This commit is contained in:
andrea
2025-12-24 16:37:21 +01:00
parent 43a9a9d480
commit 3cb8b7d505
145 changed files with 73168 additions and 103271 deletions

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@@ -11,3 +11,4 @@
*** SESSION dic 07, 2025 19:18:34.790 ------------------------------------------
*** SESSION dic 08, 2025 11:52:34.203 ------------------------------------------
*** SESSION dic 08, 2025 13:49:44.543 ------------------------------------------
*** SESSION dic 24, 2025 16:22:32.878 ------------------------------------------

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@@ -1,10 +1,17 @@
16:16:58 **** Incremental Build of configuration Debug for project AUTOM10 ****
16:34:44 **** Incremental Build of configuration Debug for project AUTOM10 ****
make -j12 all
arm-none-eabi-gcc "../Core/Src/cdc_int.c" -mcpu=cortex-m3 -std=gnu11 -g3 -DDEBUG -DUSE_HAL_DRIVER -DSTM32F103xB -c -I../Core/Inc -I../Drivers/STM32F1xx_HAL_Driver/Inc/Legacy -I../Drivers/STM32F1xx_HAL_Driver/Inc -I../Drivers/CMSIS/Device/ST/STM32F1xx/Include -I../Drivers/CMSIS/Include -I../USB_DEVICE/App -I../USB_DEVICE/Target -I../Middlewares/ST/STM32_USB_Device_Library/Core/Inc -I../Middlewares/ST/STM32_USB_Device_Library/Class/CDC/Inc -O0 -ffunction-sections -fdata-sections -Wall -fstack-usage -fcyclomatic-complexity -MMD -MP -MF"Core/Src/cdc_int.d" -MT"Core/Src/cdc_int.o" --specs=nano.specs -mfloat-abi=soft -mthumb -o "Core/Src/cdc_int.o"
arm-none-eabi-gcc -o "AUTOM10.elf" @"objects.list" -mcpu=cortex-m3 -T"C:\progetti\AUTOM\workspace\AUTOM10\STM32F103C8TX_FLASH.ld" --specs=nosys.specs -Wl,-Map="AUTOM10.map" -Wl,--gc-sections -static --specs=nano.specs -mfloat-abi=soft -mthumb -Wl,--start-group -lc -lm -Wl,--end-group
Finished building target: AUTOM10.elf
arm-none-eabi-size AUTOM10.elf
arm-none-eabi-objdump -h -S AUTOM10.elf > "AUTOM10.list"
text data bss dec hex filename
48728 464 7248 56440 dc78 AUTOM10.elf
48788 464 7248 56500 dcb4 AUTOM10.elf
Finished building: default.size.stdout
Finished building: AUTOM10.list
16:16:58 Build Finished. 0 errors, 0 warnings. (took 242ms)
16:34:45 Build Finished. 0 errors, 0 warnings. (took 806ms)

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@@ -1,4 +1,4 @@
16:16:54 **** Incremental Build of configuration Debug for project AUTOM10 ****
16:32:16 **** Incremental Build of configuration Debug for project AUTOM10 ****
make -j12 all
arm-none-eabi-gcc "../Core/Src/cdc_int.c" -mcpu=cortex-m3 -std=gnu11 -g3 -DDEBUG -DUSE_HAL_DRIVER -DSTM32F103xB -c -I../Core/Inc -I../Drivers/STM32F1xx_HAL_Driver/Inc/Legacy -I../Drivers/STM32F1xx_HAL_Driver/Inc -I../Drivers/CMSIS/Device/ST/STM32F1xx/Include -I../Drivers/CMSIS/Include -I../USB_DEVICE/App -I../USB_DEVICE/Target -I../Middlewares/ST/STM32_USB_Device_Library/Core/Inc -I../Middlewares/ST/STM32_USB_Device_Library/Class/CDC/Inc -O0 -ffunction-sections -fdata-sections -Wall -fstack-usage -fcyclomatic-complexity -MMD -MP -MF"Core/Src/cdc_int.d" -MT"Core/Src/cdc_int.o" --specs=nano.specs -mfloat-abi=soft -mthumb -o "Core/Src/cdc_int.o"
arm-none-eabi-gcc -o "AUTOM10.elf" @"objects.list" -mcpu=cortex-m3 -T"C:\progetti\AUTOM\workspace\AUTOM10\STM32F103C8TX_FLASH.ld" --specs=nosys.specs -Wl,-Map="AUTOM10.map" -Wl,--gc-sections -static --specs=nano.specs -mfloat-abi=soft -mthumb -Wl,--start-group -lc -lm -Wl,--end-group
@@ -7,15 +7,29 @@ Finished building target: AUTOM10.elf
arm-none-eabi-size AUTOM10.elf
arm-none-eabi-objdump -h -S AUTOM10.elf > "AUTOM10.list"
text data bss dec hex filename
48728 464 7248 56440 dc78 AUTOM10.elf
48788 464 7248 56500 dcb4 AUTOM10.elf
Finished building: default.size.stdout
Finished building: AUTOM10.list
16:16:58 **** Incremental Build of configuration Debug for project AUTOM10 ****
16:33:18 **** Incremental Build of configuration Debug for project AUTOM10 ****
make -j12 all
arm-none-eabi-size AUTOM10.elf
text data bss dec hex filename
48728 464 7248 56440 dc78 AUTOM10.elf
48788 464 7248 56500 dcb4 AUTOM10.elf
Finished building: default.size.stdout
16:34:44 **** Incremental Build of configuration Debug for project AUTOM10 ****
make -j12 all
arm-none-eabi-gcc "../Core/Src/cdc_int.c" -mcpu=cortex-m3 -std=gnu11 -g3 -DDEBUG -DUSE_HAL_DRIVER -DSTM32F103xB -c -I../Core/Inc -I../Drivers/STM32F1xx_HAL_Driver/Inc/Legacy -I../Drivers/STM32F1xx_HAL_Driver/Inc -I../Drivers/CMSIS/Device/ST/STM32F1xx/Include -I../Drivers/CMSIS/Include -I../USB_DEVICE/App -I../USB_DEVICE/Target -I../Middlewares/ST/STM32_USB_Device_Library/Core/Inc -I../Middlewares/ST/STM32_USB_Device_Library/Class/CDC/Inc -O0 -ffunction-sections -fdata-sections -Wall -fstack-usage -fcyclomatic-complexity -MMD -MP -MF"Core/Src/cdc_int.d" -MT"Core/Src/cdc_int.o" --specs=nano.specs -mfloat-abi=soft -mthumb -o "Core/Src/cdc_int.o"
arm-none-eabi-gcc -o "AUTOM10.elf" @"objects.list" -mcpu=cortex-m3 -T"C:\progetti\AUTOM\workspace\AUTOM10\STM32F103C8TX_FLASH.ld" --specs=nosys.specs -Wl,-Map="AUTOM10.map" -Wl,--gc-sections -static --specs=nano.specs -mfloat-abi=soft -mthumb -Wl,--start-group -lc -lm -Wl,--end-group
Finished building target: AUTOM10.elf
arm-none-eabi-size AUTOM10.elf
arm-none-eabi-objdump -h -S AUTOM10.elf > "AUTOM10.list"
text data bss dec hex filename
48788 464 7248 56500 dcb4 AUTOM10.elf
Finished building: default.size.stdout
Finished building: AUTOM10.list

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@@ -1,105 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]>='r'){
}else if(rxbuf[1]>='w'){
}else{
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY); }
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

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@@ -1,620 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "eeprom.h"
#include "pwm.h"
#include "adc.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
DMA_HandleTypeDef hdma_adc1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim4;
UART_HandleTypeDef huart1;
/* USER CODE BEGIN PV */
#define ADC_NUM_CHANNELS 5 // CH4..CH8
#define ADC_AVG_WINDOW 5 // 5 * 10ms = 50ms averaging window
uint8_t pulsanti=0;
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_DMA_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_ADC1_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
static uint8_t inidx=0;
static uint8_t inbuf[4];
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
inidx++;
inidx&=0x03;
if(HAL_GPIO_ReadPin(P1_GPIO_Port, P1_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP1;else inbuf[inidx]&=(~INP1);
if(HAL_GPIO_ReadPin(P2_GPIO_Port, P2_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP2;else inbuf[inidx]&=(~INP2);
pulsanti|=(inbuf[0]&inbuf[1]&inbuf[2]&inbuf[3]);
pulsanti&=(inbuf[0]|inbuf[1]|inbuf[2]|inbuf[3]);
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_DMA_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_ADC1_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */
HAL_ADC_Start_DMA(&hadc1, (uint32_t *)adc_dma_buf, ADC_NUM_CHANNELS);
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
//CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
while (CDC_Transmit_FS((uint8_t*)"Start\r\n", 7) == USBD_BUSY);
if (EE_Init() != EE_OK){
for(;;);//errore eeprom
}
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_ENABLE;
hadc1.Init.ContinuousConvMode = ENABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 5;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_28CYCLES_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_5;
sConfig.Rank = ADC_REGULAR_RANK_2;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_6;
sConfig.Rank = ADC_REGULAR_RANK_3;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_7;
sConfig.Rank = ADC_REGULAR_RANK_4;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_8;
sConfig.Rank = ADC_REGULAR_RANK_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
/* USER CODE END USART1_Init 2 */
}
/**
* Enable DMA controller clock
*/
static void MX_DMA_Init(void)
{
/* DMA controller clock enable */
__HAL_RCC_DMA1_CLK_ENABLE();
/* DMA interrupt init */
/* DMA1_Channel1_IRQn interrupt configuration */
HAL_NVIC_SetPriority(DMA1_Channel1_IRQn, 0, 0);
HAL_NVIC_EnableIRQ(DMA1_Channel1_IRQn);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(LED2_GPIO_Port, LED2_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOA, BUZ_Pin|LED1_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin : LED2_Pin */
GPIO_InitStruct.Pin = LED2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(LED2_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : P1_Pin P2_Pin */
GPIO_InitStruct.Pin = P1_Pin|P2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/*Configure GPIO pin : AIN1_Pin */
GPIO_InitStruct.Pin = AIN1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
HAL_GPIO_Init(AIN1_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : INH1_Pin INH2_Pin INH3_Pin INH4_Pin
EXP1_Pin EXP2_Pin EXP3_Pin */
GPIO_InitStruct.Pin = INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : CH1_Pin CH2_Pin CH3_Pin CH4_Pin */
GPIO_InitStruct.Pin = CH1_Pin|CH2_Pin|CH3_Pin|CH4_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : BUZ_Pin LED1_Pin */
GPIO_InitStruct.Pin = BUZ_Pin|LED1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,197 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
extern const uint16_t EE_VirtAddrs[];
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=16;
*retval+=c2;
*retval*=16;
*retval+=c3;
*retval*=16;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t st;
uint16_t eeadd;
uint8_t i;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
st=EEW_Read(EE_VirtAddrs[eeadd], &val);
if (st == EE_OK){
sprintf((char*)s,"\nee 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\nee read error %d",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
st=EEW_Write(EE_VirtAddrs[eeadd], val);
if (st == EE_OK)sprintf((char*)s,"\ndone 0x%02x=0x%04x",eeadd,val);
else sprintf((char*)s,"\nee write error %d", st);
}else sprintf((char*)s,"\n?ewaavvvv hex values");
}else sprintf((char*)s,"\n?ewaa hex values");
}else sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else if(rxbuf[1]=='d'){
if(rxidx==2){
for(i=0;i<32;i++){
if((i%4)==0){
sprintf((char*)s,"\n");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
st=EEW_Read(EE_VirtAddrs[i], &val);
if (st == EE_OK){
sprintf((char*)s,"0x%02x=0x%04x ",i,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"rderr %d ",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}
}else{
sprintf((char*)s,"\n?ed");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w|d");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,179 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
retval=c1;
retval*=10;
retval+=c2;
retval*=10;
retval+=c3;
retval*=10;
retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t eeadd;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]>='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%c%c=%04x",val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]>='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
EEW_Write(eeadd, val);
sprintf((char*)s,"\ndone");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaavvvv hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%c%c=%04x",val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,35 +0,0 @@
/*
* pwm.h
*
* Created on: Dec 6, 2025
* Author: user
*/
#ifndef INC_PWM_H_
#define INC_PWM_H_
#include <stdbool.h>
bool IsPwmRunning(TIM_HandleTypeDef *htim, uint32_t Channel);;
void StopMot(TIM_HandleTypeDef *htim,uint32_t Channel);
void StartMot(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval);
void SetMotPwm(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval);
#define timMot1 &htim2
#define FWMot1 TIM_CHANNEL_1
#define BWMot1 TIM_CHANNEL_2
#define timMot2 &htim2
#define FWMot2 TIM_CHANNEL_3
#define BWMot2 TIM_CHANNEL_4
#define timMot3 &htim4
#define FWMot3 TIM_CHANNEL_1
#define BWMot3 TIM_CHANNEL_2
#define timMot4 &htim4
#define FWMot4 TIM_CHANNEL_3
#define BWMot4 TIM_CHANNEL_4
#define FW 0
#define BW 1
#endif /* INC_PWM_H_ */

View File

@@ -1,619 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "eeprom.h"
#include "pwm.h"
#include "adc.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
DMA_HandleTypeDef hdma_adc1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim4;
UART_HandleTypeDef huart1;
/* USER CODE BEGIN PV */
extern volatile uint16_t adc_dma_buf[];
uint8_t pulsanti=0;
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_DMA_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_ADC1_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
static uint8_t inidx=0;
static uint8_t inbuf[4];
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
inidx++;
inidx&=0x03;
if(HAL_GPIO_ReadPin(P1_GPIO_Port, P1_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP1;else inbuf[inidx]&=(~INP1);
if(HAL_GPIO_ReadPin(P2_GPIO_Port, P2_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP2;else inbuf[inidx]&=(~INP2);
pulsanti|=(inbuf[0]&inbuf[1]&inbuf[2]&inbuf[3]);
pulsanti&=(inbuf[0]|inbuf[1]|inbuf[2]|inbuf[3]);
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_DMA_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_ADC1_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */
HAL_ADC_Start_DMA(&hadc1, (uint32_t *)adc_dma_buf, ADC_NUM_CHANNELS);
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
//CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
while (CDC_Transmit_FS((uint8_t*)"Start\r\n", 7) == USBD_BUSY);
if (EE_Init() != EE_OK){
for(;;);//errore eeprom
}
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_ENABLE;
hadc1.Init.ContinuousConvMode = ENABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 5;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_28CYCLES_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_5;
sConfig.Rank = ADC_REGULAR_RANK_2;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_6;
sConfig.Rank = ADC_REGULAR_RANK_3;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_7;
sConfig.Rank = ADC_REGULAR_RANK_4;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_8;
sConfig.Rank = ADC_REGULAR_RANK_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
/* USER CODE END USART1_Init 2 */
}
/**
* Enable DMA controller clock
*/
static void MX_DMA_Init(void)
{
/* DMA controller clock enable */
__HAL_RCC_DMA1_CLK_ENABLE();
/* DMA interrupt init */
/* DMA1_Channel1_IRQn interrupt configuration */
HAL_NVIC_SetPriority(DMA1_Channel1_IRQn, 0, 0);
HAL_NVIC_EnableIRQ(DMA1_Channel1_IRQn);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(LED2_GPIO_Port, LED2_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOA, BUZ_Pin|LED1_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin : LED2_Pin */
GPIO_InitStruct.Pin = LED2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(LED2_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : P1_Pin P2_Pin */
GPIO_InitStruct.Pin = P1_Pin|P2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/*Configure GPIO pin : AIN1_Pin */
GPIO_InitStruct.Pin = AIN1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
HAL_GPIO_Init(AIN1_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : INH1_Pin INH2_Pin INH3_Pin INH4_Pin
EXP1_Pin EXP2_Pin EXP3_Pin */
GPIO_InitStruct.Pin = INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : CH1_Pin CH2_Pin CH3_Pin CH4_Pin */
GPIO_InitStruct.Pin = CH1_Pin|CH2_Pin|CH3_Pin|CH4_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : BUZ_Pin LED1_Pin */
GPIO_InitStruct.Pin = BUZ_Pin|LED1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,36 +0,0 @@
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,94 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,48 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%x 0x%x 0x%x 0x%x 0x%x 0x%x 0x%x 0x%x",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,35 +0,0 @@
/*
* pwm.h
*
* Created on: Dec 6, 2025
* Author: user
*/
#ifndef INC_PWM_H_
#define INC_PWM_H_
#include <stdbool.h>
bool IsPwmRunning(TIM_HandleTypeDef *htim, uint32_t Channel);;
void StopMot(TIM_HandleTypeDef *htim,uint32_t Channel);
void StartMot(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval);
void SetMotPwm(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval);
#define timMot1 &htim2
#define FWMot1 TIM_CHANNEL_1
#define BWMot1 TIM_CHANNEL_2
#define timMot2 &htim2
#define FWMot2 TIM_CHANNEL_3
#define BWMot2 TIM_CHANNEL_4
#define timMot3 &htim4
#define FWMot3 TIM_CHANNEL_1
#define BWMot3 TIM_CHANNEL_2
#define timMot4 &htim4
#define FWMot4 TIM_CHANNEL_3
#define BWMot4 TIM_CHANNEL_4
#define FW 0
@define BW 1
#endif /* INC_PWM_H_ */

