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/errno.h> 36f2783c15SPaul Mackerras #include <linux/module.h> 37f2783c15SPaul Mackerras #include <linux/sched.h> 38f2783c15SPaul Mackerras #include <linux/kernel.h> 39f2783c15SPaul Mackerras #include <linux/param.h> 40f2783c15SPaul Mackerras #include <linux/string.h> 41f2783c15SPaul Mackerras #include <linux/mm.h> 42f2783c15SPaul Mackerras #include <linux/interrupt.h> 43f2783c15SPaul Mackerras #include <linux/timex.h> 44f2783c15SPaul Mackerras #include <linux/kernel_stat.h> 45f2783c15SPaul Mackerras #include <linux/time.h> 46f2783c15SPaul Mackerras #include <linux/init.h> 47f2783c15SPaul Mackerras #include <linux/profile.h> 48f2783c15SPaul Mackerras #include <linux/cpu.h> 49f2783c15SPaul Mackerras #include <linux/security.h> 50f2783c15SPaul Mackerras #include <linux/percpu.h> 51f2783c15SPaul Mackerras #include <linux/rtc.h> 52092b8f34SPaul Mackerras #include <linux/jiffies.h> 53c6622f63SPaul Mackerras #include <linux/posix-timers.h> 547d12e780SDavid Howells #include <linux/irq.h> 55f2783c15SPaul Mackerras 56f2783c15SPaul Mackerras #include <asm/io.h> 57f2783c15SPaul Mackerras #include <asm/processor.h> 58f2783c15SPaul Mackerras #include <asm/nvram.h> 59f2783c15SPaul Mackerras #include <asm/cache.h> 60f2783c15SPaul Mackerras #include <asm/machdep.h> 61f2783c15SPaul Mackerras #include <asm/uaccess.h> 62f2783c15SPaul Mackerras #include <asm/time.h> 63f2783c15SPaul Mackerras #include <asm/prom.h> 64f2783c15SPaul Mackerras #include <asm/irq.h> 65f2783c15SPaul Mackerras #include <asm/div64.h> 662249ca9dSPaul Mackerras #include <asm/smp.h> 67a7f290daSBenjamin Herrenschmidt #include <asm/vdso_datapage.h> 68f2783c15SPaul Mackerras #include <asm/firmware.h> 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 73f2783c15SPaul Mackerras 744a4cfe38STony Breeds /* powerpc clocksource/clockevent code */ 754a4cfe38STony Breeds 76d831d0b8STony Breeds #include <linux/clockchips.h> 774a4cfe38STony Breeds #include <linux/clocksource.h> 784a4cfe38STony Breeds 794a4cfe38STony Breeds static cycle_t rtc_read(void); 804a4cfe38STony Breeds static struct clocksource clocksource_rtc = { 814a4cfe38STony Breeds .name = "rtc", 824a4cfe38STony Breeds .rating = 400, 834a4cfe38STony Breeds .flags = CLOCK_SOURCE_IS_CONTINUOUS, 844a4cfe38STony Breeds .mask = CLOCKSOURCE_MASK(64), 854a4cfe38STony Breeds .shift = 22, 864a4cfe38STony Breeds .mult = 0, /* To be filled in */ 874a4cfe38STony Breeds .read = rtc_read, 884a4cfe38STony Breeds }; 894a4cfe38STony Breeds 904a4cfe38STony Breeds static cycle_t timebase_read(void); 914a4cfe38STony Breeds static struct clocksource clocksource_timebase = { 924a4cfe38STony Breeds .name = "timebase", 934a4cfe38STony Breeds .rating = 400, 944a4cfe38STony Breeds .flags = CLOCK_SOURCE_IS_CONTINUOUS, 954a4cfe38STony Breeds .mask = CLOCKSOURCE_MASK(64), 964a4cfe38STony Breeds .shift = 22, 974a4cfe38STony Breeds .mult = 0, /* To be filled in */ 984a4cfe38STony Breeds .read = timebase_read, 994a4cfe38STony Breeds }; 1004a4cfe38STony Breeds 101d831d0b8STony Breeds #define DECREMENTER_MAX 0x7fffffff 102d831d0b8STony Breeds 103d831d0b8STony Breeds static int decrementer_set_next_event(unsigned long evt, 104d831d0b8STony Breeds struct clock_event_device *dev); 105d831d0b8STony Breeds static void decrementer_set_mode(enum clock_event_mode mode, 106d831d0b8STony Breeds struct clock_event_device *dev); 107d831d0b8STony Breeds 108d831d0b8STony Breeds static struct clock_event_device decrementer_clockevent = { 109d831d0b8STony Breeds .name = "decrementer", 110d831d0b8STony Breeds .rating = 200, 111cdec12aeSPaul Mackerras .shift = 16, 112d831d0b8STony Breeds .mult = 0, /* To be filled in */ 113d831d0b8STony Breeds .irq = 0, 114d831d0b8STony Breeds .set_next_event = decrementer_set_next_event, 115d831d0b8STony Breeds .set_mode = decrementer_set_mode, 116d831d0b8STony Breeds .features = CLOCK_EVT_FEAT_ONESHOT, 117d831d0b8STony Breeds }; 118d831d0b8STony Breeds 119d831d0b8STony Breeds static DEFINE_PER_CPU(struct clock_event_device, decrementers); 120d831d0b8STony Breeds void init_decrementer_clockevent(void); 121d968014bSPaul Mackerras static DEFINE_PER_CPU(u64, decrementer_next_tb); 122d831d0b8STony Breeds 123f2783c15SPaul Mackerras #ifdef CONFIG_PPC_ISERIES 12471712b45STony Breeds static unsigned long __initdata iSeries_recal_titan; 12571712b45STony Breeds static signed long __initdata iSeries_recal_tb; 1264a4cfe38STony Breeds 1274a4cfe38STony Breeds /* Forward declaration is only needed for iSereis compiles */ 1284a4cfe38STony Breeds void __init clocksource_init(void); 129f2783c15SPaul Mackerras #endif 130f2783c15SPaul Mackerras 131f2783c15SPaul Mackerras #define XSEC_PER_SEC (1024*1024) 132f2783c15SPaul Mackerras 133f2783c15SPaul Mackerras #ifdef CONFIG_PPC64 134f2783c15SPaul Mackerras #define SCALE_XSEC(xsec, max) (((xsec) * max) / XSEC_PER_SEC) 135f2783c15SPaul Mackerras #else 136f2783c15SPaul Mackerras /* compute ((xsec << 12) * max) >> 32 */ 137f2783c15SPaul Mackerras #define SCALE_XSEC(xsec, max) mulhwu((xsec) << 12, max) 138f2783c15SPaul Mackerras #endif 139f2783c15SPaul Mackerras 140f2783c15SPaul Mackerras unsigned long tb_ticks_per_jiffy; 141f2783c15SPaul Mackerras unsigned long tb_ticks_per_usec = 100; /* sane default */ 142f2783c15SPaul Mackerras EXPORT_SYMBOL(tb_ticks_per_usec); 143f2783c15SPaul Mackerras unsigned long tb_ticks_per_sec; 1442cf82c02SPaul Mackerras EXPORT_SYMBOL(tb_ticks_per_sec); /* for cputime_t conversions */ 145f2783c15SPaul Mackerras u64 tb_to_xs; 146f2783c15SPaul Mackerras unsigned tb_to_us; 147092b8f34SPaul Mackerras 14819923c19SRoman Zippel #define TICKLEN_SCALE TICK_LENGTH_SHIFT 149092b8f34SPaul Mackerras u64 last_tick_len; /* units are ns / 2^TICKLEN_SCALE */ 150092b8f34SPaul Mackerras u64 ticklen_to_xs; /* 0.64 fraction */ 151092b8f34SPaul Mackerras 152092b8f34SPaul Mackerras /* If last_tick_len corresponds to about 1/HZ seconds, then 153092b8f34SPaul Mackerras last_tick_len << TICKLEN_SHIFT will be about 2^63. */ 154092b8f34SPaul Mackerras #define TICKLEN_SHIFT (63 - 30 - TICKLEN_SCALE + SHIFT_HZ) 155092b8f34SPaul Mackerras 156f2783c15SPaul Mackerras DEFINE_SPINLOCK(rtc_lock); 157f2783c15SPaul Mackerras EXPORT_SYMBOL_GPL(rtc_lock); 158f2783c15SPaul Mackerras 159fc9069feSTony Breeds static u64 tb_to_ns_scale __read_mostly; 160fc9069feSTony Breeds static unsigned tb_to_ns_shift __read_mostly; 161fc9069feSTony Breeds static unsigned long boot_tb __read_mostly; 162f2783c15SPaul Mackerras 163f2783c15SPaul Mackerras struct gettimeofday_struct do_gtod; 164f2783c15SPaul Mackerras 165f2783c15SPaul Mackerras extern struct timezone sys_tz; 166f2783c15SPaul Mackerras static long timezone_offset; 167f2783c15SPaul Mackerras 168f2783c15SPaul Mackerras unsigned long ppc_proc_freq; 1691474855dSBob Nelson EXPORT_SYMBOL(ppc_proc_freq); 170f2783c15SPaul Mackerras unsigned long ppc_tb_freq; 171f2783c15SPaul Mackerras 172eb36c288SPaul Mackerras static u64 tb_last_jiffy __cacheline_aligned_in_smp; 173eb36c288SPaul Mackerras static DEFINE_PER_CPU(u64, last_jiffy); 17496c44507SPaul Mackerras 175c6622f63SPaul Mackerras #ifdef CONFIG_VIRT_CPU_ACCOUNTING 176c6622f63SPaul Mackerras /* 177c6622f63SPaul Mackerras * Factors for converting from cputime_t (timebase ticks) to 178c6622f63SPaul Mackerras * jiffies, milliseconds, seconds, and clock_t (1/USER_HZ seconds). 