2  * Intel & MS High Precision Event Timer Implementation.
 
   4  * Copyright (C) 2003 Intel Corporation
 
   6  * (c) Copyright 2004 Hewlett-Packard Development Company, L.P.
 
   7  *      Bob Picco <robert.picco@hp.com>
 
   9  * This program is free software; you can redistribute it and/or modify
 
  10  * it under the terms of the GNU General Public License version 2 as
 
  11  * published by the Free Software Foundation.
 
  14 #include <linux/interrupt.h>
 
  15 #include <linux/module.h>
 
  16 #include <linux/kernel.h>
 
  17 #include <linux/types.h>
 
  18 #include <linux/miscdevice.h>
 
  19 #include <linux/major.h>
 
  20 #include <linux/ioport.h>
 
  21 #include <linux/fcntl.h>
 
  22 #include <linux/init.h>
 
  23 #include <linux/poll.h>
 
  25 #include <linux/proc_fs.h>
 
  26 #include <linux/spinlock.h>
 
  27 #include <linux/sysctl.h>
 
  28 #include <linux/wait.h>
 
  29 #include <linux/bcd.h>
 
  30 #include <linux/seq_file.h>
 
  31 #include <linux/bitops.h>
 
  32 #include <linux/clocksource.h>
 
  34 #include <asm/current.h>
 
  35 #include <asm/uaccess.h>
 
  36 #include <asm/system.h>
 
  39 #include <asm/div64.h>
 
  41 #include <linux/acpi.h>
 
  42 #include <acpi/acpi_bus.h>
 
  43 #include <linux/hpet.h>
 
  46  * The High Precision Event Timer driver.
 
  47  * This driver is closely modelled after the rtc.c driver.
 
  48  * http://www.intel.com/hardwaredesign/hpetspec.htm
 
  50 #define HPET_USER_FREQ  (64)
 
  51 #define HPET_DRIFT      (500)
 
  53 #define HPET_RANGE_SIZE         1024    /* from HPET spec */
 
  55 #if BITS_PER_LONG == 64
 
  56 #define write_counter(V, MC)    writeq(V, MC)
 
  57 #define read_counter(MC)        readq(MC)
 
  59 #define write_counter(V, MC)    writel(V, MC)
 
  60 #define read_counter(MC)        readl(MC)
 
  63 static u32 hpet_nhpet, hpet_max_freq = HPET_USER_FREQ;
 
  65 /* This clocksource driver currently only works on ia64 */
 
  67 static void __iomem *hpet_mctr;
 
  69 static cycle_t read_hpet(void)
 
  71         return (cycle_t)read_counter((void __iomem *)hpet_mctr);
 
  74 static struct clocksource clocksource_hpet = {
 
  78         .mask           = CLOCKSOURCE_MASK(64),
 
  79         .mult           = 0, /*to be caluclated*/
 
  81         .flags          = CLOCK_SOURCE_IS_CONTINUOUS,
 
  83 static struct clocksource *hpet_clocksource;
 
  86 /* A lock for concurrent access by app and isr hpet activity. */
 
  87 static DEFINE_SPINLOCK(hpet_lock);
 
  88 /* A lock for concurrent intermodule access to hpet and isr hpet activity. */
 
  89 static DEFINE_SPINLOCK(hpet_task_lock);
 
  91 #define HPET_DEV_NAME   (7)
 
  94         struct hpets *hd_hpets;
 
  95         struct hpet __iomem *hd_hpet;
 
  96         struct hpet_timer __iomem *hd_timer;
 
  97         unsigned long hd_ireqfreq;
 
  98         unsigned long hd_irqdata;
 
  99         wait_queue_head_t hd_waitqueue;
 
 100         struct fasync_struct *hd_async_queue;
 
 101         struct hpet_task *hd_task;
 
 102         unsigned int hd_flags;
 
 104         unsigned int hd_hdwirq;
 
 105         char hd_name[HPET_DEV_NAME];
 
 109         struct hpets *hp_next;
 
 110         struct hpet __iomem *hp_hpet;
 
 111         unsigned long hp_hpet_phys;
 
