main.c 44 KB

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  1. /* USER CODE BEGIN Header */
  2. /**
  3. ******************************************************************************
  4. * @file : main.c
  5. * @brief : Main program body
  6. ******************************************************************************
  7. * @attention
  8. *
  9. * Copyright (c) 2023 STMicroelectronics.
  10. * All rights reserved.
  11. *
  12. * This software is licensed under terms that can be found in the LICENSE file
  13. * in the root directory of this software component.
  14. * If no LICENSE file comes with this software, it is provided AS-IS.
  15. *
  16. ******************************************************************************
  17. */
  18. /* USER CODE END Header */
  19. /* Includes ------------------------------------------------------------------*/
  20. #include "main.h"
  21. #include "cmsis_os.h"
  22. #include "usb_device.h"
  23. /* Private includes ----------------------------------------------------------*/
  24. /* USER CODE BEGIN Includes */
  25. #include "ImC/imc_api.h"
  26. #include "ImC/imc_kernel.h"
  27. #include "benchmarks/benchmark_driver.h"
  28. #if (imcUSE_IMC_EXTENSION)
  29. #include "ImC/imc_extension.h"
  30. #endif
  31. /* USER CODE END Includes */
  32. /* Private typedef -----------------------------------------------------------*/
  33. typedef StaticTask_t osStaticThreadDef_t;
  34. /* USER CODE BEGIN PTD */
  35. /* USER CODE END PTD */
  36. /* Private define ------------------------------------------------------------*/
  37. /* USER CODE BEGIN PD */
  38. #define FRAM_MEM_SIZE (0x100000) // 1 MiB = 2 * 512 * 1024 bytes
  39. #define MRAM_MEM_SIZE (0x800000) // 8 MiB = 2 * 4 * 1024 * 1024 bytes
  40. #define MEM_TYPE_MRAM (1)
  41. #define MEM_TYPE_FRAM (2)
  42. #define MEM_SIZE_HALF (3)
  43. #define MEM_SIZE_FULL (4)
  44. #define MEM_TEST_TYPE MEM_TYPE_MRAM
  45. #define MEM_TEST_SIZE MEM_SIZE_HALF
  46. #define MEM_TEST_ADDR (0x68000000U)
  47. #if !defined(MEM_TEST_TYPE)
  48. #error "Choose the memory type for test!"
  49. #endif
  50. #if !defined(MEM_TEST_SIZE)
  51. #error "Choose the memory size for test!"
  52. #endif
  53. #if (MEM_TEST_TYPE == MEM_TYPE_MRAM)
  54. #if (MEM_TEST_SIZE == MEM_SIZE_FULL)
  55. #define MEMORY_SIZE MRAM_MEM_SIZE
  56. #elif (MEM_TEST_SIZE == MEM_SIZE_HALF)
  57. #define MEMORY_SIZE (MRAM_MEM_SIZE / 2)
  58. #else
  59. #error "Invalid memory size"
  60. #endif
  61. #elif (MEM_TEST_TYPE == MEM_TYPE_FRAM)
  62. #if (MEM_TEST_SIZE == MEM_SIZE_FULL)
  63. #define MEMORY_SIZE FRAM_MEM_SIZE
  64. #elif (MEM_TEST_SIZE == MEM_SIZE_HALF)
  65. #define MEMORY_SIZE (FRAM_MEM_SIZE / 2)
  66. #else
  67. #error "Invalid memory size"
  68. #endif
  69. #else
  70. #error "Invalid memory type"
  71. #endif
  72. /* USER CODE END PD */
  73. /* Private macro -------------------------------------------------------------*/
  74. /* USER CODE BEGIN PM */
  75. /* USER CODE END PM */
  76. /* Private variables ---------------------------------------------------------*/
  77. ADC_HandleTypeDef ADC_HANDLER_SBC;
  78. ADC_HandleTypeDef hadc2;
  79. FDCAN_HandleTypeDef hfdcan1;
  80. I2C_HandleTypeDef hi2c1;
  81. I2C_HandleTypeDef hi2c3;
  82. SPI_HandleTypeDef hspi1;
  83. SPI_HandleTypeDef hspi2;
  84. TIM_HandleTypeDef htim7;
  85. UART_HandleTypeDef huart4;
  86. UART_HandleTypeDef huart1;
  87. UART_HandleTypeDef huart2;
  88. UART_HandleTypeDef huart3;
  89. SRAM_HandleTypeDef hsram1;
  90. SRAM_HandleTypeDef hsram2;
  91. SRAM_HandleTypeDef hsram3;
  92. SRAM_HandleTypeDef hsram4;
  93. /* Definitions for taskSnap */
  94. osThreadId_t taskSnapHandle;
  95. uint32_t taskSnapBuffer[ imcSTACK_SIZE ];
  96. osStaticThreadDef_t taskSnapControlBlock;
  97. const osThreadAttr_t taskSnap_attributes = {
  98. .name = "taskSnap",
  99. .stack_mem = &taskSnapBuffer[0],
  100. .stack_size = sizeof(taskSnapBuffer),
  101. .cb_mem = &taskSnapControlBlock,
  102. .cb_size = sizeof(taskSnapControlBlock),
  103. .priority = (osPriority_t) osPriorityRealtime,
  104. };
  105. /* USER CODE BEGIN PV */
  106. /* USER CODE END PV */
  107. /* Private function prototypes -----------------------------------------------*/
  108. void SystemClock_Config(void);
  109. void PeriphCommonClock_Config(void);
  110. static void MX_GPIO_Init(void);
  111. static void MX_ADC1_Init(void);
  112. static void MX_FDCAN1_Init(void);
  113. static void MX_FMC_Init(void);
  114. static void MX_I2C1_Init(void);
  115. static void MX_I2C3_Init(void);
  116. static void MX_SPI1_Init(void);
  117. static void MX_SPI2_Init(void);
  118. static void MX_TIM7_Init(void);
  119. static void MX_UART4_Init(void);
  120. static void MX_USART1_UART_Init(void);
  121. static void MX_USART2_UART_Init(void);
  122. static void MX_USART3_UART_Init(void);
  123. static void MX_ICACHE_Init(void);
  124. static void MX_GTZC_Init(void);
  125. static void MX_ADC2_Init(void);
  126. void taskEPSRunner(void *argument);
  127. void taskSnapRunner(void *argument);
  128. void taskAIRunner(void *argument);
  129. void taskImcTest(void *argument);
  130. /* USER CODE BEGIN PFP */
  131. /* USER CODE END PFP */
  132. /* Private user code ---------------------------------------------------------*/
  133. /* USER CODE BEGIN 0 */
  134. #ifdef __cplusplus
  135. extern "C" int _write(int32_t file, uint8_t *ptr, int32_t len) {
  136. #else
  137. int _write(int32_t file, uint8_t *ptr, int32_t len) {
  138. #endif
  139. if( HAL_UART_Transmit(&UART_HANDLER_SBC, ptr, len, len) == HAL_OK ) return len;
  140. else return 0;
  141. }
  142. void vApplicationStackOverflowHook(TaskHandle_t* pxTask , char* pcTaskName ) {
  143. __disable_irq();
  144. //todo: Indicate Overflow with LEDs
  145. printf("stack overflow at %s\r\n", pcTaskName);
  146. for(;;) ;
  147. }
  148. int32_t hal_uart_ifx_send(sc03mpd_ifx_t* ifx, uint8_t* buf, uint16_t len);
  149. int32_t hal_uart_ifx_recv(sc03mpd_ifx_t* ifx, uint8_t* buf, uint16_t len);
  150. int32_t hal_uart_ifx_send(sc03mpd_ifx_t* ifx, uint8_t* buf, uint16_t len)
  151. {
  152. return (HAL_UART_Transmit((UART_HandleTypeDef*)ifx->context, buf, len, 100) == HAL_OK)? len : -1;
  153. }
  154. int32_t hal_uart_ifx_recv(sc03mpd_ifx_t* ifx, uint8_t* buf, uint16_t len)
  155. {
  156. return (HAL_UARTEx_ReceiveToIdle((UART_HandleTypeDef*)ifx->context, buf, len, &len, 500) == HAL_OK)? len : -1;
  157. }
  158. /* USER CODE END 0 */
  159. /**
  160. * @brief The application entry point.