View File

@@ -1,549 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "pwm.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim4;
UART_HandleTypeDef huart1;
/* USER CODE BEGIN PV */
TIM_HandleTypeDef htim1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim3;
TIM_HandleTypeDef htim4;
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_ADC1_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_ADC1_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
hadc1.Init.ContinuousConvMode = DISABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 1;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
/* USER CODE END USART1_Init 2 */
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(LED2_GPIO_Port, LED2_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOA, BUZ_Pin|LED1_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin : LED2_Pin */
GPIO_InitStruct.Pin = LED2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(LED2_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : P1_Pin P2_Pin */
GPIO_InitStruct.Pin = P1_Pin|P2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/*Configure GPIO pin : AIN1_Pin */
GPIO_InitStruct.Pin = AIN1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
HAL_GPIO_Init(AIN1_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : INH1_Pin INH2_Pin INH3_Pin INH4_Pin
EXP1_Pin EXP2_Pin EXP3_Pin */
GPIO_InitStruct.Pin = INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : CH1_Pin CH2_Pin CH3_Pin CH4_Pin */
GPIO_InitStruct.Pin = CH1_Pin|CH2_Pin|CH3_Pin|CH4_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : BUZ_Pin LED1_Pin */
GPIO_InitStruct.Pin = BUZ_Pin|LED1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,204 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=16;
*retval+=c2;
*retval*=16;
*retval+=c3;
*retval*=16;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t st;
uint16_t eeadd;
uint8_t i;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
st=EEW_Read(eeadd, &val);
if (st == EE_OK){
sprintf((char*)s,"\nee 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\nee read error %d",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
EEW_Write(eeadd, val);
sprintf((char*)s,"\ndone 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaavvvv hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='d'){
if(rxidx==2){
for(i=0;i<32;i++){
if((i%4)==0){
sprintf((char*)s,"\n");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
st=EEW_Read(i, &val);
if (st == EE_OK){
sprintf((char*)s,"0x%02x=0x%04x ",i,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"rderr %d ",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}
}else{
sprintf((char*)s,"\n?ed");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w|d");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,631 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "eeprom.h"
#include "pwm.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
DMA_HandleTypeDef hdma_adc1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim4;
UART_HandleTypeDef huart1;
/* USER CODE BEGIN PV */
#define ADC_NUM_CHANNELS 5 // CH4..CH8
#define ADC_AVG_WINDOW 5 // 5 * 10ms = 50ms averaging window
/* Filled by ADC+DMA: latest raw value of each channel */
volatile uint16_t adc_dma_buf[ADC_NUM_CHANNELS];
/* Smoothed value (50ms average with settings above) */
volatile uint16_t adc_avg[ADC_NUM_CHANNELS];
/* Internal accumulators used only in the timer ISR */
static uint32_t adc_sum[ADC_NUM_CHANNELS];
static uint8_t adc_sum_count = 0;
/* Optional flag to tell main loop that a new averaged set is ready */
volatile uint8_t adc_avg_ready = 0;
uint8_t pulsanti=0;
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_DMA_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_ADC1_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
static uint8_t inidx=0;
static uint8_t inbuf[4];
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
inidx++;
inidx&=0x03;
if(HAL_GPIO_ReadPin(P1_GPIO_Port, P1_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP1;else inbuf[inidx]&=(~INP1);
if(HAL_GPIO_ReadPin(P2_GPIO_Port, P2_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP2;else inbuf[inidx]&=(~INP2);
pulsanti|=(inbuf[0]&inbuf[1]&inbuf[2]&inbuf[3]);
pulsanti&=(inbuf[0]|inbuf[1]|inbuf[2]|inbuf[3]);
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_DMA_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_ADC1_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */
HAL_ADC_Start_DMA(&hadc1, (uint32_t *)adc_dma_buf, ADC_NUM_CHANNELS);
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
//CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
while (CDC_Transmit_FS((uint8_t*)"Start\r\n", 7) == USBD_BUSY);
if (EE_Init() != EE_OK){
for(;;);//errore eeprom
}
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_ENABLE;
hadc1.Init.ContinuousConvMode = ENABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 5;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_28CYCLES_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_5;
sConfig.Rank = ADC_REGULAR_RANK_2;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_6;
sConfig.Rank = ADC_REGULAR_RANK_3;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_7;
sConfig.Rank = ADC_REGULAR_RANK_4;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_8;
sConfig.Rank = ADC_REGULAR_RANK_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
/* USER CODE END USART1_Init 2 */
}
/**
* Enable DMA controller clock
*/
static void MX_DMA_Init(void)
{
/* DMA controller clock enable */
__HAL_RCC_DMA1_CLK_ENABLE();
/* DMA interrupt init */
/* DMA1_Channel1_IRQn interrupt configuration */
HAL_NVIC_SetPriority(DMA1_Channel1_IRQn, 0, 0);
HAL_NVIC_EnableIRQ(DMA1_Channel1_IRQn);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(LED2_GPIO_Port, LED2_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOA, BUZ_Pin|LED1_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin : LED2_Pin */
GPIO_InitStruct.Pin = LED2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(LED2_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : P1_Pin P2_Pin */
GPIO_InitStruct.Pin = P1_Pin|P2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/*Configure GPIO pin : AIN1_Pin */
GPIO_InitStruct.Pin = AIN1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
HAL_GPIO_Init(AIN1_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : INH1_Pin INH2_Pin INH3_Pin INH4_Pin
EXP1_Pin EXP2_Pin EXP3_Pin */
GPIO_InitStruct.Pin = INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : CH1_Pin CH2_Pin CH3_Pin CH4_Pin */
GPIO_InitStruct.Pin = CH1_Pin|CH2_Pin|CH3_Pin|CH4_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : BUZ_Pin LED1_Pin */
GPIO_InitStruct.Pin = BUZ_Pin|LED1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,119 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]>='r'){
if(rxidx==4){
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]>='w'){
if(rxidx==4){
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,177 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=10;
*retval+=c2;
*retval*=10;
*retval+=c3;
*retval*=10;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t eeadd;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%02x=%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
EEW_Write(eeadd, val);
sprintf((char*)s,"\ndone");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaavvvv hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,287 +0,0 @@
#include "eeprom.h"
/*
* Record format (4 bytes):
* [0] VirtAddress (uint16_t)
* [2] Data (uint16_t)
*
* Page layout:
* [0] PageStatus (uint16_t)
* [2..] Records...
*/
typedef struct
{
uint16_t VirtAddress;
uint16_t Data;
} EE_Record_t;
/* Active page base address (runtime selected in EE_Init) */
static uint32_t EE_ActivePageBase = EE_PAGE0_BASE;
/* 32 sequential virtual addresses */
const uint16_t EE_VirtAddrs[EE_NUM_VIRTUAL_ADDR] =
{
0x0001, 0x0002, 0x0003, 0x0004,
0x0005, 0x0006, 0x0007, 0x0008,
0x0009, 0x000A, 0x000B, 0x000C,
0x000D, 0x000E, 0x000F, 0x0010,
0x0011, 0x0012, 0x0013, 0x0014,
0x0015, 0x0016, 0x0017, 0x0018,
0x0019, 0x001A, 0x001B, 0x001C,
0x001D, 0x001E, 0x001F, 0x0020
};
/* ========================================================================= */
/* --- Internal helpers ---------------------------------------------------- */
static uint16_t EE_GetPageStatus(uint32_t pageBase)
{
return *(__IO uint16_t *)pageBase;
}
static HAL_StatusTypeDef EE_FlashProgramHalfWord(uint32_t Address, uint16_t Data)
{
HAL_StatusTypeDef status;
HAL_FLASH_Unlock();
status = HAL_FLASH_Program(FLASH_TYPEPROGRAM_HALFWORD, Address, Data);
HAL_FLASH_Lock();
return status;
}
static HAL_StatusTypeDef EE_FlashErasePage(uint32_t PageAddress)
{
HAL_StatusTypeDef status;
FLASH_EraseInitTypeDef EraseInit;
uint32_t PageError = 0;
HAL_FLASH_Unlock();
EraseInit.TypeErase = FLASH_TYPEERASE_PAGES;
EraseInit.PageAddress = PageAddress;
EraseInit.NbPages = 1;
status = HAL_FLASHEx_Erase(&EraseInit, &PageError);
HAL_FLASH_Lock();
return status;
}
/* Find first free record address in given page (returns 0 if full) */
static uint32_t EE_FindFreeAddress(uint32_t pageBase)
{
uint32_t addr = pageBase + 2U; /* Skip status word */
uint32_t pageEnd = pageBase + EE_PAGE_SIZE;
while (addr < (pageEnd - sizeof(EE_Record_t) + 1U))
{
uint16_t vaddr = *(__IO uint16_t *)addr;
if (vaddr == 0xFFFFU)
{
/* Empty slot */
return addr;
}
addr += sizeof(EE_Record_t);
}
return 0U; /* No space */
}
/* Find latest value of VirtAddress in a specific page */
static EE_Status EE_FindInPage(uint32_t pageBase, uint16_t VirtAddress, uint16_t *Data)
{
uint32_t pageEnd = pageBase + EE_PAGE_SIZE;
uint32_t addr;
if (Data == NULL)
return EE_ERROR;
/* Start from last possible record and go backwards */
for (addr = pageEnd - sizeof(EE_Record_t); addr > pageBase + 1U; addr -= sizeof(EE_Record_t))
{
uint16_t vaddr = *(__IO uint16_t *)addr;
uint16_t value = *(__IO uint16_t *)(addr + 2U);
if (vaddr == 0xFFFFU)
{
/* Empty slot, skip */
continue;
}
if (vaddr == VirtAddress)
{
*Data = value;
return EE_OK;
}
}
return EE_NOT_FOUND;
}
/* Format both pages: erase and set PAGE0 as VALID */
static EE_Status EE_Format(void)
{
if (EE_FlashErasePage(EE_PAGE0_BASE) != HAL_OK)
return EE_ERROR;
if (EE_FlashErasePage(EE_PAGE1_BASE) != HAL_OK)
return EE_ERROR;
if (EE_FlashProgramHalfWord(EE_PAGE0_BASE, EE_PAGE_STATUS_VALID) != HAL_OK)
return EE_ERROR;
/* PAGE1 will remain erased (status = 0xFFFF) */
EE_ActivePageBase = EE_PAGE0_BASE;
return EE_OK;
}
/* Get the base of the other page */
static uint32_t EE_GetOtherPageBase(uint32_t pageBase)
{
return (pageBase == EE_PAGE0_BASE) ? EE_PAGE1_BASE : EE_PAGE0_BASE;
}
/* Page transfer (garbage collection + new write) */
static EE_Status EE_PageTransfer(uint16_t VirtAddress, uint16_t Data)
{
uint32_t oldBase = EE_ActivePageBase;
uint32_t newBase = EE_GetOtherPageBase(oldBase);
uint32_t addr;
uint16_t value;
EE_Status st;
/* Erase new page */
if (EE_FlashErasePage(newBase) != HAL_OK)
return EE_ERROR;
/* Mark new page as RECEIVE */
if (EE_FlashProgramHalfWord(newBase, EE_PAGE_STATUS_RECEIVE) != HAL_OK)
return EE_ERROR;
/* Start writing records just after status */
addr = newBase + 2U;
/* For each known virtual variable */
for (uint16_t i = 0; i < EE_NUM_VIRTUAL_ADDR; i++)
{
uint16_t vaddr = EE_VirtAddrs[i];
if (vaddr == VirtAddress)
{
/* Use the new data passed into PageTransfer */
value = Data;
}
else
{
/* Read latest value from old active page */
st = EE_FindInPage(oldBase, vaddr, &value);
if (st != EE_OK)
{
/* Variable never written -> skip */
continue;
}
}
/* Write record to new page */
if (EE_FlashProgramHalfWord(addr, vaddr) != HAL_OK)
return EE_ERROR;
if (EE_FlashProgramHalfWord(addr + 2U, value) != HAL_OK)
return EE_ERROR;
addr += sizeof(EE_Record_t);
if (addr >= (newBase + EE_PAGE_SIZE))
return EE_NO_SPACE;
}
/* Erase old page */
if (EE_FlashErasePage(oldBase) != HAL_OK)
return EE_ERROR;
/* Mark new page as VALID */
if (EE_FlashProgramHalfWord(newBase, EE_PAGE_STATUS_VALID) != HAL_OK)
return EE_ERROR;
/* Update active page */
EE_ActivePageBase = newBase;
return EE_OK;
}
/* --- Public API ----------------------------------------------------------- */
/*
* Initialize the EEPROM emulation.
* - Checks page statuses and chooses the active page.
* - If inconsistent or blank, formats pages.
*/
EE_Status EE_Init(void)
{
uint16_t status0 = EE_GetPageStatus(EE_PAGE0_BASE);
uint16_t status1 = EE_GetPageStatus(EE_PAGE1_BASE);
if ((status0 == EE_PAGE_STATUS_ERASED) && (status1 == EE_PAGE_STATUS_ERASED))
{
/* Fresh device -> format */
return EE_Format();
}
else if ((status0 == EE_PAGE_STATUS_VALID) && (status1 == EE_PAGE_STATUS_ERASED))
{
EE_ActivePageBase = EE_PAGE0_BASE;
return EE_OK;
}
else if ((status1 == EE_PAGE_STATUS_VALID) && (status0 == EE_PAGE_STATUS_ERASED))
{
EE_ActivePageBase = EE_PAGE1_BASE;
return EE_OK;
}
else
{
/* Any weird or inconsistent state -> reformat */
return EE_Format();
}
}
/*
* Read a 16-bit variable by its virtual address.
*/
EE_Status EE_ReadVariable(uint16_t VirtAddress, uint16_t *Data)
{
if (Data == NULL)
return EE_ERROR;
return EE_FindInPage(EE_ActivePageBase, VirtAddress, Data);
}
/*
* Write (append) a 16-bit variable.
* - Writes a new record in the active page.
* - If the page is full, triggers a page transfer (GC).
*/
EE_Status EE_WriteVariable(uint16_t VirtAddress, uint16_t Data)
{
uint32_t freeAddr;
EE_Status st;
/* Find free space in active page */
freeAddr = EE_FindFreeAddress(EE_ActivePageBase);
if (freeAddr != 0U)
{
/* Write new record */
if (EE_FlashProgramHalfWord(freeAddr, VirtAddress) != HAL_OK)
return EE_ERROR;
if (EE_FlashProgramHalfWord(freeAddr + 2U, Data) != HAL_OK)
return EE_ERROR;
return EE_OK;
}
/* No space -> page transfer */
st = EE_PageTransfer(VirtAddress, Data);
return st;
}

View File

@@ -1,36 +0,0 @@
/*
* pwm.h
*
* Created on: Dec 6, 2025
* Author: user
*/
#ifndef INC_PWM_H_
#define INC_PWM_H_
#include <stdbool.h>
bool IsPwmRunning(TIM_HandleTypeDef *htim, uint32_t Channel);;
void StopMot(TIM_HandleTypeDef *htim,uint32_t Channel);
void StartMot(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval);
void SetMotPwm(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval);
void SetMot(TIM_HandleTypeDef *htim,uint8_t dir,uint16_t pwmval);
#define timMot1 &htim2
#define FWMot1 TIM_CHANNEL_1
#define BWMot1 TIM_CHANNEL_2
#define timMot2 &htim2
#define FWMot2 TIM_CHANNEL_3
#define BWMot2 TIM_CHANNEL_4
#define timMot3 &htim4
#define FWMot3 TIM_CHANNEL_1
#define BWMot3 TIM_CHANNEL_2
#define timMot4 &htim4
#define FWMot4 TIM_CHANNEL_3
#define BWMot4 TIM_CHANNEL_4
#define FW 0
#define BW 1
#endif /* INC_PWM_H_ */

View File

@@ -1,619 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "eeprom.h"
#include "pwm.h"
#include "adc.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
DMA_HandleTypeDef hdma_adc1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim4;
UART_HandleTypeDef huart1;
/* USER CODE BEGIN PV */
extern volatile uint16_t adc_dma_buf[
uint8_t pulsanti=0;
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_DMA_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_ADC1_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
static uint8_t inidx=0;
static uint8_t inbuf[4];
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
inidx++;
inidx&=0x03;
if(HAL_GPIO_ReadPin(P1_GPIO_Port, P1_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP1;else inbuf[inidx]&=(~INP1);
if(HAL_GPIO_ReadPin(P2_GPIO_Port, P2_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP2;else inbuf[inidx]&=(~INP2);
pulsanti|=(inbuf[0]&inbuf[1]&inbuf[2]&inbuf[3]);
pulsanti&=(inbuf[0]|inbuf[1]|inbuf[2]|inbuf[3]);
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_DMA_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_ADC1_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */
HAL_ADC_Start_DMA(&hadc1, (uint32_t *)adc_dma_buf, ADC_NUM_CHANNELS);
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
//CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
while (CDC_Transmit_FS((uint8_t*)"Start\r\n", 7) == USBD_BUSY);
if (EE_Init() != EE_OK){
for(;;);//errore eeprom
}
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_ENABLE;
hadc1.Init.ContinuousConvMode = ENABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 5;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_28CYCLES_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_5;
sConfig.Rank = ADC_REGULAR_RANK_2;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_6;
sConfig.Rank = ADC_REGULAR_RANK_3;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_7;
sConfig.Rank = ADC_REGULAR_RANK_4;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_8;
sConfig.Rank = ADC_REGULAR_RANK_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
/* USER CODE END USART1_Init 2 */
}
/**
* Enable DMA controller clock
*/
static void MX_DMA_Init(void)
{
/* DMA controller clock enable */
__HAL_RCC_DMA1_CLK_ENABLE();
/* DMA interrupt init */
/* DMA1_Channel1_IRQn interrupt configuration */
HAL_NVIC_SetPriority(DMA1_Channel1_IRQn, 0, 0);
HAL_NVIC_EnableIRQ(DMA1_Channel1_IRQn);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(LED2_GPIO_Port, LED2_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOA, BUZ_Pin|LED1_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin : LED2_Pin */
GPIO_InitStruct.Pin = LED2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(LED2_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : P1_Pin P2_Pin */
GPIO_InitStruct.Pin = P1_Pin|P2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/*Configure GPIO pin : AIN1_Pin */
GPIO_InitStruct.Pin = AIN1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
HAL_GPIO_Init(AIN1_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : INH1_Pin INH2_Pin INH3_Pin INH4_Pin
EXP1_Pin EXP2_Pin EXP3_Pin */
GPIO_InitStruct.Pin = INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : CH1_Pin CH2_Pin CH3_Pin CH4_Pin */
GPIO_InitStruct.Pin = CH1_Pin|CH2_Pin|CH3_Pin|CH4_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : BUZ_Pin LED1_Pin */
GPIO_InitStruct.Pin = BUZ_Pin|LED1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

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@@ -1,137 +0,0 @@
/*
* pwm.c
*
* Created on: Dec 6, 2025
* Author: user
*/
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool IsPwmRunning(TIM_HandleTypeDef *htim, uint32_t Channel)
{
HAL_TIM_ChannelStateTypeDef chState = HAL_TIM_GetChannelState(htim, Channel);
return (chState == HAL_TIM_CHANNEL_STATE_BUSY);
}
void StopMot(TIM_HandleTypeDef *htim,uint32_t Channel){
HAL_TIM_PWM_Stop(htim, Channel);
}
void StartMot(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval){
__HAL_TIM_SET_COMPARE(htim, Channel, pwmval);
HAL_TIM_PWM_Start(htim, Channel);
}
void SetMotPwm(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval){
__HAL_TIM_SET_COMPARE(htim, Channel, pwmval);
}
void SetMot(uint8_t mot,uint8_t dir,uint16_t pwmval){
TIM_HandleTypeDef *htim;
switch(mot){
case 1:
if(dir==FW){
if(pwmval==0){
StopMot(timMot1,FWMot1);
HAL_GPIO_WritePin(INH1_GPIO_Port, INH1_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot1, FWMot1)){
SetMotPwm(timMot1,FWMot1,pwmval);
}else{
HAL_GPIO_WritePin(INH1_GPIO_Port, INH1_Pin, GPIO_PIN_SET);
StartMot(timMot1,FWMot1,pwmval);
}
}else{
if(pwmval==0){
StopMot(timMot1,BWMot1);
HAL_GPIO_WritePin(INH1_GPIO_Port, INH1_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot1, BWMot1)){
SetMotPwm(timMot1,BWMot1,pwmval);
}else{
HAL_GPIO_WritePin(INH1_GPIO_Port, INH1_Pin, GPIO_PIN_SET);
StartMot(timMot1,BWMot1,pwmval);
}
}
break;
case 2:
if(dir==FW){
if(pwmval==0){
StopMot(timMot2,FWMot2);
HAL_GPIO_WritePin(INH2_GPIO_Port, INH2_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot2, FWMot2)){
SetMotPwm(timMot2,FWMot2,pwmval);
}else{
HAL_GPIO_WritePin(INH2_GPIO_Port, INH2_Pin, GPIO_PIN_SET);
StartMot(timMot2,FWMot2,pwmval);
}
}else{
if(pwmval==0){
StopMot(timMot2,BWMot2);
HAL_GPIO_WritePin(INH2_GPIO_Port, INH2_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot2, BWMot2)){
SetMotPwm(timMot2,BWMot2,pwmval);
}else{
HAL_GPIO_WritePin(INH2_GPIO_Port, INH2_Pin, GPIO_PIN_SET);
StartMot(timMot2,BWMot2,pwmval);
}
}
break;
case 3:
if(dir==FW){
if(pwmval==0){
StopMot(timMot3,FWMot3);
HAL_GPIO_WritePin(INH3_GPIO_Port, INH3_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot3, FWMot3)){
SetMotPwm(timMot3,FWMot3,pwmval);
}else{
HAL_GPIO_WritePin(INH3_GPIO_Port, INH3_Pin, GPIO_PIN_SET);
StartMot(timMot3,FWMot3,pwmval);
}
}else{
if(pwmval==0){
StopMot(timMot3,BWMot3);
HAL_GPIO_WritePin(INH3_GPIO_Port, INH3_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot3, BWMot3)){
SetMotPwm(timMot3,BWMot3,pwmval);
}else{
HAL_GPIO_WritePin(INH3_GPIO_Port, INH3_Pin, GPIO_PIN_SET);
StartMot(timMot3,BWMot3,pwmval);
}
}
break;
case 4:
if(dir==FW){
if(pwmval==0){
StopMot(timMot4,FWMot4);
HAL_GPIO_WritePin(INH4_GPIO_Port, INH4_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot4, FWMot4)){
SetMotPwm(timMot4,FWMot4,pwmval);
}else{
HAL_GPIO_WritePin(INH4_GPIO_Port, INH4_Pin, GPIO_PIN_SET);
StartMot(timMot4,FWMot4,pwmval);
}
}else{
if(pwmval==0){
StopMot(timMot4,BWMot4);
HAL_GPIO_WritePin(INH4_GPIO_Port, INH4_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot4, BWMot4)){
SetMotPwm(timMot4,BWMot4,pwmval);
}else{
HAL_GPIO_WritePin(INH4_GPIO_Port, INH4_Pin, GPIO_PIN_SET);
StartMot(timMot4,BWMot4,pwmval);
}
}
break;
default:
break;
}
}

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@@ -1,13 +0,0 @@
/*
* pwm.h
*
* Created on: Dec 6, 2025
* Author: user
*/
#ifndef INC_PWM_H_
#define INC_PWM_H_
bool IsPwmRunning(TIM_HandleTypeDef *htim, uint32_t Channel);
#endif /* INC_PWM_H_ */

