Fedora kernel-2.6.17-1.2142_FC4 patched with stable patch-2.6.17.4-vs2.0.2-rc26.diff
[linux-2.6.git] / arch / sparc64 / kernel / time.c
index 57ebd69..e55b5c6 100644 (file)
@@ -29,6 +29,9 @@
 #include <linux/jiffies.h>
 #include <linux/cpufreq.h>
 #include <linux/percpu.h>
+#include <linux/profile.h>
+#include <linux/miscdevice.h>
+#include <linux/rtc.h>
 
 #include <asm/oplib.h>
 #include <asm/mostek.h>
 #include <asm/smp.h>
 #include <asm/sections.h>
 #include <asm/cpudata.h>
+#include <asm/uaccess.h>
 
-spinlock_t mostek_lock = SPIN_LOCK_UNLOCKED;
-spinlock_t rtc_lock = SPIN_LOCK_UNLOCKED;
-unsigned long mstk48t02_regs = 0UL;
+DEFINE_SPINLOCK(mostek_lock);
+DEFINE_SPINLOCK(rtc_lock);
+void __iomem *mstk48t02_regs = NULL;
 #ifdef CONFIG_PCI
 unsigned long ds1287_regs = 0UL;
 #endif
 
 extern unsigned long wall_jiffies;
 
-u64 jiffies_64 = INITIAL_JIFFIES;
-
-EXPORT_SYMBOL(jiffies_64);
-
-static unsigned long mstk48t08_regs = 0UL;
-static unsigned long mstk48t59_regs = 0UL;
+static void __iomem *mstk48t08_regs;
+static void __iomem *mstk48t59_regs;
 
 static int set_rtc_mmss(unsigned long);
 
-struct sparc64_tick_ops *tick_ops;
-
 #define TICK_PRIV_BIT  (1UL << 63)
 
+#ifdef CONFIG_SMP
+unsigned long profile_pc(struct pt_regs *regs)
+{
+       unsigned long pc = instruction_pointer(regs);
+
+       if (in_lock_functions(pc))
+               return regs->u_regs[UREG_RETPC];
+       return pc;
+}
+EXPORT_SYMBOL(profile_pc);
+#endif
+
 static void tick_disable_protection(void)
 {
        /* Set things up so user can access tick register for profiling
@@ -173,7 +183,7 @@ static unsigned long tick_add_tick(unsigned long adj, unsigned long offset)
        return new_tick;
 }
 
-static struct sparc64_tick_ops tick_operations = {
+static struct sparc64_tick_ops tick_operations __read_mostly = {
        .init_tick      =       tick_init_tick,
        .get_tick       =       tick_get_tick,
        .get_compare    =       tick_get_compare,
@@ -182,18 +192,26 @@ static struct sparc64_tick_ops tick_operations = {
        .softint_mask   =       1UL << 0,
 };
 
+struct sparc64_tick_ops *tick_ops __read_mostly = &tick_operations;
+
 static void stick_init_tick(unsigned long offset)
 {
-       tick_disable_protection();
-
-       /* Let the user get at STICK too. */
-       __asm__ __volatile__(
-       "       rd      %%asr24, %%g2\n"
-       "       andn    %%g2, %0, %%g2\n"
-       "       wr      %%g2, 0, %%asr24"
-       : /* no outputs */
-       : "r" (TICK_PRIV_BIT)
-       : "g1", "g2");
+       /* Writes to the %tick and %stick register are not
+        * allowed on sun4v.  The Hypervisor controls that
+        * bit, per-strand.
+        */
+       if (tlb_type != hypervisor) {
+               tick_disable_protection();
+
+               /* Let the user get at STICK too. */
+               __asm__ __volatile__(
+               "       rd      %%asr24, %%g2\n"
+               "       andn    %%g2, %0, %%g2\n"
+               "       wr      %%g2, 0, %%asr24"
+               : /* no outputs */
+               : "r" (TICK_PRIV_BIT)
+               : "g1", "g2");
+       }
 
        __asm__ __volatile__(
        "       rd      %%asr24, %%g1\n"
@@ -254,7 +272,7 @@ static unsigned long stick_add_compare(unsigned long adj)
        return new_compare;
 }
 
-static struct sparc64_tick_ops stick_operations = {
+static struct sparc64_tick_ops stick_operations __read_mostly = {
        .init_tick      =       stick_init_tick,
        .get_tick       =       stick_get_tick,
        .get_compare    =       stick_get_compare,
@@ -271,9 +289,9 @@ static struct sparc64_tick_ops stick_operations = {
  * Since STICK is constantly updating, we have to access it carefully.
  *
  * The sequence we use to read is:
- * 1) read low
- * 2) read high
- * 3) read low again, if it rolled over increment high by 1
+ * 1) read high
+ * 2) read low
+ * 3) read high again, if it rolled re-read both low and high again.
  *
  * Writing STICK safely is also tricky:
  * 1) write low to zero
@@ -286,18 +304,18 @@ static struct sparc64_tick_ops stick_operations = {
 static unsigned long __hbird_read_stick(void)
 {
        unsigned long ret, tmp1, tmp2, tmp3;
-       unsigned long addr = HBIRD_STICK_ADDR;
+       unsigned long addr = HBIRD_STICK_ADDR+8;
 