 112         struct clocksource *hp_clocksource;
 
 113         unsigned long long hp_tick_freq;
 
 114         unsigned long hp_delta;
 
 115         unsigned int hp_ntimer;
 
 116         unsigned int hp_which;
 
 117         struct hpet_dev hp_dev[1];
 
 120 static struct hpets *hpets;
 
 122 #define HPET_OPEN               0x0001
 
 123 #define HPET_IE                 0x0002  /* interrupt enabled */
 
 124 #define HPET_PERIODIC           0x0004
 
 125 #define HPET_SHARED_IRQ         0x0008
 
 129 static inline unsigned long long readq(void __iomem *addr)
 
 131         return readl(addr) | (((unsigned long long)readl(addr + 4)) << 32LL);
 
 136 static inline void writeq(unsigned long long v, void __iomem *addr)
 
 138         writel(v & 0xffffffff, addr);
 
 139         writel(v >> 32, addr + 4);
 
 143 static irqreturn_t hpet_interrupt(int irq, void *data)
 
 145         struct hpet_dev *devp;
 
 149         isr = 1 << (devp - devp->hd_hpets->hp_dev);
 
 151         if ((devp->hd_flags & HPET_SHARED_IRQ) &&
 
 152             !(isr & readl(&devp->hd_hpet->hpet_isr)))
 
 155         spin_lock(&hpet_lock);
 
 159          * For non-periodic timers, increment the accumulator.
 
 160          * This has the effect of treating non-periodic like periodic.
 
 162         if ((devp->hd_flags & (HPET_IE | HPET_PERIODIC)) == HPET_IE) {
 
 165                 t = devp->hd_ireqfreq;
 
 166                 m = read_counter(&devp->hd_hpet->hpet_mc);
 
 167                 write_counter(t + m + devp->hd_hpets->hp_delta,
 
 168                               &devp->hd_timer->hpet_compare);
 
 171         if (devp->hd_flags & HPET_SHARED_IRQ)
 
 172                 writel(isr, &devp->hd_hpet->hpet_isr);
 
 173         spin_unlock(&hpet_lock);
 
 175         spin_lock(&hpet_task_lock);
 
 177                 devp->hd_task->ht_func(devp->hd_task->ht_data);
 
 178         spin_unlock(&hpet_task_lock);
 
 180         wake_up_interruptible(&devp->hd_waitqueue);
 
 182         kill_fasync(&devp->hd_async_queue, SIGIO, POLL_IN);
 
 187 static int hpet_open(struct inode *inode, struct file *file)
 
 189         struct hpet_dev *devp;
 
 193         if (file->f_mode & FMODE_WRITE)
 
 196         spin_lock_irq(&hpet_lock);
 
 198         for (devp = NULL, hpetp = hpets; hpetp && !devp; hpetp = hpetp->hp_next)
 
 199                 for (i = 0; i < hpetp->hp_ntimer; i++)
 
 200                         if (hpetp->hp_dev[i].hd_flags & HPET_OPEN
 
 201                             || hpetp->hp_dev[i].hd_task)
 
 204                                 devp = &hpetp->hp_dev[i];
 
 209                 spin_unlock_irq(&hpet_lock);
 
 213         file->private_data = devp;
 
 214         devp->hd_irqdata = 0;
 
 215         devp->hd_flags |= HPET_OPEN;
 
 216         spin_unlock_irq(&hpet_lock);
 
 222 hpet_read(struct file *file, char __user *buf, size_t count, loff_t * ppos)
 
 224         DECLARE_WAITQUEUE(wait, current);
 
 227         struct hpet_dev *devp;
 
 229         devp = file->private_data;
 
 230         if (!devp->hd_ireqfreq)
 
 233         if (count < sizeof(unsigned long))
 
 236         add_wait_queue(&devp->hd_waitqueue, &wait);
 
 239                 set_current_state(TASK_INTERRUPTIBLE);
 
 241                 spin_lock_irq(&hpet_lock);
 
 242                 data = devp->hd_irqdata;
 
 243                 devp->hd_irqdata = 0;
 
