main.c 25 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. * <h2><center>&copy; Copyright (c) 2021 STMicroelectronics.
  10. * All rights reserved.</center></h2>
  11. *
  12. * This software component is licensed by ST under BSD 3-Clause license,
  13. * the "License"; You may not use this file except in compliance with the
  14. * License. You may obtain a copy of the License at:
  15. * opensource.org/licenses/BSD-3-Clause
  16. *
  17. ******************************************************************************
  18. */
  19. /* USER CODE END Header */
  20. /* Includes ------------------------------------------------------------------*/
  21. #include "main.h"
  22. /* Private includes ----------------------------------------------------------*/
  23. /* USER CODE BEGIN Includes */
  24. /* USER CODE END Includes */
  25. /* Private typedef -----------------------------------------------------------*/
  26. /* USER CODE BEGIN PTD */
  27. typedef enum {
  28. Tube_A = 3,
  29. Tube_B = 2,
  30. Tube_D = 1,
  31. Tube_E = 0
  32. } tube_pos_t;
  33. /* USER CODE END PTD */
  34. /* Private define ------------------------------------------------------------*/
  35. /* USER CODE BEGIN PD */
  36. #define SPI_BUFFER_SIZE 5
  37. /* Display timeout, sec */
  38. #define DISP_WDT_TIME 10
  39. /* USER CODE END PD */
  40. /* Private macro -------------------------------------------------------------*/
  41. /* USER CODE BEGIN PM */
  42. /* USER CODE END PM */
  43. /* Private variables ---------------------------------------------------------*/
  44. /* USER CODE BEGIN PV */
  45. volatile flag_t Flag = {0};
  46. static LL_RCC_ClocksTypeDef rcc_clocks;
  47. /**
  48. * Nixi Tube cathodes map in Byte Array:
  49. * {E0 E9 E8 E7 E6 E5 E4 E3}
  50. * {E2 E1 D0 D9 D8 D7 D6 D5}
  51. * {D4 D3 D2 D1 B0 B9 B8 B7}
  52. * {B6 B5 B4 B3 B2 B1 A0 A9}
  53. * {A8 A7 A6 A5 A4 A3 A2 A1}
  54. *
  55. * Shift register bit map in Tube cathodes (from 0 to 1):
  56. * {5.7 5.6 5.5 5.4 5.3 5.2 5.1 5.0 4.7 4.6} VL5/E
  57. * {4.5 4.4 4.3 4.2 4.1 4.0 3.7 3.6 3.5 3.4} VL4/D
  58. * {3.3 3.2 3.1 3.0 2.7 2.6 2.5 2.4 2.3 2.2} VL2/B
  59. * {2.1 2.0 1.7 1.6 1.5 1.4 1.3 1.2 1.1 1.0} VL1/A
  60. */
  61. static const uint16_t nixieCathodeMap[4][10] = {
  62. {0x8000, 0x0040, 0x0080, 0x0100, 0x0200, 0x0400, 0x0800, 0x1000, 0x2000, 0x4000},
  63. {0x2000, 0x0010, 0x0020, 0x0040, 0x0080, 0x0100, 0x0200, 0x0400, 0x0800, 0x1000},
  64. {0x0800, 0x0004, 0x0008, 0x0010, 0x0020, 0x0040, 0x0080, 0x0100, 0x0200, 0x0400},
  65. {0x0200, 0x0001, 0x0002, 0x0004, 0x0008, 0x0010, 0x0020, 0x0040, 0x0080, 0x0100}