-       __asm__ __volatile__("ldxa      [%1] %5, %2\n\t"
-                            "add       %1, 0x8, %1\n\t"
-                            "ldxa      [%1] %5, %3\n\t"
+       __asm__ __volatile__("ldxa      [%1] %5, %2\n"
+                            "1:\n\t"
                             "sub       %1, 0x8, %1\n\t"
+                            "ldxa      [%1] %5, %3\n\t"
+                            "add       %1, 0x8, %1\n\t"
                             "ldxa      [%1] %5, %4\n\t"
                             "cmp       %4, %2\n\t"
-                            "blu,a,pn  %%xcc, 1f\n\t"
-                            " add      %3, 1, %3\n"
-                            "1:\n\t"
-                            "sllx      %3, 32, %3\n\t"
+                            "bne,a,pn  %%xcc, 1b\n\t"
+                            " mov      %4, %2\n\t"
+                            "sllx      %4, 32, %4\n\t"
                             "or        %3, %4, %0\n\t"
                             : "=&r" (ret), "=&r" (addr),
                               "=&r" (tmp1), "=&r" (tmp2), "=&r" (tmp3)
@@ -400,7 +418,7 @@ static unsigned long hbtick_add_compare(unsigned long adj)
        return val;
 }
 
-static struct sparc64_tick_ops hbtick_operations = {
+static struct sparc64_tick_ops hbtick_operations __read_mostly = {
        .init_tick      =       hbtick_init_tick,
        .get_tick       =       hbtick_get_tick,
        .get_compare    =       hbtick_get_compare,
@@ -415,21 +433,19 @@ static struct sparc64_tick_ops hbtick_operations = {
  * NOTE: On SUN5 systems the ticker interrupt comes in using 2
  *       interrupts, one at level14 and one with softint bit 0.
  */
-unsigned long timer_tick_offset;
-unsigned long timer_tick_compare;
+unsigned long timer_tick_offset __read_mostly;
 
-static unsigned long timer_ticks_per_usec_quotient;
-static unsigned long timer_ticks_per_nsec_quotient;
+static unsigned long timer_ticks_per_nsec_quotient __read_mostly;
 
 #define TICK_SIZE (tick_nsec / 1000)
 
-static __inline__ void timer_check_rtc(void)
+static inline void timer_check_rtc(void)
 {
        /* last time the cmos clock got updated */
        static long last_rtc_update;
 
        /* Determine when to update the Mostek clock. */
-       if ((time_status & STA_UNSYNC) == 0 &&
+       if (ntp_synced() &&
            xtime.tv_sec > last_rtc_update + 660 &&
            (xtime.tv_nsec / 1000) >= 500000 - ((unsigned) TICK_SIZE) / 2 &&
            (xtime.tv_nsec / 1000) <= 500000 + ((unsigned) TICK_SIZE) / 2) {
@@ -441,56 +457,16 @@ static __inline__ void timer_check_rtc(void)
        }
 }
 
-void sparc64_do_profile(struct pt_regs *regs)
-{
-       unsigned long pc = regs->tpc;
-       unsigned long o7 = regs->u_regs[UREG_RETPC];
-
-       profile_hook(regs);
-
-       if (user_mode(regs))
-               return;
-
-       if (!prof_buffer)
-               return;
-
-       {
-               extern int rwlock_impl_begin, rwlock_impl_end;
-               extern int atomic_impl_begin, atomic_impl_end;
-               extern int __memcpy_begin, __memcpy_end;
-               extern int __bzero_begin, __bzero_end;
-               extern int __bitops_begin, __bitops_end;
-
-               if ((pc >= (unsigned long) &atomic_impl_begin &&
-                    pc < (unsigned long) &atomic_impl_end) ||
-                   (pc >= (unsigned long) &rwlock_impl_begin &&
-                    pc < (unsigned long) &rwlock_impl_end) ||
-                   (pc >= (unsigned long) &__memcpy_begin &&
-                    pc < (unsigned long) &__memcpy_end) ||
-                   (pc >= (unsigned long) &__bzero_begin &&
-                    pc < (unsigned long) &__bzero_end) ||
-                   (pc >= (unsigned long) &__bitops_begin &&
-                    pc < (unsigned long) &__bitops_end))
-                       pc = o7;
-
-               pc -= (unsigned long) _stext;
-               pc >>= prof_shift;
-
-               if(pc >= prof_len)
-                       pc = prof_len - 1;
-               atomic_inc((atomic_t *)&prof_buffer[pc]);
-       }
-}
-
 static irqreturn_t timer_interrupt(int irq, void *dev_id, struct pt_regs * regs)
 {
-       unsigned long ticks, pstate;
+       unsigned long ticks, compare, pstate;
 