179c6622f63SPaul Mackerras * These are all stored as 0.64 fixed-point binary fractions. 180c6622f63SPaul Mackerras */ 181c6622f63SPaul Mackerras u64 __cputime_jiffies_factor; 1822cf82c02SPaul Mackerras EXPORT_SYMBOL(__cputime_jiffies_factor); 183c6622f63SPaul Mackerras u64 __cputime_msec_factor; 1842cf82c02SPaul Mackerras EXPORT_SYMBOL(__cputime_msec_factor); 185c6622f63SPaul Mackerras u64 __cputime_sec_factor; 1862cf82c02SPaul Mackerras EXPORT_SYMBOL(__cputime_sec_factor); 187c6622f63SPaul Mackerras u64 __cputime_clockt_factor; 1882cf82c02SPaul Mackerras EXPORT_SYMBOL(__cputime_clockt_factor); 189c6622f63SPaul Mackerras 190c6622f63SPaul Mackerras static void calc_cputime_factors(void) 191c6622f63SPaul Mackerras { 192c6622f63SPaul Mackerras struct div_result res; 193c6622f63SPaul Mackerras 194c6622f63SPaul Mackerras div128_by_32(HZ, 0, tb_ticks_per_sec, &res); 195c6622f63SPaul Mackerras __cputime_jiffies_factor = res.result_low; 196c6622f63SPaul Mackerras div128_by_32(1000, 0, tb_ticks_per_sec, &res); 197c6622f63SPaul Mackerras __cputime_msec_factor = res.result_low; 198c6622f63SPaul Mackerras div128_by_32(1, 0, tb_ticks_per_sec, &res); 199c6622f63SPaul Mackerras __cputime_sec_factor = res.result_low; 200c6622f63SPaul Mackerras div128_by_32(USER_HZ, 0, tb_ticks_per_sec, &res); 201c6622f63SPaul Mackerras __cputime_clockt_factor = res.result_low; 202c6622f63SPaul Mackerras } 203c6622f63SPaul Mackerras 204c6622f63SPaul Mackerras /* 205c6622f63SPaul Mackerras * Read the PURR on systems that have it, otherwise the timebase. 206c6622f63SPaul Mackerras */ 207c6622f63SPaul Mackerras static u64 read_purr(void) 208c6622f63SPaul Mackerras { 209c6622f63SPaul Mackerras if (cpu_has_feature(CPU_FTR_PURR)) 210c6622f63SPaul Mackerras return mfspr(SPRN_PURR); 211c6622f63SPaul Mackerras return mftb(); 212c6622f63SPaul Mackerras } 213c6622f63SPaul Mackerras 214c6622f63SPaul Mackerras /* 2154603ac18SMichael Neuling * Read the SPURR on systems that have it, otherwise the purr 2164603ac18SMichael Neuling */ 2174603ac18SMichael Neuling static u64 read_spurr(u64 purr) 2184603ac18SMichael Neuling { 2194603ac18SMichael Neuling if (cpu_has_feature(CPU_FTR_SPURR)) 2204603ac18SMichael Neuling return mfspr(SPRN_SPURR); 2214603ac18SMichael Neuling return purr; 2224603ac18SMichael Neuling } 2234603ac18SMichael Neuling 2244603ac18SMichael Neuling /* 225c6622f63SPaul Mackerras * Account time for a transition between system, hard irq 226c6622f63SPaul Mackerras * or soft irq state. 227c6622f63SPaul Mackerras */ 228c6622f63SPaul Mackerras void account_system_vtime(struct task_struct *tsk) 229c6622f63SPaul Mackerras { 2304603ac18SMichael Neuling u64 now, nowscaled, delta, deltascaled; 231c6622f63SPaul Mackerras unsigned long flags; 232c6622f63SPaul Mackerras 233c6622f63SPaul Mackerras local_irq_save(flags); 234c6622f63SPaul Mackerras now = read_purr(); 235c6622f63SPaul Mackerras delta = now - get_paca()->startpurr; 236c6622f63SPaul Mackerras get_paca()->startpurr = now; 2374603ac18SMichael Neuling nowscaled = read_spurr(now); 2384603ac18SMichael Neuling deltascaled = nowscaled - get_paca()->startspurr; 2394603ac18SMichael Neuling get_paca()->startspurr = nowscaled; 240c6622f63SPaul Mackerras if (!in_interrupt()) { 2414603ac18SMichael Neuling /* deltascaled includes both user and system time. 2424603ac18SMichael Neuling * Hence scale it based on the purr ratio to estimate 2434603ac18SMichael Neuling * the system time */ 2444603ac18SMichael Neuling deltascaled = deltascaled * get_paca()->system_time / 2454603ac18SMichael Neuling (get_paca()->system_time + get_paca()->user_time); 246c6622f63SPaul Mackerras delta += get_paca()->system_time; 247c6622f63SPaul Mackerras get_paca()->system_time = 0; 248c6622f63SPaul Mackerras } 249c6622f63SPaul Mackerras account_system_time(tsk, 0, delta); 2504603ac18SMichael Neuling get_paca()->purrdelta = delta; 2514603ac18SMichael Neuling account_system_time_scaled(tsk, deltascaled); 2524603ac18SMichael Neuling get_paca()->spurrdelta = deltascaled; 253c6622f63SPaul Mackerras local_irq_restore(flags); 254c6622f63SPaul Mackerras } 255c6622f63SPaul Mackerras 256c6622f63SPaul Mackerras /* 257c6622f63SPaul Mackerras * Transfer the user and system times accumulated in the paca 258c6622f63SPaul Mackerras * by the exception entry and exit code to the generic process 259c6622f63SPaul Mackerras * user and system time records. 260c6622f63SPaul Mackerras * Must be called with interrupts disabled. 261c6622f63SPaul Mackerras */ 262*fa13a5a1SPaul Mackerras void account_process_tick(struct task_struct *tsk, int user_tick) 263c6622f63SPaul Mackerras { 2644603ac18SMichael Neuling cputime_t utime, utimescaled; 265c6622f63SPaul Mackerras 266c6622f63SPaul Mackerras utime = get_paca()->user_time; 267c6622f63SPaul Mackerras get_paca()->user_time = 0; 268c6622f63SPaul Mackerras account_user_time(tsk, utime); 2694603ac18SMichael Neuling 2704603ac18SMichael Neuling /* Estimate the scaled utime by scaling the real utime based 2714603ac18SMichael Neuling * on the last spurr to purr ratio */ 2724603ac18SMichael Neuling utimescaled = utime * get_paca()->spurrdelta / get_paca()->purrdelta; 2734603ac18SMichael Neuling get_paca()->spurrdelta = get_paca()->purrdelta = 0; 2744603ac18SMichael Neuling account_user_time_scaled(tsk, utimescaled); 275c6622f63SPaul Mackerras } 276c6622f63SPaul Mackerras 277c6622f63SPaul Mackerras /* 278c6622f63SPaul Mackerras * Stuff for accounting stolen time. 279c6622f63SPaul Mackerras */ 280c6622f63SPaul Mackerras struct cpu_purr_data { 281c6622f63SPaul Mackerras int initialized; /* thread is running */ 282c6622f63SPaul Mackerras u64 tb; /* last TB value read */ 283c6622f63SPaul Mackerras u64 purr; /* last PURR value read */ 2844603ac18SMichael Neuling u64 spurr; /* last SPURR value read */ 285c6622f63SPaul Mackerras }; 286c6622f63SPaul Mackerras 287df211c8aSNathan Lynch /* 288df211c8aSNathan Lynch * Each entry in the cpu_purr_data array is manipulated only by its 289df211c8aSNathan Lynch * "owner" cpu -- usually in the timer interrupt but also occasionally 290df211c8aSNathan Lynch * in process context for cpu online. As long as cpus do not touch 291df211c8aSNathan Lynch * each others' cpu_purr_data, disabling local interrupts is 292df211c8aSNathan Lynch * sufficient to serialize accesses. 