  66. };
  67. //static const uint8_t nixieCathodeMask[4][2] = {{0x00, 0x3f}, {0xc0, 0x0f}, {0xf0, 0x03}, {0xc0, 0x00}};
  68. static uint8_t tubesBuffer[SPI_BUFFER_SIZE] = {0};
  69. static rtc_t Clock;
  70. static struct bme280_dev SensorDev;
  71. static struct bme280_data SensorData;
  72. static int8_t Humidity, Temperature;
  73. static nt16_t Pressure;
  74. static btn_t Button[BTN_NUM] = {
  75. {0, evBTN1Pressed, evBTN1Holded, BTN1_PIN},
  76. {0, evBTN2Pressed, evBTN2Pressed, BTN2_PIN},
  77. {0, evBTN3Pressed, evBTN3Pressed, BTN3_PIN},
  78. {0, evBTN4Pressed, evBTN4Holded, BTN4_PIN}
  79. };
  80. static volatile uint8_t dispWDT = 0;
  81. /* USER CODE END PV */
  82. /* Private function prototypes -----------------------------------------------*/
  83. static void MX_GPIO_Init(void);
  84. static void MX_DMA_Init(void);
  85. static void MX_I2C1_Init(void);
  86. static void MX_SPI1_Init(void);
  87. /* USER CODE BEGIN PFP */
  88. static void showDigits(uint8_t * dig);
  89. static void sensor_Init(void);
  90. static void sensorStartMeasure(void);
  91. static void sensorGetData(void);
  92. static void btnProcess(void);
  93. static void Color_RGB(uint8_t r, uint8_t g, uint8_t b);
  94. /* USER CODE END PFP */
  95. /* Private user code ---------------------------------------------------------*/
  96. /* USER CODE BEGIN 0 */
  97. /* USER CODE END 0 */
  98. /**
  99. * @brief The application entry point.
  100. * @retval int
  101. */
  102. int main(void)
  103. {
  104. /* Initialize onBoard Hardware */
  105. Board_Init();
  106. /* Initialize all configured peripherals */
  107. MX_GPIO_Init();
  108. MX_DMA_Init();
  109. MX_I2C1_Init();
  110. MX_SPI1_Init();
  111. /* USER CODE BEGIN 2 */
  112. /* Initialize Scheduler */
  113. RTOS_Init();
  114. /* Initialize Event State Machine */
  115. ES_Init(stShowTime);
  116. /* Enable tube power */
  117. TUBE_PWR_ON;
  118. RTC_Init();
  119. sensor_Init();
  120. /** Star SPI transfer to shift registers */
  121. /* Set DMA source and destination addresses. */
  122. /* Source: Address of the SPI buffer. */
  123. DMA1_Channel1->CMAR = (uint32_t)&tubesBuffer;
  124. /* Destination: SPI1 data register. */
  125. DMA1_Channel1->CPAR = (uint32_t)&(SPI1->DR);
  126. /* Set DMA data transfer length (SPI buffer length). */
  127. DMA1_Channel1->CNDTR = SPI_BUFFER_SIZE;
  128. /* Enable SPI+DMA transfer */
  129. SPI1->CR2 |= SPI_CR2_TXDMAEN;
  130. SPI1->CR1 |= SPI_CR1_SPE;
  131. Flag.SPI_TX_End = 1;
  132. /** Set tasks for Sheduler */
  133. RTOS_SetTask(btnProcess, 1, BTN_SCAN_PERIOD);
  134. /* USER CODE END 2 */
