xref: /openbmc/linux/arch/powerpc/kernel/time.c (revision a7f290dad32ee34d931561b7943c858fe2aae503)
1f2783c15SPaul Mackerras /*
2f2783c15SPaul Mackerras  * Common time routines among all ppc machines.
3f2783c15SPaul Mackerras  *
4f2783c15SPaul Mackerras  * Written by Cort Dougan (cort@cs.nmt.edu) to merge
5f2783c15SPaul Mackerras  * Paul Mackerras' version and mine for PReP and Pmac.
6f2783c15SPaul Mackerras  * MPC8xx/MBX changes by Dan Malek (dmalek@jlc.net).
7f2783c15SPaul Mackerras  * Converted for 64-bit by Mike Corrigan (mikejc@us.ibm.com)
8f2783c15SPaul Mackerras  *
9f2783c15SPaul Mackerras  * First round of bugfixes by Gabriel Paubert (paubert@iram.es)
10f2783c15SPaul Mackerras  * to make clock more stable (2.4.0-test5). The only thing
11f2783c15SPaul Mackerras  * that this code assumes is that the timebases have been synchronized
12f2783c15SPaul Mackerras  * by firmware on SMP and are never stopped (never do sleep
13f2783c15SPaul Mackerras  * on SMP then, nap and doze are OK).
14f2783c15SPaul Mackerras  *
15f2783c15SPaul Mackerras  * Speeded up do_gettimeofday by getting rid of references to
16f2783c15SPaul Mackerras  * xtime (which required locks for consistency). (mikejc@us.ibm.com)
17f2783c15SPaul Mackerras  *
18f2783c15SPaul Mackerras  * TODO (not necessarily in this file):
19f2783c15SPaul Mackerras  * - improve precision and reproducibility of timebase frequency
20f2783c15SPaul Mackerras  * measurement at boot time. (for iSeries, we calibrate the timebase
21f2783c15SPaul Mackerras  * against the Titan chip's clock.)
22f2783c15SPaul Mackerras  * - for astronomical applications: add a new function to get
23f2783c15SPaul Mackerras  * non ambiguous timestamps even around leap seconds. This needs
24f2783c15SPaul Mackerras  * a new timestamp format and a good name.
25f2783c15SPaul Mackerras  *
26f2783c15SPaul Mackerras  * 1997-09-10  Updated NTP code according to technical memorandum Jan '96
27f2783c15SPaul Mackerras  *             "A Kernel Model for Precision Timekeeping" by Dave Mills
28f2783c15SPaul Mackerras  *
29f2783c15SPaul Mackerras  *      This program is free software; you can redistribute it and/or
30f2783c15SPaul Mackerras  *      modify it under the terms of the GNU General Public License
31f2783c15SPaul Mackerras  *      as published by the Free Software Foundation; either version
32f2783c15SPaul Mackerras  *      2 of the License, or (at your option) any later version.
33f2783c15SPaul Mackerras  */
34f2783c15SPaul Mackerras 
35f2783c15SPaul Mackerras #include <linux/config.h>
36f2783c15SPaul Mackerras #include <linux/errno.h>
37f2783c15SPaul Mackerras #include <linux/module.h>
38f2783c15SPaul Mackerras #include <linux/sched.h>
39f2783c15SPaul Mackerras #include <linux/kernel.h>
40f2783c15SPaul Mackerras #include <linux/param.h>
41f2783c15SPaul Mackerras #include <linux/string.h>
42f2783c15SPaul Mackerras #include <linux/mm.h>
43f2783c15SPaul Mackerras #include <linux/interrupt.h>
44f2783c15SPaul Mackerras #include <linux/timex.h>
45f2783c15SPaul Mackerras #include <linux/kernel_stat.h>
46f2783c15SPaul Mackerras #include <linux/time.h>
47f2783c15SPaul Mackerras #include <linux/init.h>
48f2783c15SPaul Mackerras #include <linux/profile.h>
49f2783c15SPaul Mackerras #include <linux/cpu.h>
50f2783c15SPaul Mackerras #include <linux/security.h>
51f2783c15SPaul Mackerras #include <linux/percpu.h>
52f2783c15SPaul Mackerras #include <linux/rtc.h>
53f2783c15SPaul Mackerras 
54f2783c15SPaul Mackerras #include <asm/io.h>
55f2783c15SPaul Mackerras #include <asm/processor.h>
56f2783c15SPaul Mackerras #include <asm/nvram.h>
57f2783c15SPaul Mackerras #include <asm/cache.h>
58f2783c15SPaul Mackerras #include <asm/machdep.h>
59f2783c15SPaul Mackerras #include <asm/uaccess.h>
60f2783c15SPaul Mackerras #include <asm/time.h>
61f2783c15SPaul Mackerras #include <asm/prom.h>
62f2783c15SPaul Mackerras #include <asm/irq.h>
63f2783c15SPaul Mackerras #include <asm/div64.h>
642249ca9dSPaul Mackerras #include <asm/smp.h>
65*a7f290daSBenjamin Herrenschmidt #include <asm/vdso_datapage.h>
66f2783c15SPaul Mackerras #ifdef CONFIG_PPC64
67f2783c15SPaul Mackerras #include <asm/firmware.h>
68f2783c15SPaul Mackerras #endif
69f2783c15SPaul Mackerras #ifdef CONFIG_PPC_ISERIES
708875ccfbSKelly Daly #include <asm/iseries/it_lp_queue.h>
718021b8a7SKelly Daly #include <asm/iseries/hv_call_xm.h>
72f2783c15SPaul Mackerras #endif
73732ee21fSOlof Johansson #include <asm/smp.h>
74f2783c15SPaul Mackerras 
75f2783c15SPaul Mackerras /* keep track of when we need to update the rtc */
76f2783c15SPaul Mackerras time_t last_rtc_update;
77f2783c15SPaul Mackerras extern int piranha_simulator;
78f2783c15SPaul Mackerras #ifdef CONFIG_PPC_ISERIES
79f2783c15SPaul Mackerras unsigned long iSeries_recal_titan = 0;
80f2783c15SPaul Mackerras unsigned long iSeries_recal_tb = 0;
81f2783c15SPaul Mackerras static unsigned long first_settimeofday = 1;
82f2783c15SPaul Mackerras #endif
83f2783c15SPaul Mackerras 
84f2783c15SPaul Mackerras /* The decrementer counts down by 128 every 128ns on a 601. */
85f2783c15SPaul Mackerras #define DECREMENTER_COUNT_601	(1000000000 / HZ)
86f2783c15SPaul Mackerras 
87f2783c15SPaul Mackerras #define XSEC_PER_SEC (1024*1024)
88f2783c15SPaul Mackerras 
89f2783c15SPaul Mackerras #ifdef CONFIG_PPC64
90f2783c15SPaul Mackerras #define SCALE_XSEC(xsec, max)	(((xsec) * max) / XSEC_PER_SEC)
91f2783c15SPaul Mackerras #else
92f2783c15SPaul Mackerras /* compute ((xsec << 12) * max) >> 32 */
93f2783c15SPaul Mackerras #define SCALE_XSEC(xsec, max)	mulhwu((xsec) << 12, max)
94f2783c15SPaul Mackerras #endif
95f2783c15SPaul Mackerras 
96f2783c15SPaul Mackerras unsigned long tb_ticks_per_jiffy;
97f2783c15SPaul Mackerras unsigned long tb_ticks_per_usec = 100; /* sane default */
98f2783c15SPaul Mackerras EXPORT_SYMBOL(tb_ticks_per_usec);
99f2783c15SPaul Mackerras unsigned long tb_ticks_per_sec;
100f2783c15SPaul Mackerras u64 tb_to_xs;
101f2783c15SPaul Mackerras unsigned tb_to_us;
102f2783c15SPaul Mackerras unsigned long processor_freq;
103f2783c15SPaul Mackerras DEFINE_SPINLOCK(rtc_lock);
104f2783c15SPaul Mackerras EXPORT_SYMBOL_GPL(rtc_lock);
105f2783c15SPaul Mackerras 
106f2783c15SPaul Mackerras u64 tb_to_ns_scale;
107f2783c15SPaul Mackerras unsigned tb_to_ns_shift;
108f2783c15SPaul Mackerras 
109f2783c15SPaul Mackerras struct gettimeofday_struct do_gtod;
110f2783c15SPaul Mackerras 
111f2783c15SPaul Mackerras extern unsigned long wall_jiffies;
112f2783c15SPaul Mackerras 
113f2783c15SPaul Mackerras extern struct timezone sys_tz;
114f2783c15SPaul Mackerras static long timezone_offset;
115f2783c15SPaul Mackerras 
116f2783c15SPaul Mackerras void ppc_adjtimex(void);
117f2783c15SPaul Mackerras 
118f2783c15SPaul Mackerras static unsigned adjusting_time = 0;
119f2783c15SPaul Mackerras 
120f2783c15SPaul Mackerras unsigned long ppc_proc_freq;
121f2783c15SPaul Mackerras unsigned long ppc_tb_freq;
122f2783c15SPaul Mackerras 
12396c44507SPaul Mackerras u64 tb_last_jiffy __cacheline_aligned_in_smp;
12496c44507SPaul Mackerras unsigned long tb_last_stamp;
12596c44507SPaul Mackerras 
12696c44507SPaul Mackerras /*
12796c44507SPaul Mackerras  * Note that on ppc32 this only stores the bottom 32 bits of
12896c44507SPaul Mackerras  * the timebase value, but that's enough to tell when a jiffy
12996c44507SPaul Mackerras  * has passed.