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@@ -1,620 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "eeprom.h"
#include "pwm.h"
#include "adc.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
DMA_HandleTypeDef hdma_adc1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim4;
UART_HandleTypeDef huart1;
/* USER CODE BEGIN PV */
extern volatile uint16_t adc_dma_buf[];
uint8_t pulsanti=0;
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_DMA_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_ADC1_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
static uint8_t inidx=0;
static uint8_t inbuf[4];
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
inidx++;
inidx&=0x03;
if(HAL_GPIO_ReadPin(P1_GPIO_Port, P1_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP1;else inbuf[inidx]&=(~INP1);
if(HAL_GPIO_ReadPin(P2_GPIO_Port, P2_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP2;else inbuf[inidx]&=(~INP2);
pulsanti|=(inbuf[0]&inbuf[1]&inbuf[2]&inbuf[3]);
pulsanti&=(inbuf[0]|inbuf[1]|inbuf[2]|inbuf[3]);
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_DMA_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_ADC1_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */
HAL_ADC_Start_DMA(&hadc1, (uint32_t *)adc_dma_buf, ADC_NUM_CHANNELS);
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
//CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
while (CDC_Transmit_FS((uint8_t*)"Start\r\n", 7) == USBD_BUSY);
if (EE_Init() != EE_OK){
for(;;);//errore eeprom
}
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
managAdc();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_ENABLE;
hadc1.Init.ContinuousConvMode = ENABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 5;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_28CYCLES_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_5;
sConfig.Rank = ADC_REGULAR_RANK_2;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_6;
sConfig.Rank = ADC_REGULAR_RANK_3;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_7;
sConfig.Rank = ADC_REGULAR_RANK_4;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_8;
sConfig.Rank = ADC_REGULAR_RANK_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
/* USER CODE END USART1_Init 2 */
}
/**
* Enable DMA controller clock
*/
static void MX_DMA_Init(void)
{
/* DMA controller clock enable */
__HAL_RCC_DMA1_CLK_ENABLE();
/* DMA interrupt init */
/* DMA1_Channel1_IRQn interrupt configuration */
HAL_NVIC_SetPriority(DMA1_Channel1_IRQn, 0, 0);
HAL_NVIC_EnableIRQ(DMA1_Channel1_IRQn);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(LED2_GPIO_Port, LED2_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOA, BUZ_Pin|LED1_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin : LED2_Pin */
GPIO_InitStruct.Pin = LED2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(LED2_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : P1_Pin P2_Pin */
GPIO_InitStruct.Pin = P1_Pin|P2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/*Configure GPIO pin : AIN1_Pin */
GPIO_InitStruct.Pin = AIN1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
HAL_GPIO_Init(AIN1_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : INH1_Pin INH2_Pin INH3_Pin INH4_Pin
EXP1_Pin EXP2_Pin EXP3_Pin */
GPIO_InitStruct.Pin = INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : CH1_Pin CH2_Pin CH3_Pin CH4_Pin */
GPIO_InitStruct.Pin = CH1_Pin|CH2_Pin|CH3_Pin|CH4_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : BUZ_Pin LED1_Pin */
GPIO_InitStruct.Pin = BUZ_Pin|LED1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

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@@ -1,8 +0,0 @@
/*
* eeprom.c
*
* Created on: Dec 7, 2025
* Author: user
*/

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@@ -1,16 +0,0 @@
/*
* adc.h
*
* Created on: Dec 8, 2025
* Author: user
*/
#ifndef INC_ADC_H_
#define INC_ADC_H_
#include "stm32f1xx_hal.h"
#define ADC_NUM_CHANNELS 5 // CH4..CH8
#define ADC_AVG_WINDOW 5 // 5 * 10ms = 50ms averaging window
void manageAdc(void);
#endif /* INC_ADC_H_ */

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@@ -1,620 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "eeprom.h"
#include "pwm.h"
#include "adc.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
DMA_HandleTypeDef hdma_adc1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim4;
UART_HandleTypeDef huart1;
/* USER CODE BEGIN PV */
extern volatile uint16_t adc_dma_buf[];
uint8_t pulsanti=0;
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_DMA_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_ADC1_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
static uint8_t inidx=0;
static uint8_t inbuf[4];
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
inidx++;
inidx&=0x03;
if(HAL_GPIO_ReadPin(P1_GPIO_Port, P1_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP1;else inbuf[inidx]&=(~INP1);
if(HAL_GPIO_ReadPin(P2_GPIO_Port, P2_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP2;else inbuf[inidx]&=(~INP2);
pulsanti|=(inbuf[0]&inbuf[1]&inbuf[2]&inbuf[3]);
pulsanti&=(inbuf[0]|inbuf[1]|inbuf[2]|inbuf[3]);
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_DMA_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_ADC1_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */
HAL_ADC_Start_DMA(&hadc1, (uint32_t *)adc_dma_buf, ADC_NUM_CHANNELS);
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
//CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
while (CDC_Transmit_FS((uint8_t*)"Start\r\n", 7) == USBD_BUSY);
if (EE_Init() != EE_OK){
for(;;);//errore eeprom
}
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
manageAdc();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_ENABLE;
hadc1.Init.ContinuousConvMode = ENABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 5;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_28CYCLES_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_5;
sConfig.Rank = ADC_REGULAR_RANK_2;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_6;
sConfig.Rank = ADC_REGULAR_RANK_3;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_7;
sConfig.Rank = ADC_REGULAR_RANK_4;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_8;
sConfig.Rank = ADC_REGULAR_RANK_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
/* USER CODE END USART1_Init 2 */
}
/**
* Enable DMA controller clock
*/
static void MX_DMA_Init(void)
{
/* DMA controller clock enable */
__HAL_RCC_DMA1_CLK_ENABLE();
/* DMA interrupt init */
/* DMA1_Channel1_IRQn interrupt configuration */
HAL_NVIC_SetPriority(DMA1_Channel1_IRQn, 0, 0);
HAL_NVIC_EnableIRQ(DMA1_Channel1_IRQn);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(LED2_GPIO_Port, LED2_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOA, BUZ_Pin|LED1_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin : LED2_Pin */
GPIO_InitStruct.Pin = LED2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(LED2_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : P1_Pin P2_Pin */
GPIO_InitStruct.Pin = P1_Pin|P2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/*Configure GPIO pin : AIN1_Pin */
GPIO_InitStruct.Pin = AIN1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
HAL_GPIO_Init(AIN1_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : INH1_Pin INH2_Pin INH3_Pin INH4_Pin
EXP1_Pin EXP2_Pin EXP3_Pin */
GPIO_InitStruct.Pin = INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : CH1_Pin CH2_Pin CH3_Pin CH4_Pin */
GPIO_InitStruct.Pin = CH1_Pin|CH2_Pin|CH3_Pin|CH4_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : BUZ_Pin LED1_Pin */
GPIO_InitStruct.Pin = BUZ_Pin|LED1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,45 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS((char*)s, strlen(s)) == USBD_BUSY);
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,617 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "eeprom.h"
#include "pwm.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
DMA_HandleTypeDef hdma_adc1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim4;
UART_HandleTypeDef huart1;
/* USER CODE BEGIN PV */
uint8_t pulsanti=0;
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_DMA_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_ADC1_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
static uint8_t inidx=0;
static uint8_t inbuf[4];
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
inidx++;
inidx&=0x03;
if(HAL_GPIO_ReadPin(P1_GPIO_Port, P1_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP1;else inbuf[inidx]&=(~INP1);
if(HAL_GPIO_ReadPin(P2_GPIO_Port, P2_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP2;else inbuf[inidx]&=(~INP2);
pulsanti|=(inbuf[0]&inbuf[1]&inbuf[2]&inbuf[3]);
pulsanti&=(inbuf[0]|inbuf[1]|inbuf[2]|inbuf[3]);
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_DMA_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_ADC1_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */
HAL_ADC_Start_DMA(&hadc1, (uint32_t *)adc_dma_buf, ADC_NUM_CHANNELS);
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
//CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
while (CDC_Transmit_FS((uint8_t*)"Start\r\n", 7) == USBD_BUSY);
if (EE_Init() != EE_OK){
for(;;);//errore eeprom
}
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_ENABLE;
hadc1.Init.ContinuousConvMode = ENABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 5;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_28CYCLES_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_5;
sConfig.Rank = ADC_REGULAR_RANK_2;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_6;
sConfig.Rank = ADC_REGULAR_RANK_3;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_7;
sConfig.Rank = ADC_REGULAR_RANK_4;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_8;
sConfig.Rank = ADC_REGULAR_RANK_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
/* USER CODE END USART1_Init 2 */
}
/**
* Enable DMA controller clock
*/
static void MX_DMA_Init(void)
{
/* DMA controller clock enable */
__HAL_RCC_DMA1_CLK_ENABLE();
/* DMA interrupt init */
/* DMA1_Channel1_IRQn interrupt configuration */
HAL_NVIC_SetPriority(DMA1_Channel1_IRQn, 0, 0);
HAL_NVIC_EnableIRQ(DMA1_Channel1_IRQn);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(LED2_GPIO_Port, LED2_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOA, BUZ_Pin|LED1_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin : LED2_Pin */
GPIO_InitStruct.Pin = LED2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(LED2_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : P1_Pin P2_Pin */
GPIO_InitStruct.Pin = P1_Pin|P2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/*Configure GPIO pin : AIN1_Pin */
GPIO_InitStruct.Pin = AIN1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
HAL_GPIO_Init(AIN1_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : INH1_Pin INH2_Pin INH3_Pin INH4_Pin
EXP1_Pin EXP2_Pin EXP3_Pin */
GPIO_InitStruct.Pin = INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : CH1_Pin CH2_Pin CH3_Pin CH4_Pin */
GPIO_InitStruct.Pin = CH1_Pin|CH2_Pin|CH3_Pin|CH4_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : BUZ_Pin LED1_Pin */
GPIO_InitStruct.Pin = BUZ_Pin|LED1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,644 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
TIM_HandleTypeDef htim1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim3;
TIM_HandleTypeDef htim4;
/* USER CODE BEGIN PV */
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_TIM3_Init(void);
static void MX_ADC1_Init(void);
static void MX_TIM1_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_TIM3_Init();
MX_ADC1_Init();
MX_TIM1_Init();
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_4);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_3);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_4);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_4);
/* USER CODE BEGIN 2 */
CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
void manageCDC(void);
while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
}
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
hadc1.Init.ContinuousConvMode = DISABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 1;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM1 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM1_Init(void)
{
/* USER CODE BEGIN TIM1_Init 0 */
/* USER CODE END TIM1_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
TIM_BreakDeadTimeConfigTypeDef sBreakDeadTimeConfig = {0};
/* USER CODE BEGIN TIM1_Init 1 */
/* USER CODE END TIM1_Init 1 */
htim1.Instance = TIM1;
htim1.Init.Prescaler = 0;
htim1.Init.CounterMode = TIM_COUNTERMODE_UP;
htim1.Init.Period = 17999;
htim1.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim1.Init.RepetitionCounter = 0;
htim1.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim1, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim1, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 2400;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCNPolarity = TIM_OCNPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
sConfigOC.OCIdleState = TIM_OCIDLESTATE_RESET;
sConfigOC.OCNIdleState = TIM_OCNIDLESTATE_RESET;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 5500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sBreakDeadTimeConfig.OffStateRunMode = TIM_OSSR_DISABLE;
sBreakDeadTimeConfig.OffStateIDLEMode = TIM_OSSI_DISABLE;
sBreakDeadTimeConfig.LockLevel = TIM_LOCKLEVEL_OFF;
sBreakDeadTimeConfig.DeadTime = 0;
sBreakDeadTimeConfig.BreakState = TIM_BREAK_DISABLE;
sBreakDeadTimeConfig.BreakPolarity = TIM_BREAKPOLARITY_HIGH;
sBreakDeadTimeConfig.AutomaticOutput = TIM_AUTOMATICOUTPUT_DISABLE;
if (HAL_TIMEx_ConfigBreakDeadTime(&htim1, &sBreakDeadTimeConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM1_Init 2 */
/* USER CODE END TIM1_Init 2 */
HAL_TIM_MspPostInit(&htim1);
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM3 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM3_Init(void)
{
/* USER CODE BEGIN TIM3_Init 0 */
/* USER CODE END TIM3_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM3_Init 1 */
/* USER CODE END TIM3_Init 1 */
htim3.Instance = TIM3;
htim3.Init.Prescaler = 0;
htim3.Init.CounterMode = TIM_COUNTERMODE_UP;
htim3.Init.Period = 17999;
htim3.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim3.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim3, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim3, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 9000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 10000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 11000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 12000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM3_Init 2 */
/* USER CODE END TIM3_Init 2 */
HAL_TIM_MspPostInit(&htim3);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOC, GPIO_PIN_13, GPIO_PIN_RESET);
/*Configure GPIO pin : PC13 */
GPIO_InitStruct.Pin = GPIO_PIN_13;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

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@@ -1,22 +0,0 @@
/*
* pwm.c
*
* Created on: Dec 6, 2025
* Author: user
*/
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool IsPwmRunning(TIM_HandleTypeDef *htim, uint32_t Channel)
{
HAL_TIM_ChannelStateTypeDef chState = HAL_TIM_GetChannelState(htim, Channel);
return (chState == HAL_TIM_CHANNEL_STATE_BUSY);
}

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@@ -1,88 +0,0 @@
/*
* eeprom.h
*
* Created on: Dec 7, 2025
* Author: user
*/
#ifndef __EEPROM_H
#define __EEPROM_H
#ifdef __cplusplus
extern "C" {
#endif
#include "stm32f1xx_hal.h"
/*
* Simple EEPROM emulation for STM32F103C8T6 (medium density).
* - Uses 2 Flash pages (1 kB each) at the end of Flash.
* - Stores variables as 16-bit values identified by 16-bit "virtual addresses".
*
* You must define the list of virtual addresses in eeprom.c: EE_VirtAddrs[].
*/
typedef enum
{
EE_OK = 0,
EE_ERROR,
EE_NOT_FOUND,
EE_NO_SPACE
} EE_Status;
/* Flash parameters for STM32F103C8T6 */
#define EE_FLASH_BASE_ADDR 0x08000000U
#define EE_PAGE_SIZE 0x400U /* 1 kB pages */
/*
* Here we assume a 64 kB Flash device (STM32F103C8T6):
* Flash range: 0x0800 0000 - 0x0800 FFFF
* Pages: 0..63 (64 pages)
* We use the last 2 pages for EEPROM:
* - Page 62: 0x0800 F800
* - Page 63: 0x0800 FC00
*/
#define EE_PAGE0_BASE (EE_FLASH_BASE_ADDR + (62U * EE_PAGE_SIZE))
#define EE_PAGE1_BASE (EE_FLASH_BASE_ADDR + (63U * EE_PAGE_SIZE))
/* Page status markers (stored in the first halfword of each page) */
#define EE_PAGE_STATUS_ERASED 0xFFFFU
#define EE_PAGE_STATUS_VALID 0xAAAAU
#define EE_PAGE_STATUS_RECEIVE 0x5555U
/*
* Configure how many virtual variables you have.
* Example: bytes, words, and array elements mapped to 16-bit variables.
* Set EE_NUM_VIRTUAL_ADDR and define EE_VirtAddrs[] in eeprom.c.
*/
/* 32 virtual variables, sequential addresses */
#define EE_NUM_VIRTUAL_ADDR 32U
#define EEW_ADDR(i) (uint16_t)(0x0001 + (i)) // i = 0..31
/* Virtual address table (defined in eeprom.c, can be customized) */
extern const uint16_t EE_VirtAddrs[EE_NUM_VIRTUAL_ADDR];
/* Public API */
EE_Status EE_Init(void);
EE_Status EE_ReadVariable(uint16_t VirtAddress, uint16_t *Data);
EE_Status EE_WriteVariable(uint16_t VirtAddress, uint16_t Data);
/* Pseudo-array accessor */
static inline EE_Status EEW_Read(uint8_t idx, uint16_t *value)
{
return EE_ReadVariable(EEW_ADDR(idx), value);
}
static inline EE_Status EEW_Write(uint8_t idx, uint16_t value)
{
return EE_WriteVariable(EEW_ADDR(idx), value);
}
#ifdef __cplusplus
}
#endif
#endif /* __EEPROM_H */

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@@ -1,16 +0,0 @@
/*
* adc.h
*
* Created on: Dec 8, 2025
* Author: user
*/
#ifndef INC_ADC_H_
#define INC_ADC_H_
#define ADC_NUM_CHANNELS 5 // CH4..CH8
#define ADC_AVG_WINDOW 5 // 5 * 10ms = 50ms averaging window
void manageAdc(void);
#endif /* INC_ADC_H_ */

