4 * Copyright (c) 2003-2008 Fabrice Bellard
6 * Permission is hereby granted, free of charge, to any person obtaining a copy
7 * of this software and associated documentation files (the "Software"), to deal
8 * in the Software without restriction, including without limitation the rights
9 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
10 * copies of the Software, and to permit persons to whom the Software is
11 * furnished to do so, subject to the following conditions:
13 * The above copyright notice and this permission notice shall be included in
14 * all copies or substantial portions of the Software.
16 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
19 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
20 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
21 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
39 #include <sys/param.h>
43 #include <sys/ioctl.h>
44 #include <linux/rtc.h>
45 /* For the benefit of older linux systems which don't supply it,
46 we use a local copy of hpet.h. */
47 /* #include <linux/hpet.h> */
56 #include "qemu-timer.h"
58 /* Conversion factor from emulated instructions to virtual clock ticks. */
59 int icount_time_shift
;
60 /* Arbitrarily pick 1MIPS as the minimum allowable speed. */
61 #define MAX_ICOUNT_SHIFT 10
62 /* Compensate for varying guest execution speed. */
63 int64_t qemu_icount_bias
;
64 static QEMUTimer
*icount_rt_timer
;
65 static QEMUTimer
*icount_vm_timer
;
67 /***********************************************************/
68 /* guest cycle counter */
70 typedef struct TimersState
{
71 int64_t cpu_ticks_prev
;
72 int64_t cpu_ticks_offset
;
73 int64_t cpu_clock_offset
;
74 int32_t cpu_ticks_enabled
;
78 TimersState timers_state
;
80 /* return the host CPU cycle counter and handle stop/restart */
81 int64_t cpu_get_ticks(void)
84 return cpu_get_icount();
86 if (!timers_state
.cpu_ticks_enabled
) {
87 return timers_state
.cpu_ticks_offset
;
90 ticks
= cpu_get_real_ticks();
91 if (timers_state
.cpu_ticks_prev
> ticks
) {
92 /* Note: non increasing ticks may happen if the host uses
94 timers_state
.cpu_ticks_offset
+= timers_state
.cpu_ticks_prev
- ticks
;
96 timers_state
.cpu_ticks_prev
= ticks
;
97 return ticks
+ timers_state
.cpu_ticks_offset
;
101 /* return the host CPU monotonic timer and handle stop/restart */
102 static int64_t cpu_get_clock(void)
105 if (!timers_state
.cpu_ticks_enabled
) {
106 return timers_state
.cpu_clock_offset
;
109 return ti
+ timers_state
.cpu_clock_offset
;
113 static int64_t qemu_icount_delta(void)
115 if (use_icount
== 1) {
116 /* When not using an adaptive execution frequency
117 we tend to get badly out of sync with real time,
118 so just delay for a reasonable amount of time. */
121 return cpu_get_icount() - cpu_get_clock();
125 /* enable cpu_get_ticks() */
126 void cpu_enable_ticks(void)
128 if (!timers_state
.cpu_ticks_enabled
) {
129 timers_state
.cpu_ticks_offset
-= cpu_get_real_ticks();
130 timers_state
.cpu_clock_offset
-= get_clock();
131 timers_state
.cpu_ticks_enabled
= 1;