13096c44507SPaul Mackerras  */
13196c44507SPaul Mackerras DEFINE_PER_CPU(unsigned long, last_jiffy);
13296c44507SPaul Mackerras 
133f2783c15SPaul Mackerras static __inline__ void timer_check_rtc(void)
134f2783c15SPaul Mackerras {
135f2783c15SPaul Mackerras         /*
136f2783c15SPaul Mackerras          * update the rtc when needed, this should be performed on the
137f2783c15SPaul Mackerras          * right fraction of a second. Half or full second ?
138f2783c15SPaul Mackerras          * Full second works on mk48t59 clocks, others need testing.
139f2783c15SPaul Mackerras          * Note that this update is basically only used through
140f2783c15SPaul Mackerras          * the adjtimex system calls. Setting the HW clock in
141f2783c15SPaul Mackerras          * any other way is a /dev/rtc and userland business.
142f2783c15SPaul Mackerras          * This is still wrong by -0.5/+1.5 jiffies because of the
143f2783c15SPaul Mackerras          * timer interrupt resolution and possible delay, but here we
144f2783c15SPaul Mackerras          * hit a quantization limit which can only be solved by higher
145f2783c15SPaul Mackerras          * resolution timers and decoupling time management from timer
146f2783c15SPaul Mackerras          * interrupts. This is also wrong on the clocks
147f2783c15SPaul Mackerras          * which require being written at the half second boundary.
148f2783c15SPaul Mackerras          * We should have an rtc call that only sets the minutes and
149f2783c15SPaul Mackerras          * seconds like on Intel to avoid problems with non UTC clocks.
150f2783c15SPaul Mackerras          */
151d2e61512SKumar Gala         if (ppc_md.set_rtc_time && ntp_synced() &&
152f2783c15SPaul Mackerras 	    xtime.tv_sec - last_rtc_update >= 659 &&
153f2783c15SPaul Mackerras 	    abs((xtime.tv_nsec/1000) - (1000000-1000000/HZ)) < 500000/HZ &&
154f2783c15SPaul Mackerras 	    jiffies - wall_jiffies == 1) {
155f2783c15SPaul Mackerras 		struct rtc_time tm;
156f2783c15SPaul Mackerras 		to_tm(xtime.tv_sec + 1 + timezone_offset, &tm);
157f2783c15SPaul Mackerras 		tm.tm_year -= 1900;
158f2783c15SPaul Mackerras 		tm.tm_mon -= 1;
159f2783c15SPaul Mackerras 		if (ppc_md.set_rtc_time(&tm) == 0)
160f2783c15SPaul Mackerras 			last_rtc_update = xtime.tv_sec + 1;
161f2783c15SPaul Mackerras 		else
162f2783c15SPaul Mackerras 			/* Try again one minute later */
163f2783c15SPaul Mackerras 			last_rtc_update += 60;
164f2783c15SPaul Mackerras         }
165f2783c15SPaul Mackerras }
166f2783c15SPaul Mackerras 
167f2783c15SPaul Mackerras /*
168f2783c15SPaul Mackerras  * This version of gettimeofday has microsecond resolution.
169f2783c15SPaul Mackerras  */
170f2783c15SPaul Mackerras static inline void __do_gettimeofday(struct timeval *tv, u64 tb_val)
171f2783c15SPaul Mackerras {
172f2783c15SPaul Mackerras 	unsigned long sec, usec;
173f2783c15SPaul Mackerras 	u64 tb_ticks, xsec;
174f2783c15SPaul Mackerras 	struct gettimeofday_vars *temp_varp;
175f2783c15SPaul Mackerras 	u64 temp_tb_to_xs, temp_stamp_xsec;
176f2783c15SPaul Mackerras 
177f2783c15SPaul Mackerras 	/*
178f2783c15SPaul Mackerras 	 * These calculations are faster (gets rid of divides)
179f2783c15SPaul Mackerras 	 * if done in units of 1/2^20 rather than microseconds.
180f2783c15SPaul Mackerras 	 * The conversion to microseconds at the end is done
181f2783c15SPaul Mackerras 	 * without a divide (and in fact, without a multiply)
182f2783c15SPaul Mackerras 	 */
183f2783c15SPaul Mackerras 	temp_varp = do_gtod.varp;
184f2783c15SPaul Mackerras 	tb_ticks = tb_val - temp_varp->tb_orig_stamp;
185f2783c15SPaul Mackerras 	temp_tb_to_xs = temp_varp->tb_to_xs;
186f2783c15SPaul Mackerras 	temp_stamp_xsec = temp_varp->stamp_xsec;
187f2783c15SPaul Mackerras 	xsec = temp_stamp_xsec + mulhdu(tb_ticks, temp_tb_to_xs);
188f2783c15SPaul Mackerras 	sec = xsec / XSEC_PER_SEC;
189f2783c15SPaul Mackerras 	usec = (unsigned long)xsec & (XSEC_PER_SEC - 1);
190f2783c15SPaul Mackerras 	usec = SCALE_XSEC(usec, 1000000);
191f2783c15SPaul Mackerras 
192f2783c15SPaul Mackerras 	tv->tv_sec = sec;
193f2783c15SPaul Mackerras 	tv->tv_usec = usec;
194f2783c15SPaul Mackerras }
195f2783c15SPaul Mackerras 
196f2783c15SPaul Mackerras void do_gettimeofday(struct timeval *tv)
197f2783c15SPaul Mackerras {
19896c44507SPaul Mackerras 	if (__USE_RTC()) {
19996c44507SPaul Mackerras 		/* do this the old way */
20096c44507SPaul Mackerras 		unsigned long flags, seq;
20196c44507SPaul Mackerras 		unsigned int sec, nsec, usec, lost;
20296c44507SPaul Mackerras 
20396c44507SPaul Mackerras 		do {
20496c44507SPaul Mackerras 			seq = read_seqbegin_irqsave(&xtime_lock, flags);
20596c44507SPaul Mackerras 			sec = xtime.tv_sec;
20696c44507SPaul Mackerras 			nsec = xtime.tv_nsec + tb_ticks_since(tb_last_stamp);
20796c44507SPaul Mackerras 			lost = jiffies - wall_jiffies;
20896c44507SPaul Mackerras 		} while (read_seqretry_irqrestore(&xtime_lock, seq, flags));
20996c44507SPaul Mackerras 		usec = nsec / 1000 + lost * (1000000 / HZ);
21096c44507SPaul Mackerras 		while (usec >= 1000000) {
21196c44507SPaul Mackerras 			usec -= 1000000;
21296c44507SPaul Mackerras 			++sec;
21396c44507SPaul Mackerras 		}
21496c44507SPaul Mackerras 		tv->tv_sec = sec;
21596c44507SPaul Mackerras 		tv->tv_usec = usec;
21696c44507SPaul Mackerras 		return;
21796c44507SPaul Mackerras 	}
218f2783c15SPaul Mackerras 	__do_gettimeofday(tv, get_tb());
219f2783c15SPaul Mackerras }
220f2783c15SPaul Mackerras 
221f2783c15SPaul Mackerras EXPORT_SYMBOL(do_gettimeofday);
222f2783c15SPaul Mackerras 
223f2783c15SPaul Mackerras /* Synchronize xtime with do_gettimeofday */
224f2783c15SPaul Mackerras 
225f2783c15SPaul Mackerras static inline void timer_sync_xtime(unsigned long cur_tb)
226f2783c15SPaul Mackerras {
227f2783c15SPaul Mackerras #ifdef CONFIG_PPC64
228f2783c15SPaul Mackerras 	/* why do we do this? */
229f2783c15SPaul Mackerras 	struct timeval my_tv;
230f2783c15SPaul Mackerras 
231f2783c15SPaul Mackerras 	__do_gettimeofday(&my_tv, cur_tb);
232f2783c15SPaul Mackerras 
233f2783c15SPaul Mackerras 	if (xtime.tv_sec <= my_tv.tv_sec) {
234f2783c15SPaul Mackerras 		xtime.tv_sec = my_tv.tv_sec;
235f2783c15SPaul Mackerras 		xtime.tv_nsec = my_tv.tv_usec * 1000;
236f2783c15SPaul Mackerras 	}
237f2783c15SPaul Mackerras #endif
238f2783c15SPaul Mackerras }
239f2783c15SPaul Mackerras 
240f2783c15SPaul Mackerras /*
241f2783c15SPaul Mackerras  * There are two copies of tb_to_xs and stamp_xsec so that no
242f2783c15SPaul Mackerras  * lock is needed to access and use these values in
243f2783c15SPaul Mackerras  * do_gettimeofday.  We alternate the copies and as long as a
244f2783c15SPaul Mackerras  * reasonable time elapses between changes, there will never
245f2783c15SPaul Mackerras  * be inconsistent values.  ntpd has a minimum of one minute
246f2783c15SPaul Mackerras  * between updates.