        write_seqlock(&xtime_lock);
 
        do {
 #ifndef CONFIG_SMP
-               sparc64_do_profile(regs);
+               profile_tick(CPU_PROFILING, regs);
+               update_process_times(user_mode(regs));
 #endif
                do_timer(regs);
 
@@ -502,14 +478,14 @@ static irqreturn_t timer_interrupt(int irq, void *dev_id, struct pt_regs * regs)
                                     : "=r" (pstate)
                                     : "i" (PSTATE_IE));
 
-               timer_tick_compare = tick_ops->add_compare(timer_tick_offset);
+               compare = tick_ops->add_compare(timer_tick_offset);
                ticks = tick_ops->get_tick();
 
                /* Restore PSTATE_IE. */
                __asm__ __volatile__("wrpr      %0, 0x0, %%pstate"
                                     : /* no outputs */
                                     : "r" (pstate));
-       } while (time_after_eq(ticks, timer_tick_compare));
+       } while (time_after_eq(ticks, compare));
 
        timer_check_rtc();
 
@@ -525,11 +501,6 @@ void timer_tick_interrupt(struct pt_regs *regs)
 
        do_timer(regs);
 
-       /*
-        * Only keep timer_tick_offset uptodate, but don't set TICK_CMPR.
-        */
-       timer_tick_compare = tick_ops->get_compare() + timer_tick_offset;
-
        timer_check_rtc();
 
        write_sequnlock(&xtime_lock);
@@ -539,7 +510,7 @@ void timer_tick_interrupt(struct pt_regs *regs)
 /* Kick start a stopped clock (procedure from the Sun NVRAM/hostid FAQ). */
 static void __init kick_start_clock(void)
 {
-       unsigned long regs = mstk48t02_regs;
+       void __iomem *regs = mstk48t02_regs;
        u8 sec, tmp;
        int i, count;
 
@@ -623,7 +594,7 @@ static void __init kick_start_clock(void)
 /* Return nonzero if the clock chip battery is low. */
 static int __init has_low_battery(void)
 {
-       unsigned long regs = mstk48t02_regs;
+       void __iomem *regs = mstk48t02_regs;
        u8 data1, data2;
 
        spin_lock_irq(&mostek_lock);
@@ -642,7 +613,7 @@ static int __init has_low_battery(void)
 static void __init set_system_time(void)
 {
        unsigned int year, mon, day, hour, min, sec;
-       unsigned long mregs = mstk48t02_regs;
+       void __iomem *mregs = mstk48t02_regs;
 #ifdef CONFIG_PCI
        unsigned long dregs = ds1287_regs;
 #else
@@ -670,23 +641,8 @@ static void __init set_system_time(void)
                mon = MSTK_REG_MONTH(mregs);
                year = MSTK_CVT_YEAR( MSTK_REG_YEAR(mregs) );
        } else {
-               int i;
-
                /* Dallas 12887 RTC chip. */
 
-               /* Stolen from arch/i386/kernel/time.c, see there for
-                * credits and descriptive comments.
-                */
-               for (i = 0; i < 1000000; i++) {
-                       if (CMOS_READ(RTC_FREQ_SELECT) & RTC_UIP)
-                               break;
-                       udelay(10);
-               }
-               for (i = 0; i < 1000000; i++) {
-                       if (!(CMOS_READ(RTC_FREQ_SELECT) & RTC_UIP))
-                               break;
-                       udelay(10);
-               }
                do {
                        sec  = CMOS_READ(RTC_SECONDS);
                        min  = CMOS_READ(RTC_MINUTES);
@@ -695,6 +651,7 @@ static void __init set_system_time(void)
                        mon  = CMOS_READ(RTC_MONTH);
                        year = CMOS_READ(RTC_YEAR);
                } while (sec != CMOS_READ(RTC_SECONDS));
+
                if (!(CMOS_READ(RTC_CONTROL) & RTC_DM_BINARY) || RTC_ALWAYS_BCD) {
                        BCD_TO_BIN(sec);
                        BCD_TO_BIN(min);
@@ -721,6 +678,83 @@ static void __init set_system_time(void)
        }
 }
 
