PPC_SPLPAR */
302
303 /*
304 * Account time for a transition between system, hard irq
305 * or soft irq state.
306 */
307 static unsigned long vtime_delta(struct task_struct *tsk,
308 unsigned long *sys_scaled,
309 unsigned long *stolen)
310 {
311 unsigned long now, nowscaled, deltascaled;
312 unsigned long udelta, delta, user_scaled;
313 struct cpu_accounting_data *acct = get_accounting(tsk);
314
315 WARN_ON_ONCE(!irqs_disabled());
316
317 now = mftb();
318 nowscaled = read_spurr(now);
319 acct->system_time += now - acct->starttime;
320 acct->starttime = now;
321 deltascaled = nowscaled - acct->startspurr;
322 acct->startspurr = nowscaled;
323
324 *stolen = calculate_stolen_time(now);
325
326 delta = acct->system_time;
327 acct->system_time = 0;
328 udelta = acct->user_time - acct->utime_sspurr;
329 acct->utime_sspurr = acct->user_time;
330
331 /*
332 * Because we don't read the SPURR on every kernel entry/exit,
333 * deltascaled includes both user and system SPURR ticks.
334 * Apportion these ticks to system SPURR ticks and user
335 * SPURR ticks in the same ratio as the system time (delta)
336 * and user time (udelta) values obtained from the timebase
337 * over the same interval. The system ticks get accounted here;
338 * the user ticks get saved up in paca->user_time_scaled to be
339 * used by account_process_tick.
340 */
341 *sys_scaled = delta;
342 user_scaled = udelta;
343 if (deltascaled != delta + udelta) {
344 if (udelta) {
345 *sys_scaled = deltascaled * delta / (delta + udelta);
346 user_scaled = deltascaled - *sys_scaled;
347 } else {
348 *sys_scaled = deltascaled;
349 }
350 }
351 acct->user_time_scaled += user_scaled;
352
353 return delta;
354 }
355
356 void vtime_account_system(struct task_struct *tsk)
357 {
358 unsigned long delta, sys_scaled, stolen;
359
360 delta = vtime_delta(tsk, &sys_scaled, &stolen);
361 account_system_time(tsk, 0, delta);
362 tsk->stimescaled += sys_scaled;
363 if (stolen)
364 account_steal_time(stolen);
365 }
366 EXPORT_SYMBOL_GPL(vtime_account_system);
367
368 void vtime_account_idle(struct task_struct *tsk)
369 {
370 unsigned long delta, sys_scaled, stolen;
371
372 delta = vtime_delta(tsk, &sys_scaled, &stolen);
373 account_idle_time(delta + stolen);
374 }
375
376 /*
377 * Transfer the user time accumulated in the paca
378 * by the exception entry and exit code to the generic
379 * process user time records.
380 * Must be called with interrupts disabled.
381 * Assumes that vtime_account_system/idle() has been called
382 * recently (i.e. since the last entry from usermode) so that
383 * get_paca()->user_time_scaled is up to date.
384 */
385 void vtime_account_user(struct task_struct *tsk)
386 {
387 cputime_t utime, utimescaled;
388 struct cpu_accounting_data *acct = get_accounting(tsk);
389
390 utime = acct->user_time;
391 utimescaled = acct->user_time_scaled;
392 acct->user_time = 0;
393 acct->user_time_scaled = 0;
394 acct->utime_sspurr = 0;
395 account_user_time(tsk, utime);
396 tsk->utimescaled += utimescaled;
397 }
398
399 #ifdef CONFIG_PPC32
400 /*
401 * Called from the context switch with interrupts disabled, to charge all
402 * accumulated times to the current process, and to prepare accounting on
403 * the next process.