 244                 spin_unlock_irq(&hpet_lock);
 
 248                 else if (file->f_flags & O_NONBLOCK) {
 
 251                 } else if (signal_pending(current)) {
 
 252                         retval = -ERESTARTSYS;
 
 258         retval = put_user(data, (unsigned long __user *)buf);
 
 260                 retval = sizeof(unsigned long);
 
 262         __set_current_state(TASK_RUNNING);
 
 263         remove_wait_queue(&devp->hd_waitqueue, &wait);
 
 268 static unsigned int hpet_poll(struct file *file, poll_table * wait)
 
 271         struct hpet_dev *devp;
 
 273         devp = file->private_data;
 
 275         if (!devp->hd_ireqfreq)
 
 278         poll_wait(file, &devp->hd_waitqueue, wait);
 
 280         spin_lock_irq(&hpet_lock);
 
 281         v = devp->hd_irqdata;
 
 282         spin_unlock_irq(&hpet_lock);
 
 285                 return POLLIN | POLLRDNORM;
 
 290 static int hpet_mmap(struct file *file, struct vm_area_struct *vma)
 
 292 #ifdef  CONFIG_HPET_MMAP
 
 293         struct hpet_dev *devp;
 
 296         if (((vma->vm_end - vma->vm_start) != PAGE_SIZE) || vma->vm_pgoff)
 
 299         devp = file->private_data;
 
 300         addr = devp->hd_hpets->hp_hpet_phys;
 
 302         if (addr & (PAGE_SIZE - 1))
 
 305         vma->vm_flags |= VM_IO;
 
 306         vma->vm_page_prot = pgprot_noncached(vma->vm_page_prot);
 
 308         if (io_remap_pfn_range(vma, vma->vm_start, addr >> PAGE_SHIFT,
 
 309                                         PAGE_SIZE, vma->vm_page_prot)) {
 
 310                 printk(KERN_ERR "%s: io_remap_pfn_range failed\n",
 
 321 static int hpet_fasync(int fd, struct file *file, int on)
 
 323         struct hpet_dev *devp;
 
 325         devp = file->private_data;
 
 327         if (fasync_helper(fd, file, on, &devp->hd_async_queue) >= 0)
 
 333 static int hpet_release(struct inode *inode, struct file *file)
 
 335         struct hpet_dev *devp;
 
 336         struct hpet_timer __iomem *timer;
 
 339         devp = file->private_data;
 
 340         timer = devp->hd_timer;
 
 342         spin_lock_irq(&hpet_lock);
 
 344         writeq((readq(&timer->hpet_config) & ~Tn_INT_ENB_CNF_MASK),
 
 345                &timer->hpet_config);
 
 350         devp->hd_ireqfreq = 0;
 
 352         if (devp->hd_flags & HPET_PERIODIC
 
 353             && readq(&timer->hpet_config) & Tn_TYPE_CNF_MASK) {
 
 356                 v = readq(&timer->hpet_config);
 
 357                 v ^= Tn_TYPE_CNF_MASK;
 
 358                 writeq(v, &timer->hpet_config);
 
 361         devp->hd_flags &= ~(HPET_OPEN | HPET_IE | HPET_PERIODIC);
 
 362         spin_unlock_irq(&hpet_lock);
 
 367         if (file->f_flags & FASYNC)
 
 368                 hpet_fasync(-1, file, 0);
 
 370         file->private_data = NULL;
 
 374 static int hpet_ioctl_common(struct hpet_dev *, int, unsigned long, int);
 
 377 hpet_ioctl(struct inode *inode, struct file *file, unsigned int cmd,
 
 380         struct hpet_dev *devp;
 
 382         devp = file->private_data;
 
 383         return hpet_ioctl_common(devp, cmd, arg, 0);
 
 386 static int hpet_ioctl_ieon(struct hpet_dev *devp)
 
 388         struct hpet_timer __iomem *timer;
 
 389         struct hpet __iomem *hpet;
 
 392         unsigned long g, v, t, m;
 
 393         unsigned long flags, isr;
 
 395         timer = devp->hd_timer;
 