  161. * @retval int
  162. */
  163. int main(void)
  164. {
  165. /* USER CODE BEGIN 1 */
  166. /* USER CODE END 1 */
  167. /* MCU Configuration--------------------------------------------------------*/
  168. /* Reset of all peripherals, Initializes the Flash interface and the Systick. */
  169. HAL_Init();
  170. /* USER CODE BEGIN Init */
  171. /* USER CODE END Init */
  172. /* Configure the system clock */
  173. SystemClock_Config();
  174. /* Configure the peripherals common clocks */
  175. PeriphCommonClock_Config();
  176. /* GTZC initialisation */
  177. MX_GTZC_Init();
  178. /* USER CODE BEGIN SysInit */
  179. /* USER CODE END SysInit */
  180. /* Initialize all configured peripherals */
  181. MX_GPIO_Init();
  182. MX_ADC1_Init();
  183. MX_FDCAN1_Init();
  184. MX_FMC_Init();
  185. MX_I2C1_Init();
  186. MX_I2C3_Init();
  187. MX_SPI1_Init();
  188. MX_SPI2_Init();
  189. MX_TIM7_Init();
  190. MX_UART4_Init();
  191. MX_USART1_UART_Init();
  192. MX_USART2_UART_Init();
  193. MX_USART3_UART_Init();
  194. MX_ICACHE_Init();
  195. MX_USB_Device_Init();
  196. MX_ADC2_Init();
  197. /* USER CODE BEGIN 2 */
  198. #if (imcUSE_IMC_KERNEL == 1)
  199. imcInit();
  200. #endif
  201. // printf("\r\n\r\n\r\n");
  202. // printf("**************************\r\n");
  203. // printf("** TEST APP INFORMATION **\r\n");
  204. // printf(" - SBC M33 freeRTOS, truztzone, ADC test\r\n");
  205. // printf(" - 2023.10.20. 10:00\r\n");
  206. // printf("**************************\r\n");
  207. // printf("\r\n\r\n\r\n");
  208. // /* after SBC boot-up, sbc power gpio pin should be ON */
  209. // imc_sbc_power_on(); // delay(param) should be 0ms
  210. // printf("+");
  211. /* USER CODE END 2 */
  212. /* Init scheduler */
  213. osKernelInitialize();
  214. /* creation of taskSnap */
  215. #if (imcUSE_IMC_KERNEL == 1)
  216. #if (imcUSE_IMC_EXTENSION)
  217. taskSnapHandle = imcOsThreadNew(vBenchmarkDriver, imcBENCH_NAME, &taskSnap_attributes);
  218. #else
  219. // taskSnapHandle = imcOsThreadNew(taskEPSRunner, NULL, &taskSnap_attributes);
  220. taskSnapHandle = imcOsThreadNew(vConv2d, NULL, &taskSnap_attributes);
  221. #endif
  222. #else
  223. taskSnapHandle = osThreadNew(vBenchmarkDriver, imcBENCH_NAME, &taskSnap_attributes);
  224. #endif
  225. /* Start scheduler */
  226. osKernelStart();
  227. /* We should never get here as control is now taken by the scheduler */
  228. /* Infinite loop */
  229. /* USER CODE BEGIN WHILE */
  230. while (1)
  231. {
  232. /* USER CODE END WHILE */
  233. /* USER CODE BEGIN 3 */
  234. }
  235. /* USER CODE END 3 */
  236. }
  237. /**
  238. * @brief System Clock Configuration
  239. * @retval None
  240. */
  241. void SystemClock_Config(void)
  242. {
  243. RCC_OscInitTypeDef RCC_OscInitStruct = {0};
  244. RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
  245. /** Configure the main internal regulator output voltage
  246. */
  247. if (HAL_PWREx_ControlVoltageScaling(PWR_REGULATOR_VOLTAGE_SCALE1) != HAL_OK)
  248. {
  249. Error_Handler();
  250. }
  251. /** Configure LSE Drive Capability
  252. */
  253. HAL_PWR_EnableBkUpAccess();
  254. __HAL_RCC_LSEDRIVE_CONFIG(RCC_LSEDRIVE_LOW);
  255. /** Initializes the RCC Oscillators according to the specified parameters
  256. * in the RCC_OscInitTypeDef structure.
  257. */
  258. RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE|RCC_OSCILLATORTYPE_LSE
  259. |RCC_OSCILLATORTYPE_MSI;
  260. RCC_OscInitStruct.HSEState = RCC_HSE_ON;
  261. RCC_OscInitStruct.LSEState = RCC_LSE_ON;
  262. RCC_OscInitStruct.MSIState = RCC_MSI_ON;
  263. RCC_OscInitStruct.MSICalibrationValue = RCC_MSICALIBRATION_DEFAULT;
  264. RCC_OscInitStruct.MSIClockRange = RCC_MSIRANGE_6;
  265. RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
  266. RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
  267. RCC_OscInitStruct.PLL.PLLM = 1;
  268. RCC_OscInitStruct.PLL.PLLN = 16;
  269. RCC_OscInitStruct.PLL.PLLP = RCC_PLLP_DIV7;
  270. RCC_OscInitStruct.PLL.PLLQ = RCC_PLLQ_DIV4;
  271. RCC_OscInitStruct.PLL.PLLR = RCC_PLLR_DIV4;
  272. if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
  273. {
  274. Error_Handler();
  275. }
  276. /** Initializes the CPU, AHB and APB buses clocks
  277. */
  278. RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
  279. |RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
  280. RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
  281. RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV2;
  282. RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV1;
  283. RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
  284. if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_1) != HAL_OK)
  285. {
  286. Error_Handler();
  287. }
  288. /** Enable MSI Auto calibration
  289. */
  290. HAL_RCCEx_EnableMSIPLLMode();
  291. }
  292. /**
  293. * @brief Peripherals Common Clock Configuration
  294. * @retval None
  295. */
  296. void PeriphCommonClock_Config(void)
  297. {
  298. RCC_PeriphCLKInitTypeDef PeriphClkInit = {0};
  299. /** Initializes the common periph clock
  300. */
  301. PeriphClkInit.PeriphClockSelection = RCC_PERIPHCLK_USB|RCC_PERIPHCLK_ADC;
  302. PeriphClkInit.AdcClockSelection = RCC_ADCCLKSOURCE_PLLSAI1;
  303. PeriphClkInit.UsbClockSelection = RCC_USBCLKSOURCE_PLLSAI1;
  304. PeriphClkInit.PLLSAI1.PLLSAI1Source = RCC_PLLSAI1SOURCE_MSI;
  305. PeriphClkInit.PLLSAI1.PLLSAI1M = 1;
  306. PeriphClkInit.PLLSAI1.PLLSAI1N = 24;
  307. PeriphClkInit.PLLSAI1.PLLSAI1P = RCC_PLLP_DIV7;
  308. PeriphClkInit.PLLSAI1.PLLSAI1Q = RCC_PLLQ_DIV2;
  309. PeriphClkInit.PLLSAI1.PLLSAI1R = RCC_PLLR_DIV2;
  310. PeriphClkInit.PLLSAI1.PLLSAI1ClockOut = RCC_PLLSAI1_48M2CLK|RCC_PLLSAI1_ADC1CLK;
  311. if (HAL_RCCEx_PeriphCLKConfig(&PeriphClkInit) != HAL_OK)
  312. {
  313. Error_Handler();
  314. }
  315. }
  316. /**
  317. * @brief ADC1 Initialization Function
  318. * @param None
  319. * @retval None
  320. */
  321. static void MX_ADC1_Init(void)
  322. {
  323. /* USER CODE BEGIN ADC1_Init 0 */
  324. /* USER CODE END ADC1_Init 0 */
  325. ADC_MultiModeTypeDef multimode = {0};
  326. ADC_ChannelConfTypeDef sConfig = {0};
  327. /* USER CODE BEGIN ADC1_Init 1 */
  328. /* USER CODE END ADC1_Init 1 */
  329. /** Common config