135 /* disable cpu_get_ticks() : the clock is stopped. You must not call
136 cpu_get_ticks() after that. */
137 void cpu_disable_ticks(void)
139 if (timers_state
.cpu_ticks_enabled
) {
140 timers_state
.cpu_ticks_offset
= cpu_get_ticks();
141 timers_state
.cpu_clock_offset
= cpu_get_clock();
142 timers_state
.cpu_ticks_enabled
= 0;
146 /***********************************************************/
149 #define QEMU_CLOCK_REALTIME 0
150 #define QEMU_CLOCK_VIRTUAL 1
151 #define QEMU_CLOCK_HOST 2
156 /* XXX: add frequency */
164 struct QEMUTimer
*next
;
167 struct qemu_alarm_timer
{
169 int (*start
)(struct qemu_alarm_timer
*t
);
170 void (*stop
)(struct qemu_alarm_timer
*t
);
171 void (*rearm
)(struct qemu_alarm_timer
*t
);
178 static struct qemu_alarm_timer
*alarm_timer
;
180 int qemu_alarm_pending(void)
182 return alarm_timer
->pending
;
185 static inline int alarm_has_dynticks(struct qemu_alarm_timer
*t
)
190 static void qemu_rearm_alarm_timer(struct qemu_alarm_timer
*t
)
192 if (!alarm_has_dynticks(t
))
198 /* TODO: MIN_TIMER_REARM_NS should be optimized */
199 #define MIN_TIMER_REARM_NS 250000
203 static int win32_start_timer(struct qemu_alarm_timer
*t
);
204 static void win32_stop_timer(struct qemu_alarm_timer
*t
);
205 static void win32_rearm_timer(struct qemu_alarm_timer
*t
);
209 static int unix_start_timer(struct qemu_alarm_timer
*t
);
210 static void unix_stop_timer(struct qemu_alarm_timer
*t
);
214 static int dynticks_start_timer(struct qemu_alarm_timer
*t
);
215 static void dynticks_stop_timer(struct qemu_alarm_timer
*t
);
216 static void dynticks_rearm_timer(struct qemu_alarm_timer
*t
);
218 static int hpet_start_timer(struct qemu_alarm_timer
*t
);
219 static void hpet_stop_timer(struct qemu_alarm_timer
*t
);
221 static int rtc_start_timer(struct qemu_alarm_timer
*t
);
222 static void rtc_stop_timer(struct qemu_alarm_timer
*t
);
224 #endif /* __linux__ */
228 /* Correlation between real and virtual time is always going to be
229 fairly approximate, so ignore small variation.
230 When the guest is idle real and virtual time will be aligned in
232 #define ICOUNT_WOBBLE (get_ticks_per_sec() / 10)
234 static void icount_adjust(void)
239 static int64_t last_delta
;
240 /* If the VM is not running, then do nothing. */
244 cur_time
= cpu_get_clock();
245 cur_icount
= qemu_get_clock(vm_clock
);
246 delta
= cur_icount
- cur_time
;
247 /* FIXME: This is a very crude algorithm, somewhat prone to oscillation. */
249 && last_delta
+ ICOUNT_WOBBLE
< delta
* 2
250 && icount_time_shift
> 0) {
251 /* The guest is getting too far ahead. Slow time down. */
255 && last_delta
- ICOUNT_WOBBLE
> delta
* 2
256 && icount_time_shift
< MAX_ICOUNT_SHIFT
) {
257 /* The guest is getting too far behind. Speed time up. */
261 qemu_icount_bias
= cur_icount
- (qemu_icount
<< icount_time_shift
);
264 static void icount_adjust_rt(void * opaque
)
266 qemu_mod_timer(icount_rt_timer
,
267 qemu_get_clock(rt_clock
) + 1000);
271 static void icount_adjust_vm(void * opaque
)
273 qemu_mod_timer(icount_vm_timer
,
274 qemu_get_clock(vm_clock
) + get_ticks_per_sec() / 10);