  135. /* USER CODE BEGIN WHILE */
  136. RTC_ReadAll(&Clock);
  137. es_event_t event = eventNull;
  138. Color_RGB(0xFF, 0x12, 0x0); // Nixie color. FF1200 or FF7E00 or FFBF00
  139. showTime();
  140. /* Infinite loop */
  141. while (1)
  142. {
  143. /* new second interrupt from RTC */
  144. if (Flag.RTC_IRQ != 0) {
  145. Flag.RTC_IRQ = 0;
  146. Blink_Start(); // !!! TODO
  147. RTC_ReadAll(&Clock);
  148. if (dispWDT != 0) {
  149. dispWDT --;
  150. if (dispWDT == 0) {
  151. ES_PlaceEvent(evDisplayWDT);
  152. }
  153. }
  154. } /* end of New second */
  155. /* USER CODE END WHILE */
  156. /* USER CODE BEGIN 3 */
  157. event = ES_GetEvent();
  158. if (event) {
  159. ES_Dispatch(event);
  160. }
  161. RTOS_DispatchTask();
  162. __WFI();
  163. }
  164. /* USER CODE END 3 */
  165. } /* End of mine() */
  166. /**
  167. * Sensor
  168. */
  169. static void sensor_Init(void) {
  170. int8_t rsltSensor;
  171. Flag.BME280 = 0;
  172. SensorDev.dev_id = (BME280_I2C_ADDR_PRIM << 1);
  173. SensorDev.intf = BME280_I2C_INTF;
  174. SensorDev.read = user_i2c_read;
  175. SensorDev.write = user_i2c_write;
  176. SensorDev.delay_ms = tdelay_ms;
  177. rsltSensor = bme280_init(&SensorDev);
  178. if (rsltSensor == BME280_OK) {
  179. Flag.BME280 = 1;
  180. /* BME280 Recommended mode of operation: Indoor navigation */
  181. SensorDev.settings.osr_h = BME280_OVERSAMPLING_1X;
  182. SensorDev.settings.osr_p = BME280_OVERSAMPLING_16X;
  183. SensorDev.settings.osr_t = BME280_OVERSAMPLING_2X;
  184. SensorDev.settings.filter = BME280_FILTER_COEFF_16;
  185. rsltSensor = bme280_set_sensor_settings((BME280_OSR_PRESS_SEL | BME280_OSR_TEMP_SEL | BME280_OSR_HUM_SEL | BME280_FILTER_SEL), &SensorDev);
  186. RTOS_SetTask(sensorStartMeasure, 103, 1000);
  187. RTOS_SetTask(sensorGetData, 603, 1000);
  188. }
  189. }
  190. static void sensorStartMeasure(void) {
  191. bme280_set_sensor_mode(BME280_FORCED_MODE, &SensorDev);
  192. }
  193. static void sensorGetData(void) {
  194. bme280_get_sensor_data(BME280_ALL, &SensorData, &SensorDev);
  195. int32_t tmp;
  196. tmp = SensorData.humidity + 512;
  197. Humidity = (int8_t)(tmp / 1024);
  198. tmp = SensorData.temperature + 50;
  199. Temperature = (int8_t)(tmp / 100);
  200. /* in 32-bit arithmetics pressure in Pa */
  201. tmp = SensorData.pressure * 1000;
  202. tmp += 66661;
  203. tmp /= 133322;
  204. /* pressure in mmHg */
  205. Pressure.s16.u8H = (uint8_t)(tmp / 100);
  206. Pressure.s16.u8L = (uint8_t)(tmp % 100);
  207. }
  208. /**
  209. * @brief I2C1 Initialization Function
  210. * @param None
