parent
704717a104
commit
74a802b445
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@ -196,6 +196,35 @@ static void pclkx_doubler_get(rt_uint32_t *pclk1_doubler, rt_uint32_t *pclk2_dou
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#endif
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}
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static rt_uint64_t tim_clock_get(TIM_HandleTypeDef *htim)
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{
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rt_uint32_t pclk1_doubler, pclk2_doubler;
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rt_uint64_t tim_clock;
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pclkx_doubler_get(&pclk1_doubler, &pclk2_doubler);
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#if defined(SOC_SERIES_STM32F2) || defined(SOC_SERIES_STM32F4) || defined(SOC_SERIES_STM32F7)
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if (htim->Instance == TIM9 || htim->Instance == TIM10 || htim->Instance == TIM11)
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#elif defined(SOC_SERIES_STM32L4) || defined(SOC_SERIES_STM32H7)|| defined(SOC_SERIES_STM32F3)
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if (htim->Instance == TIM15 || htim->Instance == TIM16 || htim->Instance == TIM17)
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#elif defined(SOC_SERIES_STM32MP1)
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if (htim->Instance == TIM4)
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#elif defined(SOC_SERIES_STM32F1) || defined(SOC_SERIES_STM32F0) || defined(SOC_SERIES_STM32G0)
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if (0)
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#endif
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{
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#if !defined(SOC_SERIES_STM32F0) && !defined(SOC_SERIES_STM32G0)
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tim_clock = (rt_uint32_t)(HAL_RCC_GetPCLK2Freq() * pclk2_doubler);
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#endif
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}
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else
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{
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tim_clock = (rt_uint32_t)(HAL_RCC_GetPCLK1Freq() * pclk1_doubler);
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}
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return tim_clock;
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}
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static rt_err_t drv_pwm_control(struct rt_device_pwm *device, int cmd, void *arg);
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static struct rt_pwm_ops drv_ops =
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{
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@ -238,29 +267,8 @@ static rt_err_t drv_pwm_get(TIM_HandleTypeDef *htim, struct rt_pwm_configuration
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/* Converts the channel number to the channel number of Hal library */
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rt_uint32_t channel = 0x04 * (configuration->channel - 1);
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rt_uint64_t tim_clock;
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rt_uint32_t pclk1_doubler, pclk2_doubler;
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pclkx_doubler_get(&pclk1_doubler, &pclk2_doubler);
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#if defined(SOC_SERIES_STM32F2) || defined(SOC_SERIES_STM32F4) || defined(SOC_SERIES_STM32F7)
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if (htim->Instance == TIM9 || htim->Instance == TIM10 || htim->Instance == TIM11)
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#elif defined(SOC_SERIES_STM32L4) || defined(SOC_SERIES_STM32H7)
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if (htim->Instance == TIM15 || htim->Instance == TIM16 || htim->Instance == TIM17)
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#elif defined(SOC_SERIES_STM32MP1)
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if (htim->Instance == TIM4)
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#elif defined(SOC_SERIES_STM32F1) || defined(SOC_SERIES_STM32F0) || defined(SOC_SERIES_STM32G0)
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if (0)
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#endif
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{
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#if !defined(SOC_SERIES_STM32F0) && !defined(SOC_SERIES_STM32G0)
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tim_clock = (rt_uint32_t)(HAL_RCC_GetPCLK2Freq() * pclk2_doubler);
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#endif
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}
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else
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{
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tim_clock = (rt_uint32_t)(HAL_RCC_GetPCLK1Freq() * pclk1_doubler);
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}
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tim_clock = tim_clock_get(htim);
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if (__HAL_TIM_GET_CLOCKDIVISION(htim) == TIM_CLOCKDIVISION_DIV2)
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{
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tim_clock = tim_clock / 2;
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@ -282,34 +290,13 @@ static rt_err_t drv_pwm_set(TIM_HandleTypeDef *htim, struct rt_pwm_configuration
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{
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rt_uint32_t period, pulse;
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rt_uint64_t tim_clock, psc;
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rt_uint32_t pclk1_doubler, pclk2_doubler;
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/* Converts the channel number to the channel number of Hal library */
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rt_uint32_t channel = 0x04 * (configuration->channel - 1);
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pclkx_doubler_get(&pclk1_doubler, &pclk2_doubler);
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#if defined(SOC_SERIES_STM32F2) || defined(SOC_SERIES_STM32F4) || defined(SOC_SERIES_STM32F7)
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if (htim->Instance == TIM9 || htim->Instance == TIM10 || htim->Instance == TIM11)
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#elif defined(SOC_SERIES_STM32L4) || defined(SOC_SERIES_STM32H7)|| defined(SOC_SERIES_STM32F3)
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if (htim->Instance == TIM15 || htim->Instance == TIM16 || htim->Instance == TIM17)
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#elif defined(SOC_SERIES_STM32MP1)
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if (htim->Instance == TIM4)
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#elif defined(SOC_SERIES_STM32F1) || defined(SOC_SERIES_STM32F0) || defined(SOC_SERIES_STM32G0)
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if (0)
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#endif
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{
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#if !defined(SOC_SERIES_STM32F0) && !defined(SOC_SERIES_STM32G0)
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tim_clock = (rt_uint32_t)(HAL_RCC_GetPCLK2Freq() * pclk2_doubler);
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#endif
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}
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else
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{
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tim_clock = (rt_uint32_t)(HAL_RCC_GetPCLK1Freq() * pclk1_doubler);
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}
