示例#1
0
文件: nmi.c 项目: 32bitmicro/zephyr
void __nmi(void)
{
	handler();
	_ExcExit();
}
示例#2
0
/**
 *
 * @brief System clock tick handler
 *
 * This routine handles the system clock tick interrupt. A TICK_EVENT event
 * is pushed onto the kernel stack.
 *
 * The symbol for this routine is either _timer_int_handler.
 *
 * @return N/A
 */
void _timer_int_handler(void *unused)
{
	ARG_UNUSED(unused);

#ifdef CONFIG_EXECUTION_BENCHMARKING
	extern void read_systick_start_of_tick_handler(void);
	read_systick_start_of_tick_handler();
#endif

#ifdef CONFIG_KERNEL_EVENT_LOGGER_INTERRUPT
	extern void _sys_k_event_logger_interrupt(void);
	_sys_k_event_logger_interrupt();
#endif

#ifdef CONFIG_SYS_POWER_MANAGEMENT
	s32_t numIdleTicks;

	/*
	 * All interrupts are disabled when handling idle wakeup.
	 * For tickless idle, this ensures that the calculation and programming
	 * of
	 * the device for the next timer deadline is not interrupted.
	 * For non-tickless idle, this ensures that the clearing of the kernel
	 * idle
	 * state is not interrupted.
	 * In each case, _sys_power_save_idle_exit is called with interrupts
	 * disabled.
	 */
	__asm__(" cpsid i"); /* PRIMASK = 1 */

#ifdef CONFIG_TICKLESS_IDLE
#if defined(CONFIG_TICKLESS_KERNEL)
	if (!idle_original_ticks) {
		if (_sys_clock_always_on) {
			_sys_clock_tick_count = _get_elapsed_clock_time();
			/* clear overflow tracking flag as it is accounted */
			timer_overflow = 0;
			sysTickStop();
			idle_original_ticks = max_system_ticks;
			sysTickReloadSet(max_load_value);
			sysTickStart();
			sys_tick_reload();
		}
		__asm__(" cpsie i"); /* re-enable interrupts (PRIMASK = 0) */

		_ExcExit();
		return;
	}

	idle_mode = IDLE_NOT_TICKLESS;

	_sys_idle_elapsed_ticks = idle_original_ticks;

	/*
	 * Clear programmed ticks before announcing elapsed time so
	 * that recursive calls to _update_elapsed_time() will not
	 * announce already consumed elapsed time
	 */
	idle_original_ticks = 0;

	_sys_clock_tick_announce();

	/* _sys_clock_tick_announce() could cause new programming */
	if (!idle_original_ticks && _sys_clock_always_on) {
		_sys_clock_tick_count = _get_elapsed_clock_time();
		/* clear overflow tracking flag as it is accounted */
		timer_overflow = 0;
		sysTickStop();
		sysTickReloadSet(max_load_value);
		sysTickStart();
		sys_tick_reload();
	}
#else
	/*
	 * If this a wakeup from a completed tickless idle or after
	 *  _timer_idle_exit has processed a partial idle, return
	 *  to the normal tick cycle.
	 */
	if (timer_mode == TIMER_MODE_ONE_SHOT) {
		sysTickStop();
		sysTickReloadSet(default_load_value);
		sysTickStart();
		timer_mode = TIMER_MODE_PERIODIC;
	}

	/* set the number of elapsed ticks and announce them to the kernel */

	if (idle_mode == IDLE_TICKLESS) {
		/* tickless idle completed without interruption */
		idle_mode = IDLE_NOT_TICKLESS;
		_sys_idle_elapsed_ticks =
			idle_original_ticks + 1; /* actual # of idle ticks */
		_sys_clock_tick_announce();
	} else {
		_sys_clock_final_tick_announce();
	}

	/* accumulate total counter value */
	clock_accumulated_count += default_load_value * _sys_idle_elapsed_ticks;
#endif
#else  /* !CONFIG_TICKLESS_IDLE */
	/*
	 * No tickless idle:
	 * Update the total tick count and announce this tick to the kernel.
	 */
	clock_accumulated_count += sys_clock_hw_cycles_per_tick;

	_sys_clock_tick_announce();
#endif /* CONFIG_TICKLESS_IDLE */

	numIdleTicks = _NanoIdleValGet(); /* get # of idle ticks requested */

	if (numIdleTicks) {
		_NanoIdleValClear(); /* clear kernel idle setting */

		/*
		 * Complete idle processing.
		 * Note that for tickless idle, nothing will be done in
		 * _timer_idle_exit.
		 */
		_sys_power_save_idle_exit(numIdleTicks);
	}

	__asm__(" cpsie i"); /* re-enable interrupts (PRIMASK = 0) */

#else /* !CONFIG_SYS_POWER_MANAGEMENT */

	/* accumulate total counter value */
	clock_accumulated_count += sys_clock_hw_cycles_per_tick;