  211. * @retval None
  212. */
  213. static void MX_I2C1_Init(void)
  214. {
  215. /* USER CODE BEGIN I2C1_Init 0 */
  216. /* USER CODE END I2C1_Init 0 */
  217. LL_I2C_InitTypeDef I2C_InitStruct = {0};
  218. LL_GPIO_InitTypeDef GPIO_InitStruct = {0};
  219. LL_IOP_GRP1_EnableClock(LL_IOP_GRP1_PERIPH_GPIOB);
  220. /**I2C1 GPIO Configuration
  221. PB8 ------> I2C1_SCL
  222. PB9 ------> I2C1_SDA
  223. */
  224. GPIO_InitStruct.Pin = LL_GPIO_PIN_8;
  225. GPIO_InitStruct.Mode = LL_GPIO_MODE_ALTERNATE;
  226. GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_HIGH;
  227. GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_OPENDRAIN;
  228. GPIO_InitStruct.Pull = LL_GPIO_PULL_UP;
  229. GPIO_InitStruct.Alternate = LL_GPIO_AF_6;
  230. LL_GPIO_Init(GPIOB, &GPIO_InitStruct);
  231. GPIO_InitStruct.Pin = LL_GPIO_PIN_9;
  232. GPIO_InitStruct.Mode = LL_GPIO_MODE_ALTERNATE;
  233. GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_HIGH;
  234. GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_OPENDRAIN;
  235. GPIO_InitStruct.Pull = LL_GPIO_PULL_UP;
  236. GPIO_InitStruct.Alternate = LL_GPIO_AF_6;
  237. LL_GPIO_Init(GPIOB, &GPIO_InitStruct);
  238. /* Peripheral clock enable */
  239. LL_APB1_GRP1_EnableClock(LL_APB1_GRP1_PERIPH_I2C1);
  240. /* I2C1 DMA Init */
  241. /* I2C1_RX Init */
  242. LL_DMA_SetPeriphRequest(DMA1, LL_DMA_CHANNEL_2, LL_DMAMUX_REQ_I2C1_RX);
  243. LL_DMA_SetDataTransferDirection(DMA1, LL_DMA_CHANNEL_2, LL_DMA_DIRECTION_PERIPH_TO_MEMORY);
  244. LL_DMA_SetChannelPriorityLevel(DMA1, LL_DMA_CHANNEL_2, LL_DMA_PRIORITY_MEDIUM);
  245. LL_DMA_SetPeriphIncMode(DMA1, LL_DMA_CHANNEL_2, LL_DMA_PERIPH_NOINCREMENT);
  246. LL_DMA_SetMemoryIncMode(DMA1, LL_DMA_CHANNEL_2, LL_DMA_MEMORY_INCREMENT);
  247. LL_DMA_SetPeriphSize(DMA1, LL_DMA_CHANNEL_2, LL_DMA_PDATAALIGN_BYTE);
  248. LL_DMA_SetMemorySize(DMA1, LL_DMA_CHANNEL_2, LL_DMA_MDATAALIGN_BYTE);
  249. /* I2C1_TX Init */
  250. LL_DMA_SetPeriphRequest(DMA1, LL_DMA_CHANNEL_3, LL_DMAMUX_REQ_I2C1_TX);
  251. LL_DMA_SetDataTransferDirection(DMA1, LL_DMA_CHANNEL_3, LL_DMA_DIRECTION_MEMORY_TO_PERIPH);
  252. LL_DMA_SetChannelPriorityLevel(DMA1, LL_DMA_CHANNEL_3, LL_DMA_PRIORITY_MEDIUM);
  253. LL_DMA_SetPeriphIncMode(DMA1, LL_DMA_CHANNEL_3, LL_DMA_PERIPH_NOINCREMENT);
  254. LL_DMA_SetMemoryIncMode(DMA1, LL_DMA_CHANNEL_3, LL_DMA_MEMORY_INCREMENT);
  255. LL_DMA_SetPeriphSize(DMA1, LL_DMA_CHANNEL_3, LL_DMA_PDATAALIGN_BYTE);
  256. LL_DMA_SetMemorySize(DMA1, LL_DMA_CHANNEL_3, LL_DMA_MDATAALIGN_BYTE);
  257. /* I2C1 interrupt Init */
  258. /* USER CODE BEGIN I2C1_Init 1 */
  259. /* Enable DMA transfer complete/error interrupts */