404 */
405 void arch_vtime_task_switch(struct task_struct *prev)
406 {
407 struct cpu_accounting_data *acct = get_accounting(current);
408
409 acct->starttime = get_accounting(prev)->starttime;
410 acct->system_time = 0;
411 acct->user_time = 0;
412 }
413 #endif /* CONFIG_PPC32 */
414
415 #else /* ! CONFIG_VIRT_CPU_ACCOUNTING_NATIVE */
416 #define calc_cputime_factors()
417 #endif
418
419 void __delay(unsigned long loops)
420 {
421 unsigned long start;
422 int diff;
423
424 if (__USE_RTC()) {
425 start = get_rtcl();
426 do {
427 /* the RTCL register wraps at 1000000000 */
428 diff = get_rtcl() - start;
429 if (diff < 0)
430 diff += 1000000000;
431 } while (diff < loops);
432 } else {
433 start = get_tbl();
434 while (get_tbl() - start < loops)
435 HMT_low();
436 HMT_medium();
437 }
438 }
439 EXPORT_SYMBOL(__delay);
440
441 void udelay(unsigned long usecs)
442 {
443 __delay(tb_ticks_per_usec * usecs);
444 }
445 EXPORT_SYMBOL(udelay);
446
447 #ifdef CONFIG_SMP
448 unsigned long profile_pc(struct pt_regs *regs)
449 {
450 unsigned long pc = instruction_pointer(regs);
451
452 if (in_lock_functions(pc))
453 return regs->link;
454
455 return pc;
456 }
457 EXPORT_SYMBOL(profile_pc);
458 #endif
459
460 #ifdef CONFIG_IRQ_WORK
461
462 /*
463 * 64-bit uses a byte in the PACA, 32-bit uses a per-cpu variable...
464 */
465 #ifdef CONFIG_PPC64
466 static inline unsigned long test_irq_work_pending(void)
467 {
468 unsigned long x;
469
470 asm volatile("lbz %0,%1(13)"
471 : "=r" (x)
472 : "i" (offsetof(struct paca_struct, irq_work_pending)));
473 return x;
474 }
475
476 static inline void set_irq_work_pending_flag(void)
477 {
478 asm volatile("stb %0,%1(13)" : :
479 "r" (1),
480 "i" (offsetof(struct paca_struct, irq_work_pending)));
481 }
482
483 static inline void clear_irq_work_pending(void)
484 {
485 asm volatile("stb %0,%1(13)" : :
486 "r" (0),
487 "i" (offsetof(struct paca_struct, irq_work_pending)));
488 }
489
490 #else /* 32-bit */
491
492 DEFINE_PER_CPU(u8, irq_work_pending);
493
494 #define set_irq_work_pending_flag() __this_cpu_write(irq_work_pending, 1)
495 #define test_irq_work_pending() __this_cpu_read(irq_work_pending)
496 #define clear_irq_work_pending() __this_cpu_write(irq_work_pending, 0)
497
498 #endif /* 32 vs 64 bit */
499
500 void arch_irq_work_raise(void)
501 {
502 preempt_disable();
503 set_irq_work_pending_flag();
504 set_dec(1);
505 preempt_enable();
506 }
507
508 #else /* CONFIG_IRQ_WORK */
509
510 #define test_irq_work_pending() 0
511 #define clear_irq_work_pending()
512
513 #endif /* CONFIG_IRQ_WORK */
514
515 static void __timer_interrupt(void)
516 {
517 struct pt_regs *regs = get_irq_regs();
518 u64 *next_tb = this_cpu_ptr(&decrementers_next_tb);
519 struct clock_event_device *evt = this_cpu_ptr(&decrementers);
520 u64 now;
521
522 trace_timer_interrupt_entry(regs);
523
524 if (test_irq_work_pending()) {
525 clear_irq_work_pending();
526 irq_work_run();
527 }
528
529 now = get_tb_or_rtc();
530 if (now >= *next_tb) {
531 *next_tb = ~(u64)0;
532 if (evt->event_handler)
533 evt->event_handler(evt);
534 __this_cpu_inc(irq_stat.timer_irqs_event);
535 } else {
536 now = *next_tb - now;
537 if (now <= decrementer_max)
538 set_dec(now);
539 /* We may have raced with new irq work */
540 if (test_irq_work_pending())
541 set_dec(1);
542 __this_cpu_inc(irq_stat.timer_irqs_others);
543 }
544
545 #ifdef CONFIG_PPC64
546 /* collect purr register values often, for accurate calculations */
547 if (firmware_has_feature(FW_FEATURE_SPLPAR)) {
548 struct cpu_usage *cu = this_cpu_ptr(&cpu_usage_array);
549 cu->current_tb = mfspr(SPRN_PURR);
550 }
551 #endif
552
553 trace_timer_interrupt_exit(regs);
554 }
555
556 /*
557 * timer_interrupt - gets called when the decrementer overflows,
558 * with interrupts disabled.