  330. */
  331. hadc1.Instance = ADC1;
  332. hadc1.Init.ClockPrescaler = ADC_CLOCK_ASYNC_DIV1;
  333. hadc1.Init.Resolution = ADC_RESOLUTION_12B;
  334. hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
  335. hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
  336. hadc1.Init.EOCSelection = ADC_EOC_SINGLE_CONV;
  337. hadc1.Init.LowPowerAutoWait = DISABLE;
  338. hadc1.Init.ContinuousConvMode = DISABLE;
  339. hadc1.Init.NbrOfConversion = 1;
  340. hadc1.Init.DiscontinuousConvMode = DISABLE;
  341. hadc1.Init.ExternalTrigConv = ADC_SOFTWARE_START;
  342. hadc1.Init.ExternalTrigConvEdge = ADC_EXTERNALTRIGCONVEDGE_NONE;
  343. hadc1.Init.DMAContinuousRequests = DISABLE;
  344. hadc1.Init.Overrun = ADC_OVR_DATA_PRESERVED;
  345. hadc1.Init.OversamplingMode = DISABLE;
  346. if (HAL_ADC_Init(&hadc1) != HAL_OK)
  347. {
  348. Error_Handler();
  349. }
  350. /** Configure the ADC multi-mode
  351. */
  352. multimode.Mode = ADC_MODE_INDEPENDENT;
  353. if (HAL_ADCEx_MultiModeConfigChannel(&hadc1, &multimode) != HAL_OK)
  354. {
  355. Error_Handler();
  356. }
  357. /** Configure Regular Channel
  358. */
  359. sConfig.Channel = ADC_CHANNEL_1;
  360. sConfig.Rank = ADC_REGULAR_RANK_1;
  361. sConfig.SamplingTime = ADC_SAMPLETIME_2CYCLES_5;
  362. sConfig.SingleDiff = ADC_SINGLE_ENDED;
  363. sConfig.OffsetNumber = ADC_OFFSET_NONE;
  364. sConfig.Offset = 0;
  365. if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK)
  366. {
  367. Error_Handler();
  368. }
  369. /* USER CODE BEGIN ADC1_Init 2 */
  370. /* USER CODE END ADC1_Init 2 */
  371. }
  372. /**
  373. * @brief ADC2 Initialization Function
  374. * @param None
  375. * @retval None
  376. */
  377. static void MX_ADC2_Init(void)
  378. {
  379. /* USER CODE BEGIN ADC2_Init 0 */
  380. /* USER CODE END ADC2_Init 0 */
  381. ADC_ChannelConfTypeDef sConfig = {0};
  382. /* USER CODE BEGIN ADC2_Init 1 */
  383. /* USER CODE END ADC2_Init 1 */
  384. /** Common config
  385. */
  386. hadc2.Instance = ADC2;
  387. hadc2.Init.ClockPrescaler = ADC_CLOCK_ASYNC_DIV1;
  388. hadc2.Init.Resolution = ADC_RESOLUTION_12B;
  389. hadc2.Init.DataAlign = ADC_DATAALIGN_RIGHT;
  390. hadc2.Init.ScanConvMode = ADC_SCAN_DISABLE;
  391. hadc2.Init.EOCSelection = ADC_EOC_SINGLE_CONV;
  392. hadc2.Init.LowPowerAutoWait = DISABLE;
  393. hadc2.Init.ContinuousConvMode = DISABLE;
  394. hadc2.Init.NbrOfConversion = 1;
  395. hadc2.Init.DiscontinuousConvMode = DISABLE;
  396. hadc2.Init.ExternalTrigConv = ADC_SOFTWARE_START;
  397. hadc2.Init.ExternalTrigConvEdge = ADC_EXTERNALTRIGCONVEDGE_NONE;
  398. hadc2.Init.DMAContinuousRequests = DISABLE;
  399. hadc2.Init.Overrun = ADC_OVR_DATA_PRESERVED;
  400. hadc2.Init.OversamplingMode = DISABLE;
  401. if (HAL_ADC_Init(&hadc2) != HAL_OK)
  402. {
  403. Error_Handler();
  404. }
  405. /** Configure Regular Channel
  406. */
  407. sConfig.Channel = ADC_CHANNEL_2;
  408. sConfig.Rank = ADC_REGULAR_RANK_1;
  409. sConfig.SamplingTime = ADC_SAMPLETIME_2CYCLES_5;
  410. sConfig.SingleDiff = ADC_SINGLE_ENDED;
  411. sConfig.OffsetNumber = ADC_OFFSET_NONE;
  412. sConfig.Offset = 0;
  413. if (HAL_ADC_ConfigChannel(&hadc2, &sConfig) != HAL_OK)
  414. {
  415. Error_Handler();
  416. }
  417. /* USER CODE BEGIN ADC2_Init 2 */
  418. /* USER CODE END ADC2_Init 2 */
  419. }
  420. /**
  421. * @brief FDCAN1 Initialization Function
  422. * @param None
  423. * @retval None
  424. */
  425. static void MX_FDCAN1_Init(void)
  426. {
  427. /* USER CODE BEGIN FDCAN1_Init 0 */
  428. /* USER CODE END FDCAN1_Init 0 */
  429. /* USER CODE BEGIN FDCAN1_Init 1 */
  430. /* USER CODE END FDCAN1_Init 1 */
  431. hfdcan1.Instance = FDCAN1;
  432. hfdcan1.Init.ClockDivider = FDCAN_CLOCK_DIV1;
  433. hfdcan1.Init.FrameFormat = FDCAN_FRAME_CLASSIC;
  434. hfdcan1.Init.Mode = FDCAN_MODE_NORMAL;
  435. hfdcan1.Init.AutoRetransmission = DISABLE;
  436. hfdcan1.Init.TransmitPause = DISABLE;
  437. hfdcan1.Init.ProtocolException = DISABLE;
  438. hfdcan1.Init.NominalPrescaler = 16;
  439. hfdcan1.Init.NominalSyncJumpWidth = 1;
  440. hfdcan1.Init.NominalTimeSeg1 = 2;
  441. hfdcan1.Init.NominalTimeSeg2 = 2;
  442. hfdcan1.Init.DataPrescaler = 1;
  443. hfdcan1.Init.DataSyncJumpWidth = 1;
  444. hfdcan1.Init.DataTimeSeg1 = 1;
  445. hfdcan1.Init.DataTimeSeg2 = 1;
  446. hfdcan1.Init.StdFiltersNbr = 0;
  447. hfdcan1.Init.ExtFiltersNbr = 0;
  448. hfdcan1.Init.TxFifoQueueMode = FDCAN_TX_FIFO_OPERATION;
  449. if (HAL_FDCAN_Init(&hfdcan1) != HAL_OK)
  450. {
  451. Error_Handler();
  452. }
  453. /* USER CODE BEGIN FDCAN1_Init 2 */
  454. /* USER CODE END FDCAN1_Init 2 */
  455. }
  456. /**
  457. * @brief GTZC Initialization Function
  458. * @param None
  459. * @retval None
  460. */
  461. static void MX_GTZC_Init(void)
  462. {
  463. /* USER CODE BEGIN GTZC_Init 0 */
  464. /* USER CODE END GTZC_Init 0 */
  465. /* USER CODE BEGIN GTZC_Init 1 */
  466. /* USER CODE END GTZC_Init 1 */
  467. /* USER CODE BEGIN GTZC_Init 2 */
  468. /* USER CODE END GTZC_Init 2 */
  469. }
  470. /**
  471. * @brief I2C1 Initialization Function
  472. * @param None
  473. * @retval None
  474. */
  475. static void MX_I2C1_Init(void)
  476. {
  477. /* USER CODE BEGIN I2C1_Init 0 */
  478. /* USER CODE END I2C1_Init 0 */
  479. /* USER CODE BEGIN I2C1_Init 1 */
  480. /* USER CODE END I2C1_Init 1 */
  481. hi2c1.Instance = I2C1;
  482. hi2c1.Init.Timing = 0x00707CBB;
  483. hi2c1.Init.OwnAddress1 = 0;
  484. hi2c1.Init.AddressingMode = I2C_ADDRESSINGMODE_7BIT;
  485. hi2c1.Init.DualAddressMode = I2C_DUALADDRESS_DISABLE;
  486. hi2c1.Init.OwnAddress2 = 0;
  487. hi2c1.Init.OwnAddress2Masks = I2C_OA2_NOMASK;
  488. hi2c1.Init.GeneralCallMode = I2C_GENERALCALL_DISABLE;
  489. hi2c1.Init.NoStretchMode = I2C_NOSTRETCH_DISABLE;
  490. if (HAL_I2C_Init(&hi2c1) != HAL_OK)
  491. {
  492. Error_Handler();
  493. }
  494. /** Configure Analogue filter
  495. */
  496. if (HAL_I2CEx_ConfigAnalogFilter(&hi2c1, I2C_ANALOGFILTER_ENABLE) != HAL_OK)
  497. {
  498. Error_Handler();
  499. }
  500. /** Configure Digital filter
  501. */
  502. if (HAL_I2CEx_ConfigDigitalFilter(&hi2c1, 0) != HAL_OK)
  503. {
  504. Error_Handler();
  505. }
  506. /* USER CODE BEGIN I2C1_Init 2 */
  507. /* USER CODE END I2C1_Init 2 */