278 int64_t qemu_icount_round(int64_t count
)
280 return (count
+ (1 << icount_time_shift
) - 1) >> icount_time_shift
;
283 static struct qemu_alarm_timer alarm_timers
[] = {
286 {"dynticks", dynticks_start_timer
,
287 dynticks_stop_timer
, dynticks_rearm_timer
, NULL
},
288 /* HPET - if available - is preferred */
289 {"hpet", hpet_start_timer
, hpet_stop_timer
, NULL
, NULL
},
290 /* ...otherwise try RTC */
291 {"rtc", rtc_start_timer
, rtc_stop_timer
, NULL
, NULL
},
293 {"unix", unix_start_timer
, unix_stop_timer
, NULL
, NULL
},
295 {"dynticks", win32_start_timer
,
296 win32_stop_timer
, win32_rearm_timer
, NULL
},
297 {"win32", win32_start_timer
,
298 win32_stop_timer
, NULL
, NULL
},
303 static void show_available_alarms(void)
307 printf("Available alarm timers, in order of precedence:\n");
308 for (i
= 0; alarm_timers
[i
].name
; i
++)
309 printf("%s\n", alarm_timers
[i
].name
);
312 void configure_alarms(char const *opt
)
316 int count
= ARRAY_SIZE(alarm_timers
) - 1;
319 struct qemu_alarm_timer tmp
;
321 if (!strcmp(opt
, "?")) {
322 show_available_alarms();
326 arg
= qemu_strdup(opt
);
328 /* Reorder the array */
329 name
= strtok(arg
, ",");
331 for (i
= 0; i
< count
&& alarm_timers
[i
].name
; i
++) {
332 if (!strcmp(alarm_timers
[i
].name
, name
))
337 fprintf(stderr
, "Unknown clock %s\n", name
);
346 tmp
= alarm_timers
[i
];
347 alarm_timers
[i
] = alarm_timers
[cur
];
348 alarm_timers
[cur
] = tmp
;
352 name
= strtok(NULL
, ",");
358 /* Disable remaining timers */
359 for (i
= cur
; i
< count
; i
++)
360 alarm_timers
[i
].name
= NULL
;
362 show_available_alarms();
367 #define QEMU_NUM_CLOCKS 3
371 QEMUClock
*host_clock
;
373 static QEMUTimer
*active_timers
[QEMU_NUM_CLOCKS
];
375 static QEMUClock
*qemu_new_clock(int type
)
378 clock
= qemu_mallocz(sizeof(QEMUClock
));
384 void qemu_clock_enable(QEMUClock
*clock
, int enabled
)
386 clock
->enabled
= enabled
;
389 QEMUTimer
*qemu_new_timer(QEMUClock
*clock
, QEMUTimerCB
*cb
, void *opaque
)
393 ts
= qemu_mallocz(sizeof(QEMUTimer
));
400 void qemu_free_timer(QEMUTimer
*ts
)
405 /* stop a timer, but do not dealloc it */
406 void qemu_del_timer(QEMUTimer
*ts
)
410 /* NOTE: this code must be signal safe because
411 qemu_timer_expired() can be called from a signal. */
412 pt
= &active_timers
[ts
->clock
->type
];
425 /* modify the current timer so that it will be fired when current_time
426 >= expire_time. The corresponding callback will be called. */
427 void qemu_mod_timer(QEMUTimer
*ts
, int64_t expire_time
)
433 /* add the timer in the sorted list */
434 /* NOTE: this code must be signal safe because
435 qemu_timer_expired() can be called from a signal. */
436 pt
= &active_timers
[ts
->clock
->type
];
441 if (t
->expire_time
> expire_time
)
445 ts
->expire_time
= expire_time
;
449 /* Rearm if necessary */
450 if (pt
== &active_timers
[ts
->clock
->type
]) {
451 if (!alarm_timer
->pending
) {
452 qemu_rearm_alarm_timer(alarm_timer
);
454 /* Interrupt execution to force deadline recalculation. */
460 int qemu_timer_pending(QEMUTimer
*ts
)
463 for(t
= active_timers
[ts
->clock