247f2783c15SPaul Mackerras  */
248f2783c15SPaul Mackerras static inline void update_gtod(u64 new_tb_stamp, u64 new_stamp_xsec,
2495d14a18dSPaul Mackerras 			       u64 new_tb_to_xs)
250f2783c15SPaul Mackerras {
251f2783c15SPaul Mackerras 	unsigned temp_idx;
252f2783c15SPaul Mackerras 	struct gettimeofday_vars *temp_varp;
253f2783c15SPaul Mackerras 
254f2783c15SPaul Mackerras 	temp_idx = (do_gtod.var_idx == 0);
255f2783c15SPaul Mackerras 	temp_varp = &do_gtod.vars[temp_idx];
256f2783c15SPaul Mackerras 
257f2783c15SPaul Mackerras 	temp_varp->tb_to_xs = new_tb_to_xs;
258f2783c15SPaul Mackerras 	temp_varp->tb_orig_stamp = new_tb_stamp;
259f2783c15SPaul Mackerras 	temp_varp->stamp_xsec = new_stamp_xsec;
260f2783c15SPaul Mackerras 	smp_mb();
261f2783c15SPaul Mackerras 	do_gtod.varp = temp_varp;
262f2783c15SPaul Mackerras 	do_gtod.var_idx = temp_idx;
263f2783c15SPaul Mackerras 
264f2783c15SPaul Mackerras 	/*
265f2783c15SPaul Mackerras 	 * tb_update_count is used to allow the userspace gettimeofday code
266f2783c15SPaul Mackerras 	 * to assure itself that it sees a consistent view of the tb_to_xs and
267f2783c15SPaul Mackerras 	 * stamp_xsec variables.  It reads the tb_update_count, then reads
268f2783c15SPaul Mackerras 	 * tb_to_xs and stamp_xsec and then reads tb_update_count again.  If
269f2783c15SPaul Mackerras 	 * the two values of tb_update_count match and are even then the
270f2783c15SPaul Mackerras 	 * tb_to_xs and stamp_xsec values are consistent.  If not, then it
271f2783c15SPaul Mackerras 	 * loops back and reads them again until this criteria is met.
272f2783c15SPaul Mackerras 	 */
273*a7f290daSBenjamin Herrenschmidt 	++(vdso_data->tb_update_count);
274f2783c15SPaul Mackerras 	smp_wmb();
275*a7f290daSBenjamin Herrenschmidt 	vdso_data->tb_orig_stamp = new_tb_stamp;
276*a7f290daSBenjamin Herrenschmidt 	vdso_data->stamp_xsec = new_stamp_xsec;
277*a7f290daSBenjamin Herrenschmidt 	vdso_data->tb_to_xs = new_tb_to_xs;
278*a7f290daSBenjamin Herrenschmidt 	vdso_data->wtom_clock_sec = wall_to_monotonic.tv_sec;
279*a7f290daSBenjamin Herrenschmidt 	vdso_data->wtom_clock_nsec = wall_to_monotonic.tv_nsec;
280f2783c15SPaul Mackerras 	smp_wmb();
281*a7f290daSBenjamin Herrenschmidt 	++(vdso_data->tb_update_count);
282f2783c15SPaul Mackerras }
283f2783c15SPaul Mackerras 
284f2783c15SPaul Mackerras /*
285f2783c15SPaul Mackerras  * When the timebase - tb_orig_stamp gets too big, we do a manipulation
286f2783c15SPaul Mackerras  * between tb_orig_stamp and stamp_xsec. The goal here is to keep the
287f2783c15SPaul Mackerras  * difference tb - tb_orig_stamp small enough to always fit inside a
288f2783c15SPaul Mackerras  * 32 bits number. This is a requirement of our fast 32 bits userland
289f2783c15SPaul Mackerras  * implementation in the vdso. If we "miss" a call to this function
290f2783c15SPaul Mackerras  * (interrupt latency, CPU locked in a spinlock, ...) and we end up
291f2783c15SPaul Mackerras  * with a too big difference, then the vdso will fallback to calling
292f2783c15SPaul Mackerras  * the syscall
293f2783c15SPaul Mackerras  */
294f2783c15SPaul Mackerras static __inline__ void timer_recalc_offset(u64 cur_tb)
295f2783c15SPaul Mackerras {
296f2783c15SPaul Mackerras 	unsigned long offset;
297f2783c15SPaul Mackerras 	u64 new_stamp_xsec;
298f2783c15SPaul Mackerras 
29996c44507SPaul Mackerras 	if (__USE_RTC())
30096c44507SPaul Mackerras 		return;
301f2783c15SPaul Mackerras 	offset = cur_tb - do_gtod.varp->tb_orig_stamp;
302f2783c15SPaul Mackerras 	if ((offset & 0x80000000u) == 0)
303f2783c15SPaul Mackerras 		return;
304f2783c15SPaul Mackerras 	new_stamp_xsec = do_gtod.varp->stamp_xsec
305f2783c15SPaul Mackerras 		+ mulhdu(offset, do_gtod.varp->tb_to_xs);
306f2783c15SPaul Mackerras 	update_gtod(cur_tb, new_stamp_xsec, do_gtod.varp->tb_to_xs);
307f2783c15SPaul Mackerras }
308f2783c15SPaul Mackerras 
309f2783c15SPaul Mackerras #ifdef CONFIG_SMP
310f2783c15SPaul Mackerras unsigned long profile_pc(struct pt_regs *regs)
311f2783c15SPaul Mackerras {
312f2783c15SPaul Mackerras 	unsigned long pc = instruction_pointer(regs);
313f2783c15SPaul Mackerras 
314f2783c15SPaul Mackerras 	if (in_lock_functions(pc))
315f2783c15SPaul Mackerras 		return regs->link;
316f2783c15SPaul Mackerras 
317f2783c15SPaul Mackerras 	return pc;
318f2783c15SPaul Mackerras }
319f2783c15SPaul Mackerras EXPORT_SYMBOL(profile_pc);
320f2783c15SPaul Mackerras #endif
321f2783c15SPaul Mackerras 
322f2783c15SPaul Mackerras #ifdef CONFIG_PPC_ISERIES
323f2783c15SPaul Mackerras 
324f2783c15SPaul Mackerras /*
325f2783c15SPaul Mackerras  * This function recalibrates the timebase based on the 49-bit time-of-day
326f2783c15SPaul Mackerras  * value in the Titan chip.  The Titan is much more accurate than the value
327f2783c15SPaul Mackerras  * returned by the service processor for the timebase frequency.
328f2783c15SPaul Mackerras  */
329f2783c15SPaul Mackerras 
330f2783c15SPaul Mackerras static void iSeries_tb_recal(void)
331f2783c15SPaul Mackerras {
332f2783c15SPaul Mackerras 	struct div_result divres;
333f2783c15SPaul Mackerras 	unsigned long titan, tb;
334f2783c15SPaul Mackerras 	tb = get_tb();
335f2783c15SPaul Mackerras 	titan = HvCallXm_loadTod();
336f2783c15SPaul Mackerras 	if ( iSeries_recal_titan ) {
337f2783c15SPaul Mackerras 		unsigned long tb_ticks = tb - iSeries_recal_tb;
338f2783c15SPaul Mackerras 		unsigned long titan_usec = (titan - iSeries_recal_titan) >> 12;
339f2783c15SPaul Mackerras 		unsigned long new_tb_ticks_per_sec   = (tb_ticks * USEC_PER_SEC)/titan_usec;
340f2783c15SPaul Mackerras 		unsigned long new_tb_ticks_per_jiffy = (new_tb_ticks_per_sec+(HZ/2))/HZ;
341f2783c15SPaul Mackerras 		long tick_diff = new_tb_ticks_per_jiffy - tb_ticks_per_jiffy;
342f2783c15SPaul Mackerras 		char sign = '+';
343f2783c15SPaul Mackerras 		/* make sure tb_ticks_per_sec and tb_ticks_per_jiffy are consistent */
344f2783c15SPaul Mackerras 		new_tb_ticks_per_sec = new_tb_ticks_per_jiffy * HZ;
345f2783c15SPaul Mackerras 
346f2783c15SPaul Mackerras 		if ( tick_diff < 0 ) {
347f2783c15SPaul Mackerras 			tick_diff = -tick_diff;
348f2783c15SPaul Mackerras 			sign = '-';
349f2783c15SPaul Mackerras 		}
350f2783c15SPaul Mackerras 		if ( tick_diff ) {
351f2783c15SPaul Mackerras 			if ( tick_diff < tb_ticks_per_jiffy/25 ) {
352f2783c15SPaul Mackerras 				printk( "Titan recalibrate: new tb_ticks_per_jiffy = %lu (%c%ld)\n",
353f2783c15SPaul Mackerras 						new_tb_ticks_per_jiffy, sign, tick_diff );
354f2783c15SPaul Mackerras 				tb_ticks_per_jiffy = new_tb_ticks_per_jiffy;
355f2783c15SPaul Mackerras 				tb_ticks_per_sec   = new_tb_ticks_per_sec;
356f2783c15SPaul Mackerras 				div128_by_32( XSEC_PER_SEC, 0, tb_ticks_per_sec, &divres );
357f2783c15SPaul Mackerras 				do_gtod.tb_ticks_per_sec = tb_ticks_per_sec;
358f2783c15SPaul Mackerras 				tb_to_xs = divres.result_low;
359f2783c15SPaul Mackerras 				do_gtod.varp->tb_to_xs = tb_to_xs;
360*a7f290daSBenjamin Herrenschmidt 				vdso_data->tb_ticks_per_sec = tb_ticks_per_sec;
361*a7f290daSBenjamin Herrenschmidt 				vdso_data->tb_to_xs = tb_to_xs;
362f2783c15SPaul Mackerras 			}
363f2783c15SPaul Mackerras 			else {
364f2783c15SPaul Mackerras 				printk( "Titan recalibrate: FAILED (difference > 4 percent)\n"
365f2783c15SPaul Mackerras 					"                   new tb_ticks_per_jiffy = %lu\n"
366f2783c15SPaul Mackerras 					"                   old tb_ticks_per_jiffy = %lu\n",
367f2783c15SPaul Mackerras 					new_tb_ticks_per_jiffy, tb_ticks_per_jiffy );
368f2783c15SPaul Mackerras 			}
369f2783c15SPaul Mackerras 		}
370f2783c15SPaul Mackerras 	}
371f2783c15SPaul Mackerras 	iSeries_recal_titan = titan;
372f2783c15SPaul Mackerras 	iSeries_recal_tb = tb;
373f2783c15SPaul Mackerras }
374f2783c15SPaul Mackerras #endif
375f2783c15SPaul Mackerras 
376f2783c15SPaul Mackerras /*
377f2783c15SPaul Mackerras  * For iSeries shared processors, we have to let the hypervisor
378f2783c15SPaul Mackerras  * set the hardware decrementer.  We set a virtual decrementer
379f2783c15SPaul Mackerras  * in the lppaca and call the hypervisor if the virtual
380f2783c15SPaul Mackerras  * decrementer is less than the current value in the hardware
381f2783c15SPaul Mackerras  * decrementer. (almost always the new decrementer value will
382f2783c15SPaul Mackerras  * be greater than the current hardware decementer so the hypervisor
383f2783c15SPaul Mackerras  * call will not be needed)
384f2783c15SPaul Mackerras  */
385f2783c15SPaul Mackerras 
386f2783c15SPaul Mackerras /*
387f2783c15SPaul Mackerras  * timer_interrupt - gets called when the decrementer overflows,
388f2783c15SPaul Mackerras  * with interrupts disabled.