  508. }
  509. /**
  510. * @brief I2C3 Initialization Function
  511. * @param None
  512. * @retval None
  513. */
  514. static void MX_I2C3_Init(void)
  515. {
  516. /* USER CODE BEGIN I2C3_Init 0 */
  517. /* USER CODE END I2C3_Init 0 */
  518. /* USER CODE BEGIN I2C3_Init 1 */
  519. /* USER CODE END I2C3_Init 1 */
  520. hi2c3.Instance = I2C3;
  521. hi2c3.Init.Timing = 0x00707CBB;
  522. hi2c3.Init.OwnAddress1 = 0;
  523. hi2c3.Init.AddressingMode = I2C_ADDRESSINGMODE_7BIT;
  524. hi2c3.Init.DualAddressMode = I2C_DUALADDRESS_DISABLE;
  525. hi2c3.Init.OwnAddress2 = 0;
  526. hi2c3.Init.OwnAddress2Masks = I2C_OA2_NOMASK;
  527. hi2c3.Init.GeneralCallMode = I2C_GENERALCALL_DISABLE;
  528. hi2c3.Init.NoStretchMode = I2C_NOSTRETCH_DISABLE;
  529. if (HAL_I2C_Init(&hi2c3) != HAL_OK)
  530. {
  531. Error_Handler();
  532. }
  533. /** Configure Analogue filter
  534. */
  535. if (HAL_I2CEx_ConfigAnalogFilter(&hi2c3, I2C_ANALOGFILTER_ENABLE) != HAL_OK)
  536. {
  537. Error_Handler();
  538. }
  539. /** Configure Digital filter
  540. */
  541. if (HAL_I2CEx_ConfigDigitalFilter(&hi2c3, 0) != HAL_OK)
  542. {
  543. Error_Handler();
  544. }
  545. /* USER CODE BEGIN I2C3_Init 2 */
  546. /* USER CODE END I2C3_Init 2 */
  547. }
  548. /**
  549. * @brief ICACHE Initialization Function
  550. * @param None
  551. * @retval None
  552. */
  553. static void MX_ICACHE_Init(void)
  554. {
  555. /* USER CODE BEGIN ICACHE_Init 0 */
  556. /* USER CODE END ICACHE_Init 0 */
  557. /* USER CODE BEGIN ICACHE_Init 1 */
  558. /* USER CODE END ICACHE_Init 1 */
  559. /** Enable instruction cache in 1-way (direct mapped cache)
  560. */
  561. if (HAL_ICACHE_ConfigAssociativityMode(ICACHE_1WAY) != HAL_OK)
  562. {
  563. Error_Handler();
  564. }
  565. if (HAL_ICACHE_Enable() != HAL_OK)
  566. {
  567. Error_Handler();
  568. }
  569. /* USER CODE BEGIN ICACHE_Init 2 */
  570. /* USER CODE END ICACHE_Init 2 */
  571. }
  572. /**
  573. * @brief SPI1 Initialization Function
  574. * @param None
  575. * @retval None
  576. */
  577. static void MX_SPI1_Init(void)
  578. {
  579. /* USER CODE BEGIN SPI1_Init 0 */
  580. /* USER CODE END SPI1_Init 0 */
  581. /* USER CODE BEGIN SPI1_Init 1 */
  582. /* USER CODE END SPI1_Init 1 */
  583. /* SPI1 parameter configuration*/
  584. hspi1.Instance = SPI1;
  585. hspi1.Init.Mode = SPI_MODE_MASTER;
  586. hspi1.Init.Direction = SPI_DIRECTION_2LINES;
  587. hspi1.Init.DataSize = SPI_DATASIZE_4BIT;
  588. hspi1.Init.CLKPolarity = SPI_POLARITY_LOW;
  589. hspi1.Init.CLKPhase = SPI_PHASE_1EDGE;
  590. hspi1.Init.NSS = SPI_NSS_HARD_OUTPUT;
  591. hspi1.Init.BaudRatePrescaler = SPI_BAUDRATEPRESCALER_2;
  592. hspi1.Init.FirstBit = SPI_FIRSTBIT_MSB;
  593. hspi1.Init.TIMode = SPI_TIMODE_DISABLE;
  594. hspi1.Init.CRCCalculation = SPI_CRCCALCULATION_DISABLE;
  595. hspi1.Init.CRCPolynomial = 7;
  596. hspi1.Init.CRCLength = SPI_CRC_LENGTH_DATASIZE;
  597. hspi1.Init.NSSPMode = SPI_NSS_PULSE_ENABLE;
  598. if (HAL_SPI_Init(&hspi1) != HAL_OK)
  599. {
  600. Error_Handler();
  601. }
  602. /* USER CODE BEGIN SPI1_Init 2 */
  603. /* USER CODE END SPI1_Init 2 */
  604. }
  605. /**
  606. * @brief SPI2 Initialization Function
  607. * @param None
  608. * @retval None
  609. */
  610. static void MX_SPI2_Init(void)
  611. {
  612. /* USER CODE BEGIN SPI2_Init 0 */
  613. /* USER CODE END SPI2_Init 0 */
  614. /* USER CODE BEGIN SPI2_Init 1 */
  615. /* USER CODE END SPI2_Init 1 */
  616. /* SPI2 parameter configuration*/
  617. hspi2.Instance = SPI2;
  618. hspi2.Init.Mode = SPI_MODE_MASTER;
  619. hspi2.Init.Direction = SPI_DIRECTION_2LINES;
  620. hspi2.Init.DataSize = SPI_DATASIZE_4BIT;
  621. hspi2.Init.CLKPolarity = SPI_POLARITY_LOW;
  622. hspi2.Init.CLKPhase = SPI_PHASE_1EDGE;
  623. hspi2.Init.NSS = SPI_NSS_HARD_OUTPUT;
  624. hspi2.Init.BaudRatePrescaler = SPI_BAUDRATEPRESCALER_2;
  625. hspi2.Init.FirstBit = SPI_FIRSTBIT_MSB;
  626. hspi2.Init.TIMode = SPI_TIMODE_DISABLE;
  627. hspi2.Init.CRCCalculation = SPI_CRCCALCULATION_DISABLE;
  628. hspi2.Init.CRCPolynomial = 7;
  629. hspi2.Init.CRCLength = SPI_CRC_LENGTH_DATASIZE;
  630. hspi2.Init.NSSPMode = SPI_NSS_PULSE_ENABLE;
  631. if (HAL_SPI_Init(&hspi2) != HAL_OK)
  632. {
  633. Error_Handler();
  634. }
  635. /* USER CODE BEGIN SPI2_Init 2 */
  636. /* USER CODE END SPI2_Init 2 */
  637. }
  638. /**
  639. * @brief TIM7 Initialization Function
  640. * @param None
  641. * @retval None
  642. */
  643. static void MX_TIM7_Init(void)
  644. {
  645. /* USER CODE BEGIN TIM7_Init 0 */
  646. /* USER CODE END TIM7_Init 0 */
  647. TIM_MasterConfigTypeDef sMasterConfig = {0};
  648. /* USER CODE BEGIN TIM7_Init 1 */
  649. /* USER CODE END TIM7_Init 1 */
  650. htim7.Instance = TIM7;
  651. htim7.Init.Prescaler = 0;
  652. htim7.Init.CounterMode = TIM_COUNTERMODE_UP;
  653. htim7.Init.Period = 65535;
  654. htim7.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
  655. if (HAL_TIM_Base_Init(&htim7) != HAL_OK)
  656. {
  657. Error_Handler();
  658. }
  659. sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
  660. sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
  661. if (HAL_TIMEx_MasterConfigSynchronization(&htim7, &sMasterConfig) != HAL_OK)
  662. {
  663. Error_Handler();
  664. }
  665. /* USER CODE BEGIN TIM7_Init 2 */
  666. /* USER CODE END TIM7_Init 2 */
  667. }
  668. /**
  669. * @brief UART4 Initialization Function
  670. * @param None
  671. * @retval None
  672. */
  673. static void MX_UART4_Init(void)
  674. {
  675. /* USER CODE BEGIN UART4_Init 0 */
  676. /* USER CODE END UART4_Init 0 */
  677. /* USER CODE BEGIN UART4_Init 1 */
  678. /* USER CODE END UART4_Init 1 */
  679. huart4.Instance = UART4;
  680. huart4.Init.BaudRate = 115200;
  681. huart4.Init.WordLength = UART_WORDLENGTH_8B;
  682. huart4.Init.StopBits = UART_STOPBITS_1;
  683. huart4.Init.Parity = UART_PARITY_NONE;
  684. huart4.Init.Mode = UART_MODE_TX_RX;
  685. huart4.Init.HwFlowCtl = UART_HWCONTROL_NONE;
  686. huart4.Init.OverSampling = UART_OVERSAMPLING_16;
  687. huart4.Init.OneBitSampling = UART_ONE_BIT_SAMPLE_DISABLE;
  688. huart4.Init.ClockPrescaler = UART_PRESCALER_DIV1;
  689. huart4.AdvancedInit.AdvFeatureInit = UART_ADVFEATURE_NO_INIT;
  690. if (HAL_UART_Init(&huart4) != HAL_OK)
