859 lines
21 KiB
C
859 lines
21 KiB
C
/*
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* Timer device implementation for SGI SN platforms.
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*
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* This file is subject to the terms and conditions of the GNU General Public
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* License. See the file "COPYING" in the main directory of this archive
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* for more details.
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*
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* Copyright (c) 2001-2006 Silicon Graphics, Inc. All rights reserved.
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*
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* This driver exports an API that should be supportable by any HPET or IA-PC
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* multimedia timer. The code below is currently specific to the SGI Altix
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* SHub RTC, however.
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*
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* 11/01/01 - jbarnes - initial revision
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* 9/10/04 - Christoph Lameter - remove interrupt support for kernel inclusion
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* 10/1/04 - Christoph Lameter - provide posix clock CLOCK_SGI_CYCLE
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* 10/13/04 - Christoph Lameter, Dimitri Sivanich - provide timer interrupt
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* support via the posix timer interface
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*/
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#include <linux/types.h>
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#include <linux/kernel.h>
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#include <linux/ioctl.h>
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#include <linux/module.h>
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#include <linux/init.h>
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#include <linux/errno.h>
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#include <linux/mm.h>
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#include <linux/fs.h>
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#include <linux/mmtimer.h>
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#include <linux/miscdevice.h>
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#include <linux/posix-timers.h>
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#include <linux/interrupt.h>
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#include <linux/time.h>
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#include <linux/math64.h>
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#include <linux/mutex.h>
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#include <linux/slab.h>
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#include <asm/uaccess.h>
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#include <asm/sn/addrs.h>
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#include <asm/sn/intr.h>
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#include <asm/sn/shub_mmr.h>
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#include <asm/sn/nodepda.h>
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#include <asm/sn/shubio.h>
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MODULE_AUTHOR("Jesse Barnes <jbarnes@sgi.com>");
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MODULE_DESCRIPTION("SGI Altix RTC Timer");
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MODULE_LICENSE("GPL");
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/* name of the device, usually in /dev */
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#define MMTIMER_NAME "mmtimer"
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#define MMTIMER_DESC "SGI Altix RTC Timer"
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#define MMTIMER_VERSION "2.1"
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#define RTC_BITS 55 /* 55 bits for this implementation */
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static struct k_clock sgi_clock;
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extern unsigned long sn_rtc_cycles_per_second;
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#define RTC_COUNTER_ADDR ((long *)LOCAL_MMR_ADDR(SH_RTC))
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#define rtc_time() (*RTC_COUNTER_ADDR)
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static DEFINE_MUTEX(mmtimer_mutex);
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static long mmtimer_ioctl(struct file *file, unsigned int cmd,
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unsigned long arg);
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static int mmtimer_mmap(struct file *file, struct vm_area_struct *vma);
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/*
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* Period in femtoseconds (10^-15 s)
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*/
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static unsigned long mmtimer_femtoperiod = 0;
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static const struct file_operations mmtimer_fops = {
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.owner = THIS_MODULE,
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.mmap = mmtimer_mmap,
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.unlocked_ioctl = mmtimer_ioctl,
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.llseek = noop_llseek,
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};
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/*
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* We only have comparison registers RTC1-4 currently available per
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* node. RTC0 is used by SAL.