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@@ -1,632 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
TIM_HandleTypeDef htim1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim3;
TIM_HandleTypeDef htim4;
/* USER CODE BEGIN PV */
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_TIM3_Init(void);
static void MX_ADC1_Init(void);
static void MX_TIM1_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_TIM3_Init();
MX_ADC1_Init();
MX_TIM1_Init();
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_4);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_3);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_4);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_4);
/* USER CODE BEGIN 2 */
CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
void manageCDC(void);
}
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
hadc1.Init.ContinuousConvMode = DISABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 1;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM1 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM1_Init(void)
{
/* USER CODE BEGIN TIM1_Init 0 */
/* USER CODE END TIM1_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
TIM_BreakDeadTimeConfigTypeDef sBreakDeadTimeConfig = {0};
/* USER CODE BEGIN TIM1_Init 1 */
/* USER CODE END TIM1_Init 1 */
htim1.Instance = TIM1;
htim1.Init.Prescaler = 0;
htim1.Init.CounterMode = TIM_COUNTERMODE_UP;
htim1.Init.Period = 17999;
htim1.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim1.Init.RepetitionCounter = 0;
htim1.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim1, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim1, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 2400;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCNPolarity = TIM_OCNPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
sConfigOC.OCIdleState = TIM_OCIDLESTATE_RESET;
sConfigOC.OCNIdleState = TIM_OCNIDLESTATE_RESET;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 5500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sBreakDeadTimeConfig.OffStateRunMode = TIM_OSSR_DISABLE;
sBreakDeadTimeConfig.OffStateIDLEMode = TIM_OSSI_DISABLE;
sBreakDeadTimeConfig.LockLevel = TIM_LOCKLEVEL_OFF;
sBreakDeadTimeConfig.DeadTime = 0;
sBreakDeadTimeConfig.BreakState = TIM_BREAK_DISABLE;
sBreakDeadTimeConfig.BreakPolarity = TIM_BREAKPOLARITY_HIGH;
sBreakDeadTimeConfig.AutomaticOutput = TIM_AUTOMATICOUTPUT_DISABLE;
if (HAL_TIMEx_ConfigBreakDeadTime(&htim1, &sBreakDeadTimeConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM1_Init 2 */
/* USER CODE END TIM1_Init 2 */
HAL_TIM_MspPostInit(&htim1);
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM3 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM3_Init(void)
{
/* USER CODE BEGIN TIM3_Init 0 */
/* USER CODE END TIM3_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM3_Init 1 */
/* USER CODE END TIM3_Init 1 */
htim3.Instance = TIM3;
htim3.Init.Prescaler = 0;
htim3.Init.CounterMode = TIM_COUNTERMODE_UP;
htim3.Init.Period = 17999;
htim3.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim3.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim3, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim3, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 9000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 10000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 11000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 12000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM3_Init 2 */
/* USER CODE END TIM3_Init 2 */
HAL_TIM_MspPostInit(&htim3);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOC, GPIO_PIN_13, GPIO_PIN_RESET);
/*Configure GPIO pin : PC13 */
GPIO_InitStruct.Pin = GPIO_PIN_13;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,295 +0,0 @@
#include "eeprom.h"
/*
* Record format (4 bytes):
* [0] VirtAddress (uint16_t)
* [2] Data (uint16_t)
*
* Page layout:
* [0] PageStatus (uint16_t)
* [2..] Records...
*/
typedef struct
{
uint16_t VirtAddress;
uint16_t Data;
} EE_Record_t;
/* Active page base address (runtime selected in EE_Init) */
static uint32_t EE_ActivePageBase = EE_PAGE0_BASE;
/* 32 sequential virtual addresses */
const uint16_t EE_VirtAddrs[EE_NUM_VIRTUAL_ADDR] =
{
0x0001, 0x0002, 0x0003, 0x0004,
0x0005, 0x0006, 0x0007, 0x0008,
0x0009, 0x000A, 0x000B, 0x000C,
0x000D, 0x000E, 0x000F, 0x0010,
0x0011, 0x0012, 0x0013, 0x0014,
0x0015, 0x0016, 0x0017, 0x0018,
0x0019, 0x001A, 0x001B, 0x001C,
0x001D, 0x001E, 0x001F, 0x0020
};
/* ========================================================================= */
/* --- Internal helpers ---------------------------------------------------- */
static uint16_t EE_GetPageStatus(uint32_t pageBase)
{
return *(__IO uint16_t *)pageBase;
}
static HAL_StatusTypeDef EE_FlashProgramHalfWord(uint32_t Address, uint16_t Data)
{
HAL_StatusTypeDef status;
HAL_FLASH_Unlock();
status = HAL_FLASH_Program(FLASH_TYPEPROGRAM_HALFWORD, Address, Data);
HAL_FLASH_Lock();
return status;
}
static HAL_StatusTypeDef EE_FlashErasePage(uint32_t PageAddress)
{
HAL_StatusTypeDef status;
FLASH_EraseInitTypeDef EraseInit;
uint32_t PageError = 0;
HAL_FLASH_Unlock();
EraseInit.TypeErase = FLASH_TYPEERASE_PAGES;
EraseInit.PageAddress = PageAddress;
EraseInit.NbPages = 1;
status = HAL_FLASHEx_Erase(&EraseInit, &PageError);
HAL_FLASH_Lock();
return status;
}
/* Find first free record address in given page (returns 0 if full) */
static uint32_t EE_FindFreeAddress(uint32_t pageBase)
{
uint32_t addr = pageBase + 2U; /* Skip status word */
uint32_t pageEnd = pageBase + EE_PAGE_SIZE;
while (addr < (pageEnd - sizeof(EE_Record_t) + 1U))
{
uint16_t vaddr = *(__IO uint16_t *)addr;
if (vaddr == 0xFFFFU)
{
/* Empty slot */
return addr;
}
addr += sizeof(EE_Record_t);
}
return 0U; /* No space */
}
/* Find latest value of VirtAddress in a specific page (internal, uses EE_Status) */
static EE_Status EE_FindInPage(uint32_t pageBase, uint16_t VirtAddress, uint16_t *Data)
{
uint32_t pageEnd = pageBase + EE_PAGE_SIZE;
uint32_t addr;
if (Data == NULL)
return EE_ERROR;
/* Start from last possible record and go backwards */
for (addr = pageEnd - sizeof(EE_Record_t);
addr >= pageBase + 2U; // <-- FIX HERE
addr -= sizeof(EE_Record_t))
{
uint16_t vaddr = *(__IO uint16_t *)addr;
uint16_t value = *(__IO uint16_t *)(addr + 2U);
if (vaddr == 0xFFFFU)
{
/* Empty slot, skip */
continue;
}
if (vaddr == VirtAddress)
{
*Data = value;
return EE_OK;
}
}
return EE_STATUS_NOT_FOUND; // or EE_NOT_FOUND depending on your enum
}
/* Format both pages: erase and set PAGE0 as VALID */
static EE_Status EE_Format(void)
{
if (EE_FlashErasePage(EE_PAGE0_BASE) != HAL_OK)
return EE_STATUS_ERROR;
if (EE_FlashErasePage(EE_PAGE1_BASE) != HAL_OK)
return EE_STATUS_ERROR;
if (EE_FlashProgramHalfWord(EE_PAGE0_BASE, EE_PAGE_STATUS_VALID) != HAL_OK)
return EE_STATUS_ERROR;
/* PAGE1 will remain erased (status = 0xFFFF) */
EE_ActivePageBase = EE_PAGE0_BASE;
return EE_STATUS_OK;
}
/* Get the base of the other page */
static uint32_t EE_GetOtherPageBase(uint32_t pageBase)
{
return (pageBase == EE_PAGE0_BASE) ? EE_PAGE1_BASE : EE_PAGE0_BASE;
}
/* Page transfer (garbage collection + new write) */
static EE_Status EE_PageTransfer(uint16_t VirtAddress, uint16_t Data)
{
uint32_t oldBase = EE_ActivePageBase;
uint32_t newBase = EE_GetOtherPageBase(oldBase);
uint32_t addr;
uint16_t value;
EE_Status st;
/* Erase new page */
if (EE_FlashErasePage(newBase) != HAL_OK)
return EE_STATUS_ERROR;
/* Mark new page as RECEIVE */
if (EE_FlashProgramHalfWord(newBase, EE_PAGE_STATUS_RECEIVE) != HAL_OK)
return EE_STATUS_ERROR;
/* Start writing records just after status */
addr = newBase + 2U;
/* For each known virtual variable */
for (uint16_t i = 0; i < EE_NUM_VIRTUAL_ADDR; i++)
{
uint16_t vaddr = EE_VirtAddrs[i];
if (vaddr == VirtAddress)
{
/* Use the new data passed into PageTransfer */
value = Data;
}
else
{
/* Read latest value from old active page */
st = EE_FindInPage(oldBase, vaddr, &value);
if (st != EE_STATUS_OK)
{
/* Variable never written -> skip */
continue;
}
}
/* Write record to new page */
if (EE_FlashProgramHalfWord(addr, vaddr) != HAL_OK)
return EE_STATUS_ERROR;
if (EE_FlashProgramHalfWord(addr + 2U, value) != HAL_OK)
return EE_STATUS_ERROR;
addr += sizeof(EE_Record_t);
if (addr >= (newBase + EE_PAGE_SIZE))
return EE_STATUS_NO_SPACE;
}
/* Erase old page */
if (EE_FlashErasePage(oldBase) != HAL_OK)
return EE_STATUS_ERROR;
/* Mark new page as VALID */
if (EE_FlashProgramHalfWord(newBase, EE_PAGE_STATUS_VALID) != HAL_OK)
return EE_STATUS_ERROR;
/* Update active page */
EE_ActivePageBase = newBase;
return EE_STATUS_OK;
}
/* --- Public API ----------------------------------------------------------- */
/*
* Initialize the EEPROM emulation.
* - Checks page statuses and chooses the active page.
* - If inconsistent or blank, formats pages.
* PUBLIC RETURN TYPE: uint16_t (EE_OK / EE_ERROR / ...)
*/
uint16_t EE_Init(void)
{
uint16_t status0 = EE_GetPageStatus(EE_PAGE0_BASE);
uint16_t status1 = EE_GetPageStatus(EE_PAGE1_BASE);
if ((status0 == EE_PAGE_STATUS_ERASED) && (status1 == EE_PAGE_STATUS_ERASED))
{
/* Fresh device -> format */
return (uint16_t)EE_Format();
}
else if ((status0 == EE_PAGE_STATUS_VALID) && (status1 == EE_PAGE_STATUS_ERASED))
{
EE_ActivePageBase = EE_PAGE0_BASE;
return EE_OK;
}
else if ((status1 == EE_PAGE_STATUS_VALID) && (status0 == EE_PAGE_STATUS_ERASED))
{
EE_ActivePageBase = EE_PAGE1_BASE;
return EE_OK;
}
else
{
/* Any weird or inconsistent state -> reformat */
return (uint16_t)EE_Format();
}
}
/*
* Read a 16-bit variable by its virtual address.
* PUBLIC RETURN: EE_OK / EE_NOT_FOUND / EE_ERROR (as uint16_t)
*/
uint16_t EE_ReadVariable(uint16_t VirtAddress, uint16_t *Data)
{
EE_Status st;
if (Data == NULL)
return EE_ERROR;
st = EE_FindInPage(EE_ActivePageBase, VirtAddress, Data);
return (uint16_t)st;
}
/*
* Write (append) a 16-bit variable.
* - Writes a new record in the active page.
* - If the page is full, triggers a page transfer (GC).
* PUBLIC RETURN: EE_OK / EE_ERROR / EE_NO_SPACE (as uint16_t)
*/
uint16_t EE_WriteVariable(uint16_t VirtAddress, uint16_t Data)
{
uint32_t freeAddr;
EE_Status st;
/* Find free space in active page */
freeAddr = EE_FindFreeAddress(EE_ActivePageBase);
if (freeAddr != 0U)
{
/* Write new record */
if (EE_FlashProgramHalfWord(freeAddr, VirtAddress) != HAL_OK)
return EE_ERROR;
if (EE_FlashProgramHalfWord(freeAddr + 2U, Data) != HAL_OK)
return EE_ERROR;
return EE_OK;
}
/* No space -> page transfer */
st = EE_PageTransfer(VirtAddress, Data);
return (uint16_t)st;
}

View File

@@ -1,105 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]>='r'){
}else if(rxbuf[1]>='w'){
}else{
sprintf((char*)s,"\n?er|w");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY); }
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,193 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=16;
*retval+=c2;
*retval*=16;
*retval+=c3;
*retval*=16;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t eeadd;
uint8_t i;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
EEW_Write(eeadd, val);
sprintf((char*)s,"\ndone");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaavvvv hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='d'){
if(rxidx==2){
for(i=0;i<32;i++){
if((i%4)==0){
sprintf((char*)s,"\n");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
EEW_Read(i, &val);
sprintf((char*)s,"0x%02x=0x%04x ",i,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ed");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w|d");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,76 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,s,dm,m,c,d,u;
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
s=FW;
}else if(rxbuf[2]=='b'){
s=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if((rxbuf[3]>='0')&&(rxbuf[1]<='9')){
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,177 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=10;
*retval+=c2;
*retval*=10;
*retval+=c3;
*retval*=10;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t eeadd;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]>='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%c%c=%04x",rxbuf[2],rxbuf[3],val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]>='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
EEW_Write(eeadd, val);
sprintf((char*)s,"\ndone");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaavvvv hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,643 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
TIM_HandleTypeDef htim1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim3;
TIM_HandleTypeDef htim4;
/* USER CODE BEGIN PV */
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_TIM3_Init(void);
static void MX_ADC1_Init(void);
static void MX_TIM1_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_TIM3_Init();
MX_ADC1_Init();
MX_TIM1_Init();
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_4);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_3);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_4);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_4);
/* USER CODE BEGIN 2 */
CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
while (CDC_Available()) {
int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
unsigned char s[100];
sprintf((char*)s,"\nc=%03d",c);
while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// tiny spin or yield
}
}
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
hadc1.Init.ContinuousConvMode = DISABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 1;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM1 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM1_Init(void)
{
/* USER CODE BEGIN TIM1_Init 0 */
/* USER CODE END TIM1_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
TIM_BreakDeadTimeConfigTypeDef sBreakDeadTimeConfig = {0};
/* USER CODE BEGIN TIM1_Init 1 */
/* USER CODE END TIM1_Init 1 */
htim1.Instance = TIM1;
htim1.Init.Prescaler = 0;
htim1.Init.CounterMode = TIM_COUNTERMODE_UP;
htim1.Init.Period = 17999;
htim1.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim1.Init.RepetitionCounter = 0;
htim1.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim1, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim1, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 2400;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCNPolarity = TIM_OCNPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
sConfigOC.OCIdleState = TIM_OCIDLESTATE_RESET;
sConfigOC.OCNIdleState = TIM_OCNIDLESTATE_RESET;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 5500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sBreakDeadTimeConfig.OffStateRunMode = TIM_OSSR_DISABLE;
sBreakDeadTimeConfig.OffStateIDLEMode = TIM_OSSI_DISABLE;
sBreakDeadTimeConfig.LockLevel = TIM_LOCKLEVEL_OFF;
sBreakDeadTimeConfig.DeadTime = 0;
sBreakDeadTimeConfig.BreakState = TIM_BREAK_DISABLE;
sBreakDeadTimeConfig.BreakPolarity = TIM_BREAKPOLARITY_HIGH;
sBreakDeadTimeConfig.AutomaticOutput = TIM_AUTOMATICOUTPUT_DISABLE;
if (HAL_TIMEx_ConfigBreakDeadTime(&htim1, &sBreakDeadTimeConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM1_Init 2 */
/* USER CODE END TIM1_Init 2 */
HAL_TIM_MspPostInit(&htim1);
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM3 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM3_Init(void)
{
/* USER CODE BEGIN TIM3_Init 0 */
/* USER CODE END TIM3_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM3_Init 1 */
/* USER CODE END TIM3_Init 1 */
htim3.Instance = TIM3;
htim3.Init.Prescaler = 0;
htim3.Init.CounterMode = TIM_COUNTERMODE_UP;
htim3.Init.Period = 17999;
htim3.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim3.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim3, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim3, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 9000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 10000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 11000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 12000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM3_Init 2 */
/* USER CODE END TIM3_Init 2 */
HAL_TIM_MspPostInit(&htim3);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOC, GPIO_PIN_13, GPIO_PIN_RESET);
/*Configure GPIO pin : PC13 */
GPIO_InitStruct.Pin = GPIO_PIN_13;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,37 +0,0 @@
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "pwm.h"
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,45 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,197 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
extern const uint16_t EE_VirtAddrs[];
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=16;
*retval+=c2;
*retval*=16;
*retval+=c3;
*retval*=16;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t st;
uint16_t eeadd;
uint8_t i;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
st=EEW_Read(EE_VirtAddrse[eeadd], &val);
if (st == EE_OK){
sprintf((char*)s,"\nee 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\nee read error %d",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
st=EEW_Write(EE_VirtAddrse[eeadd], val);
if (st == EE_OK)sprintf((char*)s,"\ndone 0x%02x=0x%04x",eeadd,val);
else sprintf((char*)s,"\nee write error %d", st);
}else sprintf((char*)s,"\n?ewaavvvv hex values");
}else sprintf((char*)s,"\n?ewaa hex values");
}else sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else if(rxbuf[1]=='d'){
if(rxidx==2){
for(i=0;i<32;i++){
if((i%4)==0){
sprintf((char*)s,"\n");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
st=EEW_Read(EE_VirtAddrse[i], &val);
if (st == EE_OK){
sprintf((char*)s,"0x%02x=0x%04x ",i,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"rderr %d ",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}
}else{
sprintf((char*)s,"\n?ed");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w|d");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,193 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=16;
*retval+=c2;
*retval*=16;
*retval+=c3;
*retval*=16;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t eeadd;
uint8_t i;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
EEW_Write(eeadd, val);
sprintf((char*)s,"\ndone 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaavvvv hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='d'){
if(rxidx==2){
for(i=0;i<32;i++){
if((i%4)==0){
sprintf((char*)s,"\n");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
EEW_Read(i, &val);
sprintf((char*)s,"0x%02x=0x%04x ",i,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ed");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w|d");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,104 +0,0 @@
/*
* pwm.c
*
* Created on: Dec 6, 2025
* Author: user
*/
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool IsPwmRunning(TIM_HandleTypeDef *htim, uint32_t Channel)
{
HAL_TIM_ChannelStateTypeDef chState = HAL_TIM_GetChannelState(htim, Channel);
return (chState == HAL_TIM_CHANNEL_STATE_BUSY);
}
void StopMot(TIM_HandleTypeDef *htim,uint32_t Channel){
HAL_TIM_PWM_Stop(htim, Channel);
}
void StartMot(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval){
__HAL_TIM_SET_COMPARE(htim, Channel, pwmval);
HAL_TIM_PWM_Start(htim, Channel);
}
void SetMotPwm(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval){
__HAL_TIM_SET_COMPARE(htim, Channel, pwmval);
}
void SetMot(uint8_t mot,uint8_t dir,uint16_t pwmval){
TIM_HandleTypeDef *htim;
switch(mot){
case 1:
if(dir==FW){
if(IsPwmRunning(timMot1, FWMot1)){
SetMotPwm(timMot1,FWMot1,pwmval);
}else{
StartMot(timMot1,FWMot1,pwmval);
}
}else{
if(IsPwmRunning(timMot1, BWMot1)){
SetMotPwm(timMot1,BWMot1,pwmval);
}else{
StartMot(timMot1,BWMot1,pwmval);
}
}
break;
case 2:
if(dir==FW){
if(IsPwmRunning(timMot2, FWMot2)){
SetMotPwm(timMot2,FWMot2,pwmval);
}else{
StartMot(timMot2,FWMot2,pwmval);
}
}else{
if(IsPwmRunning(timMot2, BWMot2)){
SetMotPwm(timMot2,BWMot2,pwmval);
}else{
StartMot(timMot2,BWMot2,pwmval);
}
}
break;
case 3:
if(dir==FW){
if(IsPwmRunning(timMot3, FWMot3)){
SetMotPwm(timMot3,FWMot3,pwmval);
}else{
StartMot(timMot3,FWMot3,pwmval);
}
}else{
if(IsPwmRunning(timMot3, BWMot3)){
SetMotPwm(timMot3,BWMot3,pwmval);
}else{
StartMot(timMot3,BWMot3,pwmval);
}
}
break;
case 4:
if(dir==FW){
if(IsPwmRunning(timMot4, FWMot4)){
SetMotPwm(timMot4,FWMot4,pwmval);
}else{
StartMot(timMot4,FWMot4,pwmval);
}
}else{
if(IsPwmRunning(timMot4, BWMot4)){
SetMotPwm(timMot4,BWMot4,pwmval);
}else{
StartMot(timMot4,BWMot4,pwmval);
}
}
break;
default:
break;
}
}

View File

@@ -1,138 +0,0 @@
/*
* pwm.c
*
* Created on: Dec 6, 2025
* Author: user
*/
#include "stm32f1xx_hal.h"
#include "main.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool IsPwmRunning(TIM_HandleTypeDef *htim, uint32_t Channel)
{
HAL_TIM_ChannelStateTypeDef chState = HAL_TIM_GetChannelState(htim, Channel);
return (chState == HAL_TIM_CHANNEL_STATE_BUSY);
}
void StopMot(TIM_HandleTypeDef *htim,uint32_t Channel){
HAL_TIM_PWM_Stop(htim, Channel);
}
void StartMot(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval){
__HAL_TIM_SET_COMPARE(htim, Channel, pwmval);
HAL_TIM_PWM_Start(htim, Channel);
}
void SetMotPwm(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval){
__HAL_TIM_SET_COMPARE(htim, Channel, pwmval);
}
void SetMot(uint8_t mot,uint8_t dir,uint16_t pwmval){
TIM_HandleTypeDef *htim;
switch(mot){
case 1:
if(dir==FW){
if(pwmval==0){
StopMot(timMot1,FWMot1);
HAL_GPIO_WritePin(INH1_GPIO_Port, INH1_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot1, FWMot1)){
SetMotPwm(timMot1,FWMot1,pwmval);
}else{
HAL_GPIO_WritePin(INH1_GPIO_Port, INH1_Pin, GPIO_PIN_SET);
StartMot(timMot1,FWMot1,pwmval);
}
}else{
if(pwmval==0){
StopMot(timMot1,BWMot1);
HAL_GPIO_WritePin(INH1_GPIO_Port, INH1_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot1, BWMot1)){
SetMotPwm(timMot1,BWMot1,pwmval);
}else{
HAL_GPIO_WritePin(INH1_GPIO_Port, INH1_Pin, GPIO_PIN_SET);
StartMot(timMot1,BWMot1,pwmval);
}
}
break;
case 2:
if(dir==FW){
if(pwmval==0){
StopMot(timMot2,FWMot2);
HAL_GPIO_WritePin(INH2_GPIO_Port, INH2_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot2, FWMot2)){
SetMotPwm(timMot2,FWMot2,pwmval);
}else{
HAL_GPIO_WritePin(INH2_GPIO_Port, INH2_Pin, GPIO_PIN_SET);
StartMot(timMot2,FWMot2,pwmval);
}
}else{
if(pwmval==0){
StopMot(timMot2,BWMot2);
HAL_GPIO_WritePin(INH2_GPIO_Port, INH2_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot2, BWMot2)){
SetMotPwm(timMot2,BWMot2,pwmval);
}else{
HAL_GPIO_WritePin(INH2_GPIO_Port, INH2_Pin, GPIO_PIN_SET);
StartMot(timMot2,BWMot2,pwmval);
}
}
break;
case 3:
if(dir==FW){
if(pwmval==0){
StopMot(timMot3,FWMot3);
HAL_GPIO_WritePin(INH3_GPIO_Port, INH3_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot3, FWMot3)){
SetMotPwm(timMot3,FWMot3,pwmval);
}else{
HAL_GPIO_WritePin(INH3_GPIO_Port, INH3_Pin, GPIO_PIN_SET);
StartMot(timMot3,FWMot3,pwmval);
}
}else{
if(pwmval==0){
StopMot(timMot3,BWMot3);
HAL_GPIO_WritePin(INH3_GPIO_Port, INH3_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot3, BWMot3)){
SetMotPwm(timMot3,BWMot3,pwmval);
}else{
HAL_GPIO_WritePin(INH3_GPIO_Port, INH3_Pin, GPIO_PIN_SET);
StartMot(timMot3,BWMot3,pwmval);
}
}
break;
case 4:
if(dir==FW){
if(pwmval==0){
StopMot(timMot4,FWMot4);
HAL_GPIO_WritePin(INH4_GPIO_Port, INH4_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot4, FWMot4)){
SetMotPwm(timMot4,FWMot4,pwmval);
}else{
HAL_GPIO_WritePin(INH4_GPIO_Port, INH4_Pin, GPIO_PIN_SET);
StartMot(timMot4,FWMot4,pwmval);
}
}else{
if(pwmval==0){
StopMot(timMot4,BWMot4);
HAL_GPIO_WritePin(INH4_GPIO_Port, INH4_Pin, GPIO_PIN_RESET);
}else if(IsPwmRunning(timMot4, BWMot4)){
SetMotPwm(timMot4,BWMot4,pwmval);
}else{
HAL_GPIO_WritePin(INH4_GPIO_Port, INH4_Pin, GPIO_PIN_SET);
StartMot(timMot4,BWMot4,pwmval);
}
}
break;
default:
break;
}
}