+/* davem suggests we keep this within the 4M locked kernel image */
+static u32 starfire_get_time(void)
+{
+       static char obp_gettod[32];
+       static u32 unix_tod;
+
+       sprintf(obp_gettod, "h# %08x unix-gettod",
+               (unsigned int) (long) &unix_tod);
+       prom_feval(obp_gettod);
+
+       return unix_tod;
+}
+
+static int starfire_set_time(u32 val)
+{
+       /* Do nothing, time is set using the service processor
+        * console on this platform.
+        */
+       return 0;
+}
+
+static u32 hypervisor_get_time(void)
+{
+       register unsigned long func asm("%o5");
+       register unsigned long arg0 asm("%o0");
+       register unsigned long arg1 asm("%o1");
+       int retries = 10000;
+
+retry:
+       func = HV_FAST_TOD_GET;
+       arg0 = 0;
+       arg1 = 0;
+       __asm__ __volatile__("ta        %6"
+                            : "=&r" (func), "=&r" (arg0), "=&r" (arg1)
+                            : "0" (func), "1" (arg0), "2" (arg1),
+                              "i" (HV_FAST_TRAP));
+       if (arg0 == HV_EOK)
+               return arg1;
+       if (arg0 == HV_EWOULDBLOCK) {
+               if (--retries > 0) {
+                       udelay(100);
+                       goto retry;
+               }
+               printk(KERN_WARNING "SUN4V: tod_get() timed out.\n");
+               return 0;
+       }
+       printk(KERN_WARNING "SUN4V: tod_get() not supported.\n");
+       return 0;
+}
+
+static int hypervisor_set_time(u32 secs)
+{
+       register unsigned long func asm("%o5");
+       register unsigned long arg0 asm("%o0");
+       int retries = 10000;
+
+retry:
+       func = HV_FAST_TOD_SET;
+       arg0 = secs;
+       __asm__ __volatile__("ta        %4"
+                            : "=&r" (func), "=&r" (arg0)
+                            : "0" (func), "1" (arg0),
+                              "i" (HV_FAST_TRAP));
+       if (arg0 == HV_EOK)
+               return 0;
+       if (arg0 == HV_EWOULDBLOCK) {
+               if (--retries > 0) {
+                       udelay(100);
+                       goto retry;
+               }
+               printk(KERN_WARNING "SUN4V: tod_set() timed out.\n");
+               return -EAGAIN;
+       }
+       printk(KERN_WARNING "SUN4V: tod_set() not supported.\n");
+       return -EOPNOTSUPP;
+}
+
 void __init clock_probe(void)
 {
        struct linux_prom_registers clk_reg[2];
@@ -740,14 +774,14 @@ void __init clock_probe(void)
 
 
        if (this_is_starfire) {
-               /* davem suggests we keep this within the 4M locked kernel image */
-               static char obp_gettod[256];
-               static u32 unix_tod;
-
-               sprintf(obp_gettod, "h# %08x unix-gettod",
-                       (unsigned int) (long) &unix_tod);
-               prom_feval(obp_gettod);
-               xtime.tv_sec = unix_tod;
+               xtime.tv_sec = starfire_get_time();
+               xtime.tv_nsec = (INITIAL_JIFFIES % HZ) * (NSEC_PER_SEC / HZ);
+               set_normalized_timespec(&wall_to_monotonic,
+                                       -xtime.tv_sec, -xtime.tv_nsec);
+               return;
+       }
+       if (tlb_type == hypervisor) {
+               xtime.tv_sec = hypervisor_get_time();
                xtime.tv_nsec = (INITIAL_JIFFIES % HZ) * (NSEC_PER_SEC / HZ);
                set_normalized_timespec(&wall_to_monotonic,
                                        -xtime.tv_sec, -xtime.tv_nsec);
@@ -798,6 +832,7 @@ void __init clock_probe(void)
                    strcmp(model, "mk48t59") &&
                    strcmp(model, "m5819") &&
                    strcmp(model, "m5819p") &&
+                   strcmp(model, "m5823") &&
                    strcmp(model, "ds1287")) {
                        if (cbus != NULL) {
                                prom_printf("clock_probe: Central bus lacks timer chip.\n");
@@ -857,10 +892,12 @@ void __init clock_probe(void)
 