  260. LL_DMA_EnableIT_TC(DMA1, LL_DMA_CHANNEL_2);
  261. LL_DMA_EnableIT_TE(DMA1, LL_DMA_CHANNEL_2);
  262. LL_DMA_EnableIT_TC(DMA1, LL_DMA_CHANNEL_3);
  263. LL_DMA_EnableIT_TE(DMA1, LL_DMA_CHANNEL_3);
  264. /* USER CODE END I2C1_Init 1 */
  265. /** I2C Initialization
  266. */
  267. I2C_InitStruct.PeripheralMode = LL_I2C_MODE_I2C;
  268. I2C_InitStruct.Timing = 0x0010061A;
  269. I2C_InitStruct.AnalogFilter = LL_I2C_ANALOGFILTER_ENABLE;
  270. I2C_InitStruct.DigitalFilter = 0;
  271. I2C_InitStruct.OwnAddress1 = 0;
  272. I2C_InitStruct.TypeAcknowledge = LL_I2C_ACK;
  273. I2C_InitStruct.OwnAddrSize = LL_I2C_OWNADDRESS1_7BIT;
  274. LL_I2C_EnableAutoEndMode(I2C1);
  275. LL_I2C_SetOwnAddress2(I2C1, 0, LL_I2C_OWNADDRESS2_NOMASK);
  276. LL_I2C_DisableOwnAddress2(I2C1);
  277. LL_I2C_DisableGeneralCall(I2C1);
  278. LL_I2C_DisableClockStretching(I2C1);
  279. LL_I2C_Init(I2C1, &I2C_InitStruct);
  280. /* USER CODE BEGIN I2C1_Init 2 */
  281. /* USER CODE END I2C1_Init 2 */
  282. }
  283. /**
  284. * @brief SPI1 Initialization Function
  285. * @param None
  286. * @retval None
  287. */
  288. static void MX_SPI1_Init(void)
  289. {
  290. /* USER CODE BEGIN SPI1_Init 0 */
  291. /* USER CODE END SPI1_Init 0 */
  292. LL_SPI_InitTypeDef SPI_InitStruct = {0};
  293. LL_GPIO_InitTypeDef GPIO_InitStruct = {0};
  294. /* Peripheral clock enable */
  295. LL_APB2_GRP1_EnableClock(LL_APB2_GRP1_PERIPH_SPI1);
  296. LL_IOP_GRP1_EnableClock(LL_IOP_GRP1_PERIPH_GPIOB);
  297. /**SPI1 GPIO Configuration
  298. PB3 ------> SPI1_SCK
  299. PB5 ------> SPI1_MOSI
  300. */
  301. GPIO_InitStruct.Pin = LL_GPIO_PIN_3;
  302. GPIO_InitStruct.Mode = LL_GPIO_MODE_ALTERNATE;
  303. GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_HIGH;
  304. GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_OPENDRAIN;
  305. GPIO_InitStruct.Pull = LL_GPIO_PULL_NO;
  306. GPIO_InitStruct.Alternate = LL_GPIO_AF_0;
  307. LL_GPIO_Init(GPIOB, &GPIO_InitStruct);
  308. GPIO_InitStruct.Pin = LL_GPIO_PIN_5;
  309. GPIO_InitStruct.Mode = LL_GPIO_MODE_ALTERNATE;
  310. GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_HIGH;
  311. GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_OPENDRAIN;
  312. GPIO_InitStruct.Pull = LL_GPIO_PULL_NO;
  313. GPIO_InitStruct.Alternate = LL_GPIO_AF_0;
  314. LL_GPIO_Init(GPIOB, &GPIO_InitStruct);
  315. /* SPI1 DMA Init */
  316. /* SPI1_TX Init */
  317. LL_DMA_SetPeriphRequest(DMA1, LL_DMA_CHANNEL_1, LL_DMAMUX_REQ_SPI1_TX);
  318. LL_DMA_SetDataTransferDirection(DMA1, LL_DMA_CHANNEL_1, LL_DMA_DIRECTION_MEMORY_TO_PERIPH);