View File

@@ -1,644 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
TIM_HandleTypeDef htim1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim3;
TIM_HandleTypeDef htim4;
/* USER CODE BEGIN PV */
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_TIM3_Init(void);
static void MX_ADC1_Init(void);
static void MX_TIM1_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_TIM3_Init();
MX_ADC1_Init();
MX_TIM1_Init();
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_4);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_3);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_4);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_4);
/* USER CODE BEGIN 2 */
CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
hadc1.Init.ContinuousConvMode = DISABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 1;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM1 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM1_Init(void)
{
/* USER CODE BEGIN TIM1_Init 0 */
/* USER CODE END TIM1_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
TIM_BreakDeadTimeConfigTypeDef sBreakDeadTimeConfig = {0};
/* USER CODE BEGIN TIM1_Init 1 */
/* USER CODE END TIM1_Init 1 */
htim1.Instance = TIM1;
htim1.Init.Prescaler = 0;
htim1.Init.CounterMode = TIM_COUNTERMODE_UP;
htim1.Init.Period = 17999;
htim1.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim1.Init.RepetitionCounter = 0;
htim1.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim1, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim1, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 2400;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCNPolarity = TIM_OCNPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
sConfigOC.OCIdleState = TIM_OCIDLESTATE_RESET;
sConfigOC.OCNIdleState = TIM_OCNIDLESTATE_RESET;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 5500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sBreakDeadTimeConfig.OffStateRunMode = TIM_OSSR_DISABLE;
sBreakDeadTimeConfig.OffStateIDLEMode = TIM_OSSI_DISABLE;
sBreakDeadTimeConfig.LockLevel = TIM_LOCKLEVEL_OFF;
sBreakDeadTimeConfig.DeadTime = 0;
sBreakDeadTimeConfig.BreakState = TIM_BREAK_DISABLE;
sBreakDeadTimeConfig.BreakPolarity = TIM_BREAKPOLARITY_HIGH;
sBreakDeadTimeConfig.AutomaticOutput = TIM_AUTOMATICOUTPUT_DISABLE;
if (HAL_TIMEx_ConfigBreakDeadTime(&htim1, &sBreakDeadTimeConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM1_Init 2 */
/* USER CODE END TIM1_Init 2 */
HAL_TIM_MspPostInit(&htim1);
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM3 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM3_Init(void)
{
/* USER CODE BEGIN TIM3_Init 0 */
/* USER CODE END TIM3_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM3_Init 1 */
/* USER CODE END TIM3_Init 1 */
htim3.Instance = TIM3;
htim3.Init.Prescaler = 0;
htim3.Init.CounterMode = TIM_COUNTERMODE_UP;
htim3.Init.Period = 17999;
htim3.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim3.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim3, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim3, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 9000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 10000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 11000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 12000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM3_Init 2 */
/* USER CODE END TIM3_Init 2 */
HAL_TIM_MspPostInit(&htim3);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOC, GPIO_PIN_13, GPIO_PIN_RESET);
/*Configure GPIO pin : PC13 */
GPIO_InitStruct.Pin = GPIO_PIN_13;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,180 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=16;
*retval+=c2;
*retval*=16;
*retval+=c3;
*retval*=16;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t eeadd;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%02x=%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
EEW_Write(eeadd, val);
sprintf((char*)s,"\ndone");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaavvvv hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
}
}else{
sprintf((char*)s,"\n?er|w|d");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,296 +0,0 @@
#include "eeprom.h"
/*
* Record format (4 bytes):
* [0] VirtAddress (uint16_t)
* [2] Data (uint16_t)
*
* Page layout:
* [0] PageStatus (uint16_t)
* [2..] Records...
*/
typedef struct
{
uint16_t VirtAddress;
uint16_t Data;
} EE_Record_t;
/* Active page base address (runtime selected in EE_Init) */
static uint32_t EE_ActivePageBase = EE_PAGE0_BASE;
/* 32 sequential virtual addresses */
const uint16_t EE_VirtAddrs[EE_NUM_VIRTUAL_ADDR] =
{
0x0001, 0x0002, 0x0003, 0x0004,
0x0005, 0x0006, 0x0007, 0x0008,
0x0009, 0x000A, 0x000B, 0x000C,
0x000D, 0x000E, 0x000F, 0x0010,
0x0011, 0x0012, 0x0013, 0x0014,
0x0015, 0x0016, 0x0017, 0x0018,
0x0019, 0x001A, 0x001B, 0x001C,
0x001D, 0x001E, 0x001F, 0x0020
};
/* ========================================================================= */
/* --- Internal helpers ---------------------------------------------------- */
static uint16_t EE_GetPageStatus(uint32_t pageBase)
{
return *(__IO uint16_t *)pageBase;
}
static HAL_StatusTypeDef EE_FlashProgramHalfWord(uint32_t Address, uint16_t Data)
{
HAL_StatusTypeDef status;
HAL_FLASH_Unlock();
status = HAL_FLASH_Program(FLASH_TYPEPROGRAM_HALFWORD, Address, Data);
HAL_FLASH_Lock();
return status;
}
static HAL_StatusTypeDef EE_FlashErasePage(uint32_t PageAddress)
{
HAL_StatusTypeDef status;
FLASH_EraseInitTypeDef EraseInit;
uint32_t PageError = 0;
HAL_FLASH_Unlock();
EraseInit.TypeErase = FLASH_TYPEERASE_PAGES;
EraseInit.PageAddress = PageAddress;
EraseInit.NbPages = 1;
status = HAL_FLASHEx_Erase(&EraseInit, &PageError);
HAL_FLASH_Lock();
return status;
}
/* Find first free record address in given page (returns 0 if full) */
static uint32_t EE_FindFreeAddress(uint32_t pageBase)
{
uint32_t addr = pageBase + 2U; /* Skip status word */
uint32_t pageEnd = pageBase + EE_PAGE_SIZE;
while (addr < (pageEnd - sizeof(EE_Record_t) + 1U))
{
uint16_t vaddr = *(__IO uint16_t *)addr;
if (vaddr == 0xFFFFU)
{
/* Empty slot */
return addr;
}
addr += sizeof(EE_Record_t);
}
return 0U; /* No space */
}
/* Find latest value of VirtAddress in a specific page (internal, uses EE_Status) */
static EE_Status EE_FindInPage(uint32_t pageBase, uint16_t VirtAddress, uint16_t *Data)
{
uint32_t pageEnd = pageBase + EE_PAGE_SIZE;
uint32_t addr;
if (Data == NULL)
return EE_ERROR;
/* Start from last possible record and go backwards */
/* Start from last possible record and go backwards */
for (addr = pageEnd - sizeof(EE_Record_t);
addr >= pageBase + 2U; // *** FIX HERE ***
addr -= sizeof(EE_Record_t))
{
uint16_t vaddr = *(__IO uint16_t *)addr;
uint16_t value = *(__IO uint16_t *)(addr + 2U);
if (vaddr == 0xFFFFU)
{
/* Empty slot, skip */
continue;
}
if (vaddr == VirtAddress)
{
*Data = value;
return EE_OK;
}
}
return EE_NOT_FOUND;
}
/* Format both pages: erase and set PAGE0 as VALID */
static EE_Status EE_Format(void)
{
if (EE_FlashErasePage(EE_PAGE0_BASE) != HAL_OK)
return EE_STATUS_ERROR;
if (EE_FlashErasePage(EE_PAGE1_BASE) != HAL_OK)
return EE_STATUS_ERROR;
if (EE_FlashProgramHalfWord(EE_PAGE0_BASE, EE_PAGE_STATUS_VALID) != HAL_OK)
return EE_STATUS_ERROR;
/* PAGE1 will remain erased (status = 0xFFFF) */
EE_ActivePageBase = EE_PAGE0_BASE;
return EE_STATUS_OK;
}
/* Get the base of the other page */
static uint32_t EE_GetOtherPageBase(uint32_t pageBase)
{
return (pageBase == EE_PAGE0_BASE) ? EE_PAGE1_BASE : EE_PAGE0_BASE;
}
/* Page transfer (garbage collection + new write) */
static EE_Status EE_PageTransfer(uint16_t VirtAddress, uint16_t Data)
{
uint32_t oldBase = EE_ActivePageBase;
uint32_t newBase = EE_GetOtherPageBase(oldBase);
uint32_t addr;
uint16_t value;
EE_Status st;
/* Erase new page */
if (EE_FlashErasePage(newBase) != HAL_OK)
return EE_STATUS_ERROR;
/* Mark new page as RECEIVE */
if (EE_FlashProgramHalfWord(newBase, EE_PAGE_STATUS_RECEIVE) != HAL_OK)
return EE_STATUS_ERROR;
/* Start writing records just after status */
addr = newBase + 2U;
/* For each known virtual variable */
for (uint16_t i = 0; i < EE_NUM_VIRTUAL_ADDR; i++)
{
uint16_t vaddr = EE_VirtAddrs[i];
if (vaddr == VirtAddress)
{
/* Use the new data passed into PageTransfer */
value = Data;
}
else
{
/* Read latest value from old active page */
st = EE_FindInPage(oldBase, vaddr, &value);
if (st != EE_STATUS_OK)
{
/* Variable never written -> skip */
continue;
}
}
/* Write record to new page */
if (EE_FlashProgramHalfWord(addr, vaddr) != HAL_OK)
return EE_STATUS_ERROR;
if (EE_FlashProgramHalfWord(addr + 2U, value) != HAL_OK)
return EE_STATUS_ERROR;
addr += sizeof(EE_Record_t);
if (addr >= (newBase + EE_PAGE_SIZE))
return EE_STATUS_NO_SPACE;
}
/* Erase old page */
if (EE_FlashErasePage(oldBase) != HAL_OK)
return EE_STATUS_ERROR;
/* Mark new page as VALID */
if (EE_FlashProgramHalfWord(newBase, EE_PAGE_STATUS_VALID) != HAL_OK)
return EE_STATUS_ERROR;
/* Update active page */
EE_ActivePageBase = newBase;
return EE_STATUS_OK;
}
/* --- Public API ----------------------------------------------------------- */
/*
* Initialize the EEPROM emulation.
* - Checks page statuses and chooses the active page.
* - If inconsistent or blank, formats pages.
* PUBLIC RETURN TYPE: uint16_t (EE_OK / EE_ERROR / ...)
*/
uint16_t EE_Init(void)
{
uint16_t status0 = EE_GetPageStatus(EE_PAGE0_BASE);
uint16_t status1 = EE_GetPageStatus(EE_PAGE1_BASE);
if ((status0 == EE_PAGE_STATUS_ERASED) && (status1 == EE_PAGE_STATUS_ERASED))
{
/* Fresh device -> format */
return (uint16_t)EE_Format();
}
else if ((status0 == EE_PAGE_STATUS_VALID) && (status1 == EE_PAGE_STATUS_ERASED))
{
EE_ActivePageBase = EE_PAGE0_BASE;
return EE_OK;
}
else if ((status1 == EE_PAGE_STATUS_VALID) && (status0 == EE_PAGE_STATUS_ERASED))
{
EE_ActivePageBase = EE_PAGE1_BASE;
return EE_OK;
}
else
{
/* Any weird or inconsistent state -> reformat */
return (uint16_t)EE_Format();
}
}
/*
* Read a 16-bit variable by its virtual address.
* PUBLIC RETURN: EE_OK / EE_NOT_FOUND / EE_ERROR (as uint16_t)
*/
uint16_t EE_ReadVariable(uint16_t VirtAddress, uint16_t *Data)
{
EE_Status st;
if (Data == NULL)
return EE_ERROR;
st = EE_FindInPage(EE_ActivePageBase, VirtAddress, Data);
return (uint16_t)st;
}
/*
* Write (append) a 16-bit variable.
* - Writes a new record in the active page.
* - If the page is full, triggers a page transfer (GC).
* PUBLIC RETURN: EE_OK / EE_ERROR / EE_NO_SPACE (as uint16_t)
*/
uint16_t EE_WriteVariable(uint16_t VirtAddress, uint16_t Data)
{
uint32_t freeAddr;
EE_Status st;
/* Find free space in active page */
freeAddr = EE_FindFreeAddress(EE_ActivePageBase);
if (freeAddr != 0U)
{
/* Write new record */
if (EE_FlashProgramHalfWord(freeAddr, VirtAddress) != HAL_OK)
return EE_ERROR;
if (EE_FlashProgramHalfWord(freeAddr + 2U, Data) != HAL_OK)
return EE_ERROR;
return EE_OK;
}
/* No space -> page transfer */
st = EE_PageTransfer(VirtAddress, Data);
return (uint16_t)st;
}

View File

@@ -1,94 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
//extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
//extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,45 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen(s)) == USBD_BUSY);
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,87 +0,0 @@
/*
* eeprom.h
*
* Created on: Dec 7, 2025
* Author: user
*/
#ifndef __EEPROM_H
#define __EEPROM_H
#ifdef __cplusplus
extern "C" {
#endif
#include "stm32f1xx_hal.h"
/*
* Simple EEPROM emulation for STM32F103C8T6 (medium density).
* - Uses 2 Flash pages (1 kB each) at the end of Flash.
* - Stores variables as 16-bit values identified by 16-bit "virtual addresses".
*
* You must define the list of virtual addresses in eeprom.c: EE_VirtAddrs[].
*/
typedef enum
{
EE_OK = 0,
EE_ERROR,
EE_NOT_FOUND,
EE_NO_SPACE
} EE_Status;
/* Flash parameters for STM32F103C8T6 */
#define EE_FLASH_BASE_ADDR 0x08000000U
#define EE_PAGE_SIZE 0x400U /* 1 kB pages */
/*
* Here we assume a 64 kB Flash device (STM32F103C8T6):
* Flash range: 0x0800 0000 - 0x0800 FFFF
* Pages: 0..63 (64 pages)
* We use the last 2 pages for EEPROM:
* - Page 62: 0x0800 F800
* - Page 63: 0x0800 FC00
*/
#define EE_PAGE0_BASE (EE_FLASH_BASE_ADDR + (62U * EE_PAGE_SIZE))
#define EE_PAGE1_BASE (EE_FLASH_BASE_ADDR + (63U * EE_PAGE_SIZE))
/* Page status markers (stored in the first halfword of each page) */
#define EE_PAGE_STATUS_ERASED 0xFFFFU
#define EE_PAGE_STATUS_VALID 0xAAAAU
#define EE_PAGE_STATUS_RECEIVE 0x5555U
/*
* Configure how many virtual variables you have.
* Example: bytes, words, and array elements mapped to 16-bit variables.
* Set EE_NUM_VIRTUAL_ADDR and define EE_VirtAddrs[] in eeprom.c.
*/
/* 32 virtual variables, sequential addresses */
#define EE_NUM_VIRTUAL_ADDR 32U
#define EEW_ADDR(i) (uint16_t)(0x0001 + (i)) // i = 0..31
/* Pseudo-array accessor */
static inline EE_Status EEW_Read(uint8_t idx, uint16_t *value)
{
return EE_ReadVariable(EEW_ADDR(idx), value);
}
static inline EE_Status EEW_Write(uint8_t idx, uint16_t value)
{
return EE_WriteVariable(EEW_ADDR(idx), value);
}
/* Virtual address table (defined in eeprom.c, can be customized) */
extern const uint16_t EE_VirtAddrs[EE_NUM_VIRTUAL_ADDR];
/* Public API */
EE_Status EE_Init(void);
EE_Status EE_ReadVariable(uint16_t VirtAddress, uint16_t *Data);
EE_Status EE_WriteVariable(uint16_t VirtAddress, uint16_t Data);
#ifdef __cplusplus
}
#endif
#endif /* __EEPROM_H */

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@@ -1,198 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
extern const uint16_t EE_VirtAddrs[];
extern uint8_t pulsanti;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=16;
*retval+=c2;
*retval*=16;
*retval+=c3;
*retval*=16;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t st;
uint16_t eeadd;
uint8_t i;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
sprintf((char*)s,"\nP=0x%x ",pulsanti);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY); break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
st=EEW_Read(eeadd, &val);
if (st == EE_OK){
sprintf((char*)s,"\nee 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\nee read error %d",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
st=EEW_Write(eeadd, val);
if (st == EE_OK)sprintf((char*)s,"\ndone 0x%02x=0x%04x",eeadd,val);
else sprintf((char*)s,"\nee write error %d", st);
}else sprintf((char*)s,"\n?ewaavvvv hex values");
}else sprintf((char*)s,"\n?ewaa hex values");
}else sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else if(rxbuf[1]=='d'){
if(rxidx==2){
for(i=0;i<32;i++){
if((i%4)==0){
sprintf((char*)s,"\n");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
st=EEW_Read(i, &val);
if (st == EE_OK){
sprintf((char*)s,"0x%02x=0x%04x ",i,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"rderr %d ",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}
}else{
sprintf((char*)s,"\n?ed");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w|d");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

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@@ -1,197 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=16;
*retval+=c2;
*retval*=16;
*retval+=c3;
*retval*=16;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t st;
uint16_t eeadd;
uint8_t i;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
st=EEW_Read(EE_VirtAddrse[eadd], &val);
if (st == EE_OK){
sprintf((char*)s,"\nee 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\nee read error %d",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
st=EEW_Write(EE_VirtAddrse[eadd], val);
if (st == EE_OK)sprintf((char*)s,"\ndone 0x%02x=0x%04x",eeadd,val);
else sprintf((char*)s,"\nee write error %d", st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else sprintf((char*)s,"\n?ewaavvvv hex values");
}else sprintf((char*)s,"\n?ewaa hex values");
}else sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else if(rxbuf[1]=='d'){
if(rxidx==2){
for(i=0;i<32;i++){
if((i%4)==0){
sprintf((char*)s,"\n");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
st=EEW_Read(EE_VirtAddrse[i], &val);
if (st == EE_OK){
sprintf((char*)s,"0x%02x=0x%04x ",i,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"rderr %d ",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}
}else{
sprintf((char*)s,"\n?ed");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w|d");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

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@@ -1,48 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%x 0x%x 0x%x 0x%x 0x%x 0x%x 0x%x 0x%x",__HAL_TIM_GET_COMPARE(timMot1,FWMot1),__HAL_TIM_GET_COMPARE(timMot1,BWMot1),__HAL_TIM_GET_COMPARE(timMot2,FWMot2),__HAL_TIM_GET_COMPARE(timMot2,BWMot2),__HAL_TIM_GET_COMPARE(timMot3,FWMot3),__HAL_TIM_GET_COMPARE(timMot3,BWMot3),__HAL_TIM_GET_COMPARE(timMot4,FWMot4),__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