 396         hpet = devp->hd_hpet;
 
 397         hpetp = devp->hd_hpets;
 
 399         if (!devp->hd_ireqfreq)
 
 402         spin_lock_irq(&hpet_lock);
 
 404         if (devp->hd_flags & HPET_IE) {
 
 405                 spin_unlock_irq(&hpet_lock);
 
 409         devp->hd_flags |= HPET_IE;
 
 411         if (readl(&timer->hpet_config) & Tn_INT_TYPE_CNF_MASK)
 
 412                 devp->hd_flags |= HPET_SHARED_IRQ;
 
 413         spin_unlock_irq(&hpet_lock);
 
 415         irq = devp->hd_hdwirq;
 
 418                 unsigned long irq_flags;
 
 420                 sprintf(devp->hd_name, "hpet%d", (int)(devp - hpetp->hp_dev));
 
 421                 irq_flags = devp->hd_flags & HPET_SHARED_IRQ
 
 422                                                 ? IRQF_SHARED : IRQF_DISABLED;
 
 423                 if (request_irq(irq, hpet_interrupt, irq_flags,
 
 424                                 devp->hd_name, (void *)devp)) {
 
 425                         printk(KERN_ERR "hpet: IRQ %d is not free\n", irq);
 
 431                 spin_lock_irq(&hpet_lock);
 
 432                 devp->hd_flags ^= HPET_IE;
 
 433                 spin_unlock_irq(&hpet_lock);
 
 438         t = devp->hd_ireqfreq;
 
 439         v = readq(&timer->hpet_config);
 
 440         g = v | Tn_INT_ENB_CNF_MASK;
 
 442         if (devp->hd_flags & HPET_PERIODIC) {
 
 443                 write_counter(t, &timer->hpet_compare);
 
 444                 g |= Tn_TYPE_CNF_MASK;
 
 445                 v |= Tn_TYPE_CNF_MASK;
 
 446                 writeq(v, &timer->hpet_config);
 
 447                 v |= Tn_VAL_SET_CNF_MASK;
 
 448                 writeq(v, &timer->hpet_config);
 
 449                 local_irq_save(flags);
 
 450                 m = read_counter(&hpet->hpet_mc);
 
 451                 write_counter(t + m + hpetp->hp_delta, &timer->hpet_compare);
 
 453                 local_irq_save(flags);
 
 454                 m = read_counter(&hpet->hpet_mc);
 
 455                 write_counter(t + m + hpetp->hp_delta, &timer->hpet_compare);
 
 458         if (devp->hd_flags & HPET_SHARED_IRQ) {
 
 459                 isr = 1 << (devp - devp->hd_hpets->hp_dev);
 
 460                 writel(isr, &hpet->hpet_isr);
 
 462         writeq(g, &timer->hpet_config);
 
 463         local_irq_restore(flags);
 
 468 /* converts Hz to number of timer ticks */
 
 469 static inline unsigned long hpet_time_div(struct hpets *hpets,
 
 472         unsigned long long m;
 
 474         m = hpets->hp_tick_freq + (dis >> 1);
 
 476         return (unsigned long)m;
 
 480 hpet_ioctl_common(struct hpet_dev *devp, int cmd, unsigned long arg, int kernel)
 
 482         struct hpet_timer __iomem *timer;
 
 483         struct hpet __iomem *hpet;
 
 494                 timer = devp->hd_timer;
 
 495                 hpet = devp->hd_hpet;
 
 496                 hpetp = devp->hd_hpets;
 
 499                 return hpet_ioctl_ieon(devp);
 
 508                 if ((devp->hd_flags & HPET_IE) == 0)
 
 510                 v = readq(&timer->hpet_config);
 
 511                 v &= ~Tn_INT_ENB_CNF_MASK;
 
 512                 writeq(v, &timer->hpet_config);
 
 514                         free_irq(devp->hd_irq, devp);
 
 517                 devp->hd_flags ^= HPET_IE;
 
 521                         struct hpet_info info;
 
 523                         if (devp->hd_ireqfreq)
 
 525                                         hpet_time_div(hpetp, devp->hd_ireqfreq);
 