  691. {
  692. Error_Handler();
  693. }
  694. if (HAL_UARTEx_SetTxFifoThreshold(&huart4, UART_TXFIFO_THRESHOLD_1_8) != HAL_OK)
  695. {
  696. Error_Handler();
  697. }
  698. if (HAL_UARTEx_SetRxFifoThreshold(&huart4, UART_RXFIFO_THRESHOLD_1_8) != HAL_OK)
  699. {
  700. Error_Handler();
  701. }
  702. if (HAL_UARTEx_DisableFifoMode(&huart4) != HAL_OK)
  703. {
  704. Error_Handler();
  705. }
  706. /* USER CODE BEGIN UART4_Init 2 */
  707. /* USER CODE END UART4_Init 2 */
  708. }
  709. /**
  710. * @brief USART1 Initialization Function
  711. * @param None
  712. * @retval None
  713. */
  714. static void MX_USART1_UART_Init(void)
  715. {
  716. /* USER CODE BEGIN USART1_Init 0 */
  717. /* USER CODE END USART1_Init 0 */
  718. /* USER CODE BEGIN USART1_Init 1 */
  719. /* USER CODE END USART1_Init 1 */
  720. huart1.Instance = USART1;
  721. huart1.Init.BaudRate = 115200;
  722. huart1.Init.WordLength = UART_WORDLENGTH_8B;
  723. huart1.Init.StopBits = UART_STOPBITS_1;
  724. huart1.Init.Parity = UART_PARITY_NONE;
  725. huart1.Init.Mode = UART_MODE_TX_RX;
  726. huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
  727. huart1.Init.OverSampling = UART_OVERSAMPLING_16;
  728. huart1.Init.OneBitSampling = UART_ONE_BIT_SAMPLE_DISABLE;
  729. huart1.Init.ClockPrescaler = UART_PRESCALER_DIV1;
  730. huart1.AdvancedInit.AdvFeatureInit = UART_ADVFEATURE_NO_INIT;
  731. if (HAL_UART_Init(&huart1) != HAL_OK)
  732. {
  733. Error_Handler();
  734. }
  735. if (HAL_UARTEx_SetTxFifoThreshold(&huart1, UART_TXFIFO_THRESHOLD_1_8) != HAL_OK)
  736. {
  737. Error_Handler();
  738. }
  739. if (HAL_UARTEx_SetRxFifoThreshold(&huart1, UART_RXFIFO_THRESHOLD_1_8) != HAL_OK)
  740. {
  741. Error_Handler();
  742. }
  743. if (HAL_UARTEx_DisableFifoMode(&huart1) != HAL_OK)
  744. {
  745. Error_Handler();
  746. }
  747. /* USER CODE BEGIN USART1_Init 2 */
  748. /* USER CODE END USART1_Init 2 */
  749. }
  750. /**
  751. * @brief USART2 Initialization Function
  752. * @param None
  753. * @retval None
  754. */
  755. static void MX_USART2_UART_Init(void)
  756. {
  757. /* USER CODE BEGIN USART2_Init 0 */
  758. /* USER CODE END USART2_Init 0 */
  759. /* USER CODE BEGIN USART2_Init 1 */
  760. /* USER CODE END USART2_Init 1 */
  761. huart2.Instance = USART2;
  762. huart2.Init.BaudRate = 115200;
  763. huart2.Init.WordLength = UART_WORDLENGTH_8B;
  764. huart2.Init.StopBits = UART_STOPBITS_1;
  765. huart2.Init.Parity = UART_PARITY_NONE;
  766. huart2.Init.Mode = UART_MODE_TX_RX;
  767. huart2.Init.HwFlowCtl = UART_HWCONTROL_NONE;
  768. huart2.Init.OverSampling = UART_OVERSAMPLING_16;
  769. huart2.Init.OneBitSampling = UART_ONE_BIT_SAMPLE_DISABLE;
  770. huart2.Init.ClockPrescaler = UART_PRESCALER_DIV1;
  771. huart2.AdvancedInit.AdvFeatureInit = UART_ADVFEATURE_NO_INIT;
  772. if (HAL_UART_Init(&huart2) != HAL_OK)
  773. {
  774. Error_Handler();
  775. }
  776. if (HAL_UARTEx_SetTxFifoThreshold(&huart2, UART_TXFIFO_THRESHOLD_1_8) != HAL_OK)
  777. {
  778. Error_Handler();
  779. }
  780. if (HAL_UARTEx_SetRxFifoThreshold(&huart2, UART_RXFIFO_THRESHOLD_1_8) != HAL_OK)
  781. {
  782. Error_Handler();
  783. }
  784. if (HAL_UARTEx_DisableFifoMode(&huart2) != HAL_OK)
  785. {
  786. Error_Handler();
  787. }
  788. /* USER CODE BEGIN USART2_Init 2 */
  789. /* USER CODE END USART2_Init 2 */
  790. }
  791. /**
  792. * @brief USART3 Initialization Function
  793. * @param None
  794. * @retval None
  795. */
  796. static void MX_USART3_UART_Init(void)
  797. {
  798. /* USER CODE BEGIN USART3_Init 0 */
  799. /* USER CODE END USART3_Init 0 */
  800. /* USER CODE BEGIN USART3_Init 1 */
  801. /*
  802. * use below code if code is re-generated by .ioc modification
  803. #if CAM_CHANGE_BAUDRATE
  804. UART_HANDLER_CAM.Init.BaudRate = 38400;
  805. #else
  806. UART_HANDLER_CAM.Init.BaudRate = 115200;
  807. #endif
  808. */
  809. /* USER CODE END USART3_Init 1 */
  810. huart3.Instance = USART3;
  811. huart3.Init.BaudRate = 115200;
  812. huart3.Init.WordLength = UART_WORDLENGTH_8B;
  813. huart3.Init.StopBits = UART_STOPBITS_1;
  814. huart3.Init.Parity = UART_PARITY_NONE;
  815. huart3.Init.Mode = UART_MODE_TX_RX;
  816. huart3.Init.HwFlowCtl = UART_HWCONTROL_NONE;
  817. huart3.Init.OverSampling = UART_OVERSAMPLING_16;
  818. huart3.Init.OneBitSampling = UART_ONE_BIT_SAMPLE_DISABLE;
  819. huart3.Init.ClockPrescaler = UART_PRESCALER_DIV1;
  820. huart3.AdvancedInit.AdvFeatureInit = UART_ADVFEATURE_NO_INIT;
  821. if (HAL_UART_Init(&huart3) != HAL_OK)
  822. {
  823. Error_Handler();
  824. }
  825. if (HAL_UARTEx_SetTxFifoThreshold(&huart3, UART_TXFIFO_THRESHOLD_1_8) != HAL_OK)
  826. {
  827. Error_Handler();
  828. }
  829. if (HAL_UARTEx_SetRxFifoThreshold(&huart3, UART_RXFIFO_THRESHOLD_1_8) != HAL_OK)
  830. {
  831. Error_Handler();
  832. }
  833. if (HAL_UARTEx_DisableFifoMode(&huart3) != HAL_OK)
  834. {
  835. Error_Handler();
  836. }
  837. /* USER CODE BEGIN USART3_Init 2 */
  838. /* USER CODE END USART3_Init 2 */
  839. }
  840. /* FMC initialization function */
  841. static void MX_FMC_Init(void)
  842. {
  843. /* USER CODE BEGIN FMC_Init 0 */
  844. /* USER CODE END FMC_Init 0 */
  845. FMC_NORSRAM_TimingTypeDef Timing = {0};
  846. /* USER CODE BEGIN FMC_Init 1 */
  847. /* USER CODE END FMC_Init 1 */
  848. /** Perform the SRAM1 memory initialization sequence
  849. */
  850. hsram1.Instance = FMC_NORSRAM_DEVICE;
  851. hsram1.Extended = FMC_NORSRAM_EXTENDED_DEVICE;
  852. /* hsram1.Init */
  853. hsram1.Init.NSBank = FMC_NORSRAM_BANK1;
  854. hsram1.Init.DataAddressMux = FMC_DATA_ADDRESS_MUX_DISABLE;
  855. hsram1.Init.MemoryType = FMC_MEMORY_TYPE_SRAM;
  856. hsram1.Init.MemoryDataWidth = FMC_NORSRAM_MEM_BUS_WIDTH_16;
  857. hsram1.Init.BurstAccessMode = FMC_BURST_ACCESS_MODE_DISABLE;
  858. hsram1.Init.WaitSignalPolarity = FMC_WAIT_SIGNAL_POLARITY_LOW;
  859. hsram1.Init.WaitSignalActive = FMC_WAIT_TIMING_BEFORE_WS;
  860. hsram1.Init.WriteOperation = FMC_WRITE_OPERATION_ENABLE;
  861. hsram1.Init.WaitSignal = FMC_WAIT_SIGNAL_DISABLE;
  862. hsram1.Init.ExtendedMode = FMC_EXTENDED_MODE_DISABLE;
  863. hsram1.Init.AsynchronousWait = FMC_ASYNCHRONOUS_WAIT_DISABLE;
  864. hsram1.Init.WriteBurst = FMC_WRITE_BURST_DISABLE;