->type
]; t
!= NULL
; t
= t
->next
) {
470 int qemu_timer_expired(QEMUTimer
*timer_head
, int64_t current_time
)
474 return (timer_head
->expire_time
<= current_time
);
477 static void qemu_run_timers(QEMUClock
*clock
)
479 QEMUTimer
**ptimer_head
, *ts
;
480 int64_t current_time
;
485 current_time
= qemu_get_clock (clock
);
486 ptimer_head
= &active_timers
[clock
->type
];
489 if (!ts
|| ts
->expire_time
> current_time
)
491 /* remove timer from the list before calling the callback */
492 *ptimer_head
= ts
->next
;
495 /* run the callback (the timer list can be modified) */
500 int64_t qemu_get_clock(QEMUClock
*clock
)
502 switch(clock
->type
) {
503 case QEMU_CLOCK_REALTIME
:
504 return get_clock() / 1000000;
506 case QEMU_CLOCK_VIRTUAL
:
508 return cpu_get_icount();
510 return cpu_get_clock();
512 case QEMU_CLOCK_HOST
:
513 return get_clock_realtime();
517 int64_t qemu_get_clock_ns(QEMUClock
*clock
)
519 switch(clock
->type
) {
520 case QEMU_CLOCK_REALTIME
:
523 case QEMU_CLOCK_VIRTUAL
:
525 return cpu_get_icount();
527 return cpu_get_clock();
529 case QEMU_CLOCK_HOST
:
530 return get_clock_realtime();
534 void init_clocks(void)
536 rt_clock
= qemu_new_clock(QEMU_CLOCK_REALTIME
);
537 vm_clock
= qemu_new_clock(QEMU_CLOCK_VIRTUAL
);
538 host_clock
= qemu_new_clock(QEMU_CLOCK_HOST
);
540 rtc_clock
= host_clock
;
544 void qemu_put_timer(QEMUFile
*f
, QEMUTimer
*ts
)
546 uint64_t expire_time
;
548 if (qemu_timer_pending(ts
)) {
549 expire_time
= ts
->expire_time
;
553 qemu_put_be64(f
, expire_time
);
556 void qemu_get_timer(QEMUFile
*f
, QEMUTimer
*ts
)
558 uint64_t expire_time
;
560 expire_time
= qemu_get_be64(f
);
561 if (expire_time
!= -1) {
562 qemu_mod_timer(ts
, expire_time
);
568 static const VMStateDescription vmstate_timers
= {
571 .minimum_version_id
= 1,
572 .minimum_version_id_old
= 1,
573 .fields
= (VMStateField
[]) {
574 VMSTATE_INT64(cpu_ticks_offset
, TimersState
),
575 VMSTATE_INT64(dummy
, TimersState
),
576 VMSTATE_INT64_V(cpu_clock_offset
, TimersState
, 2),
577 VMSTATE_END_OF_LIST()
581 void configure_icount(const char *option
)
583 vmstate_register(NULL
, 0, &vmstate_timers
, &timers_state
);
587 if (strcmp(option
, "auto") != 0) {
588 icount_time_shift
= strtol(option
, NULL
, 0);
595 /* 125MIPS seems a reasonable initial guess at the guest speed.
596 It will be corrected fairly quickly anyway. */
597 icount_time_shift
= 3;
599 /* Have both realtime and virtual time triggers for speed adjustment.
600 The realtime trigger catches emulated time passing too slowly,
601 the virtual time trigger catches emulated time passing too fast.
602 Realtime triggers occur even when idle, so use them less frequently
604 icount_rt_timer
= qemu_new_timer(rt_clock
, icount_adjust_rt
, NULL
);
605 qemu_mod_timer(icount_rt_timer
,
606 qemu_get_clock(rt_clock
) + 1000);
607 icount_vm_timer
= qemu_new_timer(vm_clock
, icount_adjust_vm
, NULL
);
608 qemu_mod_timer(icount_vm_timer
,
609 qemu_get_clock(vm_clock
) + get_ticks_per_sec() / 10);
612 void qemu_run_all_timers(void)
614 alarm_timer
->pending
= 0;