 527                                 info.hi_ireqfreq = 0;
 
 529                             readq(&timer->hpet_config) & Tn_PER_INT_CAP_MASK;
 
 530                         info.hi_hpet = hpetp->hp_which;
 
 531                         info.hi_timer = devp - hpetp->hp_dev;
 
 533                                 memcpy((void *)arg, &info, sizeof(info));
 
 535                                 if (copy_to_user((void __user *)arg, &info,
 
 541                 v = readq(&timer->hpet_config);
 
 542                 if ((v & Tn_PER_INT_CAP_MASK) == 0) {
 
 546                 devp->hd_flags |= HPET_PERIODIC;
 
 549                 v = readq(&timer->hpet_config);
 
 550                 if ((v & Tn_PER_INT_CAP_MASK) == 0) {
 
 554                 if (devp->hd_flags & HPET_PERIODIC &&
 
 555                     readq(&timer->hpet_config) & Tn_TYPE_CNF_MASK) {
 
 556                         v = readq(&timer->hpet_config);
 
 557                         v ^= Tn_TYPE_CNF_MASK;
 
 558                         writeq(v, &timer->hpet_config);
 
 560                 devp->hd_flags &= ~HPET_PERIODIC;
 
 563                 if (!kernel && (arg > hpet_max_freq) &&
 
 564                     !capable(CAP_SYS_RESOURCE)) {
 
 574                 devp->hd_ireqfreq = hpet_time_div(hpetp, arg);
 
 580 static const struct file_operations hpet_fops = {
 
 581         .owner = THIS_MODULE,
 
 587         .release = hpet_release,
 
 588         .fasync = hpet_fasync,
 
 592 static int hpet_is_known(struct hpet_data *hdp)
 
 596         for (hpetp = hpets; hpetp; hpetp = hpetp->hp_next)
 
 597                 if (hpetp->hp_hpet_phys == hdp->hd_phys_address)
 
 603 EXPORT_SYMBOL(hpet_alloc);
 
 604 EXPORT_SYMBOL(hpet_register);
 
 605 EXPORT_SYMBOL(hpet_unregister);
 
 606 EXPORT_SYMBOL(hpet_control);
 
 608 int hpet_register(struct hpet_task *tp, int periodic)
 
 612         struct hpet_timer __iomem *timer;
 
 613         struct hpet_dev *devp;
 
 618                 mask = Tn_PER_INT_CAP_MASK;
 
 627         tp->ht_opaque = NULL;
 
 629         spin_lock_irq(&hpet_task_lock);
 
 630         spin_lock(&hpet_lock);
 
 632         for (devp = NULL, hpetp = hpets; hpetp && !devp; hpetp = hpetp->hp_next)
 
 633                 for (timer = hpetp->hp_hpet->hpet_timers, i = 0;
 
 634                      i < hpetp->hp_ntimer; i++, timer++) {
 
 635                         if ((readq(&timer->hpet_config) & Tn_PER_INT_CAP_MASK)
 
 639                         devp = &hpetp->hp_dev[i];
 
 641                         if (devp->hd_flags & HPET_OPEN || devp->hd_task) {
 
 646                         tp->ht_opaque = devp;
 
 651         spin_unlock(&hpet_lock);
 
 652         spin_unlock_irq(&hpet_task_lock);
 
 660 static inline int hpet_tpcheck(struct hpet_task *tp)
 
 662         struct hpet_dev *devp;
 
 665         devp = tp->ht_opaque;
 
 670         for (hpetp = hpets; hpetp; hpetp = hpetp->hp_next)
 
 671                 if (devp >= hpetp->hp_dev
 
 672                     && devp < (hpetp->hp_dev + hpetp->hp_ntimer)
 
 673                     && devp->hd_hpet == hpetp->hp_hpet)
 
 679 int hpet_unregister(struct hpet_task *tp)
 
 681         struct hpet_dev *devp;
 
 682         struct hpet_timer __iomem *timer;
 
 685         if ((err = hpet_tpcheck(tp)))
 
 688         spin_lock_irq(&hpet_task_lock);
 