                        if (!strcmp(model, "ds1287") ||
                            !strcmp(model, "m5819") ||
-                           !strcmp(model, "m5819p")) {
+                           !strcmp(model, "m5819p") ||
+                           !strcmp(model, "m5823")) {
                                ds1287_regs = edev->resource[0].start;
                        } else {
-                               mstk48t59_regs = edev->resource[0].start;
+                               mstk48t59_regs = (void __iomem *)
+                                       edev->resource[0].start;
                                mstk48t02_regs = mstk48t59_regs + MOSTEK_48T59_48T02;
                        }
                        break;
@@ -878,10 +915,12 @@ try_isa_clock:
                        }
                        if (!strcmp(model, "ds1287") ||
                            !strcmp(model, "m5819") ||
-                           !strcmp(model, "m5819p")) {
+                           !strcmp(model, "m5819p") ||
+                           !strcmp(model, "m5823")) {
                                ds1287_regs = isadev->resource.start;
                        } else {
-                               mstk48t59_regs = isadev->resource.start;
+                               mstk48t59_regs = (void __iomem *)
+                                       isadev->resource.start;
                                mstk48t02_regs = mstk48t59_regs + MOSTEK_48T59_48T02;
                        }
                        break;
@@ -909,21 +948,24 @@ try_isa_clock:
                }
 
                if(model[5] == '0' && model[6] == '2') {
-                       mstk48t02_regs = (((u64)clk_reg[0].phys_addr) |
-                                         (((u64)clk_reg[0].which_io)<<32UL));
+                       mstk48t02_regs = (void __iomem *)
+                               (((u64)clk_reg[0].phys_addr) |
+                                (((u64)clk_reg[0].which_io)<<32UL));
                } else if(model[5] == '0' && model[6] == '8') {
-                       mstk48t08_regs = (((u64)clk_reg[0].phys_addr) |
-                                         (((u64)clk_reg[0].which_io)<<32UL));
+                       mstk48t08_regs = (void __iomem *)
+                               (((u64)clk_reg[0].phys_addr) |
+                                (((u64)clk_reg[0].which_io)<<32UL));
                        mstk48t02_regs = mstk48t08_regs + MOSTEK_48T08_48T02;
                } else {
-                       mstk48t59_regs = (((u64)clk_reg[0].phys_addr) |
-                                         (((u64)clk_reg[0].which_io)<<32UL));
+                       mstk48t59_regs = (void __iomem *)
+                               (((u64)clk_reg[0].phys_addr) |
+                                (((u64)clk_reg[0].which_io)<<32UL));
                        mstk48t02_regs = mstk48t59_regs + MOSTEK_48T59_48T02;
                }
                break;
        }
 
-       if (mstk48t02_regs != 0UL) {
+       if (mstk48t02_regs != NULL) {
                /* Report a low battery voltage condition. */
                if (has_low_battery())
                        prom_printf("NVRAM: Low battery voltage!\n");
@@ -939,10 +981,10 @@ try_isa_clock:
 }
 
 /* This is gets the master TICK_INT timer going. */
-static unsigned long sparc64_init_timers(irqreturn_t (*cfunc)(int, void *, struct pt_regs *))
+static unsigned long sparc64_init_timers(void)
 {
-       unsigned long pstate, clock;
-       int node, err;
+       unsigned long clock;
+       int node;
 #ifdef CONFIG_SMP
        extern void smp_tick_init(void);
 #endif
@@ -975,8 +1017,16 @@ static unsigned long sparc64_init_timers(irqreturn_t (*cfunc)(int, void *, struc
        smp_tick_init();
 #endif
 
+       return clock;
+}
+
+static void sparc64_start_timers(irqreturn_t (*cfunc)(int, void *, struct pt_regs *))
+{
+       unsigned long pstate;
+       int err;
+
        /* Register IRQ handler. */
-       err = request_irq(build_irq(0, 0, 0UL, 0UL), cfunc, SA_STATIC_ALLOC,
+       err = request_irq(build_irq(0, 0, 0UL, 0UL), cfunc, 0,
                          "timer", NULL);
 
        if (err) {
@@ -1000,16 +1050,13 @@ static unsigned long sparc64_init_timers(irqreturn_t (*cfunc)(int, void *, struc
                             : "r" (pstate));
 
        local_irq_enable();
-
-       return clock;
 }
 
 struct freq_table {
-       unsigned long udelay_val_ref;
        unsigned long clock_tick_ref;
        unsigned int ref_freq;
 };
-static DEFINE_PER_CPU(struct freq_table, sparc64_freq_table) = { 0, 0, 0 };
+static DEFINE_PER_CPU(struct freq_table, sparc64_freq_table) = { 0, 0 };
 
 unsigned long sparc64_get_clock_tick(unsigned int cpu)
 {
@@ -1031,15 +1078,11 @@ static int sparc64_cpufreq_notifier(struct notifier_block *nb, unsigned long val
 