293df211c8aSNathan Lynch */ 294c6622f63SPaul Mackerras static DEFINE_PER_CPU(struct cpu_purr_data, cpu_purr_data); 295c6622f63SPaul Mackerras 296c6622f63SPaul Mackerras static void snapshot_tb_and_purr(void *data) 297c6622f63SPaul Mackerras { 298df211c8aSNathan Lynch unsigned long flags; 299c6622f63SPaul Mackerras struct cpu_purr_data *p = &__get_cpu_var(cpu_purr_data); 300c6622f63SPaul Mackerras 301df211c8aSNathan Lynch local_irq_save(flags); 302c27da339SBenjamin Herrenschmidt p->tb = get_tb_or_rtc(); 303cbcdb93dSStephen Rothwell p->purr = mfspr(SPRN_PURR); 304c6622f63SPaul Mackerras wmb(); 305c6622f63SPaul Mackerras p->initialized = 1; 306df211c8aSNathan Lynch local_irq_restore(flags); 307c6622f63SPaul Mackerras } 308c6622f63SPaul Mackerras 309c6622f63SPaul Mackerras /* 310c6622f63SPaul Mackerras * Called during boot when all cpus have come up. 311c6622f63SPaul Mackerras */ 312c6622f63SPaul Mackerras void snapshot_timebases(void) 313c6622f63SPaul Mackerras { 314c6622f63SPaul Mackerras if (!cpu_has_feature(CPU_FTR_PURR)) 315c6622f63SPaul Mackerras return; 316c6622f63SPaul Mackerras on_each_cpu(snapshot_tb_and_purr, NULL, 0, 1); 317c6622f63SPaul Mackerras } 318c6622f63SPaul Mackerras 319df211c8aSNathan Lynch /* 320df211c8aSNathan Lynch * Must be called with interrupts disabled. 321df211c8aSNathan Lynch */ 322c6622f63SPaul Mackerras void calculate_steal_time(void) 323c6622f63SPaul Mackerras { 324cbcdb93dSStephen Rothwell u64 tb, purr; 325c6622f63SPaul Mackerras s64 stolen; 326cbcdb93dSStephen Rothwell struct cpu_purr_data *pme; 327c6622f63SPaul Mackerras 328c6622f63SPaul Mackerras if (!cpu_has_feature(CPU_FTR_PURR)) 329c6622f63SPaul Mackerras return; 330cbcdb93dSStephen Rothwell pme = &per_cpu(cpu_purr_data, smp_processor_id()); 331c6622f63SPaul Mackerras if (!pme->initialized) 332c6622f63SPaul Mackerras return; /* this can happen in early boot */ 333c6622f63SPaul Mackerras tb = mftb(); 334cbcdb93dSStephen Rothwell purr = mfspr(SPRN_PURR); 335c6622f63SPaul Mackerras stolen = (tb - pme->tb) - (purr - pme->purr); 336cbcdb93dSStephen Rothwell if (stolen > 0) 337c6622f63SPaul Mackerras account_steal_time(current, stolen); 338c6622f63SPaul Mackerras pme->tb = tb; 339c6622f63SPaul Mackerras pme->purr = purr; 340c6622f63SPaul Mackerras } 341c6622f63SPaul Mackerras 3424cefebb1SMichael Neuling #ifdef CONFIG_PPC_SPLPAR 343c6622f63SPaul Mackerras /* 344c6622f63SPaul Mackerras * Must be called before the cpu is added to the online map when 345c6622f63SPaul Mackerras * a cpu is being brought up at runtime. 346c6622f63SPaul Mackerras */ 347c6622f63SPaul Mackerras static void snapshot_purr(void) 348c6622f63SPaul Mackerras { 349cbcdb93dSStephen Rothwell struct cpu_purr_data *pme; 350c6622f63SPaul Mackerras unsigned long flags; 351c6622f63SPaul Mackerras 352c6622f63SPaul Mackerras if (!cpu_has_feature(CPU_FTR_PURR)) 353c6622f63SPaul Mackerras return; 354df211c8aSNathan Lynch local_irq_save(flags); 355cbcdb93dSStephen Rothwell pme = &per_cpu(cpu_purr_data, smp_processor_id()); 356cbcdb93dSStephen Rothwell pme->tb = mftb(); 357cbcdb93dSStephen Rothwell pme->purr = mfspr(SPRN_PURR); 358c6622f63SPaul Mackerras pme->initialized = 1; 359df211c8aSNathan Lynch local_irq_restore(flags); 360c6622f63SPaul Mackerras } 361c6622f63SPaul Mackerras 362c6622f63SPaul Mackerras #endif /* CONFIG_PPC_SPLPAR */ 363c6622f63SPaul Mackerras 364c6622f63SPaul Mackerras #else /* ! CONFIG_VIRT_CPU_ACCOUNTING */ 365c6622f63SPaul Mackerras #define calc_cputime_factors() 366c6622f63SPaul Mackerras #define calculate_steal_time() do { } while (0) 367c6622f63SPaul Mackerras #endif 368c6622f63SPaul Mackerras 369c6622f63SPaul Mackerras #if !(defined(CONFIG_VIRT_CPU_ACCOUNTING) && defined(CONFIG_PPC_SPLPAR)) 370c6622f63SPaul Mackerras #define snapshot_purr() do { } while (0) 371c6622f63SPaul Mackerras #endif 372c6622f63SPaul Mackerras 373c6622f63SPaul Mackerras /* 374c6622f63SPaul Mackerras * Called when a cpu comes up after the system has finished booting, 375c6622f63SPaul Mackerras * i.e. as a result of a hotplug cpu action. 376c6622f63SPaul Mackerras */ 377c6622f63SPaul Mackerras void snapshot_timebase(void) 378c6622f63SPaul Mackerras { 379c27da339SBenjamin Herrenschmidt __get_cpu_var(last_jiffy) = get_tb_or_rtc(); 380c6622f63SPaul Mackerras snapshot_purr(); 381c6622f63SPaul Mackerras } 382c6622f63SPaul Mackerras 3836defa38bSPaul Mackerras void __delay(unsigned long loops) 3846defa38bSPaul Mackerras { 3856defa38bSPaul Mackerras unsigned long start; 3866defa38bSPaul Mackerras int diff; 3876defa38bSPaul Mackerras 3886defa38bSPaul Mackerras if (__USE_RTC()) { 3896defa38bSPaul Mackerras start = get_rtcl(); 3906defa38bSPaul Mackerras do { 3916defa38bSPaul Mackerras /* the RTCL register wraps at 1000000000 */ 3926defa38bSPaul Mackerras diff = get_rtcl() - start; 3936defa38bSPaul Mackerras if (diff < 0) 3946defa38bSPaul Mackerras diff += 1000000000; 3956defa38bSPaul Mackerras } while (diff < loops); 3966defa38bSPaul Mackerras } else { 3976defa38bSPaul Mackerras start = get_tbl(); 3986defa38bSPaul Mackerras while (get_tbl() - start < loops) 3996defa38bSPaul Mackerras HMT_low(); 4006defa38bSPaul Mackerras HMT_medium(); 4016defa38bSPaul Mackerras } 4026defa38bSPaul Mackerras } 4036defa38bSPaul Mackerras EXPORT_SYMBOL(__delay); 4046defa38bSPaul Mackerras 4056defa38bSPaul Mackerras void udelay(unsigned long usecs) 4066defa38bSPaul Mackerras { 4076defa38bSPaul Mackerras __delay(tb_ticks_per_usec * usecs); 4086defa38bSPaul Mackerras } 4096defa38bSPaul Mackerras EXPORT_SYMBOL(udelay); 4106defa38bSPaul Mackerras 411f2783c15SPaul Mackerras 412f2783c15SPaul Mackerras /* 413f2783c15SPaul Mackerras * There are two copies of tb_to_xs and stamp_xsec so that no 414f2783c15SPaul Mackerras * lock is needed to access and use these values in 415f2783c15SPaul Mackerras * do_gettimeofday. We alternate the copies and as long as a 416f2783c15SPaul Mackerras * reasonable time elapses between changes, there will never 417f2783c15SPaul Mackerras * be inconsistent values. ntpd has a minimum of one minute 418f2783c15SPaul Mackerras * between updates. 419f2783c15SPaul Mackerras */ 420f2783c15SPaul Mackerras static inline void update_gtod(u64 new_tb_stamp, u64 new_stamp_xsec, 4215d14a18dSPaul Mackerras u64 new_tb_to_xs) 422f2783c15SPaul Mackerras { 423f2783c15SPaul Mackerras unsigned temp_idx; 424f2783c15SPaul Mackerras struct gettimeofday_vars *temp_varp; 425f2783c15SPaul Mackerras 426f2783c15SPaul Mackerras temp_idx = (do_gtod.var_idx == 0); 427f2783c15SPaul Mackerras temp_varp = &do_gtod.vars[temp_idx]; 428f2783c15SPaul Mackerras 429f2783c15SPaul Mackerras temp_varp->tb_to_xs = new_tb_to_xs; 430f2783c15SPaul Mackerras temp_varp->tb_orig_stamp = new_tb_stamp; 431f2783c15SPaul Mackerras temp_varp->stamp_xsec = new_stamp_xsec; 432f2783c15SPaul Mackerras smp_mb(); 433f2783c15SPaul Mackerras do_gtod.varp = temp_varp; 434f2783c15SPaul Mackerras do_gtod.var_idx = temp_idx; 435f2783c15SPaul Mackerras 436f2783c15SPaul Mackerras /* 437f2783c15SPaul Mackerras * tb_update_count is used to allow the userspace gettimeofday code 438f2783c15SPaul Mackerras * to assure itself that it sees a consistent view of the tb_to_xs and 439f2783c15SPaul Mackerras * stamp_xsec variables. It reads the tb_update_count, then reads 440f2783c15SPaul Mackerras * tb_to_xs and stamp_xsec and then reads tb_update_count again. If 441f2783c15SPaul Mackerras * the two values of tb_update_count match and are even then the 442f2783c15SPaul Mackerras * tb_to_xs and stamp_xsec values are consistent. If not, then it 443f2783c15SPaul Mackerras * loops back and reads them again until this criteria is met. 4440a45d449SPaul Mackerras * We expect the caller to have done the first increment of 4450a45d449SPaul Mackerras * vdso_data->tb_update_count already. 