	/*
	 * one more tick has occurred -- don't need to do anything special since
	 * timer is already configured to interrupt on the following tick
	 */
	_sys_clock_tick_announce();

#endif /* CONFIG_SYS_POWER_MANAGEMENT */

#ifdef CONFIG_EXECUTION_BENCHMARKING
	extern void read_systick_end_of_tick_handler(void);
	read_systick_end_of_tick_handler();
#endif

	extern void _ExcExit(void);
	_ExcExit();
}
示例#3
0
/**
 *
 * @brief System clock tick handler
 *
 * This routine handles the system clock tick interrupt. A TICK_EVENT event
 * is pushed onto the microkernel stack.
 *
 * The symbol for this routine is either _timer_int_handler (for normal
 * system operation) or _real_timer_int_handler (when GDB_INFO is enabled).
 *
 * @return N/A
 */
void _TIMER_INT_HANDLER(void *unused)
{
	ARG_UNUSED(unused);

#ifdef CONFIG_KERNEL_EVENT_LOGGER_INTERRUPT
	extern void _sys_k_event_logger_interrupt(void);
	_sys_k_event_logger_interrupt();
#endif


#ifdef CONFIG_INT_LATENCY_BENCHMARK
	uint32_t value = __scs.systick.val;
	uint32_t delta = __scs.systick.reload - value;

	if (_hw_irq_to_c_handler_latency > delta) {
		/* keep the lowest value observed */
		_hw_irq_to_c_handler_latency = delta;
	}
#endif

#ifdef CONFIG_SYS_POWER_MANAGEMENT
	int32_t numIdleTicks;

	/*
	 * All interrupts are disabled when handling idle wakeup.
	 * For tickless idle, this ensures that the calculation and programming
	 * of
	 * the device for the next timer deadline is not interrupted.
	 * For non-tickless idle, this ensures that the clearing of the kernel
	 * idle
	 * state is not interrupted.
	 * In each case, _sys_power_save_idle_exit is called with interrupts
	 * disabled.
	 */
	__asm__(" cpsid i"); /* PRIMASK = 1 */

#ifdef CONFIG_TICKLESS_IDLE
	/*
	 * If this a wakeup from a completed tickless idle or after
	 *  _timer_idle_exit has processed a partial idle, return
	 *  to the normal tick cycle.
	 */
	if (timer_mode == TIMER_MODE_ONE_SHOT) {
		sysTickStop();
		sysTickReloadSet(default_load_value);
		sysTickStart();
		timer_mode = TIMER_MODE_PERIODIC;
	}

	/* set the number of elapsed ticks and announce them to the kernel */

	if (idle_mode == IDLE_TICKLESS) {
		/* tickless idle completed without interruption */
		idle_mode = IDLE_NOT_TICKLESS;
		_sys_idle_elapsed_ticks =
			idle_original_ticks + 1; /* actual # of idle ticks */
		_sys_clock_tick_announce();
	} else {
		/*
		 * Increment the tick because _timer_idle_exit does not
		 * account for the tick due to the timer interrupt itself.
		 * Also, if not in tickless mode, _sys_idle_elapsed_ticks will be 0.
		 */
		_sys_idle_elapsed_ticks++;

		/*
		 * If we transition from 0 elapsed ticks to 1 we need to
		 * announce the
		 * tick event to the microkernel. Other cases will be covered by
		 * _timer_idle_exit.
		 */

		if (_sys_idle_elapsed_ticks == 1) {
			_sys_clock_tick_announce();
		}
	}

	/* accumulate total counter value */
	clock_accumulated_count += default_load_value * _sys_idle_elapsed_ticks;
#else  /* !CONFIG_TICKLESS_IDLE */
	/*
	 * No tickless idle:
	 * Update the total tick count and announce this tick to the kernel.
	 */
	clock_accumulated_count += sys_clock_hw_cycles_per_tick;

	_sys_clock_tick_announce();
#endif /* CONFIG_TICKLESS_IDLE */

	numIdleTicks = _NanoIdleValGet(); /* get # of idle ticks requested */

	if (numIdleTicks) {
		_NanoIdleValClear(); /* clear kernel idle setting */

		/*
		 * Complete idle processing.
		 * Note that for tickless idle, nothing will be done in
		 * _timer_idle_exit.
		 */
		_sys_power_save_idle_exit(numIdleTicks);
	}

	__asm__(" cpsie i"); /* re-enable interrupts (PRIMASK = 0) */

#else /* !CONFIG_SYS_POWER_MANAGEMENT */

	/* accumulate total counter value */
	clock_accumulated_count += sys_clock_hw_cycles_per_tick;

	/*
	 * one more tick has occurred -- don't need to do anything special since
	 * timer is already configured to interrupt on the following tick
	 */
	_sys_clock_tick_announce();

#endif /* CONFIG_SYS_POWER_MANAGEMENT */

	extern void _ExcExit(void);
	_ExcExit();
}