err = rtc->ops->set_time(rtc->dev.parent,
&new);
}
- }
- else
+ } else {
err = -EINVAL;
+ }
mutex_unlock(&rtc->ops_lock);
/* A timer might have just expired */
err = mutex_lock_interruptible(&rtc->ops_lock);
if (err)
return err;
- if (rtc->aie_timer.enabled) {
+ if (rtc->aie_timer.enabled)
rtc_timer_remove(rtc, &rtc->aie_timer);
- }
+
rtc->aie_timer.node.expires = rtc_tm_to_ktime(alarm->time);
rtc->aie_timer.period = ktime_set(0, 0);
- if (alarm->enabled) {
+ if (alarm->enabled)
err = rtc_timer_enqueue(rtc, &rtc->aie_timer);
- }
+
mutex_unlock(&rtc->ops_lock);
return err;
}
*
* Kernel interface to initializing an rtc_timer.
*/
-void rtc_timer_init(struct rtc_timer *timer, void (*f)(void* p), void* data)
+void rtc_timer_init(struct rtc_timer *timer, void (*f)(void *p), void *data)
{
timerqueue_init(&timer->node);
timer->enabled = 0;
*
* Kernel interface to set an rtc_timer
*/
-int rtc_timer_start(struct rtc_device *rtc, struct rtc_timer* timer,
+int rtc_timer_start(struct rtc_device *rtc, struct rtc_timer *timer,
ktime_t expires, ktime_t period)
{
int ret = 0;
*
* Kernel interface to cancel an rtc_timer
*/
-int rtc_timer_cancel(struct rtc_device *rtc, struct rtc_timer* timer)
+int rtc_timer_cancel(struct rtc_device *rtc, struct rtc_timer *timer)
{
int ret = 0;
mutex_lock(&rtc->ops_lock);