446f2783c15SPaul Mackerras */ 447a7f290daSBenjamin Herrenschmidt vdso_data->tb_orig_stamp = new_tb_stamp; 448a7f290daSBenjamin Herrenschmidt vdso_data->stamp_xsec = new_stamp_xsec; 449a7f290daSBenjamin Herrenschmidt vdso_data->tb_to_xs = new_tb_to_xs; 450a7f290daSBenjamin Herrenschmidt vdso_data->wtom_clock_sec = wall_to_monotonic.tv_sec; 451a7f290daSBenjamin Herrenschmidt vdso_data->wtom_clock_nsec = wall_to_monotonic.tv_nsec; 452f2783c15SPaul Mackerras smp_wmb(); 453a7f290daSBenjamin Herrenschmidt ++(vdso_data->tb_update_count); 454f2783c15SPaul Mackerras } 455f2783c15SPaul Mackerras 456f2783c15SPaul Mackerras #ifdef CONFIG_SMP 457f2783c15SPaul Mackerras unsigned long profile_pc(struct pt_regs *regs) 458f2783c15SPaul Mackerras { 459f2783c15SPaul Mackerras unsigned long pc = instruction_pointer(regs); 460f2783c15SPaul Mackerras 461f2783c15SPaul Mackerras if (in_lock_functions(pc)) 462f2783c15SPaul Mackerras return regs->link; 463f2783c15SPaul Mackerras 464f2783c15SPaul Mackerras return pc; 465f2783c15SPaul Mackerras } 466f2783c15SPaul Mackerras EXPORT_SYMBOL(profile_pc); 467f2783c15SPaul Mackerras #endif 468f2783c15SPaul Mackerras 469f2783c15SPaul Mackerras #ifdef CONFIG_PPC_ISERIES 470f2783c15SPaul Mackerras 471f2783c15SPaul Mackerras /* 472f2783c15SPaul Mackerras * This function recalibrates the timebase based on the 49-bit time-of-day 473f2783c15SPaul Mackerras * value in the Titan chip. The Titan is much more accurate than the value 474f2783c15SPaul Mackerras * returned by the service processor for the timebase frequency. 475f2783c15SPaul Mackerras */ 476f2783c15SPaul Mackerras 47771712b45STony Breeds static int __init iSeries_tb_recal(void) 478f2783c15SPaul Mackerras { 479f2783c15SPaul Mackerras struct div_result divres; 480f2783c15SPaul Mackerras unsigned long titan, tb; 48171712b45STony Breeds 48271712b45STony Breeds /* Make sure we only run on iSeries */ 48371712b45STony Breeds if (!firmware_has_feature(FW_FEATURE_ISERIES)) 48471712b45STony Breeds return -ENODEV; 48571712b45STony Breeds 486f2783c15SPaul Mackerras tb = get_tb(); 487f2783c15SPaul Mackerras titan = HvCallXm_loadTod(); 488f2783c15SPaul Mackerras if ( iSeries_recal_titan ) { 489f2783c15SPaul Mackerras unsigned long tb_ticks = tb - iSeries_recal_tb; 490f2783c15SPaul Mackerras unsigned long titan_usec = (titan - iSeries_recal_titan) >> 12; 491f2783c15SPaul Mackerras unsigned long new_tb_ticks_per_sec = (tb_ticks * USEC_PER_SEC)/titan_usec; 492f2783c15SPaul Mackerras unsigned long new_tb_ticks_per_jiffy = (new_tb_ticks_per_sec+(HZ/2))/HZ; 493f2783c15SPaul Mackerras long tick_diff = new_tb_ticks_per_jiffy - tb_ticks_per_jiffy; 494f2783c15SPaul Mackerras char sign = '+'; 495f2783c15SPaul Mackerras /* make sure tb_ticks_per_sec and tb_ticks_per_jiffy are consistent */ 496f2783c15SPaul Mackerras new_tb_ticks_per_sec = new_tb_ticks_per_jiffy * HZ; 497f2783c15SPaul Mackerras 498f2783c15SPaul Mackerras if ( tick_diff < 0 ) { 499f2783c15SPaul Mackerras tick_diff = -tick_diff; 500f2783c15SPaul Mackerras sign = '-'; 501f2783c15SPaul Mackerras } 502f2783c15SPaul Mackerras if ( tick_diff ) { 503f2783c15SPaul Mackerras if ( tick_diff < tb_ticks_per_jiffy/25 ) { 504f2783c15SPaul Mackerras printk( "Titan recalibrate: new tb_ticks_per_jiffy = %lu (%c%ld)\n", 505f2783c15SPaul Mackerras new_tb_ticks_per_jiffy, sign, tick_diff ); 506f2783c15SPaul Mackerras tb_ticks_per_jiffy = new_tb_ticks_per_jiffy; 507f2783c15SPaul Mackerras tb_ticks_per_sec = new_tb_ticks_per_sec; 508c6622f63SPaul Mackerras calc_cputime_factors(); 509f2783c15SPaul Mackerras div128_by_32( XSEC_PER_SEC, 0, tb_ticks_per_sec, &divres ); 510f2783c15SPaul Mackerras do_gtod.tb_ticks_per_sec = tb_ticks_per_sec; 511f2783c15SPaul Mackerras tb_to_xs = divres.result_low; 512f2783c15SPaul Mackerras do_gtod.varp->tb_to_xs = tb_to_xs; 513a7f290daSBenjamin Herrenschmidt vdso_data->tb_ticks_per_sec = tb_ticks_per_sec; 514a7f290daSBenjamin Herrenschmidt vdso_data->tb_to_xs = tb_to_xs; 515f2783c15SPaul Mackerras } 516f2783c15SPaul Mackerras else { 517f2783c15SPaul Mackerras printk( "Titan recalibrate: FAILED (difference > 4 percent)\n" 518f2783c15SPaul Mackerras " new tb_ticks_per_jiffy = %lu\n" 519f2783c15SPaul Mackerras " old tb_ticks_per_jiffy = %lu\n", 520f2783c15SPaul Mackerras new_tb_ticks_per_jiffy, tb_ticks_per_jiffy ); 521f2783c15SPaul Mackerras } 522f2783c15SPaul Mackerras } 523f2783c15SPaul Mackerras } 524f2783c15SPaul Mackerras iSeries_recal_titan = titan; 525f2783c15SPaul Mackerras iSeries_recal_tb = tb; 52671712b45STony Breeds 5274a4cfe38STony Breeds /* Called here as now we know accurate values for the timebase */ 5284a4cfe38STony Breeds clocksource_init(); 52971712b45STony Breeds return 0; 530f2783c15SPaul Mackerras } 53171712b45STony Breeds late_initcall(iSeries_tb_recal); 53271712b45STony Breeds 53371712b45STony Breeds /* Called from platform early init */ 53471712b45STony Breeds void __init iSeries_time_init_early(void) 53571712b45STony Breeds { 53671712b45STony Breeds iSeries_recal_tb = get_tb(); 53771712b45STony Breeds iSeries_recal_titan = HvCallXm_loadTod(); 53871712b45STony Breeds } 53971712b45STony Breeds #endif /* CONFIG_PPC_ISERIES */ 540f2783c15SPaul Mackerras 541f2783c15SPaul Mackerras /* 542f2783c15SPaul Mackerras * For iSeries shared processors, we have to let the hypervisor 543f2783c15SPaul Mackerras * set the hardware decrementer. We set a virtual decrementer 544f2783c15SPaul Mackerras * in the lppaca and call the hypervisor if the virtual 545f2783c15SPaul Mackerras * decrementer is less than the current value in the hardware 546f2783c15SPaul Mackerras * decrementer. (almost always the new decrementer value will 547f2783c15SPaul Mackerras * be greater than the current hardware decementer so the hypervisor 548f2783c15SPaul Mackerras * call will not be needed) 549f2783c15SPaul Mackerras */ 550f2783c15SPaul Mackerras 551f2783c15SPaul Mackerras /* 552f2783c15SPaul Mackerras * timer_interrupt - gets called when the decrementer overflows, 553f2783c15SPaul Mackerras * with interrupts disabled. 