389f2783c15SPaul Mackerras  */
390f2783c15SPaul Mackerras void timer_interrupt(struct pt_regs * regs)
391f2783c15SPaul Mackerras {
392f2783c15SPaul Mackerras 	int next_dec;
393f2783c15SPaul Mackerras 	int cpu = smp_processor_id();
394f2783c15SPaul Mackerras 	unsigned long ticks;
395f2783c15SPaul Mackerras 
396f2783c15SPaul Mackerras #ifdef CONFIG_PPC32
397f2783c15SPaul Mackerras 	if (atomic_read(&ppc_n_lost_interrupts) != 0)
398f2783c15SPaul Mackerras 		do_IRQ(regs);
399f2783c15SPaul Mackerras #endif
400f2783c15SPaul Mackerras 
401f2783c15SPaul Mackerras 	irq_enter();
402f2783c15SPaul Mackerras 
403f2783c15SPaul Mackerras 	profile_tick(CPU_PROFILING, regs);
404f2783c15SPaul Mackerras 
405f2783c15SPaul Mackerras #ifdef CONFIG_PPC_ISERIES
406f2783c15SPaul Mackerras 	get_paca()->lppaca.int_dword.fields.decr_int = 0;
407f2783c15SPaul Mackerras #endif
408f2783c15SPaul Mackerras 
409f2783c15SPaul Mackerras 	while ((ticks = tb_ticks_since(per_cpu(last_jiffy, cpu)))
410f2783c15SPaul Mackerras 	       >= tb_ticks_per_jiffy) {
411f2783c15SPaul Mackerras 		/* Update last_jiffy */
412f2783c15SPaul Mackerras 		per_cpu(last_jiffy, cpu) += tb_ticks_per_jiffy;
413f2783c15SPaul Mackerras 		/* Handle RTCL overflow on 601 */
414f2783c15SPaul Mackerras 		if (__USE_RTC() && per_cpu(last_jiffy, cpu) >= 1000000000)
415f2783c15SPaul Mackerras 			per_cpu(last_jiffy, cpu) -= 1000000000;
416f2783c15SPaul Mackerras 
417f2783c15SPaul Mackerras 		/*
418f2783c15SPaul Mackerras 		 * We cannot disable the decrementer, so in the period
419f2783c15SPaul Mackerras 		 * between this cpu's being marked offline in cpu_online_map
420f2783c15SPaul Mackerras 		 * and calling stop-self, it is taking timer interrupts.
421f2783c15SPaul Mackerras 		 * Avoid calling into the scheduler rebalancing code if this
422f2783c15SPaul Mackerras 		 * is the case.
423f2783c15SPaul Mackerras 		 */
424f2783c15SPaul Mackerras 		if (!cpu_is_offline(cpu))
425f2783c15SPaul Mackerras 			update_process_times(user_mode(regs));
426f2783c15SPaul Mackerras 
427f2783c15SPaul Mackerras 		/*
428f2783c15SPaul Mackerras 		 * No need to check whether cpu is offline here; boot_cpuid
429f2783c15SPaul Mackerras 		 * should have been fixed up by now.
430f2783c15SPaul Mackerras 		 */
431f2783c15SPaul Mackerras 		if (cpu != boot_cpuid)
432f2783c15SPaul Mackerras 			continue;
433f2783c15SPaul Mackerras 
434f2783c15SPaul Mackerras 		write_seqlock(&xtime_lock);
43596c44507SPaul Mackerras 		tb_last_jiffy += tb_ticks_per_jiffy;
43696c44507SPaul Mackerras 		tb_last_stamp = per_cpu(last_jiffy, cpu);
43796c44507SPaul Mackerras 		timer_recalc_offset(tb_last_jiffy);
438f2783c15SPaul Mackerras 		do_timer(regs);
43996c44507SPaul Mackerras 		timer_sync_xtime(tb_last_jiffy);
440f2783c15SPaul Mackerras 		timer_check_rtc();
441f2783c15SPaul Mackerras 		write_sequnlock(&xtime_lock);
442f2783c15SPaul Mackerras 		if (adjusting_time && (time_adjust == 0))
443f2783c15SPaul Mackerras 			ppc_adjtimex();
444f2783c15SPaul Mackerras 	}
445f2783c15SPaul Mackerras 
446f2783c15SPaul Mackerras 	next_dec = tb_ticks_per_jiffy - ticks;
447f2783c15SPaul Mackerras 	set_dec(next_dec);
448f2783c15SPaul Mackerras 
449f2783c15SPaul Mackerras #ifdef CONFIG_PPC_ISERIES
450f2783c15SPaul Mackerras 	if (hvlpevent_is_pending())
451f2783c15SPaul Mackerras 		process_hvlpevents(regs);
452f2783c15SPaul Mackerras #endif
453f2783c15SPaul Mackerras 
454f2783c15SPaul Mackerras #ifdef CONFIG_PPC64
455f2783c15SPaul Mackerras 	/* collect purr register values often, for accurate calculations */
456f2783c15SPaul Mackerras 	if (firmware_has_feature(FW_FEATURE_SPLPAR)) {
457f2783c15SPaul Mackerras 		struct cpu_usage *cu = &__get_cpu_var(cpu_usage_array);
458f2783c15SPaul Mackerras 		cu->current_tb = mfspr(SPRN_PURR);
459f2783c15SPaul Mackerras 	}
460f2783c15SPaul Mackerras #endif
461f2783c15SPaul Mackerras 
462f2783c15SPaul Mackerras 	irq_exit();
463f2783c15SPaul Mackerras }
464f2783c15SPaul Mackerras 
465f2783c15SPaul Mackerras void wakeup_decrementer(void)
466f2783c15SPaul Mackerras {
467f2783c15SPaul Mackerras 	int i;
468f2783c15SPaul Mackerras 
469f2783c15SPaul Mackerras 	set_dec(tb_ticks_per_jiffy);
470f2783c15SPaul Mackerras 	/*
471f2783c15SPaul Mackerras 	 * We don't expect this to be called on a machine with a 601,
472f2783c15SPaul Mackerras 	 * so using get_tbl is fine.
473f2783c15SPaul Mackerras 	 */
47496c44507SPaul Mackerras 	tb_last_stamp = tb_last_jiffy = get_tb();
475f2783c15SPaul Mackerras 	for_each_cpu(i)
476f2783c15SPaul Mackerras 		per_cpu(last_jiffy, i) = tb_last_stamp;
477f2783c15SPaul Mackerras }
478f2783c15SPaul Mackerras 
479a5b518edSPaul Mackerras #ifdef CONFIG_SMP
480f2783c15SPaul Mackerras void __init smp_space_timers(unsigned int max_cpus)
481f2783c15SPaul Mackerras {
482f2783c15SPaul Mackerras 	int i;
483f2783c15SPaul Mackerras 	unsigned long offset = tb_ticks_per_jiffy / max_cpus;
484f2783c15SPaul Mackerras 	unsigned long previous_tb = per_cpu(last_jiffy, boot_cpuid);
485f2783c15SPaul Mackerras 
486cbe62e2bSPaul Mackerras 	/* make sure tb > per_cpu(last_jiffy, cpu) for all cpus always */
487cbe62e2bSPaul Mackerras 	previous_tb -= tb_ticks_per_jiffy;
488f2783c15SPaul Mackerras 	for_each_cpu(i) {
489f2783c15SPaul Mackerras 		if (i != boot_cpuid) {
490f2783c15SPaul Mackerras 			previous_tb += offset;
491f2783c15SPaul Mackerras 			per_cpu(last_jiffy, i) = previous_tb;
492f2783c15SPaul Mackerras 		}
493f2783c15SPaul Mackerras 	}
494f2783c15SPaul Mackerras }
495f2783c15SPaul Mackerras #endif
496f2783c15SPaul Mackerras 
497f2783c15SPaul Mackerras /*
498f2783c15SPaul Mackerras  * Scheduler clock - returns current time in nanosec units.
499f2783c15SPaul Mackerras  *
500f2783c15SPaul Mackerras  * Note: mulhdu(a, b) (multiply high double unsigned) returns
501f2783c15SPaul Mackerras  * the high 64 bits of a * b, i.e. (a * b) >> 64, where a and b
502f2783c15SPaul Mackerras  * are 64-bit unsigned numbers.