559 */
560 void timer_interrupt(struct pt_regs * regs)
561 {
562 struct pt_regs *old_regs;
563 u64 *next_tb = this_cpu_ptr(&decrementers_next_tb);
564
565 /* Ensure a positive value is written to the decrementer, or else
566 * some CPUs will continue to take decrementer exceptions.
567 */
568 set_dec(decrementer_max);
569
570 /* Some implementations of hotplug will get timer interrupts while
571 * offline, just ignore these and we also need to set
572 * decrementers_next_tb as MAX to make sure __check_irq_replay
573 * don't replay timer interrupt when return, otherwise we'll trap
574 * here infinitely :(
575 */
576 if (!cpu_online(smp_processor_id())) {
577 *next_tb = ~(u64)0;
578 return;
579 }
580
581 /* Conditionally hard-enable interrupts now that the DEC has been
582 * bumped to its maximum value
583 */
584 may_hard_irq_enable();
585
586
587 #if defined(CONFIG_PPC32) && defined(CONFIG_PPC_PMAC)
588 if (atomic_read(&ppc_n_lost_interrupts) != 0)
589 do_IRQ(regs);
590 #endif
591
592 old_regs = set_irq_regs(regs);
593 irq_enter();
594
595 __timer_interrupt();
596 irq_exit();
597 set_irq_regs(old_regs);
598 }
599 EXPORT_SYMBOL(timer_interrupt);
600
601 /*
602 * Hypervisor decrementer interrupts shouldn't occur but are sometimes
603 * left pending on exit from a KVM guest. We don't need to do anything
604 * to clear them, as they are edge-triggered.
605 */
606 void hdec_interrupt(struct pt_regs *regs)
607 {
608 }
609
610 #ifdef CONFIG_SUSPEND
611 static void generic_suspend_disable_irqs(void)
612 {
613 /* Disable the decrementer, so that it doesn't interfere
614 * with suspending.
615 */
616
617 set_dec(decrementer_max);
618 local_irq_disable();
619 set_dec(decrementer_max);
620 }
621
622 static void generic_suspend_enable_irqs(void)
623 {
624 local_irq_enable();
625 }
626
627 /* Overrides the weak version in kernel/power/main.c */
628 void arch_suspend_disable_irqs(void)
629 {
630 if (ppc_md.suspend_disable_irqs)
631 ppc_md.suspend_disable_irqs();
632 generic_suspend_disable_irqs();
633 }
634
635 /* Overrides the weak version in kernel/power/main.c */
636 void arch_suspend_enable_irqs(void)
637 {
638 generic_suspend_enable_irqs();
639 if (ppc_md.suspend_enable_irqs)
640 ppc_md.suspend_enable_irqs();
641 }
642 #endif
643
644 unsigned long long tb_to_ns(unsigned long long ticks)
645 {
646 return mulhdu(ticks, tb_to_ns_scale) << tb_to_ns_shift;
647 }
648 EXPORT_SYMBOL_GPL(tb_to_ns);
649
650 /*
651 * Scheduler clock - returns current time in nanosec units.
652 *
653 * Note: mulhdu(a, b) (multiply high double unsigned) returns
654 * the high 64 bits of a * b, i.e. (a * b) >> 64, where a and b
655 * are 64-bit unsigned numbers.