  319. LL_DMA_SetChannelPriorityLevel(DMA1, LL_DMA_CHANNEL_1, LL_DMA_PRIORITY_HIGH);
  320. LL_DMA_SetMode(DMA1, LL_DMA_CHANNEL_1, LL_DMA_MODE_CIRCULAR);
  321. LL_DMA_SetPeriphIncMode(DMA1, LL_DMA_CHANNEL_1, LL_DMA_PERIPH_NOINCREMENT);
  322. LL_DMA_SetMemoryIncMode(DMA1, LL_DMA_CHANNEL_1, LL_DMA_MEMORY_INCREMENT);
  323. LL_DMA_SetPeriphSize(DMA1, LL_DMA_CHANNEL_1, LL_DMA_PDATAALIGN_BYTE);
  324. LL_DMA_SetMemorySize(DMA1, LL_DMA_CHANNEL_1, LL_DMA_MDATAALIGN_BYTE);
  325. /* SPI1 interrupt Init */
  326. NVIC_SetPriority(SPI1_IRQn, 0);
  327. NVIC_EnableIRQ(SPI1_IRQn);
  328. /* USER CODE BEGIN SPI1_Init 1 */
  329. /* Enable DMA transfer complete/error interrupts */
  330. LL_DMA_EnableIT_TC(DMA1, LL_DMA_CHANNEL_1);
  331. LL_DMA_EnableIT_TE(DMA1, LL_DMA_CHANNEL_1);
  332. /* USER CODE END SPI1_Init 1 */
  333. /* SPI1 parameter configuration*/
  334. SPI_InitStruct.TransferDirection = LL_SPI_FULL_DUPLEX;
  335. SPI_InitStruct.Mode = LL_SPI_MODE_MASTER;
  336. SPI_InitStruct.DataWidth = LL_SPI_DATAWIDTH_8BIT;
  337. SPI_InitStruct.ClockPolarity = LL_SPI_POLARITY_LOW;
  338. SPI_InitStruct.ClockPhase = LL_SPI_PHASE_1EDGE;
  339. SPI_InitStruct.NSS = LL_SPI_NSS_SOFT;
  340. SPI_InitStruct.BaudRate = LL_SPI_BAUDRATEPRESCALER_DIV16;
  341. SPI_InitStruct.BitOrder = LL_SPI_MSB_FIRST;
  342. SPI_InitStruct.CRCCalculation = LL_SPI_CRCCALCULATION_DISABLE;
  343. SPI_InitStruct.CRCPoly = 7;
  344. LL_SPI_Init(SPI1, &SPI_InitStruct);
  345. LL_SPI_SetStandard(SPI1, LL_SPI_PROTOCOL_MOTOROLA);
  346. LL_SPI_DisableNSSPulseMgt(SPI1);
  347. /* USER CODE BEGIN SPI1_Init 2 */
  348. /* USER CODE END SPI1_Init 2 */
  349. }
  350. /**
  351. * Enable DMA controller clock
  352. */
  353. static void MX_DMA_Init(void)
  354. {
  355. /* Init with LL driver */
  356. /* DMA controller clock enable */
  357. LL_AHB1_GRP1_EnableClock(LL_AHB1_GRP1_PERIPH_DMA1);
  358. /* DMA interrupt init */
  359. /* DMA1_Channel1_IRQn interrupt configuration */
  360. NVIC_SetPriority(DMA1_Channel1_IRQn, 0);
  361. NVIC_EnableIRQ(DMA1_Channel1_IRQn);
  362. /* DMA1_Channel2_3_IRQn interrupt configuration */
  363. NVIC_SetPriority(DMA1_Channel2_3_IRQn, 0);
  364. NVIC_EnableIRQ(DMA1_Channel2_3_IRQn);
  365. }
  366. /**
  367. * @brief GPIO Initialization Function
  368. * @param None
  369. * @retval None
  370. */
  371. static void MX_GPIO_Init(void)
  372. {
  373. LL_EXTI_InitTypeDef EXTI_InitStruct = {0};
  374. LL_GPIO_InitTypeDef GPIO_InitStruct = {0};
  375. /* GPIO Ports Clock Enable */
  376. LL_IOP_GRP1_EnableClock(LL_IOP_GRP1_PERIPH_GPIOB);
  377. LL_IOP_GRP1_EnableClock(LL_IOP_GRP1_PERIPH_GPIOC);