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@@ -1,291 +0,0 @@
#include "eeprom.h"
/*
* Record format (4 bytes):
* [0] VirtAddress (uint16_t)
* [2] Data (uint16_t)
*
* Page layout:
* [0] PageStatus (uint16_t)
* [2..] Records...
*/
typedef struct
{
uint16_t VirtAddress;
uint16_t Data;
} EE_Record_t;
/* Active page base address (runtime selected in EE_Init) */
static uint32_t EE_ActivePageBase = EE_PAGE0_BASE;
/* 32 sequential virtual addresses */
const uint16_t EE_VirtAddrs[EE_NUM_VIRTUAL_ADDR] =
{
0x0001, 0x0002, 0x0003, 0x0004,
0x0005, 0x0006, 0x0007, 0x0008,
0x0009, 0x000A, 0x000B, 0x000C,
0x000D, 0x000E, 0x000F, 0x0010,
0x0011, 0x0012, 0x0013, 0x0014,
0x0015, 0x0016, 0x0017, 0x0018,
0x0019, 0x001A, 0x001B, 0x001C,
0x001D, 0x001E, 0x001F, 0x0020
};
/* ========================================================================= */
/* --- Internal helpers ---------------------------------------------------- */
static uint16_t EE_GetPageStatus(uint32_t pageBase)
{
return *(__IO uint16_t *)pageBase;
}
static HAL_StatusTypeDef EE_FlashProgramHalfWord(uint32_t Address, uint16_t Data)
{
HAL_StatusTypeDef status;
HAL_FLASH_Unlock();
status = HAL_FLASH_Program(FLASH_TYPEPROGRAM_HALFWORD, Address, Data);
HAL_FLASH_Lock();
return status;
}
static HAL_StatusTypeDef EE_FlashErasePage(uint32_t PageAddress)
{
HAL_StatusTypeDef status;
FLASH_EraseInitTypeDef EraseInit;
uint32_t PageError = 0;
HAL_FLASH_Unlock();
EraseInit.TypeErase = FLASH_TYPEERASE_PAGES;
EraseInit.PageAddress = PageAddress;
EraseInit.NbPages = 1;
status = HAL_FLASHEx_Erase(&EraseInit, &PageError);
HAL_FLASH_Lock();
return status;
}
/* Find first free record address in given page (returns 0 if full) */
static uint32_t EE_FindFreeAddress(uint32_t pageBase)
{
uint32_t addr = pageBase + 2U; /* Skip status word */
uint32_t pageEnd = pageBase + EE_PAGE_SIZE;
while (addr < (pageEnd - sizeof(EE_Record_t) + 1U))
{
uint16_t vaddr = *(__IO uint16_t *)addr;
if (vaddr == 0xFFFFU)
{
/* Empty slot */
return addr;
}
addr += sizeof(EE_Record_t);
}
return 0U; /* No space */
}
/* Find latest value of VirtAddress in a specific page (internal, uses EE_Status) */
static EE_Status EE_FindInPage(uint32_t pageBase, uint16_t VirtAddress, uint16_t *Data)
{
uint32_t pageEnd = pageBase + EE_PAGE_SIZE;
uint32_t addr;
if (Data == NULL)
return EE_STATUS_ERROR;
/* Start from last possible record and go backwards */
for (addr = pageEnd - sizeof(EE_Record_t); addr > pageBase + 1U; addr -= sizeof(EE_Record_t))
{
uint16_t vaddr = *(__IO uint16_t *)addr;
uint16_t value = *(__IO uint16_t *)(addr + 2U);
if (vaddr == 0xFFFFU)
{
/* Empty slot, skip */
continue;
}
if (vaddr == VirtAddress)
{
*Data = value;
return EE_STATUS_OK;
}
}
return EE_STATUS_NOT_FOUND;
}
/* Format both pages: erase and set PAGE0 as VALID */
static EE_Status EE_Format(void)
{
if (EE_FlashErasePage(EE_PAGE0_BASE) != HAL_OK)
return EE_STATUS_ERROR;
if (EE_FlashErasePage(EE_PAGE1_BASE) != HAL_OK)
return EE_STATUS_ERROR;
if (EE_FlashProgramHalfWord(EE_PAGE0_BASE, EE_PAGE_STATUS_VALID) != HAL_OK)
return EE_STATUS_ERROR;
/* PAGE1 will remain erased (status = 0xFFFF) */
EE_ActivePageBase = EE_PAGE0_BASE;
return EE_STATUS_OK;
}
/* Get the base of the other page */
static uint32_t EE_GetOtherPageBase(uint32_t pageBase)
{
return (pageBase == EE_PAGE0_BASE) ? EE_PAGE1_BASE : EE_PAGE0_BASE;
}
/* Page transfer (garbage collection + new write) */
static EE_Status EE_PageTransfer(uint16_t VirtAddress, uint16_t Data)
{
uint32_t oldBase = EE_ActivePageBase;
uint32_t newBase = EE_GetOtherPageBase(oldBase);
uint32_t addr;
uint16_t value;
EE_Status st;
/* Erase new page */
if (EE_FlashErasePage(newBase) != HAL_OK)
return EE_STATUS_ERROR;
/* Mark new page as RECEIVE */
if (EE_FlashProgramHalfWord(newBase, EE_PAGE_STATUS_RECEIVE) != HAL_OK)
return EE_STATUS_ERROR;
/* Start writing records just after status */
addr = newBase + 2U;
/* For each known virtual variable */
for (uint16_t i = 0; i < EE_NUM_VIRTUAL_ADDR; i++)
{
uint16_t vaddr = EE_VirtAddrs[i];
if (vaddr == VirtAddress)
{
/* Use the new data passed into PageTransfer */
value = Data;
}
else
{
/* Read latest value from old active page */
st = EE_FindInPage(oldBase, vaddr, &value);
if (st != EE_STATUS_OK)
{
/* Variable never written -> skip */
continue;
}
}
/* Write record to new page */
if (EE_FlashProgramHalfWord(addr, vaddr) != HAL_OK)
return EE_STATUS_ERROR;
if (EE_FlashProgramHalfWord(addr + 2U, value) != HAL_OK)
return EE_STATUS_ERROR;
addr += sizeof(EE_Record_t);
if (addr >= (newBase + EE_PAGE_SIZE))
return EE_STATUS_NO_SPACE;
}
/* Erase old page */
if (EE_FlashErasePage(oldBase) != HAL_OK)
return EE_STATUS_ERROR;
/* Mark new page as VALID */
if (EE_FlashProgramHalfWord(newBase, EE_PAGE_STATUS_VALID) != HAL_OK)
return EE_STATUS_ERROR;
/* Update active page */
EE_ActivePageBase = newBase;
return EE_STATUS_OK;
}
/* --- Public API ----------------------------------------------------------- */
/*
* Initialize the EEPROM emulation.
* - Checks page statuses and chooses the active page.
* - If inconsistent or blank, formats pages.
* PUBLIC RETURN TYPE: uint16_t (EE_OK / EE_ERROR / ...)
*/
uint16_t EE_Init(void)
{
uint16_t status0 = EE_GetPageStatus(EE_PAGE0_BASE);
uint16_t status1 = EE_GetPageStatus(EE_PAGE1_BASE);
if ((status0 == EE_PAGE_STATUS_ERASED) && (status1 == EE_PAGE_STATUS_ERASED))
{
/* Fresh device -> format */
return (uint16_t)EE_Format();
}
else if ((status0 == EE_PAGE_STATUS_VALID) && (status1 == EE_PAGE_STATUS_ERASED))
{
EE_ActivePageBase = EE_PAGE0_BASE;
return EE_OK;
}
else if ((status1 == EE_PAGE_STATUS_VALID) && (status0 == EE_PAGE_STATUS_ERASED))
{
EE_ActivePageBase = EE_PAGE1_BASE;
return EE_OK;
}
else
{
/* Any weird or inconsistent state -> reformat */
return (uint16_t)EE_Format();
}
}
/*
* Read a 16-bit variable by its virtual address.
* PUBLIC RETURN: EE_OK / EE_NOT_FOUND / EE_ERROR (as uint16_t)
*/
uint16_t EE_ReadVariable(uint16_t VirtAddress, uint16_t *Data)
{
EE_Status st;
if (Data == NULL)
return EE_ERROR;
st = EE_FindInPage(EE_ActivePageBase, VirtAddress, Data);
return (uint16_t)st;
}
/*
* Write (append) a 16-bit variable.
* - Writes a new record in the active page.
* - If the page is full, triggers a page transfer (GC).
* PUBLIC RETURN: EE_OK / EE_ERROR / EE_NO_SPACE (as uint16_t)
*/
uint16_t EE_WriteVariable(uint16_t VirtAddress, uint16_t Data)
{
uint32_t freeAddr;
EE_Status st;
/* Find free space in active page */
freeAddr = EE_FindFreeAddress(EE_ActivePageBase);
if (freeAddr != 0U)
{
/* Write new record */
if (EE_FlashProgramHalfWord(freeAddr, VirtAddress) != HAL_OK)
return EE_ERROR;
if (EE_FlashProgramHalfWord(freeAddr + 2U, Data) != HAL_OK)
return EE_ERROR;
return EE_OK;
}
/* No space -> page transfer */
st = EE_PageTransfer(VirtAddress, Data);
return (uint16_t)st;
}

View File

@@ -1,177 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=16;
*retval+=c2;
*retval*=16;
*retval+=c3;
*retval*=16;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t eeadd;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%02x=%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
EEW_Write(eeadd, val);
sprintf((char*)s,"\ndone");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaavvvv hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,13 +0,0 @@
/*
* pwm.h
*
* Created on: Dec 6, 2025
* Author: user
*/
#ifndef INC_PWM_H_
#define INC_PWM_H_
#endif /* INC_PWM_H_ */

View File

@@ -1,30 +0,0 @@
/*
* pwm.h
*
* Created on: Dec 6, 2025
* Author: user
*/
#ifndef INC_PWM_H_
#define INC_PWM_H_
#include <stdbool.h>
bool IsPwmRunning(TIM_HandleTypeDef *htim, uint32_t Channel);;
void StopMot(TIM_HandleTypeDef *htim,uint32_t Channel);
#define timMot1 &htim2
#define FWMot1 TIM_CHANNEL_1
#define BWMot1 TIM_CHANNEL_2
#define timMot2 &htim2
#define FWMot2 TIM_CHANNEL_3
#define BWMot2 TIM_CHANNEL_4
#define timMot3 &htim4
#define FWMot3 TIM_CHANNEL_1
#define BWMot3 TIM_CHANNEL_2
#define timMot4 &htim4
#define FWMot4 TIM_CHANNEL_3
#define BWMot4 TIM_CHANNEL_4
#endif /* INC_PWM_H_ */

View File

@@ -1,644 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
TIM_HandleTypeDef htim1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim3;
TIM_HandleTypeDef htim4;
/* USER CODE BEGIN PV */
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_TIM3_Init(void);
static void MX_ADC1_Init(void);
static void MX_TIM1_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_TIM3_Init();
MX_ADC1_Init();
MX_TIM1_Init();
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_4);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_3);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_4);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_4);
/* USER CODE BEGIN 2 */
CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
void manageCDC(void);
while (CDC_Available()) {
int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
}
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
hadc1.Init.ContinuousConvMode = DISABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 1;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM1 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM1_Init(void)
{
/* USER CODE BEGIN TIM1_Init 0 */
/* USER CODE END TIM1_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
TIM_BreakDeadTimeConfigTypeDef sBreakDeadTimeConfig = {0};
/* USER CODE BEGIN TIM1_Init 1 */
/* USER CODE END TIM1_Init 1 */
htim1.Instance = TIM1;
htim1.Init.Prescaler = 0;
htim1.Init.CounterMode = TIM_COUNTERMODE_UP;
htim1.Init.Period = 17999;
htim1.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim1.Init.RepetitionCounter = 0;
htim1.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim1, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim1, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 2400;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCNPolarity = TIM_OCNPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
sConfigOC.OCIdleState = TIM_OCIDLESTATE_RESET;
sConfigOC.OCNIdleState = TIM_OCNIDLESTATE_RESET;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 5500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sBreakDeadTimeConfig.OffStateRunMode = TIM_OSSR_DISABLE;
sBreakDeadTimeConfig.OffStateIDLEMode = TIM_OSSI_DISABLE;
sBreakDeadTimeConfig.LockLevel = TIM_LOCKLEVEL_OFF;
sBreakDeadTimeConfig.DeadTime = 0;
sBreakDeadTimeConfig.BreakState = TIM_BREAK_DISABLE;
sBreakDeadTimeConfig.BreakPolarity = TIM_BREAKPOLARITY_HIGH;
sBreakDeadTimeConfig.AutomaticOutput = TIM_AUTOMATICOUTPUT_DISABLE;
if (HAL_TIMEx_ConfigBreakDeadTime(&htim1, &sBreakDeadTimeConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM1_Init 2 */
/* USER CODE END TIM1_Init 2 */
HAL_TIM_MspPostInit(&htim1);
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM3 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM3_Init(void)
{
/* USER CODE BEGIN TIM3_Init 0 */
/* USER CODE END TIM3_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM3_Init 1 */
/* USER CODE END TIM3_Init 1 */
htim3.Instance = TIM3;
htim3.Init.Prescaler = 0;
htim3.Init.CounterMode = TIM_COUNTERMODE_UP;
htim3.Init.Period = 17999;
htim3.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim3.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim3, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim3, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 9000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 10000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 11000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 12000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM3_Init 2 */
/* USER CODE END TIM3_Init 2 */
HAL_TIM_MspPostInit(&htim3);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOC, GPIO_PIN_13, GPIO_PIN_RESET);
/*Configure GPIO pin : PC13 */
GPIO_InitStruct.Pin = GPIO_PIN_13;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

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@@ -1,13 +0,0 @@
/*
* eeprom.h
*
* Created on: Dec 7, 2025
* Author: user
*/
#ifndef SRC_EEPROM_H_
#define SRC_EEPROM_H_
#endif /* SRC_EEPROM_H_ */

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@@ -1,650 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
TIM_HandleTypeDef htim1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim3;
TIM_HandleTypeDef htim4;
/* USER CODE BEGIN PV */
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_TIM3_Init(void);
static void MX_ADC1_Init(void);
static void MX_TIM1_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_TIM3_Init();
MX_ADC1_Init();
MX_TIM1_Init();
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_3);
// HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_3);
// HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_4);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_3);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_4);
// HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_3);
// HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_4);
/* USER CODE BEGIN 2 */
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
hadc1.Init.ContinuousConvMode = DISABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 1;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM1 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM1_Init(void)
{
/* USER CODE BEGIN TIM1_Init 0 */
/* USER CODE END TIM1_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
TIM_BreakDeadTimeConfigTypeDef sBreakDeadTimeConfig = {0};
/* USER CODE BEGIN TIM1_Init 1 */
/* USER CODE END TIM1_Init 1 */
htim1.Instance = TIM1;
htim1.Init.Prescaler = 0;
htim1.Init.CounterMode = TIM_COUNTERMODE_UP;
htim1.Init.Period = 17999;
htim1.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim1.Init.RepetitionCounter = 0;
htim1.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim1, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim1, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 2400;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCNPolarity = TIM_OCNPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
sConfigOC.OCIdleState = TIM_OCIDLESTATE_RESET;
sConfigOC.OCNIdleState = TIM_OCNIDLESTATE_RESET;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 5500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sBreakDeadTimeConfig.OffStateRunMode = TIM_OSSR_DISABLE;
sBreakDeadTimeConfig.OffStateIDLEMode = TIM_OSSI_DISABLE;
sBreakDeadTimeConfig.LockLevel = TIM_LOCKLEVEL_OFF;
sBreakDeadTimeConfig.DeadTime = 0;
sBreakDeadTimeConfig.BreakState = TIM_BREAK_DISABLE;
sBreakDeadTimeConfig.BreakPolarity = TIM_BREAKPOLARITY_HIGH;
sBreakDeadTimeConfig.AutomaticOutput = TIM_AUTOMATICOUTPUT_DISABLE;
if (HAL_TIMEx_ConfigBreakDeadTime(&htim1, &sBreakDeadTimeConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM1_Init 2 */
/* USER CODE END TIM1_Init 2 */
HAL_TIM_MspPostInit(&htim1);
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM3 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM3_Init(void)
{
/* USER CODE BEGIN TIM3_Init 0 */
/* USER CODE END TIM3_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM3_Init 1 */
/* USER CODE END TIM3_Init 1 */
htim3.Instance = TIM3;
htim3.Init.Prescaler = 0;
htim3.Init.CounterMode = TIM_COUNTERMODE_UP;
htim3.Init.Period = 17999;
htim3.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim3.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim3, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim3, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 9000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 10000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 11000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 12000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM3_Init 2 */
/* USER CODE END TIM3_Init 2 */
HAL_TIM_MspPostInit(&htim3);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOC, GPIO_PIN_13, GPIO_PIN_RESET);
/*Configure GPIO pin : PC13 */
GPIO_InitStruct.Pin = GPIO_PIN_13;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

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@@ -1,94 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,553 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "eeprom.h"
#include "pwm.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim4;
UART_HandleTypeDef huart1;
/* USER CODE BEGIN PV */
TIM_HandleTypeDef htim1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim3;
TIM_HandleTypeDef htim4;
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_ADC1_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_ADC1_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
//CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
while (CDC_Transmit_FS((uint8_t*)"Start\r\n", 7) == USBD_BUSY);
if (EE_Init() != EE_OK){
// handle error (optional)
}
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
hadc1.Init.ContinuousConvMode = DISABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 1;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
/* USER CODE END USART1_Init 2 */
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(LED2_GPIO_Port, LED2_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOA, BUZ_Pin|LED1_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin : LED2_Pin */
GPIO_InitStruct.Pin = LED2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(LED2_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : P1_Pin P2_Pin */
GPIO_InitStruct.Pin = P1_Pin|P2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/*Configure GPIO pin : AIN1_Pin */
GPIO_InitStruct.Pin = AIN1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
HAL_GPIO_Init(AIN1_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : INH1_Pin INH2_Pin INH3_Pin INH4_Pin
EXP1_Pin EXP2_Pin EXP3_Pin */
GPIO_InitStruct.Pin = INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : CH1_Pin CH2_Pin CH3_Pin CH4_Pin */
GPIO_InitStruct.Pin = CH1_Pin|CH2_Pin|CH3_Pin|CH4_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : BUZ_Pin LED1_Pin */
GPIO_InitStruct.Pin = BUZ_Pin|LED1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,180 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=10;
*retval+=c2;
*retval*=10;
*retval+=c3;
*retval*=10;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t eeadd;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]>='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%c%c=%04x",val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]>='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
EEW_Write(eeadd, val);
sprintf((char*)s,"\ndone");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaavvvv hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%c%c=%04x",val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

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@@ -1,45 +0,0 @@
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen(s)) == USBD_BUSY);
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,563 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "eeprom.h"
#include "pwm.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim4;
UART_HandleTypeDef huart1;
/* USER CODE BEGIN PV */
TIM_HandleTypeDef htim1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim3;
TIM_HandleTypeDef htim4;
uint8_t pulsanti=0;
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_ADC1_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
static uint8_t inidx=0;
static uint8_t inbuf[4];
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
inidx++;
inidx&=0x03;
if (++c100ms >= 10) { // 10 ms
if(HAL_GPIO_ReadPin(P1_GPIO_Port, P1_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP1;else inbuf[inidx]&=(~INP1);
if(HAL_GPIO_ReadPin(P2_GPIO_Port, P2_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP2;else inbuf[inidx]&=(~INP2);
pulsanti|=(inbuf[0]&inbuf[1]&inbuf[2]&inbuf[3]);
pulsanti&=(inbuf[0]|inbuf[1]|inbuf[2]|inbuf[3]);
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_ADC1_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
//CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
while (CDC_Transmit_FS((uint8_t*)"Start\r\n", 7) == USBD_BUSY);
if (EE_Init() != EE_OK){
for(;;);//errore eeprom
}
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
hadc1.Init.ContinuousConvMode = DISABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 1;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
/* USER CODE END USART1_Init 2 */
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(LED2_GPIO_Port, LED2_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOA, BUZ_Pin|LED1_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin : LED2_Pin */
GPIO_InitStruct.Pin = LED2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(LED2_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : P1_Pin P2_Pin */
GPIO_InitStruct.Pin = P1_Pin|P2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/*Configure GPIO pin : AIN1_Pin */
GPIO_InitStruct.Pin = AIN1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
HAL_GPIO_Init(AIN1_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : INH1_Pin INH2_Pin INH3_Pin INH4_Pin
EXP1_Pin EXP2_Pin EXP3_Pin */
GPIO_InitStruct.Pin = INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : CH1_Pin CH2_Pin CH3_Pin CH4_Pin */
GPIO_InitStruct.Pin = CH1_Pin|CH2_Pin|CH3_Pin|CH4_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : BUZ_Pin LED1_Pin */
GPIO_InitStruct.Pin = BUZ_Pin|LED1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

