335 lines
		
	
	
		
			11 KiB
		
	
	
	
		
			C
		
	
	
	
			
		
		
	
	
			335 lines
		
	
	
		
			11 KiB
		
	
	
	
		
			C
		
	
	
	
| /**
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|   ******************************************************************************
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|   * @file    TIM/TIM_ComplementarySignals/Src/main.c 
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|   * @author  MCD Application Team
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|   * @brief   This sample code shows how to use STM32F1xx TIM HAL API to generate
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|   *          3 signals in PWM with its complementaries.
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|   ******************************************************************************
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|   * @attention
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|   *
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|   * <h2><center>© Copyright (c) 2016 STMicroelectronics.
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|   * All rights reserved.</center></h2>
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|   *
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|   * This software component is licensed by ST under BSD 3-Clause license,
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|   * the "License"; You may not use this file except in compliance with the
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|   * License. You may obtain a copy of the License at:
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|   *                        opensource.org/licenses/BSD-3-Clause
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|   *
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|   ******************************************************************************
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|   */
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| 
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| /* Includes ------------------------------------------------------------------*/
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| #include "main.h"
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| 
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| /** @addtogroup STM32F1xx_HAL_Examples
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|   * @{
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|   */
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| 
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| /** @addtogroup TIM_ComplementarySignals
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|   * @{
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|   */
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| 
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| /* Private typedef -----------------------------------------------------------*/
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| #define  PERIOD_VALUE       (1200 - 1)  /* Period Value  */
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| #define  PULSE1_VALUE       600         /* Capture Compare 1 Value  */
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| #define  PULSE2_VALUE       300         /* Capture Compare 2 Value  */
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| #define  PULSE3_VALUE       150         /* Capture Compare 3 Value  */
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| 
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| /* Private define ------------------------------------------------------------*/
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| /* Private macro -------------------------------------------------------------*/
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| /* Private variables ---------------------------------------------------------*/
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| /* Timer handler declaration */
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| TIM_HandleTypeDef    TimHandle;
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| 
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| /* Timer Output Compare Configuration Structure declaration */
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| TIM_OC_InitTypeDef              sPWMConfig;
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| /* Timer Break Configuration Structure declaration */
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| TIM_BreakDeadTimeConfigTypeDef sBreakConfig;
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| 
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| /* Counter Prescaler value */
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| uint32_t uwPrescalerValue = 0;
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| 
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| /* Private function prototypes -----------------------------------------------*/
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| void SystemClock_Config(void);
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| static void Error_Handler(void);
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| 
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| /* Private functions ---------------------------------------------------------*/
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| 
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| /**
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|   * @brief  Main program
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|   * @param  None
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|   * @retval None
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|   */
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| int main(void)
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| {
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|   /* STM32F103xG HAL library initialization:
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|        - Configure the Flash prefetch
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|        - Systick timer is configured by default as source of time base, but user 
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|          can eventually implement his proper time base source (a general purpose 
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|          timer for example or other time source), keeping in mind that Time base 
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|          duration should be kept 1ms since PPP_TIMEOUT_VALUEs are defined and 
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|          handled in milliseconds basis.
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|        - Set NVIC Group Priority to 4
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|        - Low Level Initialization
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|      */
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|   HAL_Init();
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| 
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|   /* Configure the system clock to 72 MHz */
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|   SystemClock_Config();
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| 
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|   /* Configure LED2 */
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|   BSP_LED_Init(LED2);
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| 
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|   /* Compute the prescaler value to have TIM1 counter clock equal to 12MHz */
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|   uwPrescalerValue = (uint32_t) ((SystemCoreClock  / 12000000) - 1);
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|   
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|   /*##-1- Configure the TIM peripheral #######################################*/ 
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|   /* --------------------------------------------------------------------------- 
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|   1/ Generate 3 complementary PWM signals with 3 different duty cycles:
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|   
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|     TIM1 input clock (TIM1CLK) is set to APB2 clock (PCLK2), since APB2
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|     prescaler is 1.
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|     TIM1CLK = PCLK2
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|     PCLK2 = HCLK
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|     => TIM1CLK = HCLK = SystemCoreClock
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|   
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|     TIM1CLK is fixed to SystemCoreClock, the TIM1 Prescaler is set to have
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|     TIM1 counter clock = 12MHz.
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| 
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|     The objective is to generate PWM signal at 10 KHz:
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|     - TIM1_Period = (TIM1 counter clock / 10000) - 1
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| 
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|     The Three Duty cycles are computed as the following description: 
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| 
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|     The channel 1 duty cycle is set to 50% so channel 1N is set to 50%.
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|     The channel 2 duty cycle is set to 25% so channel 2N is set to 75%.