 689         spin_lock(&hpet_lock);
 
 691         devp = tp->ht_opaque;
 
 692         if (devp->hd_task != tp) {
 
 693                 spin_unlock(&hpet_lock);
 
 694                 spin_unlock_irq(&hpet_task_lock);
 
 698         timer = devp->hd_timer;
 
 699         writeq((readq(&timer->hpet_config) & ~Tn_INT_ENB_CNF_MASK),
 
 700                &timer->hpet_config);
 
 701         devp->hd_flags &= ~(HPET_IE | HPET_PERIODIC);
 
 702         devp->hd_task = NULL;
 
 703         spin_unlock(&hpet_lock);
 
 704         spin_unlock_irq(&hpet_task_lock);
 
 709 int hpet_control(struct hpet_task *tp, unsigned int cmd, unsigned long arg)
 
 711         struct hpet_dev *devp;
 
 714         if ((err = hpet_tpcheck(tp)))
 
 717         spin_lock_irq(&hpet_lock);
 
 718         devp = tp->ht_opaque;
 
 719         if (devp->hd_task != tp) {
 
 720                 spin_unlock_irq(&hpet_lock);
 
 723         spin_unlock_irq(&hpet_lock);
 
 724         return hpet_ioctl_common(devp, cmd, arg, 1);
 
 727 static ctl_table hpet_table[] = {
 
 729          .ctl_name = CTL_UNNUMBERED,
 
 730          .procname = "max-user-freq",
 
 731          .data = &hpet_max_freq,
 
 732          .maxlen = sizeof(int),
 
 734          .proc_handler = &proc_dointvec,
 
 739 static ctl_table hpet_root[] = {
 
 741          .ctl_name = CTL_UNNUMBERED,
 
 750 static ctl_table dev_root[] = {
 
 761 static struct ctl_table_header *sysctl_header;
 
 764  * Adjustment for when arming the timer with
 
 765  * initial conditions.  That is, main counter
 
 766  * ticks expired before interrupts are enabled.
 
 768 #define TICK_CALIBRATE  (1000UL)
 
 770 static unsigned long hpet_calibrate(struct hpets *hpetp)
 
 772         struct hpet_timer __iomem *timer = NULL;
 
 773         unsigned long t, m, count, i, flags, start;
 
 774         struct hpet_dev *devp;
 
 776         struct hpet __iomem *hpet;
 
 778         for (j = 0, devp = hpetp->hp_dev; j < hpetp->hp_ntimer; j++, devp++)
 
 779                 if ((devp->hd_flags & HPET_OPEN) == 0) {
 
 780                         timer = devp->hd_timer;
 
 787         hpet = hpetp->hp_hpet;
 
 788         t = read_counter(&timer->hpet_compare);
 
 791         count = hpet_time_div(hpetp, TICK_CALIBRATE);
 
 793         local_irq_save(flags);
 
 795         start = read_counter(&hpet->hpet_mc);
 
 798                 m = read_counter(&hpet->hpet_mc);
 
 799                 write_counter(t + m + hpetp->hp_delta, &timer->hpet_compare);
 
 800         } while (i++, (m - start) < count);
 
 802         local_irq_restore(flags);
 
 804         return (m - start) / i;
 
 807 int hpet_alloc(struct hpet_data *hdp)
 
 810         struct hpet_dev *devp;
 
 814         struct hpet __iomem *hpet;
 
 815         static struct hpets *last = NULL;
 
 816         unsigned long period;
 
 817         unsigned long long temp;
 
 820          * hpet_alloc can be called by platform dependent code.
 
 821          * If platform dependent code has allocated the hpet that
 
 822          * ACPI has also reported, then we catch it here.
 
