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/*
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/*
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 * Copyright (C) 2001-2004 Jakub Jermar
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 * Copyright (c) 2001-2004 Jakub Jermar
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 * All rights reserved.
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 * All rights reserved.
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 *
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 *
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 * Redistribution and use in source and binary forms, with or without
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 * Redistribution and use in source and binary forms, with or without
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 * modification, are permitted provided that the following conditions
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 * modification, are permitted provided that the following conditions
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 * are met:
7
 * are met:
8
 *
8
 *
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 * - Redistributions of source code must retain the above copyright
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 * - Redistributions of source code must retain the above copyright
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 *   notice, this list of conditions and the following disclaimer.
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 *   notice, this list of conditions and the following disclaimer.
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 * - Redistributions in binary form must reproduce the above copyright
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 * - Redistributions in binary form must reproduce the above copyright
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 *   notice, this list of conditions and the following disclaimer in the
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 *   notice, this list of conditions and the following disclaimer in the
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 *   documentation and/or other materials provided with the distribution.
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 *   documentation and/or other materials provided with the distribution.
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 * - The name of the author may not be used to endorse or promote products
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 * - The name of the author may not be used to endorse or promote products
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 *   derived from this software without specific prior written permission.
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 *   derived from this software without specific prior written permission.
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 *
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 *
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 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
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 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
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 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
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 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
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 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
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 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
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 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
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 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
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 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
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 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
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 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
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 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
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 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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 */
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 */
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/** @addtogroup time
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/** @addtogroup time
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 * @{
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 * @{
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 */
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 */
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/**
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/**
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 * @file
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 * @file
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 * @brief   High-level clock interrupt handler.
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 * @brief   High-level clock interrupt handler.
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 *
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 *
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 * This file contains the clock() function which is the source
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 * This file contains the clock() function which is the source
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 * of preemption. It is also responsible for executing expired
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 * of preemption. It is also responsible for executing expired
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 * timeouts.
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 * timeouts.
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 */
40
 */
41
 
41
 
42
#include <time/clock.h>
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#include <time/clock.h>
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#include <time/timeout.h>
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#include <time/timeout.h>
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#include <arch/types.h>
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#include <arch/types.h>
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#include <config.h>
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#include <config.h>
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#include <synch/spinlock.h>
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#include <synch/spinlock.h>
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#include <synch/waitq.h>
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#include <synch/waitq.h>
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#include <func.h>
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#include <func.h>
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#include <proc/scheduler.h>
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#include <proc/scheduler.h>
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#include <cpu.h>
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#include <cpu.h>
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#include <arch.h>
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#include <arch.h>
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#include <adt/list.h>
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#include <adt/list.h>
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#include <atomic.h>
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#include <atomic.h>
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#include <proc/thread.h>
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#include <proc/thread.h>
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#include <sysinfo/sysinfo.h>
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#include <sysinfo/sysinfo.h>
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#include <arch/barrier.h>
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#include <arch/barrier.h>
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#include <mm/frame.h>
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#include <mm/frame.h>
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#include <ddi/ddi.h>
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#include <ddi/ddi.h>
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59
 
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/** Physical memory area of the real time clock. */
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/** Physical memory area of the real time clock. */
61
static parea_t clock_parea;
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static parea_t clock_parea;
62
 
62
 
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/* Pointers to public variables with time */
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/* Pointers to public variables with time */
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struct ptime {
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struct ptime {
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    unative_t seconds1;
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    unative_t seconds1;
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    unative_t useconds;
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    unative_t useconds;
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    unative_t seconds2;
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    unative_t seconds2;
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};
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};
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struct ptime *public_time;
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struct ptime *public_time;
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/* Variable holding fragment of second, so that we would update
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/* Variable holding fragment of second, so that we would update
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 * seconds correctly
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 * seconds correctly
72
 */
72
 */
73
static unative_t secfrag = 0;
73
static unative_t secfrag = 0;
74
 
74
 
75
/** Initialize realtime clock counter
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/** Initialize realtime clock counter
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 *
76
 *
77
 * The applications (and sometimes kernel) need to access accurate
77
 * The applications (and sometimes kernel) need to access accurate
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 * information about realtime data. We allocate 1 page with these
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 * information about realtime data. We allocate 1 page with these
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 * data and update it periodically.
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 * data and update it periodically.
80
 */
80
 */
81
void clock_counter_init(void)
81
void clock_counter_init(void)
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{
82
{
83
    void *faddr;
83
    void *faddr;
84
 