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@@ -1,133 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.h
* @brief : Header for main.c file.
* This file contains the common defines of the application.
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Define to prevent recursive inclusion -------------------------------------*/
#ifndef __MAIN_H
#define __MAIN_H
#ifdef __cplusplus
extern "C" {
#endif
/* Includes ------------------------------------------------------------------*/
#include "stm32f1xx_hal.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
/* USER CODE END Includes */
/* Exported types ------------------------------------------------------------*/
/* USER CODE BEGIN ET */
/* USER CODE END ET */
/* Exported constants --------------------------------------------------------*/
/* USER CODE BEGIN EC */
/* USER CODE END EC */
/* Exported macro ------------------------------------------------------------*/
/* USER CODE BEGIN EM */
/* USER CODE END EM */
void HAL_TIM_MspPostInit(TIM_HandleTypeDef *htim);
/* Exported functions prototypes ---------------------------------------------*/
void Error_Handler(void);
/* USER CODE BEGIN EFP */
/* USER CODE END EFP */
/* Private defines -----------------------------------------------------------*/
#define LED2_Pin GPIO_PIN_13
#define LED2_GPIO_Port GPIOC
#define P1_Pin GPIO_PIN_14
#define P1_GPIO_Port GPIOC
#define P2_Pin GPIO_PIN_15
#define P2_GPIO_Port GPIOC
#define IN1_Pin GPIO_PIN_0
#define IN1_GPIO_Port GPIOA
#define IN2_Pin GPIO_PIN_1
#define IN2_GPIO_Port GPIOA
#define IN3_Pin GPIO_PIN_2
#define IN3_GPIO_Port GPIOA
#define IN4_Pin GPIO_PIN_3
#define IN4_GPIO_Port GPIOA
#define AIN1_Pin GPIO_PIN_4
#define AIN1_GPIO_Port GPIOA
#define AIN2_Pin GPIO_PIN_5
#define AIN2_GPIO_Port GPIOA
#define AIN3_Pin GPIO_PIN_6
#define AIN3_GPIO_Port GPIOA
#define AIN4_Pin GPIO_PIN_7
#define AIN4_GPIO_Port GPIOA
#define ANEM_Pin GPIO_PIN_0
#define ANEM_GPIO_Port GPIOB
#define INH1_Pin GPIO_PIN_1
#define INH1_GPIO_Port GPIOB
#define INH2_Pin GPIO_PIN_2
#define INH2_GPIO_Port GPIOB
#define INH3_Pin GPIO_PIN_10
#define INH3_GPIO_Port GPIOB
#define INH4_Pin GPIO_PIN_11
#define INH4_GPIO_Port GPIOB
#define CH1_Pin GPIO_PIN_12
#define CH1_GPIO_Port GPIOB
#define CH2_Pin GPIO_PIN_13
#define CH2_GPIO_Port GPIOB
#define CH3_Pin GPIO_PIN_14
#define CH3_GPIO_Port GPIOB
#define CH4_Pin GPIO_PIN_15
#define CH4_GPIO_Port GPIOB
#define BUZ_Pin GPIO_PIN_8
#define BUZ_GPIO_Port GPIOA
#define SWIO_Pin GPIO_PIN_13
#define SWIO_GPIO_Port GPIOA
#define SWCLK_Pin GPIO_PIN_14
#define SWCLK_GPIO_Port GPIOA
#define LED1_Pin GPIO_PIN_15
#define LED1_GPIO_Port GPIOA
#define EXP1_Pin GPIO_PIN_3
#define EXP1_GPIO_Port GPIOB
#define EXP2_Pin GPIO_PIN_4
#define EXP2_GPIO_Port GPIOB
#define EXP3_Pin GPIO_PIN_5
#define EXP3_GPIO_Port GPIOB
#define IN5_Pin GPIO_PIN_6
#define IN5_GPIO_Port GPIOB
#define IN6_Pin GPIO_PIN_7
#define IN6_GPIO_Port GPIOB
#define IN7_Pin GPIO_PIN_8
#define IN7_GPIO_Port GPIOB
#define IN8_Pin GPIO_PIN_9
#define IN8_GPIO_Port GPIOB
/* USER CODE BEGIN Private defines */
/* USER CODE END Private defines */
#ifdef __cplusplus
}
#endif
#endif /* __MAIN_H */

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@@ -1,623 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "eeprom.h"
#include "pwm.h"
#include "adc.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
DMA_HandleTypeDef hdma_adc1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim4;
UART_HandleTypeDef huart1;
/* USER CODE BEGIN PV */
extern volatile uint16_t adc_dma_buf[];
uint8_t pulsanti=0;
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_DMA_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_ADC1_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
static uint8_t inidx=0;
static uint8_t inbuf[4];
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
//**** legge i tasti********************************************************************************
inidx++;
inidx&=0x03;
if(HAL_GPIO_ReadPin(P1_GPIO_Port, P1_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP1;else inbuf[inidx]&=(~INP1);
if(HAL_GPIO_ReadPin(P2_GPIO_Port, P2_Pin)==GPIO_PIN_SET)inbuf[inidx]|=INP2;else inbuf[inidx]&=(~INP2);
pulsanti|=(inbuf[0]&inbuf[1]&inbuf[2]&inbuf[3]);
pulsanti&=(inbuf[0]|inbuf[1]|inbuf[2]|inbuf[3]);
//**** legge adc ***********************************************************************************
readAdc();
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_DMA_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_ADC1_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */
HAL_ADC_Start_DMA(&hadc1, (uint32_t *)adc_dma_buf, ADC_NUM_CHANNELS);
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
//CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
while (CDC_Transmit_FS((uint8_t*)"Start\r\n", 7) == USBD_BUSY);
if (EE_Init() != EE_OK){
for(;;);//errore eeprom
}
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
manageAdc();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_ENABLE;
hadc1.Init.ContinuousConvMode = ENABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 5;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_28CYCLES_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_5;
sConfig.Rank = ADC_REGULAR_RANK_2;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_6;
sConfig.Rank = ADC_REGULAR_RANK_3;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_7;
sConfig.Rank = ADC_REGULAR_RANK_4;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_8;
sConfig.Rank = ADC_REGULAR_RANK_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
/* USER CODE END USART1_Init 2 */
}
/**
* Enable DMA controller clock
*/
static void MX_DMA_Init(void)
{
/* DMA controller clock enable */
__HAL_RCC_DMA1_CLK_ENABLE();
/* DMA interrupt init */
/* DMA1_Channel1_IRQn interrupt configuration */
HAL_NVIC_SetPriority(DMA1_Channel1_IRQn, 0, 0);
HAL_NVIC_EnableIRQ(DMA1_Channel1_IRQn);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(LED2_GPIO_Port, LED2_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOA, BUZ_Pin|LED1_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin : LED2_Pin */
GPIO_InitStruct.Pin = LED2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(LED2_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : P1_Pin P2_Pin */
GPIO_InitStruct.Pin = P1_Pin|P2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/*Configure GPIO pin : AIN1_Pin */
GPIO_InitStruct.Pin = AIN1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
HAL_GPIO_Init(AIN1_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : INH1_Pin INH2_Pin INH3_Pin INH4_Pin
EXP1_Pin EXP2_Pin EXP3_Pin */
GPIO_InitStruct.Pin = INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : CH1_Pin CH2_Pin CH3_Pin CH4_Pin */
GPIO_InitStruct.Pin = CH1_Pin|CH2_Pin|CH3_Pin|CH4_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : BUZ_Pin LED1_Pin */
GPIO_InitStruct.Pin = BUZ_Pin|LED1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

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@@ -1,16 +0,0 @@
/*
* pwm.c
*
* Created on: Dec 6, 2025
* Author: user
*/
#include "stm32f1xx_hal.h"
bool IsPwmRunning(TIM_HandleTypeDef *htim, uint32_t Channel)
{
HAL_TIM_ChannelStateTypeDef chState = HAL_TIM_GetChannelState(htim, Channel);
return (chState == HAL_TIM_CHANNEL_STATE_BUSY);
}

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@@ -1,13 +0,0 @@
/*
* adc.h
*
* Created on: Dec 8, 2025
* Author: user
*/
#ifndef INC_ADC_H_
#define INC_ADC_H_
#endif /* INC_ADC_H_ */

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@@ -1,179 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=10;
*retval+=c2;
*retval*=10;
*retval+=c3;
*retval*=10;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t eeadd;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]>='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%c%c=%04x",val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]>='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
EEW_Write(eeadd, val);
sprintf((char*)s,"\ndone");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaavvvv hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%c%c=%04x",val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

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@@ -1,180 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=10;
*retval+=c2;
*retval*=10;
*retval+=c3;
*retval*=10;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t eeadd;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]>='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%c%c=%04x",rxbuf[2],rxbuf[3],val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]>='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
EEW_Write(eeadd, val);
sprintf((char*)s,"\ndone");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaavvvv hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
EEW_Read(eeadd, &val);
sprintf((char*)s,"\nee 0x%c%c=%04x",val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

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@@ -1,8 +0,0 @@
/*
* adc.c
*
* Created on: Dec 8, 2025
* Author: user
*/

View File

@@ -1,644 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
TIM_HandleTypeDef htim1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim3;
TIM_HandleTypeDef htim4;
/* USER CODE BEGIN PV */
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_TIM3_Init(void);
static void MX_ADC1_Init(void);
static void MX_TIM1_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_TIM3_Init();
MX_ADC1_Init();
MX_TIM1_Init();
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_4);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_3);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_4);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_4);
/* USER CODE BEGIN 2 */
CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
void manageCDC(void);
while (CDC_Available()) {
int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
unsigned char s[100];
sprintf((char*)s,"\nc=%03d",c);
while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// tiny spin or yield
}
}
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
hadc1.Init.ContinuousConvMode = DISABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 1;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM1 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM1_Init(void)
{
/* USER CODE BEGIN TIM1_Init 0 */
/* USER CODE END TIM1_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
TIM_BreakDeadTimeConfigTypeDef sBreakDeadTimeConfig = {0};
/* USER CODE BEGIN TIM1_Init 1 */
/* USER CODE END TIM1_Init 1 */
htim1.Instance = TIM1;
htim1.Init.Prescaler = 0;
htim1.Init.CounterMode = TIM_COUNTERMODE_UP;
htim1.Init.Period = 17999;
htim1.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim1.Init.RepetitionCounter = 0;
htim1.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim1, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim1, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 2400;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCNPolarity = TIM_OCNPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
sConfigOC.OCIdleState = TIM_OCIDLESTATE_RESET;
sConfigOC.OCNIdleState = TIM_OCNIDLESTATE_RESET;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 5500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sBreakDeadTimeConfig.OffStateRunMode = TIM_OSSR_DISABLE;
sBreakDeadTimeConfig.OffStateIDLEMode = TIM_OSSI_DISABLE;
sBreakDeadTimeConfig.LockLevel = TIM_LOCKLEVEL_OFF;
sBreakDeadTimeConfig.DeadTime = 0;
sBreakDeadTimeConfig.BreakState = TIM_BREAK_DISABLE;
sBreakDeadTimeConfig.BreakPolarity = TIM_BREAKPOLARITY_HIGH;
sBreakDeadTimeConfig.AutomaticOutput = TIM_AUTOMATICOUTPUT_DISABLE;
if (HAL_TIMEx_ConfigBreakDeadTime(&htim1, &sBreakDeadTimeConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM1_Init 2 */
/* USER CODE END TIM1_Init 2 */
HAL_TIM_MspPostInit(&htim1);
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM3 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM3_Init(void)
{
/* USER CODE BEGIN TIM3_Init 0 */
/* USER CODE END TIM3_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM3_Init 1 */
/* USER CODE END TIM3_Init 1 */
htim3.Instance = TIM3;
htim3.Init.Prescaler = 0;
htim3.Init.CounterMode = TIM_COUNTERMODE_UP;
htim3.Init.Period = 17999;
htim3.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim3.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim3, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim3, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 9000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 10000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 11000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 12000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM3_Init 2 */
/* USER CODE END TIM3_Init 2 */
HAL_TIM_MspPostInit(&htim3);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOC, GPIO_PIN_13, GPIO_PIN_RESET);
/*Configure GPIO pin : PC13 */
GPIO_InitStruct.Pin = GPIO_PIN_13;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,553 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "eeprom.h"
#include "pwm.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim4;
UART_HandleTypeDef huart1;
/* USER CODE BEGIN PV */
TIM_HandleTypeDef htim1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim3;
TIM_HandleTypeDef htim4;
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_ADC1_Init(void);
static void MX_USART1_UART_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_ADC1_Init();
MX_USART1_UART_Init();
/* USER CODE BEGIN 2 */
StopMot(timMot1,FWMot1);
StopMot(timMot1,BWMot1);
StopMot(timMot2,FWMot2);
StopMot(timMot2,BWMot2);
StopMot(timMot3,FWMot3);
StopMot(timMot3,BWMot3);
StopMot(timMot4,FWMot4);
StopMot(timMot4,BWMot4);
//CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
while (CDC_Transmit_FS((uint8_t*)"Start\r\n", 7) == USBD_BUSY);
if (EE_Init() != EE_OK){
for(;;);//errore eeprom
}
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
manageCDC();
// while (CDC_Available()) {
// int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
// unsigned char s[100];
// sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
// }
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
hadc1.Init.ContinuousConvMode = DISABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 1;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief USART1 Initialization Function
* @param None
* @retval None
*/
static void MX_USART1_UART_Init(void)
{
/* USER CODE BEGIN USART1_Init 0 */
/* USER CODE END USART1_Init 0 */
/* USER CODE BEGIN USART1_Init 1 */
/* USER CODE END USART1_Init 1 */
huart1.Instance = USART1;
huart1.Init.BaudRate = 115200;
huart1.Init.WordLength = UART_WORDLENGTH_8B;
huart1.Init.StopBits = UART_STOPBITS_1;
huart1.Init.Parity = UART_PARITY_NONE;
huart1.Init.Mode = UART_MODE_TX_RX;
huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
huart1.Init.OverSampling = UART_OVERSAMPLING_16;
if (HAL_UART_Init(&huart1) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN USART1_Init 2 */
/* USER CODE END USART1_Init 2 */
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(LED2_GPIO_Port, LED2_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOB, INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOA, BUZ_Pin|LED1_Pin, GPIO_PIN_RESET);
/*Configure GPIO pin : LED2_Pin */
GPIO_InitStruct.Pin = LED2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(LED2_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : P1_Pin P2_Pin */
GPIO_InitStruct.Pin = P1_Pin|P2_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/*Configure GPIO pin : AIN1_Pin */
GPIO_InitStruct.Pin = AIN1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
HAL_GPIO_Init(AIN1_GPIO_Port, &GPIO_InitStruct);
/*Configure GPIO pins : INH1_Pin INH2_Pin INH3_Pin INH4_Pin
EXP1_Pin EXP2_Pin EXP3_Pin */
GPIO_InitStruct.Pin = INH1_Pin|INH2_Pin|INH3_Pin|INH4_Pin
|EXP1_Pin|EXP2_Pin|EXP3_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : CH1_Pin CH2_Pin CH3_Pin CH4_Pin */
GPIO_InitStruct.Pin = CH1_Pin|CH2_Pin|CH3_Pin|CH4_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
GPIO_InitStruct.Pull = GPIO_NOPULL;
HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
/*Configure GPIO pins : BUZ_Pin LED1_Pin */
GPIO_InitStruct.Pin = BUZ_Pin|LED1_Pin;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,644 +0,0 @@
/* USER CODE BEGIN Header */
/**
******************************************************************************
* @file : main.c
* @brief : Main program body
******************************************************************************
* @attention
*
* Copyright (c) 2025 STMicroelectronics.
* All rights reserved.
*
* This software is licensed under terms that can be found in the LICENSE file
* in the root directory of this software component.
* If no LICENSE file comes with this software, it is provided AS-IS.
*
******************************************************************************
*/
/* USER CODE END Header */
/* Includes ------------------------------------------------------------------*/
#include "main.h"
#include "usb_device.h"
/* Private includes ----------------------------------------------------------*/
/* USER CODE BEGIN Includes */
#include "usbd_cdc_if.h"
#include "cdc_int.h"
/* USER CODE END Includes */
/* Private typedef -----------------------------------------------------------*/
/* USER CODE BEGIN PTD */
/* USER CODE END PTD */
/* Private define ------------------------------------------------------------*/
/* USER CODE BEGIN PD */
/* USER CODE END PD */
/* Private macro -------------------------------------------------------------*/
/* USER CODE BEGIN PM */
/* USER CODE END PM */
/* Private variables ---------------------------------------------------------*/
ADC_HandleTypeDef hadc1;
TIM_HandleTypeDef htim1;
TIM_HandleTypeDef htim2;
TIM_HandleTypeDef htim3;
TIM_HandleTypeDef htim4;
/* USER CODE BEGIN PV */
/* USER CODE END PV */
/* Private function prototypes -----------------------------------------------*/
void SystemClock_Config(void);
static void MX_GPIO_Init(void);
static void MX_TIM2_Init(void);
static void MX_TIM4_Init(void);
static void MX_TIM3_Init(void);
static void MX_ADC1_Init(void);
static void MX_TIM1_Init(void);
/* USER CODE BEGIN PFP */
/* USER CODE END PFP */
/* Private user code ---------------------------------------------------------*/
/* USER CODE BEGIN 0 */
void HAL_SYSTICK_Callback(void){
static unsigned char c10ms = 0;
static uint8_t c100ms = 0;
static uint8_t c1s = 0;
if (++c10ms >= 10) { // 10 ms
c10ms = 0;
if (++c100ms >= 10) { // 10 ms
c100ms = 0; //flag_10ms = 1; // set a flag; do real work in main loop
if (++c1s >= 10) { // 10 ms
c1s = 0;
HAL_GPIO_TogglePin(GPIOC, GPIO_PIN_13);
}
}
}
}
/* USER CODE END 0 */
/**
* @brief The application entry point.
* @retval int
*/
int main(void)
{
/* USER CODE BEGIN 1 */
/* USER CODE END 1 */
/* MCU Configuration--------------------------------------------------------*/
/* Reset of all peripherals, Initializes the Flash interface and the Systick. */
HAL_Init();
/* USER CODE BEGIN Init */
/* USER CODE END Init */
/* Configure the system clock */
SystemClock_Config();
/* USER CODE BEGIN SysInit */
/* USER CODE END SysInit */
/* Initialize all configured peripherals */
MX_GPIO_Init();
MX_USB_DEVICE_Init();
MX_TIM2_Init();
MX_TIM4_Init();
MX_TIM3_Init();
MX_ADC1_Init();
MX_TIM1_Init();
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim1, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim2, TIM_CHANNEL_4);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_1);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_2);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_3);
// HAL_TIM_PWM_Start(&htim3, TIM_CHANNEL_4);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_1);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_2);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_3);
HAL_TIM_PWM_Start(&htim4, TIM_CHANNEL_4);
/* USER CODE BEGIN 2 */
CDC_Transmit_FS((uint8_t*)"Start\r\n", 7);
/* USER CODE END 2 */
/* Infinite loop */
/* USER CODE BEGIN WHILE */
while (1){
void manageCDC(void);
while (CDC_Available()) {
int c = CDC_ReadByte();
//if (c < 0) break;
// uint8_t out = (uint8_t)c;
// if (out >= 'a' && out <= 'z') out -= 32; // to upper
unsigned char s[100];
sprintf((char*)s,"\nc=%03d",c);
// while (CDC_Transmit_FS(s, 6) == USBD_BUSY) {
// // tiny spin or yield
// }
}
//HAL_Delay(1000);
// CDC_Transmit_FS((uint8_t*)"Ping\r\n", 6);
/* USER CODE END WHILE */
/* USER CODE BEGIN 3 */
}
/* USER CODE END 3 */
}
/**
* @brief System Clock Configuration
* @retval None
*/
void SystemClock_Config(void)
{
RCC_OscInitTypeDef RCC_OscInitStruct = {0};
RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
/** Initializes the RCC Oscillators according to the specified parameters
* in the RCC_OscInitTypeDef structure.
*/
RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
RCC_OscInitStruct.HSEState = RCC_HSE_ON;
RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
RCC_OscInitStruct.HSIState = RCC_HSI_ON;
RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
{
Error_Handler();
}
/** Initializes the CPU, AHB and APB buses clocks
*/
RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
|RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
{
Error_Handler();
}
PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_ADC|RCC_PERIPHCLK_USB;
PeriphClkInit.AdcClockSelection = RCC_ADCPCLK2_DIV6;
PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLL_DIV1_5;
if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
{
Error_Handler();
}
}
/**
* @brief ADC1 Initialization Function
* @param None
* @retval None
*/
static void MX_ADC1_Init(void)
{
/* USER CODE BEGIN ADC1_Init 0 */
/* USER CODE END ADC1_Init 0 */
ADC_ChannelConfTypeDef sConfig = {0};
/* USER CODE BEGIN ADC1_Init 1 */
/* USER CODE END ADC1_Init 1 */
/** Common config
*/
hadc1.Instance = ADC1;
hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
hadc1.Init.ContinuousConvMode = DISABLE;
hadc1.Init.DiscontinuousConvMode = DISABLE;
hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
hadc1.Init.NbrOfConversion = 1;
if (HAL_ADC_Init(&hadc1) != HAL_OK)
{
Error_Handler();
}
/** Configure Regular Channel
*/
sConfig.Channel = ADC_CHANNEL_4;
sConfig.Rank = ADC_REGULAR_RANK_1;
sConfig.SamplingTime = ADC_SAMPLETIME_1CYCLE_5;
if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN ADC1_Init 2 */
/* USER CODE END ADC1_Init 2 */
}
/**
* @brief TIM1 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM1_Init(void)
{
/* USER CODE BEGIN TIM1_Init 0 */
/* USER CODE END TIM1_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
TIM_BreakDeadTimeConfigTypeDef sBreakDeadTimeConfig = {0};
/* USER CODE BEGIN TIM1_Init 1 */
/* USER CODE END TIM1_Init 1 */
htim1.Instance = TIM1;
htim1.Init.Prescaler = 0;
htim1.Init.CounterMode = TIM_COUNTERMODE_UP;
htim1.Init.Period = 17999;
htim1.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim1.Init.RepetitionCounter = 0;
htim1.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim1, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim1) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim1, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 2400;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCNPolarity = TIM_OCNPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
sConfigOC.OCIdleState = TIM_OCIDLESTATE_RESET;
sConfigOC.OCNIdleState = TIM_OCNIDLESTATE_RESET;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 5500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6500;
if (HAL_TIM_PWM_ConfigChannel(&htim1, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sBreakDeadTimeConfig.OffStateRunMode = TIM_OSSR_DISABLE;
sBreakDeadTimeConfig.OffStateIDLEMode = TIM_OSSI_DISABLE;
sBreakDeadTimeConfig.LockLevel = TIM_LOCKLEVEL_OFF;
sBreakDeadTimeConfig.DeadTime = 0;
sBreakDeadTimeConfig.BreakState = TIM_BREAK_DISABLE;
sBreakDeadTimeConfig.BreakPolarity = TIM_BREAKPOLARITY_HIGH;
sBreakDeadTimeConfig.AutomaticOutput = TIM_AUTOMATICOUTPUT_DISABLE;
if (HAL_TIMEx_ConfigBreakDeadTime(&htim1, &sBreakDeadTimeConfig) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM1_Init 2 */
/* USER CODE END TIM1_Init 2 */
HAL_TIM_MspPostInit(&htim1);
}
/**
* @brief TIM2 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM2_Init(void)
{
/* USER CODE BEGIN TIM2_Init 0 */
/* USER CODE END TIM2_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM2_Init 1 */
/* USER CODE END TIM2_Init 1 */
htim2.Instance = TIM2;
htim2.Init.Prescaler = 0;
htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
htim2.Init.Period = 17999;
htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim2) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 1000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 2000;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 3000;
sConfigOC.OCFastMode = TIM_OCFAST_DISABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 4000;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim2, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM2_Init 2 */
/* USER CODE END TIM2_Init 2 */
HAL_TIM_MspPostInit(&htim2);
}
/**
* @brief TIM3 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM3_Init(void)
{
/* USER CODE BEGIN TIM3_Init 0 */
/* USER CODE END TIM3_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM3_Init 1 */
/* USER CODE END TIM3_Init 1 */
htim3.Instance = TIM3;
htim3.Init.Prescaler = 0;
htim3.Init.CounterMode = TIM_COUNTERMODE_UP;
htim3.Init.Period = 17999;
htim3.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim3.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim3, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim3) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim3, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 9000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 10000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 11000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 12000;
if (HAL_TIM_PWM_ConfigChannel(&htim3, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM3_Init 2 */
/* USER CODE END TIM3_Init 2 */
HAL_TIM_MspPostInit(&htim3);
}
/**
* @brief TIM4 Initialization Function
* @param None
* @retval None
*/
static void MX_TIM4_Init(void)
{
/* USER CODE BEGIN TIM4_Init 0 */
/* USER CODE END TIM4_Init 0 */
TIM_ClockConfigTypeDef sClockSourceConfig = {0};
TIM_MasterConfigTypeDef sMasterConfig = {0};
TIM_OC_InitTypeDef sConfigOC = {0};
/* USER CODE BEGIN TIM4_Init 1 */
/* USER CODE END TIM4_Init 1 */
htim4.Instance = TIM4;
htim4.Init.Prescaler = 0;
htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
htim4.Init.Period = 17999;
htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
{
Error_Handler();
}
if (HAL_TIM_PWM_Init(&htim4) != HAL_OK)
{
Error_Handler();
}
sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
{
Error_Handler();
}
sConfigOC.OCMode = TIM_OCMODE_PWM1;
sConfigOC.Pulse = 5000;
sConfigOC.OCPolarity = TIM_OCPOLARITY_HIGH;
sConfigOC.OCFastMode = TIM_OCFAST_ENABLE;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_1) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 6000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_2) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 7000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_3) != HAL_OK)
{
Error_Handler();
}
sConfigOC.Pulse = 8000;
if (HAL_TIM_PWM_ConfigChannel(&htim4, &sConfigOC, TIM_CHANNEL_4) != HAL_OK)
{
Error_Handler();
}
/* USER CODE BEGIN TIM4_Init 2 */
/* USER CODE END TIM4_Init 2 */
HAL_TIM_MspPostInit(&htim4);
}
/**
* @brief GPIO Initialization Function
* @param None
* @retval None
*/
static void MX_GPIO_Init(void)
{
GPIO_InitTypeDef GPIO_InitStruct = {0};
/* USER CODE BEGIN MX_GPIO_Init_1 */
/* USER CODE END MX_GPIO_Init_1 */
/* GPIO Ports Clock Enable */
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOD_CLK_ENABLE();
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
/*Configure GPIO pin Output Level */
HAL_GPIO_WritePin(GPIOC, GPIO_PIN_13, GPIO_PIN_RESET);
/*Configure GPIO pin : PC13 */
GPIO_InitStruct.Pin = GPIO_PIN_13;
GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
GPIO_InitStruct.Pull = GPIO_NOPULL;
GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
/* USER CODE BEGIN MX_GPIO_Init_2 */
/* USER CODE END MX_GPIO_Init_2 */
}
/* USER CODE BEGIN 4 */
/* USER CODE END 4 */
/**
* @brief This function is executed in case of error occurrence.
* @retval None
*/
void Error_Handler(void)
{
/* USER CODE BEGIN Error_Handler_Debug */
/* User can add his own implementation to report the HAL error return state */
__disable_irq();
while (1)
{
}
/* USER CODE END Error_Handler_Debug */
}
#ifdef USE_FULL_ASSERT
/**
* @brief Reports the name of the source file and the source line number
* where the assert_param error has occurred.
* @param file: pointer to the source file name
* @param line: assert_param error line source number
* @retval None
*/
void assert_failed(uint8_t *file, uint32_t line)
{
/* USER CODE BEGIN 6 */
/* User can add his own implementation to report the file name and line number,
ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
/* USER CODE END 6 */
}
#endif /* USE_FULL_ASSERT */