616 /* rearm timer, if not periodic */
617 if (alarm_timer
->expired
) {
618 alarm_timer
->expired
= 0;
619 qemu_rearm_alarm_timer(alarm_timer
);
624 qemu_run_timers(vm_clock
);
627 qemu_run_timers(rt_clock
);
628 qemu_run_timers(host_clock
);
631 static int64_t qemu_next_alarm_deadline(void);
634 static void CALLBACK
host_alarm_handler(PVOID lpParam
, BOOLEAN unused
)
636 static void host_alarm_handler(int host_signum
)
639 struct qemu_alarm_timer
*t
= alarm_timer
;
644 #define DISP_FREQ 1000
646 static int64_t delta_min
= INT64_MAX
;
647 static int64_t delta_max
, delta_cum
, last_clock
, delta
, ti
;
649 ti
= qemu_get_clock(vm_clock
);
650 if (last_clock
!= 0) {
651 delta
= ti
- last_clock
;
652 if (delta
< delta_min
)
654 if (delta
> delta_max
)
657 if (++count
== DISP_FREQ
) {
658 printf("timer: min=%" PRId64
" us max=%" PRId64
" us avg=%" PRId64
" us avg_freq=%0.3f Hz\n",
659 muldiv64(delta_min
, 1000000, get_ticks_per_sec()),
660 muldiv64(delta_max
, 1000000, get_ticks_per_sec()),
661 muldiv64(delta_cum
, 1000000 / DISP_FREQ
, get_ticks_per_sec()),
662 (double)get_ticks_per_sec() / ((double)delta_cum
/ DISP_FREQ
));
664 delta_min
= INT64_MAX
;
672 if (alarm_has_dynticks(t
) ||
673 qemu_next_alarm_deadline () <= 0) {
674 t
->expired
= alarm_has_dynticks(t
);
680 int64_t qemu_next_deadline(void)
682 /* To avoid problems with overflow limit this to 2^32. */
683 int64_t delta
= INT32_MAX
;
685 if (active_timers
[QEMU_CLOCK_VIRTUAL
]) {
686 delta
= active_timers
[QEMU_CLOCK_VIRTUAL
]->expire_time
-
687 qemu_get_clock_ns(vm_clock
);
689 if (active_timers
[QEMU_CLOCK_HOST
]) {
690 int64_t hdelta
= active_timers
[QEMU_CLOCK_HOST
]->expire_time
-
691 qemu_get_clock_ns(host_clock
);
702 static int64_t qemu_next_alarm_deadline(void)
707 if (!use_icount
&& active_timers
[QEMU_CLOCK_VIRTUAL
]) {
708 delta
= active_timers
[QEMU_CLOCK_VIRTUAL
]->expire_time
-
709 qemu_get_clock(vm_clock
);
713 if (active_timers
[QEMU_CLOCK_HOST
]) {
714 int64_t hdelta
= active_timers
[QEMU_CLOCK_HOST
]->expire_time
-
715 qemu_get_clock_ns(host_clock
);
719 if (active_timers
[QEMU_CLOCK_REALTIME
]) {
720 rtdelta
= (active_timers
[QEMU_CLOCK_REALTIME
]->expire_time
* 1000000 -
721 qemu_get_clock_ns(rt_clock
));
729 #if defined(__linux__)
731 #define RTC_FREQ 1024
733 static void enable_sigio_timer(int fd
)
735 struct sigaction act
;
738 sigfillset(&act
.sa_mask
);
740 act
.sa_handler
= host_alarm_handler
;
742 sigaction(SIGIO
, &act
, NULL
);
743 fcntl_setfl(fd
, O_ASYNC
);
744 fcntl(fd
, F_SETOWN
, getpid());
747 static int hpet_start_timer(struct qemu_alarm_timer
*t
)
749 struct hpet_info info
;
752 fd
= qemu_open("/dev/hpet", O_RDONLY
);
757 r
= ioctl(fd
, HPET_IRQFREQ
, RTC_FREQ
);
759 fprintf(stderr
, "Could not configure '/dev/hpet' to have a 1024Hz timer. This is not a fatal\n"
760 "error, but for better emulation accuracy type:\n"
761 "'echo 1024 > /proc/sys/dev/hpet/max-user-freq' as root.\n");
765 /* Check capabilities */
766 r
= ioctl(fd
, HPET_INFO
, &info
);
770 /* Enable periodic mode */
771 r
= ioctl(fd
, HPET_EPI
, 0);
772 if (info
.hi_flags