  378. LL_IOP_GRP1_EnableClock(LL_IOP_GRP1_PERIPH_GPIOA);
  379. /**/
  380. LL_GPIO_ResetOutputPin(UART_EN_GPIO_Port, UART_EN_Pin);
  381. /**/
  382. LL_GPIO_ResetOutputPin(LC0_GPIO_Port, LC0_Pin);
  383. /**/
  384. LL_GPIO_ResetOutputPin(LC1_GPIO_Port, LC1_Pin);
  385. /**/
  386. LL_GPIO_ResetOutputPin(LC2_GPIO_Port, LC2_Pin);
  387. /**/
  388. LL_GPIO_ResetOutputPin(LC3_GPIO_Port, LC3_Pin);
  389. /**/
  390. LL_GPIO_ResetOutputPin(SHDN_GPIO_Port, SHDN_Pin);
  391. /**/
  392. LL_GPIO_ResetOutputPin(Latch_GPIO_Port, Latch_Pin);
  393. /**/
  394. LL_EXTI_SetEXTISource(LL_EXTI_CONFIG_PORTC, LL_EXTI_CONFIG_LINE14);
  395. /**/
  396. EXTI_InitStruct.Line_0_31 = LL_EXTI_LINE_14;
  397. EXTI_InitStruct.LineCommand = ENABLE;
  398. EXTI_InitStruct.Mode = LL_EXTI_MODE_IT;
  399. EXTI_InitStruct.Trigger = LL_EXTI_TRIGGER_RISING;
  400. LL_EXTI_Init(&EXTI_InitStruct);
  401. /**/
  402. LL_GPIO_SetPinPull(IRQ_GPIO_Port, IRQ_Pin, LL_GPIO_PULL_UP);
  403. /**/
  404. LL_GPIO_SetPinMode(IRQ_GPIO_Port, IRQ_Pin, LL_GPIO_MODE_INPUT);
  405. /**/
  406. GPIO_InitStruct.Pin = UART_EN_Pin;
  407. GPIO_InitStruct.Mode = LL_GPIO_MODE_OUTPUT;
  408. GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_LOW;
  409. GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_PUSHPULL;
  410. GPIO_InitStruct.Pull = LL_GPIO_PULL_NO;
  411. LL_GPIO_Init(UART_EN_GPIO_Port, &GPIO_InitStruct);
  412. /**/
  413. GPIO_InitStruct.Pin = LC0_Pin;
  414. GPIO_InitStruct.Mode = LL_GPIO_MODE_OUTPUT;
  415. GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_HIGH;
  416. GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_PUSHPULL;
  417. GPIO_InitStruct.Pull = LL_GPIO_PULL_DOWN;
  418. LL_GPIO_Init(LC0_GPIO_Port, &GPIO_InitStruct);
  419. /**/
  420. GPIO_InitStruct.Pin = LC1_Pin;
  421. GPIO_InitStruct.Mode = LL_GPIO_MODE_OUTPUT;
  422. GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_HIGH;
  423. GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_PUSHPULL;
  424. GPIO_InitStruct.Pull = LL_GPIO_PULL_DOWN;
  425. LL_GPIO_Init(LC1_GPIO_Port, &GPIO_InitStruct);
  426. /**/
  427. GPIO_InitStruct.Pin = LC2_Pin;
  428. GPIO_InitStruct.Mode = LL_GPIO_MODE_OUTPUT;
  429. GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_HIGH;
  430. GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_PUSHPULL;
  431. GPIO_InitStruct.Pull = LL_GPIO_PULL_DOWN;
  432. LL_GPIO_Init(LC2_GPIO_Port, &GPIO_InitStruct);
  433. /**/
  434. GPIO_InitStruct.Pin = LC3_Pin;
  435. GPIO_InitStruct.Mode = LL_GPIO_MODE_OUTPUT;
  436. GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_HIGH;