View File

@@ -1,201 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=16;
*retval+=c2;
*retval*=16;
*retval+=c3;
*retval*=16;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t eeadd;
uint8_t i;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if (EEW_Read(eeadd, &val) == EE_OK){
sprintf((char*)s,"\nee 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\nee read error");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
EEW_Write(eeadd, val);
sprintf((char*)s,"\ndone 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\n?ewaavvvv hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='d'){
if(rxidx==2){
for(i=0;i<32;i++){
if((i%4)==0){
sprintf((char*)s,"\n");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
if (EEW_Read(i, &val) == EE_OK){
sprintf((char*)s,"0x%02x=0x%04x ",i,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"rderr ");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}
}else{
sprintf((char*)s,"\n?ed");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w|d");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,196 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=16;
*retval+=c2;
*retval*=16;
*retval+=c3;
*retval*=16;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t st;
uint16_t eeadd;
uint8_t i;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
st=EEW_Read(EE_VirtAddrse[eadd], &val);
if (st == EE_OK){
sprintf((char*)s,"\nee 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\nee read error %d",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
st=EEW_Write(EE_VirtAddrse[eadd], val);
if (st == EE_OK)sprintf((char*)s,"\ndone 0x%02x=0x%04x",eeadd,val);
else sprintf((char*)s,"\nee write error %d", st);
}else sprintf((char*)s,"\n?ewaavvvv hex values");
}else sprintf((char*)s,"\n?ewaa hex values");
}else sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else if(rxbuf[1]=='d'){
if(rxidx==2){
for(i=0;i<32;i++){
if((i%4)==0){
sprintf((char*)s,"\n");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
st=EEW_Read(EE_VirtAddrse[i], &val);
if (st == EE_OK){
sprintf((char*)s,"0x%02x=0x%04x ",i,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"rderr %d ",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}
}else{
sprintf((char*)s,"\n?ed");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w|d");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,48 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,198 +0,0 @@
#include <string.h>
#include <stdbool.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "eeprom.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
extern const uint16_t EE_VirtAddrs[];
extern uint8_t pulsanti;
bool toHex(char c1,char c2,char c3,char c4,uint16_t* retval){
if((c1>='0')&&(c1<='9')){
c1-='0';
}else if((c1>='a')&&(c1<='f')){
c1=(c1-'a')+10;
}else return false;
if((c2>='0')&&(c2<='9')){
c2-='0';
}else if((c2>='a')&&(c2<='f')){
c2=(c2-'a')+10;
}else return false;
if((c3>='0')&&(c3<='9')){
c3-='0';
}else if((c3>='a')&&(c3<='f')){
c3=(c3-'a')+10;
}else return false;
if((c4>='0')&&(c4<='9')){
c4-='0';
}else if((c4>='a')&&(c4<='f')){
c4=(c4-'a')+10;
}else return false;
*retval=c1;
*retval*=16;
*retval+=c2;
*retval*=16;
*retval+=c3;
*retval*=16;
*retval+=c4;
return true;
}
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
uint16_t st;
uint16_t eeadd;
uint8_t i;
if (CDC_Available()) {
int rx = CDC_ReadByte();
if (rx < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=rx;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((rx==0x0d)||(rx==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
case 'e':
if(rxidx>1){
if(rxbuf[1]=='r'){
if(rxidx==4){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
st=EEW_Read(eeadd, &val);
if (st == EE_OK){
sprintf((char*)s,"\nee 0x%02x=0x%04x",eeadd,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"\nee read error %d",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa hex values");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else if(rxbuf[1]=='w'){
if(rxidx==8){
if(toHex('0','0',rxbuf[2],rxbuf[3],&eeadd)){
if(toHex(rxbuf[4],rxbuf[5],rxbuf[6],rxbuf[7],&val)){
st=EEW_Write(eeadd, val);
if (st == EE_OK)sprintf((char*)s,"\ndone 0x%02x=0x%04x",eeadd,val);
else sprintf((char*)s,"\nee write error %d", st);
}else sprintf((char*)s,"\n?ewaavvvv hex values");
}else sprintf((char*)s,"\n?ewaa hex values");
}else sprintf((char*)s,"\n?ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else if(rxbuf[1]=='d'){
if(rxidx==2){
for(i=0;i<32;i++){
if((i%4)==0){
sprintf((char*)s,"\n");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
st=EEW_Read(i, &val);
if (st == EE_OK){
sprintf((char*)s,"0x%02x=0x%04x ",i,val);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}else{
sprintf((char*)s,"rderr %d ",st);
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}
}else{
sprintf((char*)s,"\n?ed");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?er|w|d");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?eraa | ewaavvvv");
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,44 +0,0 @@
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,73 +0,0 @@
/*
* eeprom.h
*
* Created on: Dec 7, 2025
* Author: user
*/
#ifndef __EEPROM_H
#define __EEPROM_H
#ifdef __cplusplus
extern "C" {
#endif
#include "stm32f1xx_hal.h"
/*
* Simple EEPROM emulation for STM32F103C8T6 (medium density).
* - Uses 2 Flash pages (1 kB each) at the end of Flash.
* - Stores variables as 16-bit values identified by 16-bit "virtual addresses".
*
* You must define the list of virtual addresses in eeprom.c: EE_VirtAddrs[].
*/
typedef enum
{
EE_OK = 0,
EE_ERROR,
EE_NOT_FOUND,
EE_NO_SPACE
} EE_Status;
/* Flash parameters for STM32F103C8T6 */
#define EE_FLASH_BASE_ADDR 0x08000000U
#define EE_PAGE_SIZE 0x400U /* 1 kB pages */
/*
* Here we assume a 64 kB Flash device (STM32F103C8T6):
* Flash range: 0x0800 0000 - 0x0800 FFFF
* Pages: 0..63 (64 pages)
* We use the last 2 pages for EEPROM:
* - Page 62: 0x0800 F800
* - Page 63: 0x0800 FC00
*/
#define EE_PAGE0_BASE (EE_FLASH_BASE_ADDR + (62U * EE_PAGE_SIZE))
#define EE_PAGE1_BASE (EE_FLASH_BASE_ADDR + (63U * EE_PAGE_SIZE))
/* Page status markers (stored in the first halfword of each page) */
#define EE_PAGE_STATUS_ERASED 0xFFFFU
#define EE_PAGE_STATUS_VALID 0xAAAAU
#define EE_PAGE_STATUS_RECEIVE 0x5555U
/*
* Configure how many virtual variables you have.
* Example: bytes, words, and array elements mapped to 16-bit variables.
* Set EE_NUM_VIRTUAL_ADDR and define EE_VirtAddrs[] in eeprom.c.
*/
#define EE_NUM_VIRTUAL_ADDR 16U
/* Virtual address table (defined in eeprom.c, can be customized) */
extern const uint16_t EE_VirtAddrs[EE_NUM_VIRTUAL_ADDR];
/* Public API */
EE_Status EE_Init(void);
EE_Status EE_ReadVariable(uint16_t VirtAddress, uint16_t *Data);
EE_Status EE_WriteVariable(uint16_t VirtAddress, uint16_t Data);
#ifdef __cplusplus
}
#endif
#endif /* __EEPROM_H */

View File

@@ -1,78 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,60 +0,0 @@
/*
* pwm.c
*
* Created on: Dec 6, 2025
* Author: user
*/
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
bool IsPwmRunning(TIM_HandleTypeDef *htim, uint32_t Channel)
{
HAL_TIM_ChannelStateTypeDef chState = HAL_TIM_GetChannelState(htim, Channel);
return (chState == HAL_TIM_CHANNEL_STATE_BUSY);
}
void StopMot(TIM_HandleTypeDef *htim,uint32_t Channel){
HAL_TIM_PWM_Stop(htim, Channel);
}
void StartMot(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval){
__HAL_TIM_SET_COMPARE(htim, Channel, pwmval);
HAL_TIM_PWM_Start(htim, Channel);
}
void SetMotPwm(TIM_HandleTypeDef *htim,uint32_t Channel,uint16_t pwmval){
__HAL_TIM_SET_COMPARE(htim, Channel, pwmval);
}
void SetMot(uint8_t mot,uint8_t dir,uint16_t pwmval){
TIM_HandleTypeDef *htim;
switch(mot){
case 1:
if(dir==FW){
if(IsPwmRunning(timMot1, FWMot1)){
else{
}
}else{
}
break;
case 2:
break;
case 3:
break;
case 4:
break;
default:
break;
}
}

View File

@@ -1,94 +0,0 @@
#include <string.h>
#include "usb_device.h"
#include "usbd_cdc_if.h"
#include "cdc_int.h"
#include "stm32f1xx_hal.h"
#include "pwm.h"
extern TIM_HandleTypeDef htim1;
extern TIM_HandleTypeDef htim2;
extern TIM_HandleTypeDef htim3;
extern TIM_HandleTypeDef htim4;
void manageCDC(void){
static uint8_t rxbuf[100];
static uint8_t rxidx=0;
unsigned char s[100];
uint8_t mot,dir,dm,m,c,d,u;
uint16_t val;
if (CDC_Available()) {
int c = CDC_ReadByte();
if (c < 0) return;
//uint8_t out = (uint8_t)c;
//if (out >= 'a' && out <= 'z') out -= 32; // to upper
rxbuf[rxidx]=c;
while (CDC_Transmit_FS(&rxbuf[rxidx], 1) == USBD_BUSY);//echo
if((c==0x0d)||(c==0x0a)){
if(rxidx){
switch(rxbuf[0]){
case 'i':
sprintf((char*)s,"\ninfo");
while (CDC_Transmit_FS(s, 5) == USBD_BUSY);
sprintf((char*)s,"\npwm %d%d%d%d%d%d%d%d",IsPwmRunning(timMot1,FWMot1),IsPwmRunning(timMot1,BWMot1),IsPwmRunning(timMot2,FWMot2),IsPwmRunning(timMot2,BWMot2),IsPwmRunning(timMot3,FWMot3),IsPwmRunning(timMot3,BWMot3),IsPwmRunning(timMot4,FWMot4),IsPwmRunning(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
__HAL_TIM_GET_COMPARE(&htim3, TIM_CHANNEL_1);
sprintf((char*)s,"\n0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx 0x%lx",(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,FWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot1,BWMot1),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,FWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot2,BWMot2),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,FWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot3,BWMot3),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,FWMot4),(uint32_t)__HAL_TIM_GET_COMPARE(timMot4,BWMot4));
while (CDC_Transmit_FS(s, strlen((char*)s)) == USBD_BUSY);
break;
case 'm':
if(rxidx==8){
if((rxbuf[1]>='1')&&(rxbuf[1]<='4')){
mot=rxbuf[1]-='0';
if(rxbuf[2]=='f'){
dir=FW;
}else if(rxbuf[2]=='b'){
dir=BW;
}else{
sprintf((char*)s,"\n?mnsvvvvv s=f|b");//m nmotore senso valore
while (CDC_Transmit_FS(s, 16) == USBD_BUSY);
break;
}
if(((rxbuf[3]>='0')&&(rxbuf[3]<='9'))&&((rxbuf[4]>='0')&&(rxbuf[4]<='9'))&&((rxbuf[5]>='0')&&(rxbuf[5]<='9'))&&((rxbuf[6]>='0')&&(rxbuf[6]<='9'))&&((rxbuf[7]>='0')&&(rxbuf[7]<='9'))){
dm=rxbuf[3]-='0';
m=rxbuf[4]-='0';
c=rxbuf[5]-='0';
d=rxbuf[6]-='0';
u=rxbuf[7]-='0';
val=dm;
val*=10;
val+=m;
val*=10;
val+=c;
val*=10;
val+=d;
val*=10;
val+=u;
SetMot(mot,dir,val);
}else{
sprintf((char*)s,"\n?mnsvvvvv 00000>=vvvvv<=99999");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv 1>=m<=4");//m nmotore senso valore
while (CDC_Transmit_FS(s, 19) == USBD_BUSY);
}
}else{
sprintf((char*)s,"\n?mnsvvvvv");//m nmotore senso valore
while (CDC_Transmit_FS(s, 10) == USBD_BUSY);
}
break;
default:
sprintf((char*)s,"\n?");
while (CDC_Transmit_FS(s, 2) == USBD_BUSY);
break;
}
}
rxidx=0;
}else rxidx++;
// tiny spin or yield
}
}

View File

@@ -1,17 +0,0 @@
/*
* pwm.c
*
* Created on: Dec 6, 2025
* Author: user
*/
#include "stm32f1xx_hal.h"
#include "pwm.h"
bool IsPwmRunning(TIM_HandleTypeDef *htim, uint32_t Channel)
{
HAL_TIM_ChannelStateTypeDef chState = HAL_TIM_GetChannelState(htim, Channel);
return (chState == HAL_TIM_CHANNEL_STATE_BUSY);
}

View File

@@ -1,13 +0,0 @@
/*
* adc.h
*
* Created on: Dec 8, 2025
* Author: user
*/
#ifndef INC_ADC_H_
#define INC_ADC_H_
void manageAdc(void);
#endif /* INC_ADC_H_ */

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