        if (!ft->ref_freq) {
                ft->ref_freq = freq->old;
-               ft->udelay_val_ref = cpu_data(cpu).udelay_val;
                ft->clock_tick_ref = cpu_data(cpu).clock_tick;
        }
        if ((val == CPUFREQ_PRECHANGE  && freq->old < freq->new) ||
-           (val == CPUFREQ_POSTCHANGE && freq->old > freq->new)) {
-               cpu_data(cpu).udelay_val =
-                       cpufreq_scale(ft->udelay_val_ref,
-                                     ft->ref_freq,
-                                     freq->new);
+           (val == CPUFREQ_POSTCHANGE && freq->old > freq->new) ||
+           (val == CPUFREQ_RESUMECHANGE)) {
                cpu_data(cpu).clock_tick =
                        cpufreq_scale(ft->clock_tick_ref,
                                      ft->ref_freq,
@@ -1052,18 +1095,28 @@ static int sparc64_cpufreq_notifier(struct notifier_block *nb, unsigned long val
 static struct notifier_block sparc64_cpufreq_notifier_block = {
        .notifier_call  = sparc64_cpufreq_notifier
 };
-#endif
+
+#endif /* CONFIG_CPU_FREQ */
+
+static struct time_interpolator sparc64_cpu_interpolator = {
+       .source         =       TIME_SOURCE_CPU,
+       .shift          =       16,
+       .mask           =       0xffffffffffffffffLL
+};
 
 /* The quotient formula is taken from the IA64 port. */
-#define SPARC64_USEC_PER_CYC_SHIFT     30UL
 #define SPARC64_NSEC_PER_CYC_SHIFT     30UL
 void __init time_init(void)
 {
-       unsigned long clock = sparc64_init_timers(timer_interrupt);
+       unsigned long clock = sparc64_init_timers();
 
-       timer_ticks_per_usec_quotient =
-               (((1000000UL << SPARC64_USEC_PER_CYC_SHIFT) +
-                 (clock / 2)) / clock);
+       sparc64_cpu_interpolator.frequency = clock;
+       register_time_interpolator(&sparc64_cpu_interpolator);
+
+       /* Now that the interpolator is registered, it is
+        * safe to start the timer ticking.
+        */
+       sparc64_start_timers(timer_interrupt);
 
        timer_ticks_per_nsec_quotient =
                (((NSEC_PER_SEC << SPARC64_NSEC_PER_CYC_SHIFT) +
@@ -1075,17 +1128,6 @@ void __init time_init(void)
 #endif
 }
 
-static __inline__ unsigned long do_gettimeoffset(void)
-{
-       unsigned long ticks = tick_ops->get_tick();
-
-       ticks += timer_tick_offset;
-       ticks -= timer_tick_compare;
-
-       return (ticks * timer_ticks_per_usec_quotient)
-               >> SPARC64_USEC_PER_CYC_SHIFT;
-}
-
 unsigned long long sched_clock(void)
 {
        unsigned long ticks = tick_ops->get_tick();
@@ -1094,95 +1136,10 @@ unsigned long long sched_clock(void)
                >> SPARC64_NSEC_PER_CYC_SHIFT;
 }
 