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*/
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/* Check for an RTC interrupt pending */
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static int mmtimer_int_pending(int comparator)
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{
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if (HUB_L((unsigned long *)LOCAL_MMR_ADDR(SH_EVENT_OCCURRED)) &
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SH_EVENT_OCCURRED_RTC1_INT_MASK << comparator)
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return 1;
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else
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return 0;
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}
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/* Clear the RTC interrupt pending bit */
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static void mmtimer_clr_int_pending(int comparator)
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{
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_EVENT_OCCURRED_ALIAS),
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SH_EVENT_OCCURRED_RTC1_INT_MASK << comparator);
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}
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/* Setup timer on comparator RTC1 */
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static void mmtimer_setup_int_0(int cpu, u64 expires)
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{
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u64 val;
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/* Disable interrupt */
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_RTC1_INT_ENABLE), 0UL);
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/* Initialize comparator value */
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_INT_CMPB), -1L);
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/* Clear pending bit */
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mmtimer_clr_int_pending(0);
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val = ((u64)SGI_MMTIMER_VECTOR << SH_RTC1_INT_CONFIG_IDX_SHFT) |
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((u64)cpu_physical_id(cpu) <<
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SH_RTC1_INT_CONFIG_PID_SHFT);
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/* Set configuration */
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_RTC1_INT_CONFIG), val);
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/* Enable RTC interrupts */
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_RTC1_INT_ENABLE), 1UL);
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/* Initialize comparator value */
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_INT_CMPB), expires);
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}
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/* Setup timer on comparator RTC2 */
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static void mmtimer_setup_int_1(int cpu, u64 expires)
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{
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u64 val;
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_RTC2_INT_ENABLE), 0UL);
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_INT_CMPC), -1L);
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mmtimer_clr_int_pending(1);
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val = ((u64)SGI_MMTIMER_VECTOR << SH_RTC2_INT_CONFIG_IDX_SHFT) |
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((u64)cpu_physical_id(cpu) <<
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SH_RTC2_INT_CONFIG_PID_SHFT);
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_RTC2_INT_CONFIG), val);
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_RTC2_INT_ENABLE), 1UL);
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_INT_CMPC), expires);
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}
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/* Setup timer on comparator RTC3 */
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static void mmtimer_setup_int_2(int cpu, u64 expires)
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{
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u64 val;
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_RTC3_INT_ENABLE), 0UL);
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_INT_CMPD), -1L);
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mmtimer_clr_int_pending(2);
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val = ((u64)SGI_MMTIMER_VECTOR << SH_RTC3_INT_CONFIG_IDX_SHFT) |
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((u64)cpu_physical_id(cpu) <<
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SH_RTC3_INT_CONFIG_PID_SHFT);
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_RTC3_INT_CONFIG), val);
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_RTC3_INT_ENABLE), 1UL);
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HUB_S((u64 *)LOCAL_MMR_ADDR(SH_INT_CMPD), expires);
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}
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/*
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* This function must be called with interrupts disabled and preemption off
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* in order to insure that the setup succeeds in a deterministic time frame.
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* It will check if the interrupt setup succeeded.
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*/
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static int mmtimer_setup(int cpu, int comparator, unsigned long expires,
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u64 *set_completion_time)
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{
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switch (comparator) {
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case 0:
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mmtimer_setup_int_0(cpu, expires);
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break;
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case 1:
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mmtimer_setup_int_1(cpu, expires);
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break;
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case 2:
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mmtimer_setup_int_2(cpu, expires);
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break;
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}
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/* We might've missed our expiration time */
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*set_completion_time = rtc_time();
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if (*set_completion_time <= expires)
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return 1;
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/*
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* If an interrupt is already pending then its okay
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* if not then we failed
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*/
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return mmtimer_int_pending(comparator);
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}
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static int mmtimer_disable_int(long nasid, int comparator)
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{
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switch (comparator) {
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case 0:
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nasid == -1 ? HUB_S((u64 *)LOCAL_MMR_ADDR(SH_RTC1_INT_ENABLE),
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0UL) : REMOTE_HUB_S(nasid, SH_RTC1_INT_ENABLE, 0UL);
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break;
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case 1:
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nasid == -1 ? HUB_S((u64 *)LOCAL_MMR_ADDR(SH_RTC2_INT_ENABLE),
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0UL) : REMOTE_HUB_S(nasid, SH_RTC2_INT_ENABLE, 0UL);
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break;
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case 2:
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nasid == -1 ? HUB_S((u64 *)LOCAL_MMR_ADDR(SH_RTC3_INT_ENABLE),
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0UL) : REMOTE_HUB_S(nasid, SH_RTC3_INT_ENABLE, 0UL);
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break;
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default:
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return -EFAULT;
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}
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return 0;
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}
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#define COMPARATOR 1 /* The comparator to use */
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#define TIMER_OFF 0xbadcabLL /* Timer is not setup */
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#define TIMER_SET 0 /* Comparator is set for this timer */
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#define MMTIMER_INTERVAL_RETRY_INCREMENT_DEFAULT 40
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/* There is one of these for each timer */
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struct mmtimer {
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struct rb_node list;
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struct k_itimer *timer;
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int cpu;
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};
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struct mmtimer_node {
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spinlock_t lock ____cacheline_aligned;
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struct rb_root timer_head;
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struct rb_node *next;
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struct tasklet_struct tasklet;
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};
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static struct mmtimer_node *timers;
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static unsigned mmtimer_interval_retry_increment =
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MMTIMER_INTERVAL_RETRY_INCREMENT_DEFAULT;
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module_param(mmtimer_interval_retry_increment, uint, 0644);
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MODULE_PARM_DESC(mmtimer_interval_retry_increment,
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"RTC ticks to add to expiration on interval retry (default 40)");
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/*
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* Add a new mmtimer struct to the node's mmtimer list.