 824         if (hpet_is_known(hdp)) {
 
 825                 printk(KERN_DEBUG "%s: duplicate HPET ignored\n",
 
 830         siz = sizeof(struct hpets) + ((hdp->hd_nirqs - 1) *
 
 831                                       sizeof(struct hpet_dev));
 
 833         hpetp = kzalloc(siz, GFP_KERNEL);
 
 838         hpetp->hp_which = hpet_nhpet++;
 
 839         hpetp->hp_hpet = hdp->hd_address;
 
 840         hpetp->hp_hpet_phys = hdp->hd_phys_address;
 
 842         hpetp->hp_ntimer = hdp->hd_nirqs;
 
 844         for (i = 0; i < hdp->hd_nirqs; i++)
 
 845                 hpetp->hp_dev[i].hd_hdwirq = hdp->hd_irq[i];
 
 847         hpet = hpetp->hp_hpet;
 
 849         cap = readq(&hpet->hpet_cap);
 
 851         ntimer = ((cap & HPET_NUM_TIM_CAP_MASK) >> HPET_NUM_TIM_CAP_SHIFT) + 1;
 
 853         if (hpetp->hp_ntimer != ntimer) {
 
 854                 printk(KERN_WARNING "hpet: number irqs doesn't agree"
 
 855                        " with number of timers\n");
 
 861                 last->hp_next = hpetp;
 
 867         period = (cap & HPET_COUNTER_CLK_PERIOD_MASK) >>
 
 868                 HPET_COUNTER_CLK_PERIOD_SHIFT; /* fs, 10^-15 */
 
 869         temp = 1000000000000000uLL; /* 10^15 femtoseconds per second */
 
 870         temp += period >> 1; /* round */
 
 871         do_div(temp, period);
 
 872         hpetp->hp_tick_freq = temp; /* ticks per second */
 
 874         printk(KERN_INFO "hpet%d: at MMIO 0x%lx, IRQ%s",
 
 875                 hpetp->hp_which, hdp->hd_phys_address,
 
 876                 hpetp->hp_ntimer > 1 ? "s" : "");
 
 877         for (i = 0; i < hpetp->hp_ntimer; i++)
 
 878                 printk("%s %d", i > 0 ? "," : "", hdp->hd_irq[i]);
 
 881         printk(KERN_INFO "hpet%u: %u %d-bit timers, %Lu Hz\n",
 
 882                hpetp->hp_which, hpetp->hp_ntimer,
 
 883                cap & HPET_COUNTER_SIZE_MASK ? 64 : 32, hpetp->hp_tick_freq);
 
 885         mcfg = readq(&hpet->hpet_config);
 
 886         if ((mcfg & HPET_ENABLE_CNF_MASK) == 0) {
 
 887                 write_counter(0L, &hpet->hpet_mc);
 
 888                 mcfg |= HPET_ENABLE_CNF_MASK;
 
 889                 writeq(mcfg, &hpet->hpet_config);
 
 892         for (i = 0, devp = hpetp->hp_dev; i < hpetp->hp_ntimer; i++, devp++) {
 
 893                 struct hpet_timer __iomem *timer;
 
 895                 timer = &hpet->hpet_timers[devp - hpetp->hp_dev];
 
 897                 devp->hd_hpets = hpetp;
 
 898                 devp->hd_hpet = hpet;
 
 899                 devp->hd_timer = timer;
 
 902                  * If the timer was reserved by platform code,
 
 903                  * then make timer unavailable for opens.
 
 905                 if (hdp->hd_state & (1 << i)) {
 
 906                         devp->hd_flags = HPET_OPEN;
 
 910                 init_waitqueue_head(&devp->hd_waitqueue);
 
 913         hpetp->hp_delta = hpet_calibrate(hpetp);
 
 915 /* This clocksource driver currently only works on ia64 */
 
 917         if (!hpet_clocksource) {
 
 918                 hpet_mctr = (void __iomem *)&hpetp->hp_hpet->hpet_mc;
 
 919                 CLKSRC_FSYS_MMIO_SET(clocksource_hpet.fsys_mmio, hpet_mctr);
 
 920                 clocksource_hpet.mult = clocksource_hz2mult(hpetp->hp_tick_freq,
 
 921                                                 clocksource_hpet.shift);
 
 922                 clocksource_register(&clocksource_hpet);
 
 923                 hpetp->hp_clocksource = &clocksource_hpet;
 
 924                 hpet_clocksource = &clocksource_hpet;
 