&& (r
< 0))
775 /* Enable interrupt */
776 r
= ioctl(fd
, HPET_IE_ON
, 0);
780 enable_sigio_timer(fd
);
781 t
->priv
= (void *)(long)fd
;
789 static void hpet_stop_timer(struct qemu_alarm_timer
*t
)
791 int fd
= (long)t
->priv
;
796 static int rtc_start_timer(struct qemu_alarm_timer
*t
)
799 unsigned long current_rtc_freq
= 0;
801 TFR(rtc_fd
= qemu_open("/dev/rtc", O_RDONLY
));
804 ioctl(rtc_fd
, RTC_IRQP_READ
, ¤t_rtc_freq
);
805 if (current_rtc_freq
!= RTC_FREQ
&&
806 ioctl(rtc_fd
, RTC_IRQP_SET
, RTC_FREQ
) < 0) {
807 fprintf(stderr
, "Could not configure '/dev/rtc' to have a 1024 Hz timer. This is not a fatal\n"
808 "error, but for better emulation accuracy either use a 2.6 host Linux kernel or\n"
809 "type 'echo 1024 > /proc/sys/dev/rtc/max-user-freq' as root.\n");
812 if (ioctl(rtc_fd
, RTC_PIE_ON
, 0) < 0) {
818 enable_sigio_timer(rtc_fd
);
820 t
->priv
= (void *)(long)rtc_fd
;
825 static void rtc_stop_timer(struct qemu_alarm_timer
*t
)
827 int rtc_fd
= (long)t
->priv
;
832 static int dynticks_start_timer(struct qemu_alarm_timer
*t
)
836 struct sigaction act
;
838 sigfillset(&act
.sa_mask
);
840 act
.sa_handler
= host_alarm_handler
;
842 sigaction(SIGALRM
, &act
, NULL
);
845 * Initialize ev struct to 0 to avoid valgrind complaining
846 * about uninitialized data in timer_create call
848 memset(&ev
, 0, sizeof(ev
));
849 ev
.sigev_value
.sival_int
= 0;
850 ev
.sigev_notify
= SIGEV_SIGNAL
;
851 ev
.sigev_signo
= SIGALRM
;
853 if (timer_create(CLOCK_REALTIME
, &ev
, &host_timer
)) {
854 perror("timer_create");
856 /* disable dynticks */
857 fprintf(stderr
, "Dynamic Ticks disabled\n");
862 t
->priv
= (void *)(long)host_timer
;
867 static void dynticks_stop_timer(struct qemu_alarm_timer
*t
)
869 timer_t host_timer
= (timer_t
)(long)t
->priv
;
871 timer_delete(host_timer
);
874 static void dynticks_rearm_timer(struct qemu_alarm_timer
*t
)
876 timer_t host_timer
= (timer_t
)(long)t
->priv
;
877 struct itimerspec timeout
;
878 int64_t nearest_delta_ns
= INT64_MAX
;
881 assert(alarm_has_dynticks(t
));
882 if (!active_timers
[QEMU_CLOCK_REALTIME
] &&
883 !active_timers
[QEMU_CLOCK_VIRTUAL
] &&
884 !active_timers
[QEMU_CLOCK_HOST
])
887 nearest_delta_ns
= qemu_next_alarm_deadline();
888 if (nearest_delta_ns
< MIN_TIMER_REARM_NS
)
889 nearest_delta_ns
= MIN_TIMER_REARM_NS
;
891 /* check whether a timer is already running */
892 if (timer_gettime(host_timer
, &timeout
)) {
894 fprintf(stderr
, "Internal timer error: aborting\n");
897 current_ns
= timeout
.it_value
.tv_sec
* 1000000000LL + timeout
.it_value
.tv_nsec
;
898 if (current_ns
&& current_ns
<= nearest_delta_ns
)
901 timeout
.it_interval
.tv_sec
= 0;
902 timeout
.it_interval
.tv_nsec
= 0; /* 0 for one-shot timer */
903 timeout
.it_value
.tv_sec
= nearest_delta_ns
/ 1000000000;
904 timeout
.it_value
.tv_nsec
= nearest_delta_ns
% 1000000000;
905 if (timer_settime(host_timer
, 0 /* RELATIVE */, &timeout
, NULL
)) {
907 fprintf(stderr
, "Internal timer error: aborting\n");
912 #endif /* defined(__linux__) */
916 static int unix_start_timer(struct qemu_alarm_timer
*t
)