554f2783c15SPaul Mackerras */ 555f2783c15SPaul Mackerras void timer_interrupt(struct pt_regs * regs) 556f2783c15SPaul Mackerras { 5577d12e780SDavid Howells struct pt_regs *old_regs; 558f2783c15SPaul Mackerras int cpu = smp_processor_id(); 559d831d0b8STony Breeds struct clock_event_device *evt = &per_cpu(decrementers, cpu); 560d968014bSPaul Mackerras u64 now; 561d831d0b8STony Breeds 562d831d0b8STony Breeds /* Ensure a positive value is written to the decrementer, or else 563d831d0b8STony Breeds * some CPUs will continuue to take decrementer exceptions */ 564d831d0b8STony Breeds set_dec(DECREMENTER_MAX); 565f2783c15SPaul Mackerras 566f2783c15SPaul Mackerras #ifdef CONFIG_PPC32 567f2783c15SPaul Mackerras if (atomic_read(&ppc_n_lost_interrupts) != 0) 568f2783c15SPaul Mackerras do_IRQ(regs); 569f2783c15SPaul Mackerras #endif 570f2783c15SPaul Mackerras 571d968014bSPaul Mackerras now = get_tb_or_rtc(); 572d968014bSPaul Mackerras if (now < per_cpu(decrementer_next_tb, cpu)) { 573d968014bSPaul Mackerras /* not time for this event yet */ 574d968014bSPaul Mackerras now = per_cpu(decrementer_next_tb, cpu) - now; 575d968014bSPaul Mackerras if (now <= DECREMENTER_MAX) 576d968014bSPaul Mackerras set_dec((unsigned int)now - 1); 577d968014bSPaul Mackerras return; 578d968014bSPaul Mackerras } 5797d12e780SDavid Howells old_regs = set_irq_regs(regs); 580f2783c15SPaul Mackerras irq_enter(); 581f2783c15SPaul Mackerras 582c6622f63SPaul Mackerras calculate_steal_time(); 583f2783c15SPaul Mackerras 584f2783c15SPaul Mackerras #ifdef CONFIG_PPC_ISERIES 585501b6d29SStephen Rothwell if (firmware_has_feature(FW_FEATURE_ISERIES)) 5863356bb9fSDavid Gibson get_lppaca()->int_dword.fields.decr_int = 0; 587f2783c15SPaul Mackerras #endif 588f2783c15SPaul Mackerras 589d831d0b8STony Breeds if (evt->event_handler) 590d831d0b8STony Breeds evt->event_handler(evt); 591d831d0b8STony Breeds else 592d831d0b8STony Breeds evt->set_next_event(DECREMENTER_MAX, evt); 593f2783c15SPaul Mackerras 594f2783c15SPaul Mackerras #ifdef CONFIG_PPC_ISERIES 595501b6d29SStephen Rothwell if (firmware_has_feature(FW_FEATURE_ISERIES) && hvlpevent_is_pending()) 59635a84c2fSOlaf Hering process_hvlpevents(); 597f2783c15SPaul Mackerras #endif 598f2783c15SPaul Mackerras 599f2783c15SPaul Mackerras #ifdef CONFIG_PPC64 600f2783c15SPaul Mackerras /* collect purr register values often, for accurate calculations */ 601f2783c15SPaul Mackerras if (firmware_has_feature(FW_FEATURE_SPLPAR)) { 602f2783c15SPaul Mackerras struct cpu_usage *cu = &__get_cpu_var(cpu_usage_array); 603f2783c15SPaul Mackerras cu->current_tb = mfspr(SPRN_PURR); 604f2783c15SPaul Mackerras } 605f2783c15SPaul Mackerras #endif 606f2783c15SPaul Mackerras 607f2783c15SPaul Mackerras irq_exit(); 6087d12e780SDavid Howells set_irq_regs(old_regs); 609f2783c15SPaul Mackerras } 610f2783c15SPaul Mackerras 611f2783c15SPaul Mackerras void wakeup_decrementer(void) 612f2783c15SPaul Mackerras { 613092b8f34SPaul Mackerras unsigned long ticks; 614f2783c15SPaul Mackerras 615f2783c15SPaul Mackerras /* 616092b8f34SPaul Mackerras * The timebase gets saved on sleep and restored on wakeup, 617092b8f34SPaul Mackerras * so all we need to do is to reset the decrementer. 618f2783c15SPaul Mackerras */ 619092b8f34SPaul Mackerras ticks = tb_ticks_since(__get_cpu_var(last_jiffy)); 620092b8f34SPaul Mackerras if (ticks < tb_ticks_per_jiffy) 621092b8f34SPaul Mackerras ticks = tb_ticks_per_jiffy - ticks; 622092b8f34SPaul Mackerras else 623092b8f34SPaul Mackerras ticks = 1; 624092b8f34SPaul Mackerras set_dec(ticks); 625f2783c15SPaul Mackerras } 626f2783c15SPaul Mackerras 627a5b518edSPaul Mackerras #ifdef CONFIG_SMP 628f2783c15SPaul Mackerras void __init smp_space_timers(unsigned int max_cpus) 629f2783c15SPaul Mackerras { 630f2783c15SPaul Mackerras int i; 631eb36c288SPaul Mackerras u64 previous_tb = per_cpu(last_jiffy, boot_cpuid); 632f2783c15SPaul Mackerras 633cbe62e2bSPaul Mackerras /* make sure tb > per_cpu(last_jiffy, cpu) for all cpus always */ 634cbe62e2bSPaul Mackerras previous_tb -= tb_ticks_per_jiffy; 635e147ec8fSwill schmidt 6360e551954SKAMEZAWA Hiroyuki for_each_possible_cpu(i) { 637c6622f63SPaul Mackerras if (i == boot_cpuid) 638c6622f63SPaul Mackerras continue; 639f2783c15SPaul Mackerras per_cpu(last_jiffy, i) = previous_tb; 640f2783c15SPaul Mackerras } 641f2783c15SPaul Mackerras } 642f2783c15SPaul Mackerras #endif 643f2783c15SPaul Mackerras 644f2783c15SPaul Mackerras /* 645f2783c15SPaul Mackerras * Scheduler clock - returns current time in nanosec units. 646f2783c15SPaul Mackerras * 647f2783c15SPaul Mackerras * Note: mulhdu(a, b) (multiply high double unsigned) returns 648f2783c15SPaul Mackerras * the high 64 bits of a * b, i.e. (a * b) >> 64, where a and b 649f2783c15SPaul Mackerras * are 64-bit unsigned numbers. 650f2783c15SPaul Mackerras */ 651f2783c15SPaul Mackerras unsigned long long sched_clock(void) 652f2783c15SPaul Mackerras { 65396c44507SPaul Mackerras if (__USE_RTC()) 65496c44507SPaul Mackerras return get_rtc(); 655fc9069feSTony Breeds return mulhdu(get_tb() - boot_tb, tb_to_ns_scale) << tb_to_ns_shift; 656f2783c15SPaul Mackerras } 657f2783c15SPaul Mackerras 6580bb474a4SAnton Blanchard static int __init get_freq(char *name, int cells, unsigned long *val) 659f2783c15SPaul Mackerras { 660f2783c15SPaul Mackerras struct device_node *cpu; 661a7f67bdfSJeremy Kerr const unsigned int *fp; 6620bb474a4SAnton Blanchard int found = 0; 663f2783c15SPaul Mackerras 6640bb474a4SAnton Blanchard /* The cpu node should have timebase and clock frequency properties */ 665f2783c15SPaul Mackerras cpu = of_find_node_by_type(NULL, "cpu"); 666f2783c15SPaul Mackerras 667d8a8188dSOlaf Hering if (cpu) { 668e2eb6392SStephen Rothwell fp = of_get_property(cpu, name, NULL); 669d8a8188dSOlaf Hering if (fp) { 6700bb474a4SAnton Blanchard found = 1; 671a4dc7ff0SPaul Mackerras *val = of_read_ulong(fp, cells); 672f2783c15SPaul Mackerras } 6730bb474a4SAnton Blanchard 6740bb474a4SAnton Blanchard of_node_put(cpu); 675f2783c15SPaul Mackerras } 6760bb474a4SAnton Blanchard 6770bb474a4SAnton Blanchard return found; 6780bb474a4SAnton Blanchard } 6790bb474a4SAnton Blanchard 6800bb474a4SAnton Blanchard void __init generic_calibrate_decr(void) 6810bb474a4SAnton Blanchard { 6820bb474a4SAnton Blanchard ppc_tb_freq = DEFAULT_TB_FREQ; /* hardcoded default */ 6830bb474a4SAnton Blanchard 6840bb474a4SAnton Blanchard if (!get_freq("ibm,extended-timebase-frequency", 2, &ppc_tb_freq) && 6850bb474a4SAnton Blanchard !get_freq("timebase-frequency", 1, &ppc_tb_freq)) { 6860bb474a4SAnton Blanchard 687f2783c15SPaul Mackerras printk(KERN_ERR "WARNING: Estimating decrementer frequency " 688f2783c15SPaul Mackerras "(not found)\n"); 6890bb474a4SAnton Blanchard } 690f2783c15SPaul Mackerras 6910bb474a4SAnton Blanchard ppc_proc_freq = DEFAULT_PROC_FREQ; /* hardcoded default */ 6920bb474a4SAnton Blanchard 6930bb474a4SAnton Blanchard if (!get_freq("ibm,extended-clock-frequency", 2, &ppc_proc_freq) && 6940bb474a4SAnton Blanchard !get_freq("clock-frequency", 1, &ppc_proc_freq)) { 6950bb474a4SAnton Blanchard 6960bb474a4SAnton Blanchard printk(KERN_ERR "WARNING: Estimating processor frequency " 6970bb474a4SAnton Blanchard "(not found)\n"); 698f2783c15SPaul Mackerras } 6990bb474a4SAnton Blanchard 700aab69292SJosh Boyer #if defined(CONFIG_BOOKE) || defined(CONFIG_40x) 7010fd6f717SKumar Gala /* Set the time base to zero */ 7020fd6f717SKumar Gala mtspr(SPRN_TBWL, 0); 7030fd6f717SKumar Gala mtspr(SPRN_TBWU, 0); 7040fd6f717SKumar Gala 7050fd6f717SKumar Gala /* Clear any pending timer interrupts */ 7060fd6f717SKumar Gala mtspr(SPRN_TSR, TSR_ENW | TSR_WIS | TSR_DIS | TSR_FIS); 7070fd6f717SKumar Gala 7080fd6f717SKumar Gala /* Enable decrementer interrupt */ 7090fd6f717SKumar Gala mtspr(SPRN_TCR, TCR_DIE); 7100fd6f717SKumar Gala #endif 711f2783c15SPaul Mackerras } 712f2783c15SPaul Mackerras 713aa3be5f3STony Breeds int update_persistent_clock(struct timespec now) 714f2783c15SPaul Mackerras { 715f2783c15SPaul Mackerras struct rtc_time tm; 716f2783c15SPaul Mackerras 717aa3be5f3STony Breeds if (!ppc_md.set_rtc_time) 718aa3be5f3STony Breeds return 0; 