 931 static acpi_status hpet_resources(struct acpi_resource *res, void *data)
 
 933         struct hpet_data *hdp;
 
 935         struct acpi_resource_address64 addr;
 
 939         status = acpi_resource_to_address64(res, &addr);
 
 941         if (ACPI_SUCCESS(status)) {
 
 942                 hdp->hd_phys_address = addr.minimum;
 
 943                 hdp->hd_address = ioremap(addr.minimum, addr.address_length);
 
 945                 if (hpet_is_known(hdp)) {
 
 946                         printk(KERN_DEBUG "%s: 0x%lx is busy\n",
 
 947                                 __FUNCTION__, hdp->hd_phys_address);
 
 948                         iounmap(hdp->hd_address);
 
 949                         return AE_ALREADY_EXISTS;
 
 951         } else if (res->type == ACPI_RESOURCE_TYPE_FIXED_MEMORY32) {
 
 952                 struct acpi_resource_fixed_memory32 *fixmem32;
 
 954                 fixmem32 = &res->data.fixed_memory32;
 
 958                 hdp->hd_phys_address = fixmem32->address;
 
 959                 hdp->hd_address = ioremap(fixmem32->address,
 
 962                 if (hpet_is_known(hdp)) {
 
 963                         printk(KERN_DEBUG "%s: 0x%lx is busy\n",
 
 964                                 __FUNCTION__, hdp->hd_phys_address);
 
 965                         iounmap(hdp->hd_address);
 
 966                         return AE_ALREADY_EXISTS;
 
 968         } else if (res->type == ACPI_RESOURCE_TYPE_EXTENDED_IRQ) {
 
 969                 struct acpi_resource_extended_irq *irqp;
 
 972                 irqp = &res->data.extended_irq;
 
 974                 for (i = 0; i < irqp->interrupt_count; i++) {
 
 975                         irq = acpi_register_gsi(irqp->interrupts[i],
 
 976                                       irqp->triggering, irqp->polarity);
 
 980                         hdp->hd_irq[hdp->hd_nirqs] = irq;
 
 988 static int hpet_acpi_add(struct acpi_device *device)
 
 991         struct hpet_data data;
 
 993         memset(&data, 0, sizeof(data));
 
 996             acpi_walk_resources(device->handle, METHOD_NAME__CRS,
 
 997                                 hpet_resources, &data);
 
 999         if (ACPI_FAILURE(result))
 
1002         if (!data.hd_address || !data.hd_nirqs) {
 
1003                 printk("%s: no address or irqs in _CRS\n", __FUNCTION__);
 
1007         return hpet_alloc(&data);
 
1010 static int hpet_acpi_remove(struct acpi_device *device, int type)
 
1012         /* XXX need to unregister clocksource, dealloc mem, etc */
 
1016 static const struct acpi_device_id hpet_device_ids[] = {
 
1020 MODULE_DEVICE_TABLE(acpi, hpet_device_ids);
 
1022 static struct acpi_driver hpet_acpi_driver = {
 
1024         .ids = hpet_device_ids,
 
1026                 .add = hpet_acpi_add,
 
1027                 .remove = hpet_acpi_remove,
 
1031 static struct miscdevice hpet_misc = { HPET_MINOR, "hpet", &hpet_fops };
 
1033 static int __init hpet_init(void)
 
1037         result = misc_register(&hpet_misc);
 
1041         sysctl_header = register_sysctl_table(dev_root);
 
1043         result = acpi_bus_register_driver(&hpet_acpi_driver);
 
1046                         unregister_sysctl_table(sysctl_header);
 
1047                 misc_deregister(&hpet_misc);
 
1054 static void __exit hpet_exit(void)
 
1056         acpi_bus_unregister_driver(&hpet_acpi_driver);
 
1059                 unregister_sysctl_table(sysctl_header);
 
1060         misc_deregister(&hpet_misc);
 
1065 module_init(hpet_init);
 
1066 module_exit(hpet_exit);
 
1067 MODULE_AUTHOR("Bob Picco <Robert.Picco@hp.com>");
 
1068 MODULE_LICENSE("GPL");