  865. hsram1.Init.ContinuousClock = FMC_CONTINUOUS_CLOCK_SYNC_ONLY;
  866. hsram1.Init.WriteFifo = FMC_WRITE_FIFO_ENABLE;
  867. hsram1.Init.NBLSetupTime = 0;
  868. hsram1.Init.PageSize = FMC_PAGE_SIZE_NONE;
  869. hsram1.Init.MaxChipSelectPulse = DISABLE;
  870. /* Timing */
  871. Timing.AddressSetupTime = 15;
  872. Timing.AddressHoldTime = 15;
  873. Timing.DataSetupTime = 30;
  874. Timing.DataHoldTime = 0;
  875. Timing.BusTurnAroundDuration = 2;
  876. Timing.CLKDivision = 16;
  877. Timing.DataLatency = 17;
  878. Timing.AccessMode = FMC_ACCESS_MODE_A;
  879. /* ExtTiming */
  880. if (HAL_SRAM_Init(&hsram1, &Timing, NULL) != HAL_OK)
  881. {
  882. Error_Handler( );
  883. }
  884. /** Perform the SRAM2 memory initialization sequence
  885. */
  886. hsram2.Instance = FMC_NORSRAM_DEVICE;
  887. hsram2.Extended = FMC_NORSRAM_EXTENDED_DEVICE;
  888. /* hsram2.Init */
  889. hsram2.Init.NSBank = FMC_NORSRAM_BANK2;
  890. hsram2.Init.DataAddressMux = FMC_DATA_ADDRESS_MUX_DISABLE;
  891. hsram2.Init.MemoryType = FMC_MEMORY_TYPE_SRAM;
  892. hsram2.Init.MemoryDataWidth = FMC_NORSRAM_MEM_BUS_WIDTH_16;
  893. hsram2.Init.BurstAccessMode = FMC_BURST_ACCESS_MODE_DISABLE;
  894. hsram2.Init.WaitSignalPolarity = FMC_WAIT_SIGNAL_POLARITY_LOW;
  895. hsram2.Init.WaitSignalActive = FMC_WAIT_TIMING_BEFORE_WS;
  896. hsram2.Init.WriteOperation = FMC_WRITE_OPERATION_ENABLE;
  897. hsram2.Init.WaitSignal = FMC_WAIT_SIGNAL_DISABLE;
  898. hsram2.Init.ExtendedMode = FMC_EXTENDED_MODE_DISABLE;
  899. hsram2.Init.AsynchronousWait = FMC_ASYNCHRONOUS_WAIT_DISABLE;
  900. hsram2.Init.WriteBurst = FMC_WRITE_BURST_DISABLE;
  901. hsram2.Init.ContinuousClock = FMC_CONTINUOUS_CLOCK_SYNC_ONLY;
  902. hsram2.Init.WriteFifo = FMC_WRITE_FIFO_ENABLE;
  903. hsram2.Init.NBLSetupTime = 0;
  904. hsram2.Init.PageSize = FMC_PAGE_SIZE_NONE;
  905. hsram2.Init.MaxChipSelectPulse = DISABLE;
  906. /* Timing */
  907. Timing.AddressSetupTime = 15;
  908. Timing.AddressHoldTime = 15;
  909. Timing.DataSetupTime = 30;
  910. Timing.DataHoldTime = 0;
  911. Timing.BusTurnAroundDuration = 2;
  912. Timing.CLKDivision = 16;
  913. Timing.DataLatency = 17;
  914. Timing.AccessMode = FMC_ACCESS_MODE_A;
  915. /* ExtTiming */
  916. if (HAL_SRAM_Init(&hsram2, &Timing, NULL) != HAL_OK)
  917. {
  918. Error_Handler( );
  919. }
  920. /** Perform the SRAM3 memory initialization sequence
  921. */
  922. hsram3.Instance = FMC_NORSRAM_DEVICE;
  923. hsram3.Extended = FMC_NORSRAM_EXTENDED_DEVICE;
  924. /* hsram3.Init */
  925. hsram3.Init.NSBank = FMC_NORSRAM_BANK3;
  926. hsram3.Init.DataAddressMux = FMC_DATA_ADDRESS_MUX_DISABLE;
  927. hsram3.Init.MemoryType = FMC_MEMORY_TYPE_PSRAM;
  928. hsram3.Init.MemoryDataWidth = FMC_NORSRAM_MEM_BUS_WIDTH_16;
  929. hsram3.Init.BurstAccessMode = FMC_BURST_ACCESS_MODE_DISABLE;
  930. hsram3.Init.WaitSignalPolarity = FMC_WAIT_SIGNAL_POLARITY_LOW;
  931. hsram3.Init.WaitSignalActive = FMC_WAIT_TIMING_BEFORE_WS;
  932. hsram3.Init.WriteOperation = FMC_WRITE_OPERATION_ENABLE;
  933. hsram3.Init.WaitSignal = FMC_WAIT_SIGNAL_DISABLE;
  934. hsram3.Init.ExtendedMode = FMC_EXTENDED_MODE_DISABLE;
  935. hsram3.Init.AsynchronousWait = FMC_ASYNCHRONOUS_WAIT_DISABLE;
  936. hsram3.Init.WriteBurst = FMC_WRITE_BURST_DISABLE;
  937. hsram3.Init.ContinuousClock = FMC_CONTINUOUS_CLOCK_SYNC_ONLY;
  938. hsram3.Init.WriteFifo = FMC_WRITE_FIFO_ENABLE;
  939. hsram3.Init.NBLSetupTime = 0;
  940. hsram3.Init.PageSize = FMC_PAGE_SIZE_NONE;
  941. hsram3.Init.MaxChipSelectPulse = DISABLE;
  942. /* Timing */
  943. Timing.AddressSetupTime = 15;
  944. Timing.AddressHoldTime = 15;
  945. Timing.DataSetupTime = 30;
  946. Timing.DataHoldTime = 0;
  947. Timing.BusTurnAroundDuration = 2;
  948. Timing.CLKDivision = 16;
  949. Timing.DataLatency = 17;
  950. Timing.AccessMode = FMC_ACCESS_MODE_A;
  951. /* ExtTiming */
  952. if (HAL_SRAM_Init(&hsram3, &Timing, NULL) != HAL_OK)
  953. {
  954. Error_Handler( );
  955. }
  956. /** Perform the SRAM4 memory initialization sequence
  957. */
  958. hsram4.Instance = FMC_NORSRAM_DEVICE;
  959. hsram4.Extended = FMC_NORSRAM_EXTENDED_DEVICE;
  960. /* hsram4.Init */
  961. hsram4.Init.NSBank = FMC_NORSRAM_BANK4;
  962. hsram4.Init.DataAddressMux = FMC_DATA_ADDRESS_MUX_DISABLE;
  963. hsram4.Init.MemoryType = FMC_MEMORY_TYPE_SRAM;
  964. hsram4.Init.MemoryDataWidth = FMC_NORSRAM_MEM_BUS_WIDTH_16;
  965. hsram4.Init.BurstAccessMode = FMC_BURST_ACCESS_MODE_DISABLE;
  966. hsram4.Init.WaitSignalPolarity = FMC_WAIT_SIGNAL_POLARITY_LOW;
  967. hsram4.Init.WaitSignalActive = FMC_WAIT_TIMING_BEFORE_WS;
  968. hsram4.Init.WriteOperation = FMC_WRITE_OPERATION_DISABLE;
  969. hsram4.Init.WaitSignal = FMC_WAIT_SIGNAL_DISABLE;
  970. hsram4.Init.ExtendedMode = FMC_EXTENDED_MODE_DISABLE;
  971. hsram4.Init.AsynchronousWait = FMC_ASYNCHRONOUS_WAIT_DISABLE;
  972. hsram4.Init.WriteBurst = FMC_WRITE_BURST_DISABLE;
  973. hsram4.Init.ContinuousClock = FMC_CONTINUOUS_CLOCK_SYNC_ONLY;
  974. hsram4.Init.WriteFifo = FMC_WRITE_FIFO_ENABLE;
  975. hsram4.Init.NBLSetupTime = 0;
  976. hsram4.Init.PageSize = FMC_PAGE_SIZE_NONE;
  977. hsram4.Init.MaxChipSelectPulse = DISABLE;
  978. /* Timing */
  979. Timing.AddressSetupTime = 15;
  980. Timing.AddressHoldTime = 15;
  981. Timing.DataSetupTime = 255;
  982. Timing.DataHoldTime = 0;
  983. Timing.BusTurnAroundDuration = 15;
  984. Timing.CLKDivision = 16;
  985. Timing.DataLatency = 17;
  986. Timing.AccessMode = FMC_ACCESS_MODE_A;
  987. /* ExtTiming */
  988. if (HAL_SRAM_Init(&hsram4, &Timing, NULL) != HAL_OK)
  989. {
  990. Error_Handler( );
  991. }
  992. /* USER CODE BEGIN FMC_Init 2 */
  993. /* USER CODE END FMC_Init 2 */
  994. }
  995. /**
  996. * @brief GPIO Initialization Function
  997. * @param None
  998. * @retval None
  999. */
  1000. static void MX_GPIO_Init(void)
  1001. {
  1002. GPIO_InitTypeDef GPIO_InitStruct = {0};
  1003. /* USER CODE BEGIN MX_GPIO_Init_1 */
  1004. /* USER CODE END MX_GPIO_Init_1 */
  1005. /* GPIO Ports Clock Enable */
  1006. __HAL_RCC_GPIOE_CLK_ENABLE();
  1007. __HAL_RCC_GPIOC_CLK_ENABLE();
  1008. __HAL_RCC_GPIOF_CLK_ENABLE();
  1009. __HAL_RCC_GPIOH_CLK_ENABLE();
  1010. __HAL_RCC_GPIOA_CLK_ENABLE();
  1011. __HAL_RCC_GPIOB_CLK_ENABLE();
  1012. __HAL_RCC_GPIOG_CLK_ENABLE();