918 struct sigaction act
;
919 struct itimerval itv
;
923 sigfillset(&act
.sa_mask
);
925 act
.sa_handler
= host_alarm_handler
;
927 sigaction(SIGALRM
, &act
, NULL
);
929 itv
.it_interval
.tv_sec
= 0;
930 /* for i386 kernel 2.6 to get 1 ms */
931 itv
.it_interval
.tv_usec
= 999;
932 itv
.it_value
.tv_sec
= 0;
933 itv
.it_value
.tv_usec
= 10 * 1000;
935 err
= setitimer(ITIMER_REAL
, &itv
, NULL
);
942 static void unix_stop_timer(struct qemu_alarm_timer
*t
)
944 struct itimerval itv
;
946 memset(&itv
, 0, sizeof(itv
));
947 setitimer(ITIMER_REAL
, &itv
, NULL
);
950 #endif /* !defined(_WIN32) */
955 static int win32_start_timer(struct qemu_alarm_timer
*t
)
960 /* If you call ChangeTimerQueueTimer on a one-shot timer (its period
961 is zero) that has already expired, the timer is not updated. Since
962 creating a new timer is relatively expensive, set a bogus one-hour
963 interval in the dynticks case. */
964 success
= CreateTimerQueueTimer(&hTimer
,
969 alarm_has_dynticks(t
) ? 3600000 : 1,
970 WT_EXECUTEINTIMERTHREAD
);
973 fprintf(stderr
, "Failed to initialize win32 alarm timer: %ld\n",
978 t
->priv
= (PVOID
) hTimer
;
982 static void win32_stop_timer(struct qemu_alarm_timer
*t
)
984 HANDLE hTimer
= t
->priv
;
987 DeleteTimerQueueTimer(NULL
, hTimer
, NULL
);
991 static void win32_rearm_timer(struct qemu_alarm_timer
*t
)
993 HANDLE hTimer
= t
->priv
;
994 int nearest_delta_ms
;
997 assert(alarm_has_dynticks(t
));
998 if (!active_timers
[QEMU_CLOCK_REALTIME
] &&
999 !active_timers
[QEMU_CLOCK_VIRTUAL
] &&
1000 !active_timers
[QEMU_CLOCK_HOST
])
1003 nearest_delta_ms
= (qemu_next_alarm_deadline() + 999999) / 1000000;
1004 if (nearest_delta_ms
< 1) {
1005 nearest_delta_ms
= 1;
1007 success
= ChangeTimerQueueTimer(NULL
,
1013 fprintf(stderr
, "Failed to rearm win32 alarm timer: %ld\n",
1022 static void alarm_timer_on_change_state_rearm(void *opaque
, int running
, int reason
)
1025 qemu_rearm_alarm_timer((struct qemu_alarm_timer
*) opaque
);
1028 int init_timer_alarm(void)
1030 struct qemu_alarm_timer
*t
= NULL
;
1033 for (i
= 0; alarm_timers
[i
].name
; i
++) {
1034 t
= &alarm_timers
[i
];
1046 /* first event is at time 0 */
1049 qemu_add_vm_change_state_handler(alarm_timer_on_change_state_rearm
, t
);
1057 void quit_timers(void)
1059 struct qemu_alarm_timer
*t
= alarm_timer
;
1064 int qemu_calculate_timeout(void)
1070 /* When using icount, making forward progress with qemu_icount when the
1071 guest CPU is idle is critical. We only use the static io-thread timeout
1072 for non icount runs. */
1073 if (!use_icount
|| !vm_running
) {
1077 /* Advance virtual time to the next event. */
1078 delta
= qemu_icount_delta();
1080 /* If virtual time is ahead of real time then just
1082 timeout
= (delta
+ 999999) / 1000000;
1084 /* Wait for either IO to occur or the next
1086 add
= qemu_next_deadline();
1087 /* We advance the timer before checking for IO.
1088 Limit the amount we advance so that early IO
1089 activity won't get the guest too far ahead. */
1093 qemu_icount
+= qemu_icount_round (add
);
1094 timeout
= delta
/ 1000000;