84
 
85
    faddr = frame_alloc(ONE_FRAME, FRAME_ATOMIC);
85
    faddr = frame_alloc(ONE_FRAME, FRAME_ATOMIC);
86
    if (!faddr)
86
    if (!faddr)
87
        panic("Cannot allocate page for clock");
87
        panic("Cannot allocate page for clock");
88
   
88
   
89
    public_time = (struct ptime *) PA2KA(faddr);
89
    public_time = (struct ptime *) PA2KA(faddr);
90
 
90
 
91
        /* TODO: We would need some arch dependent settings here */
91
        /* TODO: We would need some arch dependent settings here */
92
    public_time->seconds1 = 0;
92
    public_time->seconds1 = 0;
93
    public_time->seconds2 = 0;
93
    public_time->seconds2 = 0;
94
    public_time->useconds = 0;
94
    public_time->useconds = 0;
95
 
95
 
96
    clock_parea.pbase = (uintptr_t) faddr;
96
    clock_parea.pbase = (uintptr_t) faddr;
97
    clock_parea.vbase = (uintptr_t) public_time;
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    clock_parea.vbase = (uintptr_t) public_time;
98
    clock_parea.frames = 1;
98
    clock_parea.frames = 1;
99
    clock_parea.cacheable = true;
99
    clock_parea.cacheable = true;
100
    ddi_parea_register(&clock_parea);
100
    ddi_parea_register(&clock_parea);
101
 
101
 
102
    /*
102
    /*
103
     * Prepare information for the userspace so that it can successfully
103
     * Prepare information for the userspace so that it can successfully
104
     * physmem_map() the clock_parea.
104
     * physmem_map() the clock_parea.
105
     */
105
     */
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    sysinfo_set_item_val("clock.cacheable", NULL, (unative_t) true);
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    sysinfo_set_item_val("clock.cacheable", NULL, (unative_t) true);
107
    sysinfo_set_item_val("clock.fcolor", NULL, (unative_t)
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    sysinfo_set_item_val("clock.fcolor", NULL, (unative_t)
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        PAGE_COLOR(clock_parea.vbase));
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        PAGE_COLOR(clock_parea.vbase));
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    sysinfo_set_item_val("clock.faddr", NULL, (unative_t) faddr);
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    sysinfo_set_item_val("clock.faddr", NULL, (unative_t) faddr);
110
}
110
}
111
 
111
 
112
 
112
 
113
/** Update public counters
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/** Update public counters
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 *
114
 *
115
 * Update it only on first processor
115
 * Update it only on first processor
116
 * TODO: Do we really need so many write barriers?
116
 * TODO: Do we really need so many write barriers?
117
 */
117
 */
118
static void clock_update_counters(void)
118
static void clock_update_counters(void)
119
{
119
{
120
    if (CPU->id == 0) {
120
    if (CPU->id == 0) {
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        secfrag += 1000000/HZ;
121
        secfrag += 1000000/HZ;
122
        if (secfrag >= 1000000) {
122
        if (secfrag >= 1000000) {
123
            secfrag -= 1000000;
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            secfrag -= 1000000;
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            public_time->seconds1++;
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            public_time->seconds1++;
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            write_barrier();
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            write_barrier();
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            public_time->useconds = secfrag;
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            public_time->useconds = secfrag;
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            write_barrier();
127
            write_barrier();
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            public_time->seconds2 = public_time->seconds1;
128
            public_time->seconds2 = public_time->seconds1;
129
        } else
129
        } else
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            public_time->useconds += 1000000/HZ;
130
            public_time->useconds += 1000000/HZ;
131
    }
131
    }
132
}
132
}
133
 
133
 
134
/** Clock routine
134
/** Clock routine
135
 *
135
 *
136
 * Clock routine executed from clock interrupt handler
136
 * Clock routine executed from clock interrupt handler
137
 * (assuming interrupts_disable()'d). Runs expired timeouts
137
 * (assuming interrupts_disable()'d). Runs expired timeouts
138
 * and preemptive scheduling.
138
 * and preemptive scheduling.
139
 *
139
 *
140
 */
140
 */
141
void clock(void)
141
void clock(void)
142
{
142
{
143
    link_t *l;
143
    link_t *l;
144
    timeout_t *h;
144
    timeout_t *h;
145
    timeout_handler_t f;
145
    timeout_handler_t f;
146
    void *arg;
146
    void *arg;
147
    count_t missed_clock_ticks = CPU->missed_clock_ticks;
147
    count_t missed_clock_ticks = CPU->missed_clock_ticks;
148
    int i;
148
    int i;
149
 