656 */
657 unsigned long long sched_clock(void)
658 {
659 if (__USE_RTC())
660 return get_rtc();
661 return mulhdu(get_tb() - boot_tb, tb_to_ns_scale) << tb_to_ns_shift;
662 }
663
664
665 #ifdef CONFIG_PPC_PSERIES
666
667 /*
668 * Running clock - attempts to give a view of time passing for a virtualised
669 * kernels.
670 * Uses the VTB register if available otherwise a next best guess.
671 */
672 unsigned long long running_clock(void)
673 {
674 /*
675 * Don't read the VTB as a host since KVM does not switch in host
676 * timebase into the VTB when it takes a guest off the CPU, reading the
677 * VTB would result in reading 'last switched out' guest VTB.
678 *
679 * Host kernels are often compiled with CONFIG_PPC_PSERIES checked, it
680 * would be unsafe to rely only on the #ifdef above.
681 */
682 if (firmware_has_feature(FW_FEATURE_LPAR) &&
683 cpu_has_feature(CPU_FTR_ARCH_207S))
684 return mulhdu(get_vtb() - boot_tb, tb_to_ns_scale) << tb_to_ns_shift;
685
686 /*
687 * This is a next best approximation without a VTB.
688 * On a host which is running bare metal there should never be any stolen
689 * time and on a host which doesn't do any virtualisation TB *should* equal
690 * VTB so it makes no difference anyway.
691 */
692 return local_clock() - cputime_to_nsecs(kcpustat_this_cpu->cpustat[CPUTIME_STEAL]);
693 }
694 #endif
695
696 static int __init get_freq(char *name, int cells, unsigned long *val)
697 {
698 struct device_node *cpu;
699 const __be32 *fp;
700 int found = 0;
701
702 /* The cpu node should have timebase and clock frequency properties */
703 cpu = of_find_node_by_type(NULL, "cpu");
704
705 if (cpu) {
706 fp = of_get_property(cpu, name, NULL);
707 if (fp) {
708 found = 1;
709 *val = of_read_ulong(fp, cells);
710 }
711
712 of_node_put(cpu);
713 }
714
715 return found;
716 }
717
718 static void start_cpu_decrementer(void)
719 {
720 #if defined(CONFIG_BOOKE) || defined(CONFIG_40x)
721 /* Clear any pending timer interrupts */
722 mtspr(SPRN_TSR, TSR_ENW | TSR_WIS | TSR_DIS | TSR_FIS);
723
724 /* Enable decrementer interrupt */
725 mtspr(SPRN_TCR, TCR_DIE);
726 #endif /* defined(CONFIG_BOOKE) || defined(CONFIG_40x) */
727 }
728
729 void __init generic_calibrate_decr(void)
730 {
731 ppc_tb_freq = DEFAULT_TB_FREQ; /* hardcoded default */
732
733 if (!get_freq("ibm,extended-timebase-frequency", 2, &ppc_tb_freq) &&
734 !get_freq("timebase-frequency", 1, &ppc_tb_freq)) {
735
736 printk(KERN_ERR "WARNING: Estimating decrementer frequency "
737 "(not found)\n");
738 }
739
740 ppc_proc_freq = DEFAULT_PROC_FREQ; /* hardcoded default */
741
742 if (!get_freq("ibm,extended-clock-frequency", 2, &ppc_proc_freq) &&
743 !get_freq("clock-frequency", 1, &ppc_proc_freq)) {
744
745 printk(KERN_ERR "WARNING: Estimating processor frequency "
746 "(not found)\n");
747 }
748 }
749
750 int update_persistent_clock(struct timespec now)