503f2783c15SPaul Mackerras  */
504f2783c15SPaul Mackerras unsigned long long sched_clock(void)
505f2783c15SPaul Mackerras {
50696c44507SPaul Mackerras 	if (__USE_RTC())
50796c44507SPaul Mackerras 		return get_rtc();
508f2783c15SPaul Mackerras 	return mulhdu(get_tb(), tb_to_ns_scale) << tb_to_ns_shift;
509f2783c15SPaul Mackerras }
510f2783c15SPaul Mackerras 
511f2783c15SPaul Mackerras int do_settimeofday(struct timespec *tv)
512f2783c15SPaul Mackerras {
513f2783c15SPaul Mackerras 	time_t wtm_sec, new_sec = tv->tv_sec;
514f2783c15SPaul Mackerras 	long wtm_nsec, new_nsec = tv->tv_nsec;
515f2783c15SPaul Mackerras 	unsigned long flags;
516f2783c15SPaul Mackerras 	long int tb_delta;
5175f6b5b97SPaul Mackerras 	u64 new_xsec, tb_delta_xs;
518f2783c15SPaul Mackerras 
519f2783c15SPaul Mackerras 	if ((unsigned long)tv->tv_nsec >= NSEC_PER_SEC)
520f2783c15SPaul Mackerras 		return -EINVAL;
521f2783c15SPaul Mackerras 
522f2783c15SPaul Mackerras 	write_seqlock_irqsave(&xtime_lock, flags);
523f2783c15SPaul Mackerras 
524f2783c15SPaul Mackerras 	/*
525f2783c15SPaul Mackerras 	 * Updating the RTC is not the job of this code. If the time is
526f2783c15SPaul Mackerras 	 * stepped under NTP, the RTC will be updated after STA_UNSYNC
527f2783c15SPaul Mackerras 	 * is cleared.  Tools like clock/hwclock either copy the RTC
528f2783c15SPaul Mackerras 	 * to the system time, in which case there is no point in writing
529f2783c15SPaul Mackerras 	 * to the RTC again, or write to the RTC but then they don't call
530f2783c15SPaul Mackerras 	 * settimeofday to perform this operation.
531f2783c15SPaul Mackerras 	 */
532f2783c15SPaul Mackerras #ifdef CONFIG_PPC_ISERIES
533f2783c15SPaul Mackerras 	if (first_settimeofday) {
534f2783c15SPaul Mackerras 		iSeries_tb_recal();
535f2783c15SPaul Mackerras 		first_settimeofday = 0;
536f2783c15SPaul Mackerras 	}
537f2783c15SPaul Mackerras #endif
538f2783c15SPaul Mackerras 	tb_delta = tb_ticks_since(tb_last_stamp);
539f2783c15SPaul Mackerras 	tb_delta += (jiffies - wall_jiffies) * tb_ticks_per_jiffy;
5405f6b5b97SPaul Mackerras 	tb_delta_xs = mulhdu(tb_delta, do_gtod.varp->tb_to_xs);
541f2783c15SPaul Mackerras 
542f2783c15SPaul Mackerras 	wtm_sec  = wall_to_monotonic.tv_sec + (xtime.tv_sec - new_sec);
543f2783c15SPaul Mackerras 	wtm_nsec = wall_to_monotonic.tv_nsec + (xtime.tv_nsec - new_nsec);
544f2783c15SPaul Mackerras 
545f2783c15SPaul Mackerras  	set_normalized_timespec(&xtime, new_sec, new_nsec);
546f2783c15SPaul Mackerras 	set_normalized_timespec(&wall_to_monotonic, wtm_sec, wtm_nsec);
547f2783c15SPaul Mackerras 
548f2783c15SPaul Mackerras 	/* In case of a large backwards jump in time with NTP, we want the
549f2783c15SPaul Mackerras 	 * clock to be updated as soon as the PLL is again in lock.
550f2783c15SPaul Mackerras 	 */
551f2783c15SPaul Mackerras 	last_rtc_update = new_sec - 658;
552f2783c15SPaul Mackerras 
553f2783c15SPaul Mackerras 	ntp_clear();
554f2783c15SPaul Mackerras 
5555f6b5b97SPaul Mackerras 	new_xsec = 0;
5565f6b5b97SPaul Mackerras 	if (new_nsec != 0) {
557f2783c15SPaul Mackerras 		new_xsec = (u64)new_nsec * XSEC_PER_SEC;
558f2783c15SPaul Mackerras 		do_div(new_xsec, NSEC_PER_SEC);
5595f6b5b97SPaul Mackerras 	}
5605f6b5b97SPaul Mackerras 	new_xsec += (u64)new_sec * XSEC_PER_SEC - tb_delta_xs;
56196c44507SPaul Mackerras 	update_gtod(tb_last_jiffy, new_xsec, do_gtod.varp->tb_to_xs);
562f2783c15SPaul Mackerras 
563*a7f290daSBenjamin Herrenschmidt 	vdso_data->tz_minuteswest = sys_tz.tz_minuteswest;
564*a7f290daSBenjamin Herrenschmidt 	vdso_data->tz_dsttime = sys_tz.tz_dsttime;
565f2783c15SPaul Mackerras 
566f2783c15SPaul Mackerras 	write_sequnlock_irqrestore(&xtime_lock, flags);
567f2783c15SPaul Mackerras 	clock_was_set();
568f2783c15SPaul Mackerras 	return 0;
569f2783c15SPaul Mackerras }
570f2783c15SPaul Mackerras 
571f2783c15SPaul Mackerras EXPORT_SYMBOL(do_settimeofday);
572f2783c15SPaul Mackerras 
573f2783c15SPaul Mackerras void __init generic_calibrate_decr(void)
574f2783c15SPaul Mackerras {
575f2783c15SPaul Mackerras 	struct device_node *cpu;
576f2783c15SPaul Mackerras 	unsigned int *fp;
577f2783c15SPaul Mackerras 	int node_found;
578f2783c15SPaul Mackerras 
579f2783c15SPaul Mackerras 	/*
580f2783c15SPaul Mackerras 	 * The cpu node should have a timebase-frequency property
581f2783c15SPaul Mackerras 	 * to tell us the rate at which the decrementer counts.
582f2783c15SPaul Mackerras 	 */
583f2783c15SPaul Mackerras 	cpu = of_find_node_by_type(NULL, "cpu");
584f2783c15SPaul Mackerras 
585f2783c15SPaul Mackerras 	ppc_tb_freq = DEFAULT_TB_FREQ;		/* hardcoded default */
586f2783c15SPaul Mackerras 	node_found = 0;
587f2783c15SPaul Mackerras 	if (cpu != 0) {
588f2783c15SPaul Mackerras 		fp = (unsigned int *)get_property(cpu, "timebase-frequency",
589f2783c15SPaul Mackerras 						  NULL);
590f2783c15SPaul Mackerras 		if (fp != 0) {
591f2783c15SPaul Mackerras 			node_found = 1;
592f2783c15SPaul Mackerras 			ppc_tb_freq = *fp;
593f2783c15SPaul Mackerras 		}
594f2783c15SPaul Mackerras 	}
595f2783c15SPaul Mackerras 	if (!node_found)
596f2783c15SPaul Mackerras 		printk(KERN_ERR "WARNING: Estimating decrementer frequency "
597f2783c15SPaul Mackerras 				"(not found)\n");
598f2783c15SPaul Mackerras 
599f2783c15SPaul Mackerras 	ppc_proc_freq = DEFAULT_PROC_FREQ;
600f2783c15SPaul Mackerras 	node_found = 0;
601f2783c15SPaul Mackerras 	if (cpu != 0) {
602f2783c15SPaul Mackerras 		fp = (unsigned int *)get_property(cpu, "clock-frequency",
603f2783c15SPaul Mackerras 						  NULL);
604f2783c15SPaul Mackerras 		if (fp != 0) {
605f2783c15SPaul Mackerras 			node_found = 1;
606f2783c15SPaul Mackerras 			ppc_proc_freq = *fp;
607f2783c15SPaul Mackerras 		}
608f2783c15SPaul Mackerras 	}
6090fd6f717SKumar Gala #ifdef CONFIG_BOOKE
6100fd6f717SKumar Gala 	/* Set the time base to zero */
6110fd6f717SKumar Gala 	mtspr(SPRN_TBWL, 0);
6120fd6f717SKumar Gala 	mtspr(SPRN_TBWU, 0);
6130fd6f717SKumar Gala 
6140fd6f717SKumar Gala 	/* Clear any pending timer interrupts */
6150fd6f717SKumar Gala 	mtspr(SPRN_TSR, TSR_ENW | TSR_WIS | TSR_DIS | TSR_FIS);
6160fd6f717SKumar Gala 
6170fd6f717SKumar Gala 	/* Enable decrementer interrupt */
6180fd6f717SKumar Gala 	mtspr(SPRN_TCR, TCR_DIE);
6190fd6f717SKumar Gala #endif
620f2783c15SPaul Mackerras 	if (!node_found)
621f2783c15SPaul Mackerras 		printk(KERN_ERR "WARNING: Estimating processor frequency "
622f2783c15SPaul Mackerras 				"(not found)\n");
623f2783c15SPaul Mackerras 
624f2783c15SPaul Mackerras 	of_node_put(cpu);
625f2783c15SPaul Mackerras }
626f2783c15SPaul Mackerras 
627f2783c15SPaul Mackerras unsigned long get_boot_time(void)
628f2783c15SPaul Mackerras {
629f2783c15SPaul Mackerras 	struct rtc_time tm;