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* This function assumes the struct mmtimer_node is locked.
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*/
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static void mmtimer_add_list(struct mmtimer *n)
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{
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int nodeid = n->timer->it.mmtimer.node;
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unsigned long expires = n->timer->it.mmtimer.expires;
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struct rb_node **link = &timers[nodeid].timer_head.rb_node;
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struct rb_node *parent = NULL;
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struct mmtimer *x;
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/*
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* Find the right place in the rbtree:
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*/
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while (*link) {
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parent = *link;
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x = rb_entry(parent, struct mmtimer, list);
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if (expires < x->timer->it.mmtimer.expires)
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link = &(*link)->rb_left;
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else
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link = &(*link)->rb_right;
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}
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/*
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* Insert the timer to the rbtree and check whether it
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* replaces the first pending timer
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*/
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rb_link_node(&n->list, parent, link);
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rb_insert_color(&n->list, &timers[nodeid].timer_head);
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if (!timers[nodeid].next || expires < rb_entry(timers[nodeid].next,
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struct mmtimer, list)->timer->it.mmtimer.expires)
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timers[nodeid].next = &n->list;
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}
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/*
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* Set the comparator for the next timer.
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* This function assumes the struct mmtimer_node is locked.
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*/
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static void mmtimer_set_next_timer(int nodeid)
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{
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struct mmtimer_node *n = &timers[nodeid];
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struct mmtimer *x;
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struct k_itimer *t;
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u64 expires, exp, set_completion_time;
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int i;
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restart:
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if (n->next == NULL)
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return;
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x = rb_entry(n->next, struct mmtimer, list);
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t = x->timer;
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if (!t->it.mmtimer.incr) {
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/* Not an interval timer */
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if (!mmtimer_setup(x->cpu, COMPARATOR,
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t->it.mmtimer.expires,
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&set_completion_time)) {
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/* Late setup, fire now */
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tasklet_schedule(&n->tasklet);
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}
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return;
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}
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/* Interval timer */
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i = 0;
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expires = exp = t->it.mmtimer.expires;
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while (!mmtimer_setup(x->cpu, COMPARATOR, expires,
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&set_completion_time)) {
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int to;
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i++;
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expires = set_completion_time +
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mmtimer_interval_retry_increment + (1 << i);
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/* Calculate overruns as we go. */
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to = ((u64)(expires - exp) / t->it.mmtimer.incr);
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if (to) {
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t->it_overrun += to;
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t->it.mmtimer.expires += t->it.mmtimer.incr * to;
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exp = t->it.mmtimer.expires;
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}
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if (i > 20) {
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printk(KERN_ALERT "mmtimer: cannot reschedule timer\n");
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t->it.mmtimer.clock = TIMER_OFF;
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n->next = rb_next(&x->list);
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rb_erase(&x->list, &n->timer_head);
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kfree(x);
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goto restart;
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}
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}
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}
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/**
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* mmtimer_ioctl - ioctl interface for /dev/mmtimer
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* @file: file structure for the device
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* @cmd: command to execute
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* @arg: optional argument to command
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*
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* Executes the command specified by @cmd. Returns 0 for success, < 0 for
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* failure.