751 {
752 struct rtc_time tm;
753
754 if (!ppc_md.set_rtc_time)
755 return -ENODEV;
756
757 to_tm(now.tv_sec + 1 + timezone_offset, &tm);
758 tm.tm_year -= 1900;
759 tm.tm_mon -= 1;
760
761 return ppc_md.set_rtc_time(&tm);
762 }
763
764 static void __read_persistent_clock(struct timespec *ts)
765 {
766 struct rtc_time tm;
767 static int first = 1;
768
769 ts->tv_nsec = 0;
770 /* XXX this is a litle fragile but will work okay in the short term */
771 if (first) {
772 first = 0;
773 if (ppc_md.time_init)
774 timezone_offset = ppc_md.time_init();
775
776 /* get_boot_time() isn't guaranteed to be safe to call late */
777 if (ppc_md.get_boot_time) {
778 ts->tv_sec = ppc_md.get_boot_time() - timezone_offset;
779 return;
780 }
781 }
782 if (!ppc_md.get_rtc_time) {
783 ts->tv_sec = 0;
784 return;
785 }
786 ppc_md.get_rtc_time(&tm);
787
788 ts->tv_sec = mktime(tm.tm_year+1900, tm.tm_mon+1, tm.tm_mday,
789 tm.tm_hour, tm.tm_min, tm.tm_sec);
790 }
791
792 void read_persistent_clock(struct timespec *ts)
793 {
794 __read_persistent_clock(ts);
795
796 /* Sanitize it in case real time clock is set below EPOCH */
797 if (ts->tv_sec < 0) {
798 ts->tv_sec = 0;
799 ts->tv_nsec = 0;
800 }
801
802 }
803
804 /* clocksource code */
805 static cycle_t rtc_read(struct clocksource *cs)
806 {
807 return (cycle_t)get_rtc();
808 }
809
810 static cycle_t timebase_read(struct clocksource *cs)
811 {
812 return (cycle_t)get_tb();
813 }
814
815 void update_vsyscall_old(struct timespec *wall_time, struct timespec *wtm,
816 struct clocksource *clock, u32 mult, cycle_t cycle_last)
817 {
818 u64 new_tb_to_xs, new_stamp_xsec;
819 u32 frac_sec;
820
821 if (clock != &clocksource_timebase)
822 return;
823
824 /* Make userspace gettimeofday spin until we're done. */
825 ++vdso_data->tb_update_count;
826 smp_mb();
827
828 /* 19342813113834067 ~= 2^(20+64) / 1e9 */
829 new_tb_to_xs = (u64) mult * (19342813113834067ULL >> clock->shift);
830 new_stamp_xsec = (u64) wall_time->tv_nsec * XSEC_PER_SEC;
831 do_div(new_stamp_xsec, 1000000000);
832 new_stamp_xsec += (u64) wall_time->tv_sec * XSEC_PER_SEC;
833
834 BUG_ON(wall_time->tv_nsec >= NSEC_PER_SEC);
835 /* this is tv_nsec / 1e9 as a 0.32 fraction */
836 frac_sec = ((u64) wall_time->tv_nsec * 18446744073ULL) >> 32;
837
838 /*
839 * tb_update_count is used to allow the userspace gettimeofday code
840 * to assure itself that it sees a consistent view of the tb_to_xs and
841 * stamp_xsec variables. It reads the tb_update_count, then reads
842 * tb_to_xs and stamp_xsec and then reads tb_update_count again. If
843 * the two values of tb_update_count match and are even then the
844 * tb_to_xs and stamp_xsec values are consistent. If not, then it
845 * loops back and reads them again until this criteria is met.
846 * We expect the caller to have done the first increment of
847 * vdso_data->tb_update_count already.