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tim_clock = tim_clock_get(htim);
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/* Convert nanosecond to frequency and duty cycle. 1s = 1 * 1000 * 1000 * 1000 ns */
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tim_clock /= 1000000UL;
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period = (unsigned long long)configuration->period * tim_clock / 1000ULL ;
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period = (rt_uint64_t)configuration->period * tim_clock / 1000ULL ;
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psc = period / MAX_PERIOD + 1;
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period = period / psc;
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__HAL_TIM_SET_PRESCALER(htim, psc - 1);
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@ -320,7 +307,7 @@ static rt_err_t drv_pwm_set(TIM_HandleTypeDef *htim, struct rt_pwm_configuration
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}
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__HAL_TIM_SET_AUTORELOAD(htim, period - 1);
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pulse = (unsigned long long)configuration->pulse * tim_clock / psc / 1000ULL;
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pulse = (rt_uint64_t)configuration->pulse * tim_clock / psc / 1000ULL;
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if (pulse < MIN_PULSE)
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{
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pulse = MIN_PULSE;
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@ -344,32 +331,11 @@ static rt_err_t drv_pwm_set_period(TIM_HandleTypeDef *htim, struct rt_pwm_config
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{
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rt_uint32_t period;
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rt_uint64_t tim_clock, psc;
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rt_uint32_t pclk1_doubler, pclk2_doubler;
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pclkx_doubler_get(&pclk1_doubler, &pclk2_doubler);
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#if defined(SOC_SERIES_STM32F2) || defined(SOC_SERIES_STM32F4) || defined(SOC_SERIES_STM32F7)
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if (htim->Instance == TIM9 || htim->Instance == TIM10 || htim->Instance == TIM11)
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#elif defined(SOC_SERIES_STM32L4) || defined(SOC_SERIES_STM32H7)|| defined(SOC_SERIES_STM32F3)
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if (htim->Instance == TIM15 || htim->Instance == TIM16 || htim->Instance == TIM17)
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#elif defined(SOC_SERIES_STM32MP1)
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if (htim->Instance == TIM4)
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#elif defined(SOC_SERIES_STM32F1) || defined(SOC_SERIES_STM32F0) || defined(SOC_SERIES_STM32G0)
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if (0)
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#endif
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{
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#if !defined(SOC_SERIES_STM32F0) && !defined(SOC_SERIES_STM32G0)
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tim_clock = (rt_uint32_t)(HAL_RCC_GetPCLK2Freq() * pclk2_doubler);
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#endif
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}
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else
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{
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tim_clock = (rt_uint32_t)(HAL_RCC_GetPCLK1Freq() * pclk1_doubler);
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}
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tim_clock = tim_clock_get(htim);
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/* Convert nanosecond to frequency and duty cycle. 1s = 1 * 1000 * 1000 * 1000 ns */
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tim_clock /= 1000000UL;
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period = (unsigned long long)configuration->period * tim_clock / 1000ULL ;
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period = (rt_uint64_t)configuration->period * tim_clock / 1000ULL ;
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psc = period / MAX_PERIOD + 1;
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period = period / psc;
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__HAL_TIM_SET_PRESCALER(htim, psc - 1);
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@ -387,36 +353,15 @@ static rt_err_t drv_pwm_set_pulse(TIM_HandleTypeDef *htim, struct rt_pwm_configu
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{
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rt_uint32_t period, pulse;
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rt_uint64_t tim_clock;
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rt_uint32_t pclk1_doubler, pclk2_doubler;
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/* Converts the channel number to the channel number of Hal library */
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rt_uint32_t channel = 0x04 * (configuration->channel - 1);
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pclkx_doubler_get(&pclk1_doubler, &pclk2_doubler);
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#if defined(SOC_SERIES_STM32F2) || defined(SOC_SERIES_STM32F4) || defined(SOC_SERIES_STM32F7)
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if (htim->Instance == TIM9 || htim->Instance == TIM10 || htim->Instance == TIM11)
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#elif defined(SOC_SERIES_STM32L4) || defined(SOC_SERIES_STM32H7)|| defined(SOC_SERIES_STM32F3)
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if (htim->Instance == TIM15 || htim->Instance == TIM16 || htim->Instance == TIM17)
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#elif defined(SOC_SERIES_STM32MP1)
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if (htim->Instance == TIM4)
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#elif defined(SOC_SERIES_STM32F1) || defined(SOC_SERIES_STM32F0) || defined(SOC_SERIES_STM32G0)
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if (0)
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#endif
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{
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#if !defined(SOC_SERIES_STM32F0) && !defined(SOC_SERIES_STM32G0)
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tim_clock = (rt_uint32_t)(HAL_RCC_GetPCLK2Freq() * pclk2_doubler);
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#endif
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}
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else
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{
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tim_clock = (rt_uint32_t)(HAL_RCC_GetPCLK1Freq() * pclk1_doubler);
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}
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tim_clock = tim_clock_get(htim);
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/* Convert nanosecond to frequency and duty cycle. 1s = 1 * 1000 * 1000 * 1000 ns */
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tim_clock /= 1000000UL;
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period = (__HAL_TIM_GET_AUTORELOAD(htim) + 1) * (htim->Instance->PSC + 1) * 1000UL / tim_clock;
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pulse = (unsigned long long)configuration->pulse * (__HAL_TIM_GET_AUTORELOAD(htim) + 1) / period;
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pulse = (rt_uint64_t)configuration->pulse * (__HAL_TIM_GET_AUTORELOAD(htim) + 1) / period;
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if (pulse < MIN_PULSE)
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{
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