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*
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* Valid commands:
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*
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* %MMTIMER_GETOFFSET - Should return the offset (relative to the start
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* of the page where the registers are mapped) for the counter in question.
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*
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* %MMTIMER_GETRES - Returns the resolution of the clock in femto (10^-15)
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* seconds
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*
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* %MMTIMER_GETFREQ - Copies the frequency of the clock in Hz to the address
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* specified by @arg
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*
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* %MMTIMER_GETBITS - Returns the number of bits in the clock's counter
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*
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* %MMTIMER_MMAPAVAIL - Returns 1 if the registers can be mmap'd into userspace
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*
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* %MMTIMER_GETCOUNTER - Gets the current value in the counter and places it
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* in the address specified by @arg.
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*/
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static long mmtimer_ioctl(struct file *file, unsigned int cmd,
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unsigned long arg)
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{
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int ret = 0;
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mutex_lock(&mmtimer_mutex);
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switch (cmd) {
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case MMTIMER_GETOFFSET: /* offset of the counter */
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/*
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* SN RTC registers are on their own 64k page
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*/
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if(PAGE_SIZE <= (1 << 16))
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ret = (((long)RTC_COUNTER_ADDR) & (PAGE_SIZE-1)) / 8;
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else
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ret = -ENOSYS;
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break;
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case MMTIMER_GETRES: /* resolution of the clock in 10^-15 s */
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if(copy_to_user((unsigned long __user *)arg,
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&mmtimer_femtoperiod, sizeof(unsigned long)))
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ret = -EFAULT;
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break;
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case MMTIMER_GETFREQ: /* frequency in Hz */
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if(copy_to_user((unsigned long __user *)arg,
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&sn_rtc_cycles_per_second,
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sizeof(unsigned long)))
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ret = -EFAULT;
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break;
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case MMTIMER_GETBITS: /* number of bits in the clock */
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ret = RTC_BITS;
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break;
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case MMTIMER_MMAPAVAIL: /* can we mmap the clock into userspace? */
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ret = (PAGE_SIZE <= (1 << 16)) ? 1 : 0;
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break;
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case MMTIMER_GETCOUNTER:
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if(copy_to_user((unsigned long __user *)arg,
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RTC_COUNTER_ADDR, sizeof(unsigned long)))
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ret = -EFAULT;
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break;
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default:
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ret = -ENOTTY;
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break;
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}
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mutex_unlock(&mmtimer_mutex);
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return ret;
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}
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/**
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* mmtimer_mmap - maps the clock's registers into userspace
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* @file: file structure for the device
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* @vma: VMA to map the registers into
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*
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* Calls remap_pfn_range() to map the clock's registers into
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* the calling process' address space.
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*/
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static int mmtimer_mmap(struct file *file, struct vm_area_struct *vma)
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{
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unsigned long mmtimer_addr;
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if (vma->vm_end - vma->vm_start != PAGE_SIZE)
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return -EINVAL;
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if (vma->vm_flags & VM_WRITE)
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return -EPERM;
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if (PAGE_SIZE > (1 << 16))
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return -ENOSYS;
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vma->vm_page_prot = pgprot_noncached(vma->vm_page_prot);
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mmtimer_addr = __pa(RTC_COUNTER_ADDR);
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mmtimer_addr &= ~(PAGE_SIZE - 1);
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mmtimer_addr &= 0xfffffffffffffffUL;
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if (remap_pfn_range(vma, vma->vm_start, mmtimer_addr >> PAGE_SHIFT,
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PAGE_SIZE, vma->vm_page_prot)) {
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printk(KERN_ERR "remap_pfn_range failed in mmtimer.c\n");
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return -EAGAIN;
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}
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return 0;
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}
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static struct miscdevice mmtimer_miscdev = {
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SGI_MMTIMER,
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MMTIMER_NAME,
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&mmtimer_fops
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};
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static struct timespec sgi_clock_offset;
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static int sgi_clock_period;
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/*
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* Posix Timer Interface
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*/
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static struct timespec sgi_clock_offset;