719aa3be5f3STony Breeds 720aa3be5f3STony Breeds to_tm(now.tv_sec + 1 + timezone_offset, &tm); 721aa3be5f3STony Breeds tm.tm_year -= 1900; 722aa3be5f3STony Breeds tm.tm_mon -= 1; 723aa3be5f3STony Breeds 724aa3be5f3STony Breeds return ppc_md.set_rtc_time(&tm); 725aa3be5f3STony Breeds } 726aa3be5f3STony Breeds 727aa3be5f3STony Breeds unsigned long read_persistent_clock(void) 728aa3be5f3STony Breeds { 729aa3be5f3STony Breeds struct rtc_time tm; 730aa3be5f3STony Breeds static int first = 1; 731aa3be5f3STony Breeds 732aa3be5f3STony Breeds /* XXX this is a litle fragile but will work okay in the short term */ 733aa3be5f3STony Breeds if (first) { 734aa3be5f3STony Breeds first = 0; 735aa3be5f3STony Breeds if (ppc_md.time_init) 736aa3be5f3STony Breeds timezone_offset = ppc_md.time_init(); 737aa3be5f3STony Breeds 738aa3be5f3STony Breeds /* get_boot_time() isn't guaranteed to be safe to call late */ 739f2783c15SPaul Mackerras if (ppc_md.get_boot_time) 740aa3be5f3STony Breeds return ppc_md.get_boot_time() -timezone_offset; 741aa3be5f3STony Breeds } 742f2783c15SPaul Mackerras if (!ppc_md.get_rtc_time) 743f2783c15SPaul Mackerras return 0; 744f2783c15SPaul Mackerras ppc_md.get_rtc_time(&tm); 745f2783c15SPaul Mackerras return mktime(tm.tm_year+1900, tm.tm_mon+1, tm.tm_mday, 746f2783c15SPaul Mackerras tm.tm_hour, tm.tm_min, tm.tm_sec); 747f2783c15SPaul Mackerras } 748f2783c15SPaul Mackerras 7494a4cfe38STony Breeds /* clocksource code */ 7504a4cfe38STony Breeds static cycle_t rtc_read(void) 7514a4cfe38STony Breeds { 7524a4cfe38STony Breeds return (cycle_t)get_rtc(); 7534a4cfe38STony Breeds } 7544a4cfe38STony Breeds 7554a4cfe38STony Breeds static cycle_t timebase_read(void) 7564a4cfe38STony Breeds { 7574a4cfe38STony Breeds return (cycle_t)get_tb(); 7584a4cfe38STony Breeds } 7594a4cfe38STony Breeds 7604a4cfe38STony Breeds void update_vsyscall(struct timespec *wall_time, struct clocksource *clock) 7614a4cfe38STony Breeds { 7624a4cfe38STony Breeds u64 t2x, stamp_xsec; 7634a4cfe38STony Breeds 7644a4cfe38STony Breeds if (clock != &clocksource_timebase) 7654a4cfe38STony Breeds return; 7664a4cfe38STony Breeds 7674a4cfe38STony Breeds /* Make userspace gettimeofday spin until we're done. */ 7684a4cfe38STony Breeds ++vdso_data->tb_update_count; 7694a4cfe38STony Breeds smp_mb(); 7704a4cfe38STony Breeds 7714a4cfe38STony Breeds /* XXX this assumes clock->shift == 22 */ 7724a4cfe38STony Breeds /* 4611686018 ~= 2^(20+64-22) / 1e9 */ 7734a4cfe38STony Breeds t2x = (u64) clock->mult * 4611686018ULL; 7744a4cfe38STony Breeds stamp_xsec = (u64) xtime.tv_nsec * XSEC_PER_SEC; 7754a4cfe38STony Breeds do_div(stamp_xsec, 1000000000); 7764a4cfe38STony Breeds stamp_xsec += (u64) xtime.tv_sec * XSEC_PER_SEC; 7774a4cfe38STony Breeds update_gtod(clock->cycle_last, stamp_xsec, t2x); 7784a4cfe38STony Breeds } 7794a4cfe38STony Breeds 7804a4cfe38STony Breeds void update_vsyscall_tz(void) 7814a4cfe38STony Breeds { 7824a4cfe38STony Breeds /* Make userspace gettimeofday spin until we're done. */ 7834a4cfe38STony Breeds ++vdso_data->tb_update_count; 7844a4cfe38STony Breeds smp_mb(); 7854a4cfe38STony Breeds vdso_data->tz_minuteswest = sys_tz.tz_minuteswest; 7864a4cfe38STony Breeds vdso_data->tz_dsttime = sys_tz.tz_dsttime; 7874a4cfe38STony Breeds smp_mb(); 7884a4cfe38STony Breeds ++vdso_data->tb_update_count; 7894a4cfe38STony Breeds } 7904a4cfe38STony Breeds 7914a4cfe38STony Breeds void __init clocksource_init(void) 7924a4cfe38STony Breeds { 7934a4cfe38STony Breeds struct clocksource *clock; 7944a4cfe38STony Breeds 7954a4cfe38STony Breeds if (__USE_RTC()) 7964a4cfe38STony Breeds clock = &clocksource_rtc; 7974a4cfe38STony Breeds else 7984a4cfe38STony Breeds clock = &clocksource_timebase; 7994a4cfe38STony Breeds 8004a4cfe38STony Breeds clock->mult = clocksource_hz2mult(tb_ticks_per_sec, clock->shift); 8014a4cfe38STony Breeds 8024a4cfe38STony Breeds if (clocksource_register(clock)) { 8034a4cfe38STony Breeds printk(KERN_ERR "clocksource: %s is already registered\n", 8044a4cfe38STony Breeds clock->name); 8054a4cfe38STony Breeds return; 8064a4cfe38STony Breeds } 8074a4cfe38STony Breeds 8084a4cfe38STony Breeds printk(KERN_INFO "clocksource: %s mult[%x] shift[%d] registered\n", 8094a4cfe38STony Breeds clock->name, clock->mult, clock->shift); 8104a4cfe38STony Breeds } 8114a4cfe38STony Breeds 812d831d0b8STony Breeds static int decrementer_set_next_event(unsigned long evt, 813d831d0b8STony Breeds struct clock_event_device *dev) 814d831d0b8STony Breeds { 815d968014bSPaul Mackerras __get_cpu_var(decrementer_next_tb) = get_tb_or_rtc() + evt; 816d968014bSPaul Mackerras /* The decrementer interrupts on the 0 -> -1 transition */ 817d968014bSPaul Mackerras if (evt) 818d968014bSPaul Mackerras --evt; 819d831d0b8STony Breeds set_dec(evt); 820d831d0b8STony Breeds return 0; 821d831d0b8STony Breeds } 822d831d0b8STony Breeds 823d831d0b8STony Breeds static void decrementer_set_mode(enum clock_event_mode mode, 824d831d0b8STony Breeds struct clock_event_device *dev) 825d831d0b8STony Breeds { 826d831d0b8STony Breeds if (mode != CLOCK_EVT_MODE_ONESHOT) 827d831d0b8STony Breeds decrementer_set_next_event(DECREMENTER_MAX, dev); 828d831d0b8STony Breeds } 829d831d0b8STony Breeds 830d831d0b8STony Breeds static void register_decrementer_clockevent(int cpu) 831d831d0b8STony Breeds { 832d831d0b8STony Breeds struct clock_event_device *dec = &per_cpu(decrementers, cpu); 833d831d0b8STony Breeds 834d831d0b8STony Breeds *dec = decrementer_clockevent; 835d831d0b8STony Breeds dec->cpumask = cpumask_of_cpu(cpu); 836d831d0b8STony Breeds 8371281c8beSAnton Blanchard printk(KERN_INFO "clockevent: %s mult[%lx] shift[%d] cpu[%d]\n", 838d831d0b8STony Breeds dec->name, dec->mult, dec->shift, cpu); 839d831d0b8STony Breeds 840d831d0b8STony Breeds clockevents_register_device(dec); 841d831d0b8STony Breeds } 842d831d0b8STony Breeds 843d831d0b8STony Breeds void init_decrementer_clockevent(void) 844d831d0b8STony Breeds { 845d831d0b8STony Breeds int cpu = smp_processor_id(); 846d831d0b8STony Breeds 847d831d0b8STony Breeds decrementer_clockevent.mult = div_sc(ppc_tb_freq, NSEC_PER_SEC, 848d831d0b8STony Breeds decrementer_clockevent.shift); 849d831d0b8STony Breeds decrementer_clockevent.max_delta_ns = 850d831d0b8STony Breeds clockevent_delta2ns(DECREMENTER_MAX, &decrementer_clockevent); 851d831d0b8STony Breeds decrementer_clockevent.min_delta_ns = 1000; 852d831d0b8STony Breeds 853d831d0b8STony Breeds register_decrementer_clockevent(cpu); 854d831d0b8STony Breeds } 855d831d0b8STony Breeds 856d831d0b8STony Breeds void secondary_cpu_time_init(void) 857d831d0b8STony Breeds { 858d831d0b8STony Breeds /* FIME: Should make unrelatred change to move snapshot_timebase 859d831d0b8STony Breeds * call here ! */ 860d831d0b8STony Breeds register_decrementer_clockevent(smp_processor_id()); 861d831d0b8STony Breeds } 862d831d0b8STony Breeds 863f2783c15SPaul Mackerras /* This function is only called on the boot processor */ 864f2783c15SPaul Mackerras void __init time_init(void) 865f2783c15SPaul Mackerras { 866f2783c15SPaul Mackerras unsigned long flags; 867f2783c15SPaul Mackerras struct div_result res; 868092b8f34SPaul Mackerras u64 scale, x; 869f2783c15SPaul Mackerras unsigned shift; 870f2783c15SPaul Mackerras 87196c44507SPaul Mackerras if (__USE_RTC()) { 87296c44507SPaul Mackerras /* 601 processor: dec counts down by 128 every 128ns */ 87396c44507SPaul Mackerras ppc_tb_freq = 1000000000; 874eb36c288SPaul Mackerras tb_last_jiffy = get_rtcl(); 87596c44507SPaul Mackerras } else { 87696c44507SPaul Mackerras /* Normal PowerPC with timebase register */ 877f2783c15SPaul Mackerras ppc_md.calibrate_decr(); 878224ad80aSOlof Johansson printk(KERN_DEBUG "time_init: decrementer frequency = %lu.