  1013. __HAL_RCC_GPIOD_CLK_ENABLE();
  1014. HAL_PWREx_EnableVddIO2();
  1015. /*Configure GPIO pin Output Level */
  1016. HAL_GPIO_WritePin(GPIOC, GPIO_PIN_13|GPIO_PIN_6|GPIO_PIN_7, GPIO_PIN_RESET);
  1017. /*Configure GPIO pin Output Level */
  1018. HAL_GPIO_WritePin(GPIOF, GPIO_PIN_6|GPIO_PIN_7|GPIO_PIN_11, GPIO_PIN_RESET);
  1019. /*Configure GPIO pin Output Level */
  1020. HAL_GPIO_WritePin(GPIOB, GPIO_PIN_2, GPIO_PIN_RESET);
  1021. /*Configure GPIO pin Output Level */
  1022. HAL_GPIO_WritePin(GPIOG, GPIO_PIN_6|GPIO_PIN_11|GPIO_PIN_15, GPIO_PIN_RESET);
  1023. /*Configure GPIO pin Output Level */
  1024. HAL_GPIO_WritePin(GPIOA, GPIO_PIN_8, GPIO_PIN_RESET);
  1025. /*Configure GPIO pin Output Level */
  1026. HAL_GPIO_WritePin(GPIOD, GPIO_PIN_3, GPIO_PIN_RESET);
  1027. /*Configure GPIO pins : PC13 PC6 */
  1028. GPIO_InitStruct.Pin = GPIO_PIN_13|GPIO_PIN_6;
  1029. GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
  1030. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1031. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
  1032. HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
  1033. /*Configure GPIO pins : PF6 PF7 PF11 */
  1034. GPIO_InitStruct.Pin = GPIO_PIN_6|GPIO_PIN_7|GPIO_PIN_11;
  1035. GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
  1036. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1037. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
  1038. HAL_GPIO_Init(GPIOF, &GPIO_InitStruct);
  1039. /*Configure GPIO pins : PF8 PF9 PF10 */
  1040. GPIO_InitStruct.Pin = GPIO_PIN_8|GPIO_PIN_9|GPIO_PIN_10;
  1041. GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
  1042. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1043. HAL_GPIO_Init(GPIOF, &GPIO_InitStruct);
  1044. /*Configure GPIO pin : PB2 */
  1045. GPIO_InitStruct.Pin = GPIO_PIN_2;
  1046. GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
  1047. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1048. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
  1049. HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
  1050. /*Configure GPIO pins : PG6 PG15 */
  1051. GPIO_InitStruct.Pin = GPIO_PIN_6|GPIO_PIN_15;
  1052. GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
  1053. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1054. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
  1055. HAL_GPIO_Init(GPIOG, &GPIO_InitStruct);
  1056. /*Configure GPIO pin : PC7 */
  1057. GPIO_InitStruct.Pin = GPIO_PIN_7;
  1058. GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
  1059. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1060. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_VERY_HIGH;
  1061. HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
  1062. /*Configure GPIO pin : PA8 */
  1063. GPIO_InitStruct.Pin = GPIO_PIN_8;
  1064. GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
  1065. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1066. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
  1067. HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
  1068. /*Configure GPIO pin : PD2 */
  1069. GPIO_InitStruct.Pin = GPIO_PIN_2;
  1070. GPIO_InitStruct.Mode = GPIO_MODE_AF_PP;
  1071. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1072. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_VERY_HIGH;
  1073. GPIO_InitStruct.Alternate = GPIO_AF12_SDMMC1;
  1074. HAL_GPIO_Init(GPIOD, &GPIO_InitStruct);
  1075. /*Configure GPIO pin : PD3 */
  1076. GPIO_InitStruct.Pin = GPIO_PIN_3;
  1077. GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
  1078. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1079. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
  1080. HAL_GPIO_Init(GPIOD, &GPIO_InitStruct);
  1081. /*Configure GPIO pin : PG11 */
  1082. GPIO_InitStruct.Pin = GPIO_PIN_11;
  1083. GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
  1084. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1085. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_VERY_HIGH;
  1086. HAL_GPIO_Init(GPIOG, &GPIO_InitStruct);
  1087. /* USER CODE BEGIN MX_GPIO_Init_2 */
  1088. /* USER CODE END MX_GPIO_Init_2 */
  1089. }
  1090. /* USER CODE BEGIN 4 */
  1091. /* USER CODE END 4 */
  1092. /* USER CODE BEGIN Header_taskEPSRunner */
  1093. /**
  1094. * @brief Function implementing the taskEPS thread.
  1095. * @param argument: Not used
  1096. * @retval None
  1097. */
  1098. /* USER CODE END Header_taskEPSRunner */
  1099. void taskEPSRunner(void *argument)
  1100. {
  1101. /* USER CODE BEGIN 5 */
  1102. #if (EPS_CAP_VOLT_ADC)
  1103. int capacitor_voltage0 = 0;
  1104. //int capacitor_voltage1 = 0;
  1105. /* Infinite loop */
  1106. for(;;)
  1107. {
  1108. capacitor_voltage0 = measure_voltage(ADC_HANDLER_SBC, EPS_CAP_ID_SBC);
  1109. //capacitor_voltage1 = measure_voltage(ADC_HANDLER_CAM, EPS_CAP_ID_CAM);
  1110. //printf("\t\t\t\t\t\t[EPS] CAP VOLT: %d.%03d, %d.%03d\r\n", capacitor_voltage0/1000, capacitor_voltage0%1000, capacitor_voltage1/1000, capacitor_voltage1%1000);
  1111. printf("\t\t\t\t\t\t[EPS] CAP VOLT: %d.%03d\r\n", capacitor_voltage0/1000, capacitor_voltage0%1000);
  1112. // if (capacitor_voltage0 < EPS_CAP_VOLT_LOW_THRESHOLD_SBC)
  1113. // {
  1114. // printf("[EPS] CAP#%d < %dmV (TODO JIT CHECKPOINT)\r\n", EPS_CAP_ID_SBC, EPS_CAP_VOLT_LOW_THRESHOLD_SBC);
  1115. // // TODO: JIT CHECKPOINT
  1116. // imc_sbc_power_off();
  1117. // }
  1118. osDelay(DELAY_AFTER_WORK);
  1119. }
  1120. #endif
  1121. #if (EPS_CAP_VOLT_GPIO)
  1122. /* energy_level: 1~7, and SBC power off when the level is 1 */
  1123. uint8_t energy_level_prev = 8;
  1124. uint8_t energy_level_curr = 8;
  1125. /* Infinite loop */
  1126. for(;;)
  1127. {
  1128. energy_level_curr = imc_get_energy_level();
  1129. if (energy_level_curr != energy_level_prev)
  1130. {
  1131. printf("[EPS] E Level: %d\r\n",
  1132. energy_level_curr);
  1133. if (energy_level_curr <= EPS_SBC_OFF_LEVEL)
  1134. {
  1135. imc_sbc_power_off();
  1136. }
  1137. energy_level_prev = energy_level_curr;
  1138. }
  1139. osDelay(DELAY_AFTER_WORK);
  1140. }
  1141. #endif
  1142. /* USER CODE END 5 */
  1143. }
  1144. /* USER CODE BEGIN Header_taskSnapRunner */
  1145. /**
  1146. * @brief Function implementing the taskSnap thread.