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static int sgi_clock_period;
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static int sgi_clock_get(clockid_t clockid, struct timespec *tp)
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{
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u64 nsec;
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nsec = rtc_time() * sgi_clock_period
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+ sgi_clock_offset.tv_nsec;
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*tp = ns_to_timespec(nsec);
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tp->tv_sec += sgi_clock_offset.tv_sec;
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return 0;
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};
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static int sgi_clock_set(const clockid_t clockid, const struct timespec *tp)
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{
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u64 nsec;
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u32 rem;
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nsec = rtc_time() * sgi_clock_period;
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sgi_clock_offset.tv_sec = tp->tv_sec - div_u64_rem(nsec, NSEC_PER_SEC, &rem);
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if (rem <= tp->tv_nsec)
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sgi_clock_offset.tv_nsec = tp->tv_sec - rem;
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else {
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sgi_clock_offset.tv_nsec = tp->tv_sec + NSEC_PER_SEC - rem;
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sgi_clock_offset.tv_sec--;
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}
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return 0;
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}
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/**
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* mmtimer_interrupt - timer interrupt handler
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* @irq: irq received
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* @dev_id: device the irq came from
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*
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* Called when one of the comarators matches the counter, This
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* routine will send signals to processes that have requested
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* them.
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*
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* This interrupt is run in an interrupt context
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* by the SHUB. It is therefore safe to locally access SHub
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* registers.
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*/
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static irqreturn_t
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mmtimer_interrupt(int irq, void *dev_id)
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{
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unsigned long expires = 0;
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int result = IRQ_NONE;
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unsigned indx = cpu_to_node(smp_processor_id());
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struct mmtimer *base;
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spin_lock(&timers[indx].lock);
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base = rb_entry(timers[indx].next, struct mmtimer, list);
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if (base == NULL) {
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spin_unlock(&timers[indx].lock);
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return result;
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}
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if (base->cpu == smp_processor_id()) {
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if (base->timer)
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expires = base->timer->it.mmtimer.expires;
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/* expires test won't work with shared irqs */
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if ((mmtimer_int_pending(COMPARATOR) > 0) ||
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(expires && (expires <= rtc_time()))) {
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mmtimer_clr_int_pending(COMPARATOR);
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tasklet_schedule(&timers[indx].tasklet);
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result = IRQ_HANDLED;
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}
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}
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spin_unlock(&timers[indx].lock);
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return result;
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}
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static void mmtimer_tasklet(unsigned long data)
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{
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int nodeid = data;
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struct mmtimer_node *mn = &timers[nodeid];
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struct mmtimer *x;
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struct k_itimer *t;
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unsigned long flags;
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/* Send signal and deal with periodic signals */
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spin_lock_irqsave(&mn->lock, flags);
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if (!mn->next)
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goto out;
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x = rb_entry(mn->next, struct mmtimer, list);
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t = x->timer;
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if (t->it.mmtimer.clock == TIMER_OFF)
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goto out;
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t->it_overrun = 0;
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mn->next = rb_next(&x->list);
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rb_erase(&x->list, &mn->timer_head);
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if (posix_timer_event(t, 0) != 0)
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t->it_overrun++;
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if(t->it.mmtimer.incr) {
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t->it.mmtimer.expires += t->it.mmtimer.incr;
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mmtimer_add_list(x);
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} else {
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/* Ensure we don't false trigger in mmtimer_interrupt */
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t->it.mmtimer.clock = TIMER_OFF;
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t->it.mmtimer.expires = 0;
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kfree(x);
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}
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/* Set comparator for next timer, if there is one */
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mmtimer_set_next_timer(nodeid);
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t->it_overrun_last = t->it_overrun;
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out:
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spin_unlock_irqrestore(&mn->lock, flags);
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}
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static int sgi_timer_create(struct k_itimer *timer)
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{
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/* Insure that a newly created timer is off */
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timer->it.mmtimer.clock = TIMER_OFF;