630f2783c15SPaul Mackerras 
631f2783c15SPaul Mackerras 	if (ppc_md.get_boot_time)
632f2783c15SPaul Mackerras 		return ppc_md.get_boot_time();
633f2783c15SPaul Mackerras 	if (!ppc_md.get_rtc_time)
634f2783c15SPaul Mackerras 		return 0;
635f2783c15SPaul Mackerras 	ppc_md.get_rtc_time(&tm);
636f2783c15SPaul Mackerras 	return mktime(tm.tm_year+1900, tm.tm_mon+1, tm.tm_mday,
637f2783c15SPaul Mackerras 		      tm.tm_hour, tm.tm_min, tm.tm_sec);
638f2783c15SPaul Mackerras }
639f2783c15SPaul Mackerras 
640f2783c15SPaul Mackerras /* This function is only called on the boot processor */
641f2783c15SPaul Mackerras void __init time_init(void)
642f2783c15SPaul Mackerras {
643f2783c15SPaul Mackerras 	unsigned long flags;
644f2783c15SPaul Mackerras 	unsigned long tm = 0;
645f2783c15SPaul Mackerras 	struct div_result res;
646f2783c15SPaul Mackerras 	u64 scale;
647f2783c15SPaul Mackerras 	unsigned shift;
648f2783c15SPaul Mackerras 
649f2783c15SPaul Mackerras         if (ppc_md.time_init != NULL)
650f2783c15SPaul Mackerras                 timezone_offset = ppc_md.time_init();
651f2783c15SPaul Mackerras 
65296c44507SPaul Mackerras 	if (__USE_RTC()) {
65396c44507SPaul Mackerras 		/* 601 processor: dec counts down by 128 every 128ns */
65496c44507SPaul Mackerras 		ppc_tb_freq = 1000000000;
65596c44507SPaul Mackerras 		tb_last_stamp = get_rtcl();
65696c44507SPaul Mackerras 		tb_last_jiffy = tb_last_stamp;
65796c44507SPaul Mackerras 	} else {
65896c44507SPaul Mackerras 		/* Normal PowerPC with timebase register */
659f2783c15SPaul Mackerras 		ppc_md.calibrate_decr();
660374e99d4SPaul Mackerras 		printk(KERN_INFO "time_init: decrementer frequency = %lu.%.6lu MHz\n",
661374e99d4SPaul Mackerras 		       ppc_tb_freq / 1000000, ppc_tb_freq % 1000000);
662374e99d4SPaul Mackerras 		printk(KERN_INFO "time_init: processor frequency   = %lu.%.6lu MHz\n",
663374e99d4SPaul Mackerras 		       ppc_proc_freq / 1000000, ppc_proc_freq % 1000000);
66496c44507SPaul Mackerras 		tb_last_stamp = tb_last_jiffy = get_tb();
66596c44507SPaul Mackerras 	}
666374e99d4SPaul Mackerras 
667374e99d4SPaul Mackerras 	tb_ticks_per_jiffy = ppc_tb_freq / HZ;
668374e99d4SPaul Mackerras 	tb_ticks_per_sec = tb_ticks_per_jiffy * HZ;
669374e99d4SPaul Mackerras 	tb_ticks_per_usec = ppc_tb_freq / 1000000;
670374e99d4SPaul Mackerras 	tb_to_us = mulhwu_scale_factor(ppc_tb_freq, 1000000);
671374e99d4SPaul Mackerras 	div128_by_32(1024*1024, 0, tb_ticks_per_sec, &res);
672374e99d4SPaul Mackerras 	tb_to_xs = res.result_low;
673374e99d4SPaul Mackerras 
674f2783c15SPaul Mackerras #ifdef CONFIG_PPC64
675f2783c15SPaul Mackerras 	get_paca()->default_decr = tb_ticks_per_jiffy;
676f2783c15SPaul Mackerras #endif
677f2783c15SPaul Mackerras 
678f2783c15SPaul Mackerras 	/*
679f2783c15SPaul Mackerras 	 * Compute scale factor for sched_clock.
680f2783c15SPaul Mackerras 	 * The calibrate_decr() function has set tb_ticks_per_sec,
681f2783c15SPaul Mackerras 	 * which is the timebase frequency.
682f2783c15SPaul Mackerras 	 * We compute 1e9 * 2^64 / tb_ticks_per_sec and interpret
683f2783c15SPaul Mackerras 	 * the 128-bit result as a 64.64 fixed-point number.
684f2783c15SPaul Mackerras 	 * We then shift that number right until it is less than 1.0,
685f2783c15SPaul Mackerras 	 * giving us the scale factor and shift count to use in
686f2783c15SPaul Mackerras 	 * sched_clock().
687f2783c15SPaul Mackerras 	 */
688f2783c15SPaul Mackerras 	div128_by_32(1000000000, 0, tb_ticks_per_sec, &res);
689f2783c15SPaul Mackerras 	scale = res.result_low;
690f2783c15SPaul Mackerras 	for (shift = 0; res.result_high != 0; ++shift) {
691f2783c15SPaul Mackerras 		scale = (scale >> 1) | (res.result_high << 63);
692f2783c15SPaul Mackerras 		res.result_high >>= 1;
693f2783c15SPaul Mackerras 	}
694f2783c15SPaul Mackerras 	tb_to_ns_scale = scale;
695f2783c15SPaul Mackerras 	tb_to_ns_shift = shift;
696f2783c15SPaul Mackerras 
697f2783c15SPaul Mackerras #ifdef CONFIG_PPC_ISERIES
698f2783c15SPaul Mackerras 	if (!piranha_simulator)
699f2783c15SPaul Mackerras #endif
700f2783c15SPaul Mackerras 		tm = get_boot_time();
701f2783c15SPaul Mackerras 
702f2783c15SPaul Mackerras 	write_seqlock_irqsave(&xtime_lock, flags);
703f2783c15SPaul Mackerras 	xtime.tv_sec = tm;
704f2783c15SPaul Mackerras 	xtime.tv_nsec = 0;
705f2783c15SPaul Mackerras 	do_gtod.varp = &do_gtod.vars[0];
706f2783c15SPaul Mackerras 	do_gtod.var_idx = 0;
70796c44507SPaul Mackerras 	do_gtod.varp->tb_orig_stamp = tb_last_jiffy;
708f2783c15SPaul Mackerras 	__get_cpu_var(last_jiffy) = tb_last_stamp;
709f2783c15SPaul Mackerras 	do_gtod.varp->stamp_xsec = (u64) xtime.tv_sec * XSEC_PER_SEC;
710f2783c15SPaul Mackerras 	do_gtod.tb_ticks_per_sec = tb_ticks_per_sec;
711f2783c15SPaul Mackerras 	do_gtod.varp->tb_to_xs = tb_to_xs;
712f2783c15SPaul Mackerras 	do_gtod.tb_to_us = tb_to_us;
713*a7f290daSBenjamin Herrenschmidt 
714*a7f290daSBenjamin Herrenschmidt 	vdso_data->tb_orig_stamp = tb_last_jiffy;
715*a7f290daSBenjamin Herrenschmidt 	vdso_data->tb_update_count = 0;
716*a7f290daSBenjamin Herrenschmidt 	vdso_data->tb_ticks_per_sec = tb_ticks_per_sec;
717*a7f290daSBenjamin Herrenschmidt 	vdso_data->stamp_xsec = xtime.tv_sec * XSEC_PER_SEC;
718*a7f290daSBenjamin Herrenschmidt 	vdso_data->tb_to_xs = tb_to_xs;
719f2783c15SPaul Mackerras 
720f2783c15SPaul Mackerras 	time_freq = 0;
721f2783c15SPaul Mackerras 
722f2783c15SPaul Mackerras 	/* If platform provided a timezone (pmac), we correct the time */
723f2783c15SPaul Mackerras         if (timezone_offset) {
724f2783c15SPaul Mackerras 		sys_tz.tz_minuteswest = -timezone_offset / 60;
725f2783c15SPaul Mackerras 		sys_tz.tz_dsttime = 0;
726f2783c15SPaul Mackerras 		xtime.tv_sec -= timezone_offset;
727f2783c15SPaul Mackerras         }
728f2783c15SPaul Mackerras 
729f2783c15SPaul Mackerras 	last_rtc_update = xtime.tv_sec;
730f2783c15SPaul Mackerras 	set_normalized_timespec(&wall_to_monotonic,
731f2783c15SPaul Mackerras 	                        -xtime.tv_sec, -xtime.tv_nsec);
732f2783c15SPaul Mackerras 	write_sequnlock_irqrestore(&xtime_lock, flags);
733f2783c15SPaul Mackerras 
734f2783c15SPaul Mackerras 	/* Not exact, but the timer interrupt takes care of this */
735f2783c15SPaul Mackerras 	set_dec(tb_ticks_per_jiffy);
736f2783c15SPaul Mackerras }
737f2783c15SPaul Mackerras 
738f2783c15SPaul Mackerras /*
739f2783c15SPaul Mackerras  * After adjtimex is called, adjust the conversion of tb ticks
740f2783c15SPaul Mackerras  * to microseconds to keep do_gettimeofday synchronized
741f2783c15SPaul Mackerras  * with ntpd.
742f2783c15SPaul Mackerras  *
743f2783c15SPaul Mackerras  * Use the time_adjust, time_freq and time_offset computed by adjtimex to
744f2783c15SPaul Mackerras  * adjust the frequency.