%.6lu MHz\n", 879374e99d4SPaul Mackerras ppc_tb_freq / 1000000, ppc_tb_freq % 1000000); 880224ad80aSOlof Johansson printk(KERN_DEBUG "time_init: processor frequency = %lu.%.6lu MHz\n", 881374e99d4SPaul Mackerras ppc_proc_freq / 1000000, ppc_proc_freq % 1000000); 882eb36c288SPaul Mackerras tb_last_jiffy = get_tb(); 88396c44507SPaul Mackerras } 884374e99d4SPaul Mackerras 885374e99d4SPaul Mackerras tb_ticks_per_jiffy = ppc_tb_freq / HZ; 886092b8f34SPaul Mackerras tb_ticks_per_sec = ppc_tb_freq; 887374e99d4SPaul Mackerras tb_ticks_per_usec = ppc_tb_freq / 1000000; 888374e99d4SPaul Mackerras tb_to_us = mulhwu_scale_factor(ppc_tb_freq, 1000000); 889c6622f63SPaul Mackerras calc_cputime_factors(); 890092b8f34SPaul Mackerras 891092b8f34SPaul Mackerras /* 892092b8f34SPaul Mackerras * Calculate the length of each tick in ns. It will not be 893092b8f34SPaul Mackerras * exactly 1e9/HZ unless ppc_tb_freq is divisible by HZ. 894092b8f34SPaul Mackerras * We compute 1e9 * tb_ticks_per_jiffy / ppc_tb_freq, 895092b8f34SPaul Mackerras * rounded up. 896092b8f34SPaul Mackerras */ 897092b8f34SPaul Mackerras x = (u64) NSEC_PER_SEC * tb_ticks_per_jiffy + ppc_tb_freq - 1; 898092b8f34SPaul Mackerras do_div(x, ppc_tb_freq); 899092b8f34SPaul Mackerras tick_nsec = x; 900092b8f34SPaul Mackerras last_tick_len = x << TICKLEN_SCALE; 901092b8f34SPaul Mackerras 902092b8f34SPaul Mackerras /* 903092b8f34SPaul Mackerras * Compute ticklen_to_xs, which is a factor which gets multiplied 904092b8f34SPaul Mackerras * by (last_tick_len << TICKLEN_SHIFT) to get a tb_to_xs value. 905092b8f34SPaul Mackerras * It is computed as: 906092b8f34SPaul Mackerras * ticklen_to_xs = 2^N / (tb_ticks_per_jiffy * 1e9) 907092b8f34SPaul Mackerras * where N = 64 + 20 - TICKLEN_SCALE - TICKLEN_SHIFT 9080a45d449SPaul Mackerras * which turns out to be N = 51 - SHIFT_HZ. 9090a45d449SPaul Mackerras * This gives the result as a 0.64 fixed-point fraction. 9100a45d449SPaul Mackerras * That value is reduced by an offset amounting to 1 xsec per 9110a45d449SPaul Mackerras * 2^31 timebase ticks to avoid problems with time going backwards 9120a45d449SPaul Mackerras * by 1 xsec when we do timer_recalc_offset due to losing the 9130a45d449SPaul Mackerras * fractional xsec. That offset is equal to ppc_tb_freq/2^51 9140a45d449SPaul Mackerras * since there are 2^20 xsec in a second. 915092b8f34SPaul Mackerras */ 9160a45d449SPaul Mackerras div128_by_32((1ULL << 51) - ppc_tb_freq, 0, 9170a45d449SPaul Mackerras tb_ticks_per_jiffy << SHIFT_HZ, &res); 918092b8f34SPaul Mackerras div128_by_32(res.result_high, res.result_low, NSEC_PER_SEC, &res); 919092b8f34SPaul Mackerras ticklen_to_xs = res.result_low; 920092b8f34SPaul Mackerras 921092b8f34SPaul Mackerras /* Compute tb_to_xs from tick_nsec */ 922092b8f34SPaul Mackerras tb_to_xs = mulhdu(last_tick_len << TICKLEN_SHIFT, ticklen_to_xs); 923374e99d4SPaul Mackerras 924f2783c15SPaul Mackerras /* 925f2783c15SPaul Mackerras * Compute scale factor for sched_clock. 926f2783c15SPaul Mackerras * The calibrate_decr() function has set tb_ticks_per_sec, 927f2783c15SPaul Mackerras * which is the timebase frequency. 928f2783c15SPaul Mackerras * We compute 1e9 * 2^64 / tb_ticks_per_sec and interpret 929f2783c15SPaul Mackerras * the 128-bit result as a 64.64 fixed-point number. 930f2783c15SPaul Mackerras * We then shift that number right until it is less than 1.0, 931f2783c15SPaul Mackerras * giving us the scale factor and shift count to use in 932f2783c15SPaul Mackerras * sched_clock(). 933f2783c15SPaul Mackerras */ 934f2783c15SPaul Mackerras div128_by_32(1000000000, 0, tb_ticks_per_sec, &res); 935f2783c15SPaul Mackerras scale = res.result_low; 936f2783c15SPaul Mackerras for (shift = 0; res.result_high != 0; ++shift) { 937f2783c15SPaul Mackerras scale = (scale >> 1) | (res.result_high << 63); 938f2783c15SPaul Mackerras res.result_high >>= 1; 939f2783c15SPaul Mackerras } 940f2783c15SPaul Mackerras tb_to_ns_scale = scale; 941f2783c15SPaul Mackerras tb_to_ns_shift = shift; 942fc9069feSTony Breeds /* Save the current timebase to pretty up CONFIG_PRINTK_TIME */ 943c27da339SBenjamin Herrenschmidt boot_tb = get_tb_or_rtc(); 944f2783c15SPaul Mackerras 945f2783c15SPaul Mackerras write_seqlock_irqsave(&xtime_lock, flags); 946092b8f34SPaul Mackerras 947092b8f34SPaul Mackerras /* If platform provided a timezone (pmac), we correct the time */ 948092b8f34SPaul Mackerras if (timezone_offset) { 949092b8f34SPaul Mackerras sys_tz.tz_minuteswest = -timezone_offset / 60; 950092b8f34SPaul Mackerras sys_tz.tz_dsttime = 0; 951092b8f34SPaul Mackerras } 952092b8f34SPaul Mackerras 953f2783c15SPaul Mackerras do_gtod.varp = &do_gtod.vars[0]; 954f2783c15SPaul Mackerras do_gtod.var_idx = 0; 95596c44507SPaul Mackerras do_gtod.varp->tb_orig_stamp = tb_last_jiffy; 956eb36c288SPaul Mackerras __get_cpu_var(last_jiffy) = tb_last_jiffy; 957f2783c15SPaul Mackerras do_gtod.varp->stamp_xsec = (u64) xtime.tv_sec * XSEC_PER_SEC; 958f2783c15SPaul Mackerras do_gtod.tb_ticks_per_sec = tb_ticks_per_sec; 959f2783c15SPaul Mackerras do_gtod.varp->tb_to_xs = tb_to_xs; 960f2783c15SPaul Mackerras do_gtod.tb_to_us = tb_to_us; 961a7f290daSBenjamin Herrenschmidt 962a7f290daSBenjamin Herrenschmidt vdso_data->tb_orig_stamp = tb_last_jiffy; 963a7f290daSBenjamin Herrenschmidt vdso_data->tb_update_count = 0; 964a7f290daSBenjamin Herrenschmidt vdso_data->tb_ticks_per_sec = tb_ticks_per_sec; 965092b8f34SPaul Mackerras vdso_data->stamp_xsec = (u64) xtime.tv_sec * XSEC_PER_SEC; 966a7f290daSBenjamin Herrenschmidt vdso_data->tb_to_xs = tb_to_xs; 967f2783c15SPaul Mackerras 968f2783c15SPaul Mackerras time_freq = 0; 969f2783c15SPaul Mackerras 970f2783c15SPaul Mackerras write_sequnlock_irqrestore(&xtime_lock, flags); 971f2783c15SPaul Mackerras 9724a4cfe38STony Breeds /* Register the clocksource, if we're not running on iSeries */ 9734a4cfe38STony Breeds if (!firmware_has_feature(FW_FEATURE_ISERIES)) 9744a4cfe38STony Breeds clocksource_init(); 9754a4cfe38STony Breeds 976d831d0b8STony Breeds init_decrementer_clockevent(); 977f2783c15SPaul Mackerras } 978f2783c15SPaul Mackerras 979f2783c15SPaul Mackerras 980f2783c15SPaul Mackerras #define FEBRUARY 2 981f2783c15SPaul Mackerras #define STARTOFTIME 1970 982f2783c15SPaul Mackerras #define SECDAY 86400L 983f2783c15SPaul Mackerras #define SECYR (SECDAY * 365) 984f2783c15SPaul Mackerras #define leapyear(year) ((year) % 4 == 0 && \ 985f2783c15SPaul Mackerras ((year) % 100 != 0 || (year) % 400 == 0)) 986f2783c15SPaul Mackerras #define days_in_year(a) (leapyear(a) ? 