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|     The channel 3 duty cycle is set to 12.5% so channel 3N is set to 87.5%.
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|     
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|    The Timer pulse is calculated as follows:
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|      - ChannelxPulse = DutyCycle * (TIM1_Period - 1) / 100
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|           
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|   2/ Insert a dead time equal to (100/SystemCoreClock) us
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| 
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|   3/ Configure the break feature, active at High level, and using the automatic 
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|      output enable feature
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|        
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|   4/ Use the Locking parameters level1. 
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|   
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|     Note: 
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|      SystemCoreClock variable holds HCLK frequency and is defined in system_stm32f1xx.c file.
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|      Each time the core clock (HCLK) changes, user had to update SystemCoreClock 
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|      variable value. Otherwise, any configuration based on this variable will be incorrect.
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|      This variable is updated in three ways:
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|       1) by calling CMSIS function SystemCoreClockUpdate()
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|       2) by calling HAL API function HAL_RCC_GetSysClockFreq()
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|       3) each time HAL_RCC_ClockConfig() is called to configure the system clock frequency     
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|   --------------------------------------------------------------------------- */
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| 
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|   /* Initialize TIM peripheral as follows:
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|        + Prescaler = (SystemCoreClock/12000000) - 1
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|        + Period = (1200 - 1)  (to have an output frequency equal to 10 KHz)
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|        + ClockDivision = 0
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|        + Counter direction = Up
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|   */
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|   /* Select the Timer instance */
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|   TimHandle.Instance = TIM1;
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|   
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|   TimHandle.Init.Prescaler         = uwPrescalerValue;
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|   TimHandle.Init.Period            = PERIOD_VALUE;
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|   TimHandle.Init.ClockDivision     = 0;
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|   TimHandle.Init.CounterMode       = TIM_COUNTERMODE_UP;
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|   TimHandle.Init.RepetitionCounter = 0;
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|   TimHandle.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
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|   if(HAL_TIM_PWM_Init(&TimHandle) != HAL_OK)
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|   {
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|     /* Initialization Error */
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|     Error_Handler();
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|   }
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| 
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|   /*##-2- Configure the PWM channels #########################################*/ 
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|   /* Common configuration for all channels */
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|   sPWMConfig.OCMode       = TIM_OCMODE_PWM1;
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|   sPWMConfig.OCPolarity   = TIM_OCPOLARITY_HIGH;
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|   sPWMConfig.OCNPolarity  = TIM_OCNPOLARITY_HIGH;
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|   sPWMConfig.OCIdleState  = TIM_OCIDLESTATE_SET;
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|   sPWMConfig.OCNIdleState = TIM_OCNIDLESTATE_RESET;  
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|   sPWMConfig.OCFastMode   = TIM_OCFAST_DISABLE;  
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| 
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|   /* Set the pulse value for channel 1 */
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|   sPWMConfig.Pulse = PULSE1_VALUE;  
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|   if(HAL_TIM_PWM_ConfigChannel(&TimHandle, &sPWMConfig, TIM_CHANNEL_1) != HAL_OK)
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|   {
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|     /* Configuration Error */
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|     Error_Handler();
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|   }
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|   
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|   /* Set the pulse value for channel 2 */
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|   sPWMConfig.Pulse = PULSE2_VALUE;
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|   if(HAL_TIM_PWM_ConfigChannel(&TimHandle, &sPWMConfig, TIM_CHANNEL_2) != HAL_OK)
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|   {
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|     /* Configuration Error */
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|     Error_Handler();
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|   }
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|   
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|   /* Set the pulse value for channel 3 */
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|   sPWMConfig.Pulse = PULSE3_VALUE;
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|   if(HAL_TIM_PWM_ConfigChannel(&TimHandle, &sPWMConfig, TIM_CHANNEL_3) != HAL_OK)
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|   {
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|     /* Configuration Error */
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|     Error_Handler();
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|   }
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|   
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|   /* Set the Break feature & Dead time */
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|   sBreakConfig.BreakState       = TIM_BREAK_ENABLE;
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|   sBreakConfig.DeadTime         = 100;
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|   sBreakConfig.OffStateRunMode  = TIM_OSSR_ENABLE;
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|   sBreakConfig.OffStateIDLEMode = TIM_OSSI_ENABLE;
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|   sBreakConfig.LockLevel        = TIM_LOCKLEVEL_1;  
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|   sBreakConfig.BreakPolarity    = TIM_BREAKPOLARITY_HIGH;
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|   sBreakConfig.AutomaticOutput  = TIM_AUTOMATICOUTPUT_ENABLE;
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|   
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|   if(HAL_TIMEx_ConfigBreakDeadTime(&TimHandle, &sBreakConfig) != HAL_OK)
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|   {
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|     /* Configuration Error */
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|     Error_Handler();
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|   }
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| 
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|   /*##-3- Start PWM signals generation #######################################*/ 
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|   /* Start channel 1 */
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|   if(HAL_TIM_PWM_Start(&TimHandle, TIM_CHANNEL_1) != HAL_OK)
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|   {
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|     /* Starting Error */
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|     Error_Handler();
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|   }
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|   /* Start channel 1N */
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|   if(HAL_TIMEx_PWMN_Start(&TimHandle, TIM_CHANNEL_1) != HAL_OK)
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|   {
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|     /* Starting Error */
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|     Error_Handler();
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|   }
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|   
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|   /* Start channel 2 */
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|   if(HAL_TIM_PWM_Start(&TimHandle, TIM_CHANNEL_2) != HAL_OK)
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|   {
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|     /* Starting Error */