745f2783c15SPaul Mackerras  */
746f2783c15SPaul Mackerras 
747f2783c15SPaul Mackerras /* #define DEBUG_PPC_ADJTIMEX 1 */
748f2783c15SPaul Mackerras 
749f2783c15SPaul Mackerras void ppc_adjtimex(void)
750f2783c15SPaul Mackerras {
751f2783c15SPaul Mackerras #ifdef CONFIG_PPC64
752f2783c15SPaul Mackerras 	unsigned long den, new_tb_ticks_per_sec, tb_ticks, old_xsec,
753f2783c15SPaul Mackerras 		new_tb_to_xs, new_xsec, new_stamp_xsec;
754f2783c15SPaul Mackerras 	unsigned long tb_ticks_per_sec_delta;
755f2783c15SPaul Mackerras 	long delta_freq, ltemp;
756f2783c15SPaul Mackerras 	struct div_result divres;
757f2783c15SPaul Mackerras 	unsigned long flags;
758f2783c15SPaul Mackerras 	long singleshot_ppm = 0;
759f2783c15SPaul Mackerras 
760f2783c15SPaul Mackerras 	/*
761f2783c15SPaul Mackerras 	 * Compute parts per million frequency adjustment to
762f2783c15SPaul Mackerras 	 * accomplish the time adjustment implied by time_offset to be
763f2783c15SPaul Mackerras 	 * applied over the elapsed time indicated by time_constant.
764f2783c15SPaul Mackerras 	 * Use SHIFT_USEC to get it into the same units as
765f2783c15SPaul Mackerras 	 * time_freq.
766f2783c15SPaul Mackerras 	 */
767f2783c15SPaul Mackerras 	if ( time_offset < 0 ) {
768f2783c15SPaul Mackerras 		ltemp = -time_offset;
769f2783c15SPaul Mackerras 		ltemp <<= SHIFT_USEC - SHIFT_UPDATE;
770f2783c15SPaul Mackerras 		ltemp >>= SHIFT_KG + time_constant;
771f2783c15SPaul Mackerras 		ltemp = -ltemp;
772f2783c15SPaul Mackerras 	} else {
773f2783c15SPaul Mackerras 		ltemp = time_offset;
774f2783c15SPaul Mackerras 		ltemp <<= SHIFT_USEC - SHIFT_UPDATE;
775f2783c15SPaul Mackerras 		ltemp >>= SHIFT_KG + time_constant;
776f2783c15SPaul Mackerras 	}
777f2783c15SPaul Mackerras 
778f2783c15SPaul Mackerras 	/* If there is a single shot time adjustment in progress */
779f2783c15SPaul Mackerras 	if ( time_adjust ) {
780f2783c15SPaul Mackerras #ifdef DEBUG_PPC_ADJTIMEX
781f2783c15SPaul Mackerras 		printk("ppc_adjtimex: ");
782f2783c15SPaul Mackerras 		if ( adjusting_time == 0 )
783f2783c15SPaul Mackerras 			printk("starting ");
784f2783c15SPaul Mackerras 		printk("single shot time_adjust = %ld\n", time_adjust);
785f2783c15SPaul Mackerras #endif
786f2783c15SPaul Mackerras 
787f2783c15SPaul Mackerras 		adjusting_time = 1;
788f2783c15SPaul Mackerras 
789f2783c15SPaul Mackerras 		/*
790f2783c15SPaul Mackerras 		 * Compute parts per million frequency adjustment
791f2783c15SPaul Mackerras 		 * to match time_adjust
792f2783c15SPaul Mackerras 		 */
793f2783c15SPaul Mackerras 		singleshot_ppm = tickadj * HZ;
794f2783c15SPaul Mackerras 		/*
795f2783c15SPaul Mackerras 		 * The adjustment should be tickadj*HZ to match the code in
796f2783c15SPaul Mackerras 		 * linux/kernel/timer.c, but experiments show that this is too
797f2783c15SPaul Mackerras 		 * large. 3/4 of tickadj*HZ seems about right
798f2783c15SPaul Mackerras 		 */
799f2783c15SPaul Mackerras 		singleshot_ppm -= singleshot_ppm / 4;
800f2783c15SPaul Mackerras 		/* Use SHIFT_USEC to get it into the same units as time_freq */
801f2783c15SPaul Mackerras 		singleshot_ppm <<= SHIFT_USEC;
802f2783c15SPaul Mackerras 		if ( time_adjust < 0 )
803f2783c15SPaul Mackerras 			singleshot_ppm = -singleshot_ppm;
804f2783c15SPaul Mackerras 	}
805f2783c15SPaul Mackerras 	else {
806f2783c15SPaul Mackerras #ifdef DEBUG_PPC_ADJTIMEX
807f2783c15SPaul Mackerras 		if ( adjusting_time )
808f2783c15SPaul Mackerras 			printk("ppc_adjtimex: ending single shot time_adjust\n");
809f2783c15SPaul Mackerras #endif
810f2783c15SPaul Mackerras 		adjusting_time = 0;
811f2783c15SPaul Mackerras 	}
812f2783c15SPaul Mackerras 
813f2783c15SPaul Mackerras 	/* Add up all of the frequency adjustments */
814f2783c15SPaul Mackerras 	delta_freq = time_freq + ltemp + singleshot_ppm;
815f2783c15SPaul Mackerras 
816f2783c15SPaul Mackerras 	/*
817f2783c15SPaul Mackerras 	 * Compute a new value for tb_ticks_per_sec based on
818f2783c15SPaul Mackerras 	 * the frequency adjustment
819f2783c15SPaul Mackerras 	 */
820f2783c15SPaul Mackerras 	den = 1000000 * (1 << (SHIFT_USEC - 8));
821f2783c15SPaul Mackerras 	if ( delta_freq < 0 ) {
822f2783c15SPaul Mackerras 		tb_ticks_per_sec_delta = ( tb_ticks_per_sec * ( (-delta_freq) >> (SHIFT_USEC - 8))) / den;
823f2783c15SPaul Mackerras 		new_tb_ticks_per_sec = tb_ticks_per_sec + tb_ticks_per_sec_delta;
824f2783c15SPaul Mackerras 	}
825f2783c15SPaul Mackerras 	else {
826f2783c15SPaul Mackerras 		tb_ticks_per_sec_delta = ( tb_ticks_per_sec * ( delta_freq >> (SHIFT_USEC - 8))) / den;
827f2783c15SPaul Mackerras 		new_tb_ticks_per_sec = tb_ticks_per_sec - tb_ticks_per_sec_delta;
828f2783c15SPaul Mackerras 	}
829f2783c15SPaul Mackerras 
830f2783c15SPaul Mackerras #ifdef DEBUG_PPC_ADJTIMEX
831f2783c15SPaul Mackerras 	printk("ppc_adjtimex: ltemp = %ld, time_freq = %ld, singleshot_ppm = %ld\n", ltemp, time_freq, singleshot_ppm);
832f2783c15SPaul Mackerras 	printk("ppc_adjtimex: tb_ticks_per_sec - base = %ld  new = %ld\n", tb_ticks_per_sec, new_tb_ticks_per_sec);
833f2783c15SPaul Mackerras #endif
834f2783c15SPaul Mackerras 
835f2783c15SPaul Mackerras 	/*
836f2783c15SPaul Mackerras 	 * Compute a new value of tb_to_xs (used to convert tb to
837f2783c15SPaul Mackerras 	 * microseconds) and a new value of stamp_xsec which is the
838f2783c15SPaul Mackerras 	 * time (in 1/2^20 second units) corresponding to
839f2783c15SPaul Mackerras 	 * tb_orig_stamp.  This new value of stamp_xsec compensates
840f2783c15SPaul Mackerras 	 * for the change in frequency (implied by the new tb_to_xs)
841f2783c15SPaul Mackerras 	 * which guarantees that the current time remains the same.