848 */
849 vdso_data->tb_orig_stamp = cycle_last;
850 vdso_data->stamp_xsec = new_stamp_xsec;
851 vdso_data->tb_to_xs = new_tb_to_xs;
852 vdso_data->wtom_clock_sec = wtm->tv_sec;
853 vdso_data->wtom_clock_nsec = wtm->tv_nsec;
854 vdso_data->stamp_xtime = *wall_time;
855 vdso_data->stamp_sec_fraction = frac_sec;
856 smp_wmb();
857 ++(vdso_data->tb_update_count);
858 }
859
860 void update_vsyscall_tz(void)
861 {
862 vdso_data->tz_minuteswest = sys_tz.tz_minuteswest;
863 vdso_data->tz_dsttime = sys_tz.tz_dsttime;
864 }
865
866 static void __init clocksource_init(void)
867 {
868 struct clocksource *clock;
869
870 if (__USE_RTC())
871 clock = &clocksource_rtc;
872 else
873 clock = &clocksource_timebase;
874
875 if (clocksource_register_hz(clock, tb_ticks_per_sec)) {
876 printk(KERN_ERR "clocksource: %s is already registered\n",
877 clock->name);
878 return;
879 }
880
881 printk(KERN_INFO "clocksource: %s mult[%x] shift[%d] registered\n",
882 clock->name, clock->mult, clock->shift);
883 }
884
885 static int decrementer_set_next_event(unsigned long evt,
886 struct clock_event_device *dev)
887 {
888 __this_cpu_write(decrementers_next_tb, get_tb_or_rtc() + evt);
889 set_dec(evt);
890
891 /* We may have raced with new irq work */
892 if (test_irq_work_pending())
893 set_dec(1);
894
895 return 0;
896 }
897
898 static int decrementer_shutdown(struct clock_event_device *dev)
899 {
900 decrementer_set_next_event(decrementer_max, dev);
901 return 0;
902 }
903
904 /* Interrupt handler for the timer broadcast IPI */
905 void tick_broadcast_ipi_handler(void)
906 {
907 u64 *next_tb = this_cpu_ptr(&decrementers_next_tb);
908
909 *next_tb = get_tb_or_rtc();
910 __timer_interrupt();
911 }
912
913 static void register_decrementer_clockevent(int cpu)
914 {
915 struct clock_event_device *dec = &per_cpu(decrementers, cpu);
916
917 *dec = decrementer_clockevent;
918 dec->cpumask = cpumask_of(cpu);
919
920 printk_once(KERN_DEBUG "clockevent: %s mult[%x] shift[%d] cpu[%d]\n",
921 dec->name, dec->mult, dec->shift, cpu);
922
923 clockevents_register_device(dec);
924 }
925
926 static void enable_large_decrementer(void)
927 {
928 if (!cpu_has_feature(CPU_FTR_ARCH_300))
929 return;
930
931 if (decrementer_max <= DECREMENTER_DEFAULT_MAX)
932 return;
933
934 /*
935 * If we're running as the hypervisor we need to enable the LD manually
936 * otherwise firmware should have done it for us.
937 */
938 if (cpu_has_feature(CPU_FTR_HVMODE))
939 mtspr(SPRN_LPCR, mfspr(SPRN_LPCR) | LPCR_LD);
940 }
941
942 static void __init set_decrementer_max(void)
943 {
944 struct device_node *cpu;
945 u32 bits = 32;
946
947 /* Prior to ISAv3 the decrementer is always 32 bit */
948 if (!cpu_has_feature(CPU_FTR_ARCH_300))
949 return;
950
951 cpu = of_find_node_by_type(NULL, "cpu");
952
953 if (of_property_read_u32(cpu, "ibm,dec-bits", &bits) == 0) {
954 if (bits > 64 || bits < 32) {
955 pr_warn("time_init: firmware supplied invalid ibm,dec-bits");
956 bits = 32;
957 }
958
959 /* calculate the signed maximum given this many bits */
960 decrementer_max = (1ul << (bits - 1)) - 1;
961 }
962
963 of_node_put(cpu);
964
965 pr_info("time_init: %u bit decrementer (max: %llx)\n",
966 bits, decrementer_max);
967 }
968
969 static void __init init_decrementer_clockevent(void)
970 {
971 int cpu = smp_processor_id();
972
973 clockevents_calc_mult_shift(&decrementer_clockevent, ppc_tb_freq, 4);
974
975 decrementer_clockevent.max_delta_ns =
976 clockevent_delta2ns(decrementer_max, &decrementer_clockevent);
977 decrementer_clockevent.min_delta_ns =
978 clockevent_delta2ns(2, &decrementer_clockevent);
979
980 register_decrementer_clockevent(cpu);
981 }
982
983 void secondary_cpu_time_init(void)
984 {
985 /* Enable and test the large decrementer for this cpu */
986 enable_large_decrementer();
987
988 /* Start the decrementer on CPUs that have manual control
989 * such as BookE
990 */
991 start_cpu_decrementer();