366 : 365) 987f2783c15SPaul Mackerras #define days_in_month(a) (month_days[(a) - 1]) 988f2783c15SPaul Mackerras 989f2783c15SPaul Mackerras static int month_days[12] = { 990f2783c15SPaul Mackerras 31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31 991f2783c15SPaul Mackerras }; 992f2783c15SPaul Mackerras 993f2783c15SPaul Mackerras /* 994f2783c15SPaul Mackerras * This only works for the Gregorian calendar - i.e. after 1752 (in the UK) 995f2783c15SPaul Mackerras */ 996f2783c15SPaul Mackerras void GregorianDay(struct rtc_time * tm) 997f2783c15SPaul Mackerras { 998f2783c15SPaul Mackerras int leapsToDate; 999f2783c15SPaul Mackerras int lastYear; 1000f2783c15SPaul Mackerras int day; 1001f2783c15SPaul Mackerras int MonthOffset[] = { 0, 31, 59, 90, 120, 151, 181, 212, 243, 273, 304, 334 }; 1002f2783c15SPaul Mackerras 1003f2783c15SPaul Mackerras lastYear = tm->tm_year - 1; 1004f2783c15SPaul Mackerras 1005f2783c15SPaul Mackerras /* 1006f2783c15SPaul Mackerras * Number of leap corrections to apply up to end of last year 1007f2783c15SPaul Mackerras */ 1008f2783c15SPaul Mackerras leapsToDate = lastYear / 4 - lastYear / 100 + lastYear / 400; 1009f2783c15SPaul Mackerras 1010f2783c15SPaul Mackerras /* 1011f2783c15SPaul Mackerras * This year is a leap year if it is divisible by 4 except when it is 1012f2783c15SPaul Mackerras * divisible by 100 unless it is divisible by 400 1013f2783c15SPaul Mackerras * 1014f2783c15SPaul Mackerras * e.g. 1904 was a leap year, 1900 was not, 1996 is, and 2000 was 1015f2783c15SPaul Mackerras */ 1016f2783c15SPaul Mackerras day = tm->tm_mon > 2 && leapyear(tm->tm_year); 1017f2783c15SPaul Mackerras 1018f2783c15SPaul Mackerras day += lastYear*365 + leapsToDate + MonthOffset[tm->tm_mon-1] + 1019f2783c15SPaul Mackerras tm->tm_mday; 1020f2783c15SPaul Mackerras 1021f2783c15SPaul Mackerras tm->tm_wday = day % 7; 1022f2783c15SPaul Mackerras } 1023f2783c15SPaul Mackerras 1024f2783c15SPaul Mackerras void to_tm(int tim, struct rtc_time * tm) 1025f2783c15SPaul Mackerras { 1026f2783c15SPaul Mackerras register int i; 1027f2783c15SPaul Mackerras register long hms, day; 1028f2783c15SPaul Mackerras 1029f2783c15SPaul Mackerras day = tim / SECDAY; 1030f2783c15SPaul Mackerras hms = tim % SECDAY; 1031f2783c15SPaul Mackerras 1032f2783c15SPaul Mackerras /* Hours, minutes, seconds are easy */ 1033f2783c15SPaul Mackerras tm->tm_hour = hms / 3600; 1034f2783c15SPaul Mackerras tm->tm_min = (hms % 3600) / 60; 1035f2783c15SPaul Mackerras tm->tm_sec = (hms % 3600) % 60; 1036f2783c15SPaul Mackerras 1037f2783c15SPaul Mackerras /* Number of years in days */ 1038f2783c15SPaul Mackerras for (i = STARTOFTIME; day >= days_in_year(i); i++) 1039f2783c15SPaul Mackerras day -= days_in_year(i); 1040f2783c15SPaul Mackerras tm->tm_year = i; 1041f2783c15SPaul Mackerras 1042f2783c15SPaul Mackerras /* Number of months in days left */ 1043f2783c15SPaul Mackerras if (leapyear(tm->tm_year)) 1044f2783c15SPaul Mackerras days_in_month(FEBRUARY) = 29; 1045f2783c15SPaul Mackerras for (i = 1; day >= days_in_month(i); i++) 1046f2783c15SPaul Mackerras day -= days_in_month(i); 1047f2783c15SPaul Mackerras days_in_month(FEBRUARY) = 28; 1048f2783c15SPaul Mackerras tm->tm_mon = i; 1049f2783c15SPaul Mackerras 1050f2783c15SPaul Mackerras /* Days are what is left over (+1) from all that. */ 1051f2783c15SPaul Mackerras tm->tm_mday = day + 1; 1052f2783c15SPaul Mackerras 1053f2783c15SPaul Mackerras /* 1054f2783c15SPaul Mackerras * Determine the day of week 1055f2783c15SPaul Mackerras */ 1056f2783c15SPaul Mackerras GregorianDay(tm); 1057f2783c15SPaul Mackerras } 1058f2783c15SPaul Mackerras 1059f2783c15SPaul Mackerras /* Auxiliary function to compute scaling factors */ 1060f2783c15SPaul Mackerras /* Actually the choice of a timebase running at 1/4 the of the bus 1061f2783c15SPaul Mackerras * frequency giving resolution of a few tens of nanoseconds is quite nice. 1062f2783c15SPaul Mackerras * It makes this computation very precise (27-28 bits typically) which 1063f2783c15SPaul Mackerras * is optimistic considering the stability of most processor clock 1064f2783c15SPaul Mackerras * oscillators and the precision with which the timebase frequency 1065f2783c15SPaul Mackerras * is measured but does not harm. 1066f2783c15SPaul Mackerras */ 1067f2783c15SPaul Mackerras unsigned mulhwu_scale_factor(unsigned inscale, unsigned outscale) 1068f2783c15SPaul Mackerras { 1069f2783c15SPaul Mackerras unsigned mlt=0, tmp, err; 1070f2783c15SPaul Mackerras /* No concern for performance, it's done once: use a stupid 1071f2783c15SPaul Mackerras * but safe and compact method to find the multiplier. 1072f2783c15SPaul Mackerras */ 1073f2783c15SPaul Mackerras 1074f2783c15SPaul Mackerras for (tmp = 1U<<31; tmp != 0; tmp >>= 1) { 1075f2783c15SPaul Mackerras if (mulhwu(inscale, mlt|tmp) < outscale) 1076f2783c15SPaul Mackerras mlt |= tmp; 1077f2783c15SPaul Mackerras } 1078f2783c15SPaul Mackerras 1079f2783c15SPaul Mackerras /* We might still be off by 1 for the best approximation. 1080f2783c15SPaul Mackerras * A side effect of this is that if outscale is too large 1081f2783c15SPaul Mackerras * the returned value will be zero. 1082f2783c15SPaul Mackerras * Many corner cases have been checked and seem to work, 1083f2783c15SPaul Mackerras * some might have been forgotten in the test however. 1084f2783c15SPaul Mackerras */ 1085f2783c15SPaul Mackerras 1086f2783c15SPaul Mackerras err = inscale * (mlt+1); 1087f2783c15SPaul Mackerras if (err <= inscale/2) 1088f2783c15SPaul Mackerras mlt++; 1089f2783c15SPaul Mackerras return mlt; 1090f2783c15SPaul Mackerras } 1091f2783c15SPaul Mackerras 1092f2783c15SPaul Mackerras /* 1093f2783c15SPaul Mackerras * Divide a 128-bit dividend by a 32-bit divisor, leaving a 128 bit 1094f2783c15SPaul Mackerras * result. 1095f2783c15SPaul Mackerras */ 1096f2783c15SPaul Mackerras void div128_by_32(u64 dividend_high, u64 dividend_low, 1097f2783c15SPaul Mackerras unsigned divisor, struct div_result *dr) 1098f2783c15SPaul Mackerras { 1099f2783c15SPaul Mackerras unsigned long a, b, c, d; 1100f2783c15SPaul Mackerras unsigned long w, x, y, z; 1101f2783c15SPaul Mackerras u64 ra, rb, rc; 1102f2783c15SPaul Mackerras 1103f2783c15SPaul Mackerras a = dividend_high >> 32; 1104f2783c15SPaul Mackerras b = dividend_high & 0xffffffff; 1105f2783c15SPaul Mackerras c = dividend_low >> 32; 1106f2783c15SPaul Mackerras d = dividend_low & 0xffffffff; 1107f2783c15SPaul Mackerras 1108f2783c15SPaul Mackerras w = a / divisor; 1109f2783c15SPaul Mackerras ra = ((u64)(a - (w * divisor)) << 32) + b; 1110f2783c15SPaul Mackerras 1111f2783c15SPaul Mackerras rb = ((u64) do_div(ra, divisor) << 32) + c; 1112f2783c15SPaul Mackerras x = ra; 1113f2783c15SPaul Mackerras 1114f2783c15SPaul Mackerras rc = ((u64) do_div(rb, divisor) << 32) + d; 1115f2783c15SPaul Mackerras y = rb; 1116f2783c15SPaul Mackerras 1117f2783c15SPaul Mackerras do_div(rc, divisor); 1118f2783c15SPaul Mackerras z = rc; 1119f2783c15SPaul Mackerras 1120f2783c15SPaul Mackerras dr->result_high = ((u64)w << 32) + x; 1121f2783c15SPaul Mackerras dr->result_low = ((u64)y << 32) + z; 1122f2783c15SPaul Mackerras 1123f2783c15SPaul Mackerras } 1124