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|     Error_Handler();
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|   }
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|   /* Start channel 2N */
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|   if(HAL_TIMEx_PWMN_Start(&TimHandle, TIM_CHANNEL_2) != HAL_OK)
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|   {
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|     /* Starting Error */
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|     Error_Handler();
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|   }
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|   
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|   /* Start channel 3 */
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|   if(HAL_TIM_PWM_Start(&TimHandle, TIM_CHANNEL_3) != HAL_OK)
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|   {
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|     /* Starting Error */
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|     Error_Handler();
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|   }
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|   /* Start channel 3N */
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|   if(HAL_TIMEx_PWMN_Start(&TimHandle, TIM_CHANNEL_3) != HAL_OK)
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|   {
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|     /* Starting Error */
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|     Error_Handler();
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|   }
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| 
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|   while (1)
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|   {
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|   }
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| }
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| 
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| /**
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|   * @brief  System Clock Configuration
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|   *         The system Clock is configured as follow : 
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|   *            System Clock source            = PLL (HSE)
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|   *            SYSCLK(Hz)                     = 72000000
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|   *            HCLK(Hz)                       = 72000000
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|   *            AHB Prescaler                  = 1
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|   *            APB1 Prescaler                 = 2
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|   *            APB2 Prescaler                 = 1
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|   *            HSE Frequency(Hz)              = 8000000
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|   *            HSE PREDIV1                    = 1
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|   *            PLLMUL                         = 9
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|   *            Flash Latency(WS)              = 2
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|   * @param  None
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|   * @retval None
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|   */
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| void SystemClock_Config(void)
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| {
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|   RCC_ClkInitTypeDef clkinitstruct = {0};
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|   RCC_OscInitTypeDef oscinitstruct = {0};
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|   
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|   /* Enable HSE Oscillator and activate PLL with HSE as source */
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|   oscinitstruct.OscillatorType  = RCC_OSCILLATORTYPE_HSE;
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|   oscinitstruct.HSEState        = RCC_HSE_ON;
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|   oscinitstruct.HSEPredivValue  = RCC_HSE_PREDIV_DIV1;
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|   oscinitstruct.PLL.PLLState    = RCC_PLL_ON;
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|   oscinitstruct.PLL.PLLSource   = RCC_PLLSOURCE_HSE;
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|   oscinitstruct.PLL.PLLMUL      = RCC_PLL_MUL9;
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|   if (HAL_RCC_OscConfig(&oscinitstruct)!= HAL_OK)
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|   {
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|     /* Initialization Error */
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|     while(1);
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|   }
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| 
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|   /* Select PLL as system clock source and configure the HCLK, PCLK1 and PCLK2 
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|      clocks dividers */
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|   clkinitstruct.ClockType = (RCC_CLOCKTYPE_SYSCLK | RCC_CLOCKTYPE_HCLK | RCC_CLOCKTYPE_PCLK1 | RCC_CLOCKTYPE_PCLK2);
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|   clkinitstruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
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|   clkinitstruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
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|   clkinitstruct.APB2CLKDivider = RCC_HCLK_DIV1;
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|   clkinitstruct.APB1CLKDivider = RCC_HCLK_DIV2;  
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|   if (HAL_RCC_ClockConfig(&clkinitstruct, FLASH_LATENCY_2)!= HAL_OK)
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|   {
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|     /* Initialization Error */
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|     while(1);
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|   }
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| }
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| 
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| 
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| /**
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|   * @brief  This function is executed in case of error occurrence.
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|   * @param  None
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|   * @retval None
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|   */
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| static void Error_Handler(void)
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| {
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|   /* Turn LED2 on */
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|   BSP_LED_On(LED2);
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|   while (1)
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|   {
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|   }
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| }
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| #ifdef  USE_FULL_ASSERT
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| 
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| /**
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|   * @brief  Reports the name of the source file and the source line number
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|   *         where the assert_param error has occurred.
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|   * @param  file: pointer to the source file name
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|   * @param  line: assert_param error line source number
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|   * @retval None
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|   */
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| void assert_failed(uint8_t *file, uint32_t line)
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| {
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|   /* User can add his own implementation to report the file name and line number,
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|      ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
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| 
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|   /* Infinite loop */
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|   while (1)
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|   {
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|   }
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| }
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| 
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| #endif
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| 
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| /**
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|   * @}
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|   */
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| 
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| /**
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|   * @}
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|   */
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| 
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| /************************ (C) COPYRIGHT STMicroelectronics *****END OF FILE****/
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