-int do_settimeofday(struct timespec *tv)
-{
-       time_t wtm_sec, sec = tv->tv_sec;
-       long wtm_nsec, nsec = tv->tv_nsec;
-
-       if ((unsigned long)tv->tv_nsec >= NSEC_PER_SEC)
-               return -EINVAL;
-
-       if (this_is_starfire)
-               return 0;
-
-       write_seqlock_irq(&xtime_lock);
-       /*
-        * This is revolting. We need to set "xtime" correctly. However, the
-        * value in this location is the value at the most recent update of
-        * wall time.  Discover what correction gettimeofday() would have
-        * made, and then undo it!
-        */
-       nsec -= do_gettimeoffset() * 1000;
-       nsec -= (jiffies - wall_jiffies) * (NSEC_PER_SEC / HZ);
-
-       wtm_sec  = wall_to_monotonic.tv_sec + (xtime.tv_sec - sec);
-       wtm_nsec = wall_to_monotonic.tv_nsec + (xtime.tv_nsec - nsec);
-
-       set_normalized_timespec(&xtime, sec, nsec);
-       set_normalized_timespec(&wall_to_monotonic, wtm_sec, wtm_nsec);
-
-       time_adjust = 0;                /* stop active adjtime() */
-       time_status |= STA_UNSYNC;
-       time_maxerror = NTP_PHASE_LIMIT;
-       time_esterror = NTP_PHASE_LIMIT;
-       write_sequnlock_irq(&xtime_lock);
-       clock_was_set();
-       return 0;
-}
-
-EXPORT_SYMBOL(do_settimeofday);
-
-/* Ok, my cute asm atomicity trick doesn't work anymore.
- * There are just too many variables that need to be protected
- * now (both members of xtime, wall_jiffies, et al.)
- */
-void do_gettimeofday(struct timeval *tv)
-{
-       unsigned long flags;
-       unsigned long seq;
-       unsigned long usec, sec;
-       unsigned long max_ntp_tick = tick_usec - tickadj;
-
-       do {
-               unsigned long lost;
-
-               seq = read_seqbegin_irqsave(&xtime_lock, flags);
-               usec = do_gettimeoffset();
-               lost = jiffies - wall_jiffies;
-
-               /*
-                * If time_adjust is negative then NTP is slowing the clock
-                * so make sure not to go into next possible interval.
-                * Better to lose some accuracy than have time go backwards..
-                */
-               if (unlikely(time_adjust < 0)) {
-                       usec = min(usec, max_ntp_tick);
-
-                       if (lost)
-                               usec += lost * max_ntp_tick;
-               }
-               else if (unlikely(lost))
-                       usec += lost * tick_usec;
-
-               sec = xtime.tv_sec;
-               usec += (xtime.tv_nsec / 1000);
-       } while (read_seqretry_irqrestore(&xtime_lock, seq, flags));
-
-       while (usec >= 1000000) {
-               usec -= 1000000;
-               sec++;
-       }
-
-       tv->tv_sec = sec;
-       tv->tv_usec = usec;
-}
-
-EXPORT_SYMBOL(do_gettimeofday);
-
 static int set_rtc_mmss(unsigned long nowtime)
 {
        int real_seconds, real_minutes, chip_minutes;
-       unsigned long mregs = mstk48t02_regs;
+       void __iomem *mregs = mstk48t02_regs;
 #ifdef CONFIG_PCI
        unsigned long dregs = ds1287_regs;
 #else
@@ -1288,3 +1245,246 @@ static int set_rtc_mmss(unsigned long nowtime)
                return retval;
        }
 }
+
+#define RTC_IS_OPEN            0x01    /* means /dev/rtc is in use     */
+static unsigned char mini_rtc_status;  /* bitmapped status byte.       */
+
+/* months start at 0 now */
+static unsigned char days_in_mo[] =
+{31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31};
+
+#define FEBRUARY       2
+#define        STARTOFTIME     1970
+#define SECDAY         86400L
+#define SECYR          (SECDAY * 365)
+#define        leapyear(year)          ((year) % 4 == 0 && \
+                                ((year) % 100 != 0 || (year) % 400 == 0))
+#define        days_in_year(a)         (leapyear(a) ? 366 : 365)
+#define        days_in_month(a)        (month_days[(a) - 1])
+
+static int month_days[12] = {
+       31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31
+};
+
+/*
+ * This only works for the Gregorian calendar - i.e. after 1752 (in the UK)
+ */
+static void GregorianDay(struct rtc_time * tm)
+{
+       int leapsToDate;
+       int lastYear;
+       int day;
+       int MonthOffset[] = { 0, 31, 59, 90, 120, 151, 181, 212, 243, 273, 304, 334 };
+
+       lastYear = tm->tm_year - 1;
+
+       /*
+        * Number of leap corrections to apply up to end of last year
+        */
+       leapsToDate = lastYear / 4 - lastYear / 100 + lastYear / 400;
+
+       /*
+        * This year is a leap year if it is divisible by 4 except when it is
+        * divisible by 100 unless it is divisible by 400
+        *
+        * e.g. 1904 was a leap year, 1900 was not, 1996 is, and 2000 was
+        */
+       day = tm->tm_mon > 2 && leapyear(tm->tm_year);
+
+       day += lastYear*365 + leapsToDate + MonthOffset[tm->tm_mon-1] +
+                  tm->tm_mday;
+
+       tm->tm_wday = day % 7;
+}
+
+static void to_tm(int tim, struct rtc_time *tm)
+{
+       register int    i;
+       register long   hms, day;
+
+       day = tim / SECDAY;
+       hms = tim % SECDAY;
+
+       /* Hours, minutes, seconds are easy */
+       tm->tm_hour = hms / 3600;