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return 0;
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}
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/* This does not really delete a timer. It just insures
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* that the timer is not active
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*
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* Assumption: it_lock is already held with irq's disabled
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*/
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static int sgi_timer_del(struct k_itimer *timr)
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{
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cnodeid_t nodeid = timr->it.mmtimer.node;
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unsigned long irqflags;
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spin_lock_irqsave(&timers[nodeid].lock, irqflags);
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if (timr->it.mmtimer.clock != TIMER_OFF) {
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unsigned long expires = timr->it.mmtimer.expires;
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struct rb_node *n = timers[nodeid].timer_head.rb_node;
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struct mmtimer *uninitialized_var(t);
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int r = 0;
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timr->it.mmtimer.clock = TIMER_OFF;
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timr->it.mmtimer.expires = 0;
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while (n) {
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t = rb_entry(n, struct mmtimer, list);
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if (t->timer == timr)
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break;
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if (expires < t->timer->it.mmtimer.expires)
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n = n->rb_left;
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else
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n = n->rb_right;
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}
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if (!n) {
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spin_unlock_irqrestore(&timers[nodeid].lock, irqflags);
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return 0;
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}
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if (timers[nodeid].next == n) {
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timers[nodeid].next = rb_next(n);
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r = 1;
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}
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rb_erase(n, &timers[nodeid].timer_head);
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kfree(t);
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if (r) {
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mmtimer_disable_int(cnodeid_to_nasid(nodeid),
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COMPARATOR);
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mmtimer_set_next_timer(nodeid);
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}
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}
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spin_unlock_irqrestore(&timers[nodeid].lock, irqflags);
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return 0;
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}
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/* Assumption: it_lock is already held with irq's disabled */
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static void sgi_timer_get(struct k_itimer *timr, struct itimerspec *cur_setting)
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{
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if (timr->it.mmtimer.clock == TIMER_OFF) {
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cur_setting->it_interval.tv_nsec = 0;
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cur_setting->it_interval.tv_sec = 0;
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cur_setting->it_value.tv_nsec = 0;
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cur_setting->it_value.tv_sec =0;
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return;
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}
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cur_setting->it_interval = ns_to_timespec(timr->it.mmtimer.incr * sgi_clock_period);
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cur_setting->it_value = ns_to_timespec((timr->it.mmtimer.expires - rtc_time()) * sgi_clock_period);
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}
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static int sgi_timer_set(struct k_itimer *timr, int flags,
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struct itimerspec * new_setting,
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struct itimerspec * old_setting)
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{
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unsigned long when, period, irqflags;
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int err = 0;
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cnodeid_t nodeid;
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struct mmtimer *base;
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struct rb_node *n;
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if (old_setting)
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sgi_timer_get(timr, old_setting);
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sgi_timer_del(timr);
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when = timespec_to_ns(&new_setting->it_value);
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period = timespec_to_ns(&new_setting->it_interval);
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if (when == 0)
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/* Clear timer */
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return 0;
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base = kmalloc(sizeof(struct mmtimer), GFP_KERNEL);
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if (base == NULL)
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return -ENOMEM;
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if (flags & TIMER_ABSTIME) {
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struct timespec n;
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unsigned long now;
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getnstimeofday(&n);
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now = timespec_to_ns(&n);
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if (when > now)
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when -= now;
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else
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/* Fire the timer immediately */
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when = 0;
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}
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/*
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* Convert to sgi clock period. Need to keep rtc_time() as near as possible
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* to getnstimeofday() in order to be as faithful as possible to the time
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* specified.
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*/
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when = (when + sgi_clock_period - 1) / sgi_clock_period + rtc_time();
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period = (period + sgi_clock_period - 1) / sgi_clock_period;
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/*
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* We are allocating a local SHub comparator. If we would be moved to another
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* cpu then another SHub may be local to us. Prohibit that by switching off
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* preemption.