842f2783c15SPaul Mackerras 	 */
843f2783c15SPaul Mackerras 	write_seqlock_irqsave( &xtime_lock, flags );
844f2783c15SPaul Mackerras 	tb_ticks = get_tb() - do_gtod.varp->tb_orig_stamp;
845f2783c15SPaul Mackerras 	div128_by_32(1024*1024, 0, new_tb_ticks_per_sec, &divres);
846f2783c15SPaul Mackerras 	new_tb_to_xs = divres.result_low;
847f2783c15SPaul Mackerras 	new_xsec = mulhdu(tb_ticks, new_tb_to_xs);
848f2783c15SPaul Mackerras 
849f2783c15SPaul Mackerras 	old_xsec = mulhdu(tb_ticks, do_gtod.varp->tb_to_xs);
850f2783c15SPaul Mackerras 	new_stamp_xsec = do_gtod.varp->stamp_xsec + old_xsec - new_xsec;
851f2783c15SPaul Mackerras 
852f2783c15SPaul Mackerras 	update_gtod(do_gtod.varp->tb_orig_stamp, new_stamp_xsec, new_tb_to_xs);
853f2783c15SPaul Mackerras 
854f2783c15SPaul Mackerras 	write_sequnlock_irqrestore( &xtime_lock, flags );
855f2783c15SPaul Mackerras #endif /* CONFIG_PPC64 */
856f2783c15SPaul Mackerras }
857f2783c15SPaul Mackerras 
858f2783c15SPaul Mackerras 
859f2783c15SPaul Mackerras #define FEBRUARY	2
860f2783c15SPaul Mackerras #define	STARTOFTIME	1970
861f2783c15SPaul Mackerras #define SECDAY		86400L
862f2783c15SPaul Mackerras #define SECYR		(SECDAY * 365)
863f2783c15SPaul Mackerras #define	leapyear(year)		((year) % 4 == 0 && \
864f2783c15SPaul Mackerras 				 ((year) % 100 != 0 || (year) % 400 == 0))
865f2783c15SPaul Mackerras #define	days_in_year(a) 	(leapyear(a) ? 366 : 365)
866f2783c15SPaul Mackerras #define	days_in_month(a) 	(month_days[(a) - 1])
867f2783c15SPaul Mackerras 
868f2783c15SPaul Mackerras static int month_days[12] = {
869f2783c15SPaul Mackerras 	31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31
870f2783c15SPaul Mackerras };
871f2783c15SPaul Mackerras 
872f2783c15SPaul Mackerras /*
873f2783c15SPaul Mackerras  * This only works for the Gregorian calendar - i.e. after 1752 (in the UK)
874f2783c15SPaul Mackerras  */
875f2783c15SPaul Mackerras void GregorianDay(struct rtc_time * tm)
876f2783c15SPaul Mackerras {
877f2783c15SPaul Mackerras 	int leapsToDate;
878f2783c15SPaul Mackerras 	int lastYear;
879f2783c15SPaul Mackerras 	int day;
880f2783c15SPaul Mackerras 	int MonthOffset[] = { 0, 31, 59, 90, 120, 151, 181, 212, 243, 273, 304, 334 };
881f2783c15SPaul Mackerras 
882f2783c15SPaul Mackerras 	lastYear = tm->tm_year - 1;
883f2783c15SPaul Mackerras 
884f2783c15SPaul Mackerras 	/*
885f2783c15SPaul Mackerras 	 * Number of leap corrections to apply up to end of last year
886f2783c15SPaul Mackerras 	 */
887f2783c15SPaul Mackerras 	leapsToDate = lastYear / 4 - lastYear / 100 + lastYear / 400;
888f2783c15SPaul Mackerras 
889f2783c15SPaul Mackerras 	/*
890f2783c15SPaul Mackerras 	 * This year is a leap year if it is divisible by 4 except when it is
891f2783c15SPaul Mackerras 	 * divisible by 100 unless it is divisible by 400
892f2783c15SPaul Mackerras 	 *
893f2783c15SPaul Mackerras 	 * e.g. 1904 was a leap year, 1900 was not, 1996 is, and 2000 was
894f2783c15SPaul Mackerras 	 */
895f2783c15SPaul Mackerras 	day = tm->tm_mon > 2 && leapyear(tm->tm_year);
896f2783c15SPaul Mackerras 
897f2783c15SPaul Mackerras 	day += lastYear*365 + leapsToDate + MonthOffset[tm->tm_mon-1] +
898f2783c15SPaul Mackerras 		   tm->tm_mday;
899f2783c15SPaul Mackerras 
900f2783c15SPaul Mackerras 	tm->tm_wday = day % 7;
901f2783c15SPaul Mackerras }
902f2783c15SPaul Mackerras 
903f2783c15SPaul Mackerras void to_tm(int tim, struct rtc_time * tm)
904f2783c15SPaul Mackerras {
905f2783c15SPaul Mackerras 	register int    i;
906f2783c15SPaul Mackerras 	register long   hms, day;
907f2783c15SPaul Mackerras 
908f2783c15SPaul Mackerras 	day = tim / SECDAY;
909f2783c15SPaul Mackerras 	hms = tim % SECDAY;
910f2783c15SPaul Mackerras 
911f2783c15SPaul Mackerras 	/* Hours, minutes, seconds are easy */
912f2783c15SPaul Mackerras 	tm->tm_hour = hms / 3600;
913f2783c15SPaul Mackerras 	tm->tm_min = (hms % 3600) / 60;
914f2783c15SPaul Mackerras 	tm->tm_sec = (hms % 3600) % 60;
915f2783c15SPaul Mackerras 
916f2783c15SPaul Mackerras 	/* Number of years in days */
917f2783c15SPaul Mackerras 	for (i = STARTOFTIME; day >= days_in_year(i); i++)
918f2783c15SPaul Mackerras 		day -= days_in_year(i);
919f2783c15SPaul Mackerras 	tm->tm_year = i;
920f2783c15SPaul Mackerras 
921f2783c15SPaul Mackerras 	/* Number of months in days left */
922f2783c15SPaul Mackerras 	if (leapyear(tm->tm_year))
923f2783c15SPaul Mackerras 		days_in_month(FEBRUARY) = 29;
924f2783c15SPaul Mackerras 	for (i = 1; day >= days_in_month(i); i++)
925f2783c15SPaul Mackerras 		day -= days_in_month(i);
926f2783c15SPaul Mackerras 	days_in_month(FEBRUARY) = 28;
927f2783c15SPaul Mackerras 	tm->tm_mon = i;
928f2783c15SPaul Mackerras 
929f2783c15SPaul Mackerras 	/* Days are what is left over (+1) from all that. */
930f2783c15SPaul Mackerras 	tm->tm_mday = day + 1;
931f2783c15SPaul Mackerras 
932f2783c15SPaul Mackerras 	/*
933f2783c15SPaul Mackerras 	 * Determine the day of week
934f2783c15SPaul Mackerras 	 */
935f2783c15SPaul Mackerras 	GregorianDay(tm);
936f2783c15SPaul Mackerras }
937f2783c15SPaul Mackerras 
938f2783c15SPaul Mackerras /* Auxiliary function to compute scaling factors */
939f2783c15SPaul Mackerras /* Actually the choice of a timebase running at 1/4 the of the bus
940f2783c15SPaul Mackerras  * frequency giving resolution of a few tens of nanoseconds is quite nice.
941f2783c15SPaul Mackerras  * It makes this computation very precise (27-28 bits typically) which
942f2783c15SPaul Mackerras  * is optimistic considering the stability of most processor clock
943f2783c15SPaul Mackerras  * oscillators and the precision with which the timebase frequency
944f2783c15SPaul Mackerras  * is measured but does not harm.
945f2783c15SPaul Mackerras  */
946f2783c15SPaul Mackerras unsigned mulhwu_scale_factor(unsigned inscale, unsigned outscale)
947f2783c15SPaul Mackerras {
948f2783c15SPaul Mackerras         unsigned mlt=0, tmp, err;
949f2783c15SPaul Mackerras         /* No concern for performance, it's done once: use a stupid
950f2783c15SPaul Mackerras          * but safe and compact method to find the multiplier.
951f2783c15SPaul Mackerras          */
952f2783c15SPaul Mackerras 
953f2783c15SPaul Mackerras         for (tmp = 1U<<31; tmp != 0; tmp >>= 1) {
954f2783c15SPaul Mackerras                 if (mulhwu(inscale, mlt|tmp) < outscale)
955f2783c15SPaul Mackerras 			mlt |= tmp;
956f2783c15SPaul Mackerras         }
957f2783c15SPaul Mackerras 
958f2783c15SPaul Mackerras         /* We might still be off by 1 for the best approximation.
959f2783c15SPaul Mackerras          * A side effect of this is that if outscale is too large
960f2783c15SPaul Mackerras          * the returned value will be zero.
961f2783c15SPaul Mackerras          * Many corner cases have been checked and seem to work,
962f2783c15SPaul Mackerras          * some might have been forgotten in the test however.
963f2783c15SPaul Mackerras          */
964f2783c15SPaul Mackerras 
965f2783c15SPaul Mackerras         err = inscale * (mlt+1);
966f2783c15SPaul Mackerras         if (err <= inscale/2)
967f2783c15SPaul Mackerras 		mlt++;
968f2783c15SPaul Mackerras         return mlt;
969f2783c15SPaul Mackerras }
970f2783c15SPaul Mackerras 
971f2783c15SPaul Mackerras /*
972f2783c15SPaul Mackerras  * Divide a 128-bit dividend by a 32-bit divisor, leaving a 128 bit
973f2783c15SPaul Mackerras  * result.
974f2783c15SPaul Mackerras  */
975f2783c15SPaul Mackerras void div128_by_32(u64 dividend_high, u64 dividend_low,
976f2783c15SPaul Mackerras 		  unsigned divisor, struct div_result *dr)
977f2783c15SPaul Mackerras {
978f2783c15SPaul Mackerras 	unsigned long a, b, c, d;
979f2783c15SPaul Mackerras 	unsigned long w, x, y, z;
980f2783c15SPaul Mackerras 	u64 ra, rb, rc;
981f2783c15SPaul Mackerras 
982f2783c15SPaul Mackerras 	a = dividend_high >> 32;
983f2783c15SPaul Mackerras 	b = dividend_high & 0xffffffff;
984f2783c15SPaul Mackerras 	c = dividend_low >> 32;
985f2783c15SPaul Mackerras 	d = dividend_low & 0xffffffff;
986f2783c15SPaul Mackerras 
987f2783c15SPaul Mackerras 	w = a / divisor;
988f2783c15SPaul Mackerras 	ra = ((u64)(a - (w * divisor)) << 32) + b;
989f2783c15SPaul Mackerras 
990f2783c15SPaul Mackerras 	rb = ((u64) do_div(ra, divisor) << 32) + c;
991f2783c15SPaul Mackerras 	x = ra;
992f2783c15SPaul Mackerras 
993f2783c15SPaul Mackerras 	rc = ((u64) do_div(rb, divisor) << 32) + d;
994f2783c15SPaul Mackerras 	y = rb;
995f2783c15SPaul Mackerras 
996f2783c15SPaul Mackerras 	do_div(rc, divisor);
997f2783c15SPaul Mackerras 	z = rc;
998f2783c15SPaul Mackerras 
999f2783c15SPaul Mackerras 	dr->result_high = ((u64)w << 32) + x;
1000f2783c15SPaul Mackerras 	dr->result_low  = ((u64)y << 32) + z;
1001f2783c15SPaul Mackerras 
1002f2783c15SPaul Mackerras }
1003