* FURI stdglue: stdout hooks, local and global, ISR safe printf. Uniform newlines for terminal/debug output. Power: prevent sleep while core 2 has not started. * Furi record, stdglue: check mutex allocation * remove unused test * Furi stdglue: buferized output, dynamically allocated state. Furi record: dynamically allocated state. Input dump: proper line ending. Hal VCP: dynamically allocated state. * Interrupt manager: explicitly init list. * Makefile: cleanup rules, fix broken dfu upload. F4: add compiler stack protection options. * BLE: call debug uart callback on transmission complete * FreeRTOS: add configUSE_NEWLIB_REENTRANT * API HAL Timebase: fix issue with idle thread stack corruption caused by systick interrupt. BT: cleanup debug info output. FreeRTOS: disable reentry for newlib. * F4: update stack protection CFLAGS to match used compiller * F4: disable compiller stack protection because of incompatibility with current compiller * Makefile: return openocd logs to gdb * BLE: fixed pin, moar power, ble trace info. * Prevent sleep when connection is active * Makefile: return serial port to upload rule, add workaround for mac os * Furi: prevent usage of stack for cmsis functions. * F4: add missing includes, add debugger breakpoints * Applications: per app stack size. * Furi: honor kernel state in stdglue * FreeRTOS: remove unused hooks * Cleanup and format sources Co-authored-by: DrZlo13 <who.just.the.doctor@gmail.com>
		
			
				
	
	
		
			171 lines
		
	
	
		
			5.8 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			171 lines
		
	
	