992
993 /* FIME: Should make unrelatred change to move snapshot_timebase
994 * call here ! */
995 register_decrementer_clockevent(smp_processor_id());
996 }
997
998 /* This function is only called on the boot processor */
999 void __init time_init(void)
1000 {
1001 struct div_result res;
1002 u64 scale;
1003 unsigned shift;
1004
1005 if (__USE_RTC()) {
1006 /* 601 processor: dec counts down by 128 every 128ns */
1007 ppc_tb_freq = 1000000000;
1008 } else {
1009 /* Normal PowerPC with timebase register */
1010 ppc_md.calibrate_decr();
1011 printk(KERN_DEBUG "time_init: decrementer frequency = %lu.%.6lu MHz\n",
1012 ppc_tb_freq / 1000000, ppc_tb_freq % 1000000);
1013 printk(KERN_DEBUG "time_init: processor frequency = %lu.%.6lu MHz\n",
1014 ppc_proc_freq / 1000000, ppc_proc_freq % 1000000);
1015 }
1016
1017 tb_ticks_per_jiffy = ppc_tb_freq / HZ;
1018 tb_ticks_per_sec = ppc_tb_freq;
1019 tb_ticks_per_usec = ppc_tb_freq / 1000000;
1020 calc_cputime_factors();
1021 setup_cputime_one_jiffy();
1022
1023 /*
1024 * Compute scale factor for sched_clock.
1025 * The calibrate_decr() function has set tb_ticks_per_sec,
1026 * which is the timebase frequency.
1027 * We compute 1e9 * 2^64 / tb_ticks_per_sec and interpret
1028 * the 128-bit result as a 64.64 fixed-point number.
1029 * We then shift that number right until it is less than 1.0,
1030 * giving us the scale factor and shift count to use in
1031 * sched_clock().
1032 */
1033 div128_by_32(1000000000, 0, tb_ticks_per_sec, &res);
1034 scale = res.result_low;
1035 for (shift = 0; res.result_high != 0; ++shift) {
1036 scale = (scale >> 1) | (res.result_high << 63);
1037 res.result_high >>= 1;
1038 }
1039 tb_to_ns_scale = scale;
1040 tb_to_ns_shift = shift;
1041 /* Save the current timebase to pretty up CONFIG_PRINTK_TIME */
1042 boot_tb = get_tb_or_rtc();
1043
1044 /* If platform provided a timezone (pmac), we correct the time */
1045 if (timezone_offset) {
1046 sys_tz.tz_minuteswest = -timezone_offset / 60;
1047 sys_tz.tz_dsttime = 0;
1048 }
1049
1050 vdso_data->tb_update_count = 0;
1051 vdso_data->tb_ticks_per_sec = tb_ticks_per_sec;
1052
1053 /* initialise and enable the large decrementer (if we have one) */
1054 set_decrementer_max();
1055 enable_large_decrementer();
1056
1057 /* Start the decrementer on CPUs that have manual control
1058 * such as BookE
1059 */
1060 start_cpu_decrementer();
1061
1062 /* Register the clocksource */
1063 clocksource_init();
1064
1065 init_decrementer_clockevent();
1066 tick_setup_hrtimer_broadcast();
1067
1068 #ifdef CONFIG_COMMON_CLK
1069 of_clk_init(NULL);
1070 #endif
1071 }
1072
1073
1074 #define FEBRUARY 2
1075 #define STARTOFTIME 1970
1076 #define SECDAY 86400L
1077 #define SECYR (SECDAY * 365)
1078 #define leapyear(year) ((year) % 4 == 0 && \
1079 ((year) % 100 != 0 || (year) % 400 == 0))
1080 #define days_in_year(a) (leapyear(a) ? 366 : 365)
1081 #define days_in_month(a) (month_days[(a) - 1])
1082
1083 static int month_days[12] = {
1084 31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31
1085 };
1086
1087 void to_tm(int tim, struct rtc_time * tm)
1088 {
1089 register int i;
1090 register long hms, day;
1091
1092 day = tim / SECDAY;
1093 hms = tim % SECDAY;
1094
1095 /* Hours, minutes, seconds are easy */
1096 tm->tm_hour = hms / 3600;
1097 tm->tm_min = (hms % 3600) / 60;
1098 tm->tm_sec = (hms % 3600) % 60;
1099
1100 /* Number of years in days */
1101 for (i = STARTOFTIME; day >= days_in_year(i); i++)
1102 day -= days_in_year(i);
1103 tm->tm_year = i;
1104
1105 /* Number of months in days left */
1106 if (leapyear(tm->tm_year))
1107 days_in_month(FEBRUARY) = 29;
1108 for (i = 1; day >= days_in_month(i); i++)
1109 day -= days_in_month(i);
1110 days_in_month(FEBRUARY) = 28;
1111 tm->tm_mon = i;
1112
1113 /* Days are what is left over (+1) from all that. */
1114 tm->tm_mday = day + 1;
1115
1116 /*
1117 * No-one uses the day of the week.