  1147. * @param argument: Not used
  1148. * @retval None
  1149. */
  1150. extern uint16_t ilen;
  1151. /* USER CODE END Header_taskSnapRunner */
  1152. void taskSnapRunner(void *argument)
  1153. {
  1154. /* USER CODE BEGIN taskSnapRunner */
  1155. uint32_t trial = 1;
  1156. sc03mpd_ifx_t ifx = {
  1157. .context = (void*)&UART_HANDLER_CAM,
  1158. .sendif = hal_uart_ifx_send,
  1159. .recvif = hal_uart_ifx_recv,
  1160. };
  1161. uint8_t error_count = 0;
  1162. /* Infinite loop */
  1163. while (1)
  1164. {
  1165. printf ("\r\n\r\n\r\n#%ld\r\n\r\n", trial);
  1166. trial++;
  1167. // osSemaphoreWait(empty, osWaitForever);
  1168. #if EPS_CAP_VOLT_ADC
  1169. SC03MPD_ASSERT(imc_sc03mpd_cap_check (ADC_HANDLER_CAM), "[CAM] FAILED CAP volt", ERROR)
  1170. #endif
  1171. /*
  1172. * 2022. 11. 10. TEST for EPS-SBC-CAM; SBC controls CAM ON/OFF; KETI EPS does NOT wait 2.5s for CAM init.
  1173. */
  1174. imc_cam_power_on();
  1175. // (M33) moved from imc_sc03mpd_init
  1176. printf("[CAM] wait %dms for boot-up\r\n", DELAY_AFTER_POWERUP);
  1177. osDelay (DELAY_AFTER_POWERUP);
  1178. MX_USART3_UART_Init();
  1179. // (M33) moved from imc_sc03mpd_init
  1180. SC03MPD_ASSERT(imc_sc03mpd_init(&ifx), "[CAM] FAILED init", ERROR)
  1181. /* execute once when change CAM default baudrate */
  1182. #if CAM_CHANGE_BAUDRATE
  1183. sc03mpd_set_baud(&ifx, SC03MPD_BDR_115200, 1); // default: SC03MPD_BDR_38400
  1184. printf ("[CAM] OK change default baudrate");
  1185. while (1)
  1186. {
  1187. osDelay(1);
  1188. }
  1189. #endif
  1190. #if 0
  1191. /* image capture and download when GPIO pin 1 UP */
  1192. /* wait for GPIO pin 1 UP */
  1193. osEvent event = osMessageGet(queueSnapReqHandle, osWaitForever);
  1194. if (event.status != osEventMessage)
  1195. continue;
  1196. printf("[CAM] frame capture requested (%lu)\r\n", event.value.v);
  1197. #endif
  1198. /*
  1199. * 2022. 8. 25. fix logical seq. error under V0706 protocol; stop -> read length -> read data -> resume
  1200. * 2022. 8. 26. simply combine three functions; asked by kylee
  1201. */
  1202. SC03MPD_ASSERT(imc_sc03mpd_capture(&ifx), "[CAM] FAILED capture", ERROR)
  1203. /*
  1204. * 2022. 11. 10. TEST for EPS-SBC-CAM
  1205. */
  1206. imc_cam_power_off();
  1207. imcREQUEST_CHECKPOINT();
  1208. // error_count reset
  1209. error_count = 0;
  1210. /* DO SOMETHING */
  1211. #if 0
  1212. if (decodeMyImage((uint8_t*)IMG_RAM_ADDR, ilen, 0, 0, 0, NULL, 1) != DEC_ENON)
  1213. goto ERROR;
  1214. // osSemaphoreRelease(full);
  1215. #else
  1216. printf ("[SBC] wait %dms for DO SOMETHING\r\n", DELAY_DO_SOMETHING);
  1217. osDelay(DELAY_DO_SOMETHING);
  1218. #endif
  1219. continue;
  1220. ERROR:
  1221. /*
  1222. * 2022. 7. 20. failure --> UART stuck continuously; works only after HW reset
  1223. * 2022. 8. 25. add USART3 init. and reset fn.; download or capture failure --> normal
  1224. * 2022. 8. 25. after SC03MPD power off/on, works well after few failures
  1225. * 2022. 11. 11. start of this while loop, CAM init is called
  1226. * 2023. 10. 20. add error_count for handling successive errors
  1227. */
  1228. error_count++;
  1229. printf("[CAM] ERROR HANDLING; CAM OFF > %dms delay > CAM ON\r\n", DELAY_BEFORE_ERR_HANDLING);
  1230. imc_cam_power_off();
  1231. // osSemaphoreRelease(empty);
  1232. osDelay(DELAY_BEFORE_ERR_HANDLING); //imc_sbc_power_off();
  1233. // ERROR 3 times -> SBC reboot
  1234. if (error_count >= CAM_ERROR_COUNT_MAX) {
  1235. error_count = 0;
  1236. printf("[CAM] %d ERRORs continue and SBC OFF\r\n", CAM_ERROR_COUNT_MAX);
  1237. imc_sbc_power_off();
  1238. osDelay(DELAY_DO_SOMETHING);
  1239. }
  1240. continue;
  1241. }
  1242. #if 0
  1243. EXIT:
  1244. osDelay(1000);
  1245. osThreadTerminate(NULL);
  1246. #endif
  1247. /* USER CODE END taskSnapRunner */
  1248. }
  1249. /* USER CODE BEGIN Header_taskAIRunner */
  1250. /**
  1251. * @brief Function implementing the taskAI thread.
  1252. * @param argument: Not used
  1253. * @retval None
  1254. */
  1255. /* USER CODE END Header_taskAIRunner */
  1256. void taskAIRunner(void *argument)
  1257. {
  1258. /* USER CODE BEGIN taskAIRunner */
  1259. /* Infinite loop */
  1260. for(;;)
  1261. {
  1262. osDelay(DELAY_AFTER_WORK);
  1263. }
  1264. /* USER CODE END taskAIRunner */
  1265. }
  1266. void taskImcTest(void *argument) {
  1267. int i = 0;
  1268. while(1) {
  1269. osDelay(1000);
  1270. printf("i=%d\r\n", i++);
  1271. imcREQUEST_CHECKPOINT();
  1272. }
  1273. }
  1274. /**
  1275. * @brief Period elapsed callback in non blocking mode
  1276. * @note This function is called when TIM2 interrupt took place, inside
  1277. * HAL_TIM_IRQHandler(). It makes a direct call to HAL_IncTick() to increment
  1278. * a global variable "uwTick" used as application time base.
  1279. * @param htim : TIM handle
  1280. * @retval None
  1281. */
  1282. void HAL_TIM_PeriodElapsedCallback(TIM_HandleTypeDef *htim)
  1283. {
  1284. /* USER CODE BEGIN Callback 0 */
  1285. /* USER CODE END Callback 0 */
  1286. if (htim->Instance == TIM2) {
  1287. HAL_IncTick();
  1288. }
  1289. /* USER CODE BEGIN Callback 1 */
  1290. /* USER CODE END Callback 1 */
  1291. }
  1292. /**
  1293. * @brief This function is executed in case of error occurrence.
  1294. * @retval None
  1295. */
  1296. void Error_Handler(void)
  1297. {
  1298. /* USER CODE BEGIN Error_Handler_Debug */
  1299. /* User can add his own implementation to report the HAL error return state */
  1300. __disable_irq();
  1301. while (1)
  1302. {
  1303. }
  1304. /* USER CODE END Error_Handler_Debug */
  1305. }
  1306. #ifdef USE_FULL_ASSERT
  1307. /**
  1308. * @brief Reports the name of the source file and the source line number
  1309. * where the assert_param error has occurred.
  1310. * @param file: pointer to the source file name
  1311. * @param line: assert_param error line source number
  1312. * @retval None
  1313. */
  1314. void assert_failed(uint8_t *file, uint32_t line)
  1315. {
  1316. /* USER CODE BEGIN 6 */
  1317. /* User can add his own implementation to report the file name and line number,
  1318. ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
  1319. /* USER CODE END 6 */
  1320. }
  1321. #endif /* USE_FULL_ASSERT */