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*/
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preempt_disable();
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nodeid = cpu_to_node(smp_processor_id());
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/* Lock the node timer structure */
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spin_lock_irqsave(&timers[nodeid].lock, irqflags);
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base->timer = timr;
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base->cpu = smp_processor_id();
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timr->it.mmtimer.clock = TIMER_SET;
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timr->it.mmtimer.node = nodeid;
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timr->it.mmtimer.incr = period;
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timr->it.mmtimer.expires = when;
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n = timers[nodeid].next;
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/* Add the new struct mmtimer to node's timer list */
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mmtimer_add_list(base);
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if (timers[nodeid].next == n) {
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/* No need to reprogram comparator for now */
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spin_unlock_irqrestore(&timers[nodeid].lock, irqflags);
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preempt_enable();
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return err;
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}
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/* We need to reprogram the comparator */
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if (n)
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mmtimer_disable_int(cnodeid_to_nasid(nodeid), COMPARATOR);
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mmtimer_set_next_timer(nodeid);
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/* Unlock the node timer structure */
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spin_unlock_irqrestore(&timers[nodeid].lock, irqflags);
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preempt_enable();
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return err;
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}
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static int sgi_clock_getres(const clockid_t which_clock, struct timespec *tp)
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{
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tp->tv_sec = 0;
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tp->tv_nsec = sgi_clock_period;
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return 0;
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}
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static struct k_clock sgi_clock = {
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.clock_set = sgi_clock_set,
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.clock_get = sgi_clock_get,
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.clock_getres = sgi_clock_getres,
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.timer_create = sgi_timer_create,
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.timer_set = sgi_timer_set,
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.timer_del = sgi_timer_del,
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.timer_get = sgi_timer_get
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};
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/**
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* mmtimer_init - device initialization routine
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*
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* Does initial setup for the mmtimer device.
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*/
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static int __init mmtimer_init(void)
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{
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cnodeid_t node, maxn = -1;
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if (!ia64_platform_is("sn2"))
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return 0;
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/*
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* Sanity check the cycles/sec variable
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*/
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if (sn_rtc_cycles_per_second < 100000) {
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printk(KERN_ERR "%s: unable to determine clock frequency\n",
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MMTIMER_NAME);
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goto out1;
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}
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mmtimer_femtoperiod = ((unsigned long)1E15 + sn_rtc_cycles_per_second /
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2) / sn_rtc_cycles_per_second;
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if (request_irq(SGI_MMTIMER_VECTOR, mmtimer_interrupt, IRQF_PERCPU, MMTIMER_NAME, NULL)) {
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printk(KERN_WARNING "%s: unable to allocate interrupt.",
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MMTIMER_NAME);
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goto out1;
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}
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if (misc_register(&mmtimer_miscdev)) {
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printk(KERN_ERR "%s: failed to register device\n",
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MMTIMER_NAME);
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goto out2;
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}
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/* Get max numbered node, calculate slots needed */
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for_each_online_node(node) {
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maxn = node;
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}
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maxn++;
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/* Allocate list of node ptrs to mmtimer_t's */
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timers = kzalloc(sizeof(struct mmtimer_node)*maxn, GFP_KERNEL);
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if (!timers) {
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printk(KERN_ERR "%s: failed to allocate memory for device\n",
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MMTIMER_NAME);
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goto out3;
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}
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/* Initialize struct mmtimer's for each online node */
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for_each_online_node(node) {
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spin_lock_init(&timers[node].lock);
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tasklet_init(&timers[node].tasklet, mmtimer_tasklet,
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(unsigned long) node);
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}
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sgi_clock_period = NSEC_PER_SEC / sn_rtc_cycles_per_second;
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posix_timers_register_clock(CLOCK_SGI_CYCLE, &sgi_clock);
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printk(KERN_INFO "%s: v%s, %ld MHz\n", MMTIMER_DESC, MMTIMER_VERSION,
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sn_rtc_cycles_per_second/(unsigned long)1E6);
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return 0;
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out3:
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misc_deregister(&mmtimer_miscdev);
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out2:
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free_irq(SGI_MMTIMER_VECTOR, NULL);
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out1:
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return -1;
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}
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module_init(mmtimer_init);
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