1118 */
1119 tm->tm_wday = -1;
1120 }
1121 EXPORT_SYMBOL(to_tm);
1122
1123 /*
1124 * Divide a 128-bit dividend by a 32-bit divisor, leaving a 128 bit
1125 * result.
1126 */
1127 void div128_by_32(u64 dividend_high, u64 dividend_low,
1128 unsigned divisor, struct div_result *dr)
1129 {
1130 unsigned long a, b, c, d;
1131 unsigned long w, x, y, z;
1132 u64 ra, rb, rc;
1133
1134 a = dividend_high >> 32;
1135 b = dividend_high & 0xffffffff;
1136 c = dividend_low >> 32;
1137 d = dividend_low & 0xffffffff;
1138
1139 w = a / divisor;
1140 ra = ((u64)(a - (w * divisor)) << 32) + b;
1141
1142 rb = ((u64) do_div(ra, divisor) << 32) + c;
1143 x = ra;
1144
1145 rc = ((u64) do_div(rb, divisor) << 32) + d;
1146 y = rb;
1147
1148 do_div(rc, divisor);
1149 z = rc;
1150
1151 dr->result_high = ((u64)w << 32) + x;
1152 dr->result_low = ((u64)y << 32) + z;
1153
1154 }
1155
1156 /* We don't need to calibrate delay, we use the CPU timebase for that */
1157 void calibrate_delay(void)
1158 {
1159 /* Some generic code (such as spinlock debug) use loops_per_jiffy
1160 * as the number of __delay(1) in a jiffy, so make it so
1161 */
1162 loops_per_jiffy = tb_ticks_per_jiffy;
1163 }
1164
1165 #if IS_ENABLED(CONFIG_RTC_DRV_GENERIC)
1166 static int rtc_generic_get_time(struct device *dev, struct rtc_time *tm)
1167 {
1168 ppc_md.get_rtc_time(tm);
1169 return rtc_valid_tm(tm);
1170 }
1171
1172 static int rtc_generic_set_time(struct device *dev, struct rtc_time *tm)
1173 {
1174 if (!ppc_md.set_rtc_time)
1175 return -EOPNOTSUPP;
1176
1177 if (ppc_md.set_rtc_time(tm) < 0)
1178 return -EOPNOTSUPP;
1179
1180 return 0;
1181 }
1182
1183 static const struct rtc_class_ops rtc_generic_ops = {
1184 .read_time = rtc_generic_get_time,
1185 .set_time = rtc_generic_set_time,
1186 };
1187
1188 static int __init rtc_init(void)
1189 {
1190 struct platform_device *pdev;
1191
1192 if (!ppc_md.get_rtc_time)
1193 return -ENODEV;
1194
1195 pdev = platform_device_register_data(NULL, "rtc-generic", -1,
1196 &rtc_generic_ops,
1197 sizeof(rtc_generic_ops));
1198
1199 return PTR_ERR_OR_ZERO(pdev);
1200 }
1201
1202 device_initcall(rtc_init);
1203 #endif