+       tm->tm_min = (hms % 3600) / 60;
+       tm->tm_sec = (hms % 3600) % 60;
+
+       /* Number of years in days */
+       for (i = STARTOFTIME; day >= days_in_year(i); i++)
+               day -= days_in_year(i);
+       tm->tm_year = i;
+
+       /* Number of months in days left */
+       if (leapyear(tm->tm_year))
+               days_in_month(FEBRUARY) = 29;
+       for (i = 1; day >= days_in_month(i); i++)
+               day -= days_in_month(i);
+       days_in_month(FEBRUARY) = 28;
+       tm->tm_mon = i;
+
+       /* Days are what is left over (+1) from all that. */
+       tm->tm_mday = day + 1;
+
+       /*
+        * Determine the day of week
+        */
+       GregorianDay(tm);
+}
+
+/* Both Starfire and SUN4V give us seconds since Jan 1st, 1970,
+ * aka Unix time.  So we have to convert to/from rtc_time.
+ */
+static inline void mini_get_rtc_time(struct rtc_time *time)
+{
+       unsigned long flags;
+       u32 seconds;
+
+       spin_lock_irqsave(&rtc_lock, flags);
+       seconds = 0;
+       if (this_is_starfire)
+               seconds = starfire_get_time();
+       else if (tlb_type == hypervisor)
+               seconds = hypervisor_get_time();
+       spin_unlock_irqrestore(&rtc_lock, flags);
+
+       to_tm(seconds, time);
+       time->tm_year -= 1900;
+       time->tm_mon -= 1;
+}
+
+static inline int mini_set_rtc_time(struct rtc_time *time)
+{
+       u32 seconds = mktime(time->tm_year + 1900, time->tm_mon + 1,
+                            time->tm_mday, time->tm_hour,
+                            time->tm_min, time->tm_sec);
+       unsigned long flags;
+       int err;
+
+       spin_lock_irqsave(&rtc_lock, flags);
+       err = -ENODEV;
+       if (this_is_starfire)
+               err = starfire_set_time(seconds);
+       else  if (tlb_type == hypervisor)
+               err = hypervisor_set_time(seconds);
+       spin_unlock_irqrestore(&rtc_lock, flags);
+
+       return err;
+}
+
+static int mini_rtc_ioctl(struct inode *inode, struct file *file,
+                         unsigned int cmd, unsigned long arg)
+{
+       struct rtc_time wtime;
+       void __user *argp = (void __user *)arg;
+
+       switch (cmd) {
+
+       case RTC_PLL_GET:
+               return -EINVAL;
+
+       case RTC_PLL_SET:
+               return -EINVAL;
+
+       case RTC_UIE_OFF:       /* disable ints from RTC updates.       */
+               return 0;
+
+       case RTC_UIE_ON:        /* enable ints for RTC updates. */
+               return -EINVAL;
+
+       case RTC_RD_TIME:       /* Read the time/date from RTC  */
+               /* this doesn't get week-day, who cares */
+               memset(&wtime, 0, sizeof(wtime));
+               mini_get_rtc_time(&wtime);
+
+               return copy_to_user(argp, &wtime, sizeof(wtime)) ? -EFAULT : 0;
+
+       case RTC_SET_TIME:      /* Set the RTC */
+           {
+               int year;
+               unsigned char leap_yr;
+
+               if (!capable(CAP_SYS_TIME))
+                       return -EACCES;
+
+               if (copy_from_user(&wtime, argp, sizeof(wtime)))
+                       return -EFAULT;
+
+               year = wtime.tm_year + 1900;
+               leap_yr = ((!(year % 4) && (year % 100)) ||
+                          !(year % 400));
+
+               if ((wtime.tm_mon < 0 || wtime.tm_mon > 11) || (wtime.tm_mday < 1))
+                       return -EINVAL;
+
+               if (wtime.tm_mday < 0 || wtime.tm_mday >
+                   (days_in_mo[wtime.tm_mon] + ((wtime.tm_mon == 1) && leap_yr)))
+                       return -EINVAL;
+
+               if (wtime.tm_hour < 0 || wtime.tm_hour >= 24 ||
+                   wtime.tm_min < 0 || wtime.tm_min >= 60 ||
+                   wtime.tm_sec < 0 || wtime.tm_sec >= 60)
+                       return -EINVAL;
+
+               return mini_set_rtc_time(&wtime);
+           }
+       }
+
+       return -EINVAL;
+}
+
+static int mini_rtc_open(struct inode *inode, struct file *file)
+{
+       if (mini_rtc_status & RTC_IS_OPEN)
+               return -EBUSY;
+
+       mini_rtc_status |= RTC_IS_OPEN;
+
+       return 0;
+}
+
+static int mini_rtc_release(struct inode *inode, struct file *file)
+{
+       mini_rtc_status &= ~RTC_IS_OPEN;
+       return 0;
+}
+
+
+static struct file_operations mini_rtc_fops = {
+       .owner          = THIS_MODULE,
+       .ioctl          = mini_rtc_ioctl,
+       .open           = mini_rtc_open,
+       .release        = mini_rtc_release,
+};
+
+static struct miscdevice rtc_mini_dev =
+{
+       .minor          = RTC_MINOR,
+       .name           = "rtc",
+       .fops           = &mini_rtc_fops,
+};
+
+static int __init rtc_mini_init(void)
+{
+       int retval;
+
+       if (tlb_type != hypervisor && !this_is_starfire)
+               return -ENODEV;
+
+       printk(KERN_INFO "Mini RTC Driver\n");
+
+       retval = misc_register(&rtc_mini_dev);
+       if (retval < 0)
+               return retval;
+
+       return 0;
+}
+
+static void __exit rtc_mini_exit(void)
+{
+       misc_deregister(&rtc_mini_dev);
+}
+
+
+module_init(rtc_mini_init);
+module_exit(rtc_mini_exit);