149
 
150
    /*
150
    /*
151
     * To avoid lock ordering problems,
151
     * To avoid lock ordering problems,
152
     * run all expired timeouts as you visit them.
152
     * run all expired timeouts as you visit them.
153
     */
153
     */
154
    for (i = 0; i <= missed_clock_ticks; i++) {
154
    for (i = 0; i <= missed_clock_ticks; i++) {
155
        clock_update_counters();
155
        clock_update_counters();
156
        spinlock_lock(&CPU->timeoutlock);
156
        spinlock_lock(&CPU->timeoutlock);
157
        while ((l = CPU->timeout_active_head.next) != &CPU->timeout_active_head) {
157
        while ((l = CPU->timeout_active_head.next) != &CPU->timeout_active_head) {
158
            h = list_get_instance(l, timeout_t, link);
158
            h = list_get_instance(l, timeout_t, link);
159
            spinlock_lock(&h->lock);
159
            spinlock_lock(&h->lock);
160
            if (h->ticks-- != 0) {
160
            if (h->ticks-- != 0) {
161
                spinlock_unlock(&h->lock);
161
                spinlock_unlock(&h->lock);
162
                break;
162
                break;
163
            }
163
            }
164
            list_remove(l);
164
            list_remove(l);
165
            f = h->handler;
165
            f = h->handler;
166
            arg = h->arg;
166
            arg = h->arg;
167
            timeout_reinitialize(h);
167
            timeout_reinitialize(h);
168
            spinlock_unlock(&h->lock); 
168
            spinlock_unlock(&h->lock); 
169
            spinlock_unlock(&CPU->timeoutlock);
169
            spinlock_unlock(&CPU->timeoutlock);
170
 
170
 
171
            f(arg);
171
            f(arg);
172
 
172
 
173
            spinlock_lock(&CPU->timeoutlock);
173
            spinlock_lock(&CPU->timeoutlock);
174
        }
174
        }
175
        spinlock_unlock(&CPU->timeoutlock);
175
        spinlock_unlock(&CPU->timeoutlock);
176
    }
176
    }
177
    CPU->missed_clock_ticks = 0;
177
    CPU->missed_clock_ticks = 0;
178
 
178
 
179
    /*
179
    /*
180
     * Do CPU usage accounting and find out whether to preempt THREAD.
180
     * Do CPU usage accounting and find out whether to preempt THREAD.
181
     */
181
     */
182
 
182
 
183
    if (THREAD) {
183
    if (THREAD) {
184
        uint64_t ticks;
184
        uint64_t ticks;
185
       
185
       
186
        spinlock_lock(&CPU->lock);
186
        spinlock_lock(&CPU->lock);
187
        CPU->needs_relink += 1 + missed_clock_ticks;
187
        CPU->needs_relink += 1 + missed_clock_ticks;
188
        spinlock_unlock(&CPU->lock);   
188
        spinlock_unlock(&CPU->lock);   
189
   
189
   
190
        spinlock_lock(&THREAD->lock);
190
        spinlock_lock(&THREAD->lock);
191
        if ((ticks = THREAD->ticks)) {
191
        if ((ticks = THREAD->ticks)) {
192
            if (ticks >= 1 + missed_clock_ticks)
192
            if (ticks >= 1 + missed_clock_ticks)
193
                THREAD->ticks -= 1 + missed_clock_ticks;
193
                THREAD->ticks -= 1 + missed_clock_ticks;
194
            else
194
            else
195
                THREAD->ticks = 0;
195
                THREAD->ticks = 0;
196
        }
196
        }
197
        spinlock_unlock(&THREAD->lock);
197
        spinlock_unlock(&THREAD->lock);
198
       
198
       
199
        if (!ticks && !PREEMPTION_DISABLED) {
199
        if (!ticks && !PREEMPTION_DISABLED) {
200
            scheduler();
200
            scheduler();
201
        }
201
        }
202
    }
202
    }
203
 
203
 
204
}
204
}
205
 
205
 
206
/** @}
206
/** @}
207
 */
207
 */
208
 
208