		
			5.8 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
#include <api-hal-timebase.h>
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#include <api-hal-timebase-timer.h>
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#include <api-hal-power.h>
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#include <FreeRTOS.h>
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#include <cmsis_os.h>
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#define API_HAL_TIMEBASE_CLK_FREQUENCY 32768
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#define API_HAL_TIMEBASE_TICK_PER_SECOND 1024
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#define API_HAL_TIMEBASE_CLK_PER_TICK (API_HAL_TIMEBASE_CLK_FREQUENCY / API_HAL_TIMEBASE_TICK_PER_SECOND)
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#define API_HAL_TIMEBASE_TICK_PER_EPOCH (API_HAL_TIMEBASE_TIMER_MAX / API_HAL_TIMEBASE_CLK_PER_TICK)
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#define API_HAL_TIMEBASE_MAX_SLEEP (API_HAL_TIMEBASE_TICK_PER_EPOCH - 1)
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typedef struct {
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    // Sleep control
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    volatile uint16_t insomnia;
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    // Tick counters
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    volatile uint32_t in_sleep;
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    volatile uint32_t in_awake;
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    // Error counters
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    volatile uint32_t sleep_error;
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    volatile uint32_t awake_error;
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} ApiHalTimbase;
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ApiHalTimbase api_hal_timebase = {
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    .insomnia = 0,
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    .in_sleep = 0,
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    .in_awake = 0,
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    .sleep_error = 0,
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    .awake_error = 0,
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};
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void api_hal_timebase_init() {
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    api_hal_timebase_timer_init();
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    LL_DBGMCU_APB1_GRP2_FreezePeriph(LL_DBGMCU_APB1_GRP2_LPTIM2_STOP);
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    LL_LPTIM_EnableIT_CMPM(API_HAL_TIMEBASE_TIMER);
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    LL_LPTIM_EnableIT_ARRM(API_HAL_TIMEBASE_TIMER);
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    LL_LPTIM_SetAutoReload(API_HAL_TIMEBASE_TIMER, API_HAL_TIMEBASE_TIMER_MAX);
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    LL_LPTIM_SetCompare(API_HAL_TIMEBASE_TIMER, API_HAL_TIMEBASE_CLK_PER_TICK);
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    LL_LPTIM_StartCounter(API_HAL_TIMEBASE_TIMER, LL_LPTIM_OPERATING_MODE_CONTINUOUS);
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}
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uint16_t api_hal_timebase_insomnia_level() {
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    return api_hal_timebase.insomnia;
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}
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void api_hal_timebase_insomnia_enter() {
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    api_hal_timebase.insomnia++;
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}
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void api_hal_timebase_insomnia_exit() {
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    api_hal_timebase.insomnia--;
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}
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void LPTIM2_IRQHandler(void) {
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    // Autoreload
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    const bool arrm_flag = LL_LPTIM_IsActiveFlag_ARRM(API_HAL_TIMEBASE_TIMER);
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    if(arrm_flag) {
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        LL_LPTIM_ClearFLAG_ARRM(API_HAL_TIMEBASE_TIMER);
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    }
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    if(LL_LPTIM_IsActiveFlag_CMPM(API_HAL_TIMEBASE_TIMER)) {
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        LL_LPTIM_ClearFLAG_CMPM(API_HAL_TIMEBASE_TIMER);
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        // Store important value
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        uint16_t cnt = api_hal_timebase_timer_get_cnt();
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        uint16_t cmp = api_hal_timebase_timer_get_cmp();
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        uint16_t current_tick = cnt / API_HAL_TIMEBASE_CLK_PER_TICK;
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        uint16_t compare_tick = cmp / API_HAL_TIMEBASE_CLK_PER_TICK;
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        // Calculate error
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        // happens when HAL or other high priority IRQ takes our time
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        int32_t error = (int32_t)compare_tick - current_tick;
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        api_hal_timebase.awake_error += ((error>0) ? error : -error);
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        // Calculate and set next tick 
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        uint16_t next_tick = current_tick + 1;
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        api_hal_timebase_timer_set_cmp(next_tick * API_HAL_TIMEBASE_CLK_PER_TICK);
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        // Notify OS
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        api_hal_timebase.in_awake ++;
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        if (xTaskGetSchedulerState() != taskSCHEDULER_NOT_STARTED) {
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            xPortSysTickHandler();
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        }
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    }
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}
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static inline uint32_t api_hal_timebase_sleep(TickType_t expected_idle_ticks) {
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    // Store important value before going to sleep
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    const uint16_t before_cnt = api_hal_timebase_timer_get_cnt();
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    const uint16_t before_tick = before_cnt / API_HAL_TIMEBASE_CLK_PER_TICK;
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    // Calculate and set next wakeup compare value
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    const uint16_t expected_cnt = (before_tick + expected_idle_ticks - 2) * API_HAL_TIMEBASE_CLK_PER_TICK;
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    api_hal_timebase_timer_set_cmp(expected_cnt);
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    HAL_SuspendTick();
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    // Go to stop2 mode
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    api_hal_power_deep_sleep();
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    HAL_ResumeTick();
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    // Spin till we are in timer safe zone
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    while(!api_hal_timebase_timer_is_safe()) {}
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    // Store current counter value, calculate current tick
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    const uint16_t after_cnt = api_hal_timebase_timer_get_cnt();
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    const uint16_t after_tick = after_cnt / API_HAL_TIMEBASE_CLK_PER_TICK;
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    // Store and clear interrupt flags
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    // we don't want handler to be called after renabling IRQ
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    bool cmpm_flag = LL_LPTIM_IsActiveFlag_CMPM(API_HAL_TIMEBASE_TIMER);
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    if (cmpm_flag) LL_LPTIM_ClearFLAG_CMPM(API_HAL_TIMEBASE_TIMER);
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    bool arrm_flag = LL_LPTIM_IsActiveFlag_ARRM(API_HAL_TIMEBASE_TIMER);
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    if (arrm_flag) LL_LPTIM_ClearFLAG_ARRM(API_HAL_TIMEBASE_TIMER);
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    // Calculate and set next wakeup compare value
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    const uint16_t next_cmp = (after_tick + 1) * API_HAL_TIMEBASE_CLK_PER_TICK;
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    api_hal_timebase_timer_set_cmp(next_cmp);
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    // Calculate ticks count spent in sleep and perform sanity checks
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    int32_t completed_ticks = arrm_flag ? (int32_t)before_tick - after_tick : (int32_t)after_tick - before_tick;
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    return completed_ticks;
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}
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void vPortSuppressTicksAndSleep(TickType_t expected_idle_ticks) {
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    if (!api_hal_power_deep_available() || api_hal_timebase.insomnia) {
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        return;
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    }
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    // Limit mount of ticks to maximum that timer can count
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    if (expected_idle_ticks > API_HAL_TIMEBASE_MAX_SLEEP) {
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        expected_idle_ticks = API_HAL_TIMEBASE_MAX_SLEEP;
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    }
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    // Stop IRQ handling, no one should disturb us till we finish 
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    __disable_irq();
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    // Confirm OS that sleep is still possible
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    // And check if timer is in safe zone
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    // (8 clocks till any IRQ event or ongoing synchronization)
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    if (eTaskConfirmSleepModeStatus() == eAbortSleep
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        || !api_hal_timebase_timer_is_safe()) {
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        __enable_irq();
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        return;
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    }
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    uint32_t completed_ticks = api_hal_timebase_sleep(expected_idle_ticks);
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    assert(completed_ticks >= 0);
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    // Reenable IRQ
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    __enable_irq();
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    // Notify system about time spent in sleep
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    if (completed_ticks > 0) {
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        api_hal_timebase.in_sleep += completed_ticks;
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        if (completed_ticks > expected_idle_ticks) {
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            // We are late, count error
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            api_hal_timebase.sleep_error += (completed_ticks - expected_idle_ticks);
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            // Freertos is not happy when we overleep
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            // But we are not going to tell her
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            vTaskStepTick(expected_idle_ticks);
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        } else {
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            vTaskStepTick(completed_ticks);
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        }
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    }
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}
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