  437. GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_PUSHPULL;
  438. GPIO_InitStruct.Pull = LL_GPIO_PULL_DOWN;
  439. LL_GPIO_Init(LC3_GPIO_Port, &GPIO_InitStruct);
  440. /**/
  441. GPIO_InitStruct.Pin = SHDN_Pin;
  442. GPIO_InitStruct.Mode = LL_GPIO_MODE_OUTPUT;
  443. GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_HIGH;
  444. GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_PUSHPULL;
  445. GPIO_InitStruct.Pull = LL_GPIO_PULL_DOWN;
  446. LL_GPIO_Init(SHDN_GPIO_Port, &GPIO_InitStruct);
  447. /**/
  448. GPIO_InitStruct.Pin = BTN4_Pin;
  449. GPIO_InitStruct.Mode = LL_GPIO_MODE_INPUT;
  450. GPIO_InitStruct.Pull = LL_GPIO_PULL_UP;
  451. LL_GPIO_Init(BTN4_GPIO_Port, &GPIO_InitStruct);
  452. /**/
  453. GPIO_InitStruct.Pin = BTN1_Pin;
  454. GPIO_InitStruct.Mode = LL_GPIO_MODE_INPUT;
  455. GPIO_InitStruct.Pull = LL_GPIO_PULL_UP;
  456. LL_GPIO_Init(BTN1_GPIO_Port, &GPIO_InitStruct);
  457. /**/
  458. GPIO_InitStruct.Pin = Latch_Pin;
  459. GPIO_InitStruct.Mode = LL_GPIO_MODE_OUTPUT;
  460. GPIO_InitStruct.Speed = LL_GPIO_SPEED_FREQ_HIGH;
  461. GPIO_InitStruct.OutputType = LL_GPIO_OUTPUT_OPENDRAIN;
  462. GPIO_InitStruct.Pull = LL_GPIO_PULL_NO;
  463. LL_GPIO_Init(Latch_GPIO_Port, &GPIO_InitStruct);
  464. /**/
  465. GPIO_InitStruct.Pin = BTN2_Pin;
  466. GPIO_InitStruct.Mode = LL_GPIO_MODE_INPUT;
  467. GPIO_InitStruct.Pull = LL_GPIO_PULL_UP;
  468. LL_GPIO_Init(BTN2_GPIO_Port, &GPIO_InitStruct);
  469. /**/
  470. GPIO_InitStruct.Pin = UART_ST_Pin;
  471. GPIO_InitStruct.Mode = LL_GPIO_MODE_INPUT;
  472. GPIO_InitStruct.Pull = LL_GPIO_PULL_UP;
  473. LL_GPIO_Init(UART_ST_GPIO_Port, &GPIO_InitStruct);
  474. /**/
  475. GPIO_InitStruct.Pin = BTN3_Pin;
  476. GPIO_InitStruct.Mode = LL_GPIO_MODE_INPUT;
  477. GPIO_InitStruct.Pull = LL_GPIO_PULL_UP;
  478. LL_GPIO_Init(BTN3_GPIO_Port, &GPIO_InitStruct);
  479. /* EXTI interrupt init*/
  480. NVIC_SetPriority(EXTI4_15_IRQn, 0);
  481. NVIC_EnableIRQ(EXTI4_15_IRQn);
  482. }
  483. /* USER CODE BEGIN 4 */
  484. /*************************
  485. * S U B R O U T I N E S *
  486. *************************/
  487. /**
  488. * @brief Out digits to SPI buffer. ON/off tube power.
  489. * @param : array with four BCD digits
  490. * @retval : None
  491. */
  492. static void showDigits(uint8_t * dig)
  493. {
  494. /* Clear buffer */
  495. tubesBuffer[0] = 0;
  496. tubesBuffer[1] = 0;
  497. tubesBuffer[2] = 0;
  498. tubesBuffer[3] = 0;
  499. tubesBuffer[4] = 0;
  500. /* check values range */
  501. int i;
  502. for (i=0; i<4; i++) {
  503. if (dig[i] > 9) {
  504. if (dig[i] != 0xf) {
  505. dig[i] = 0;
  506. }
  507. }
  508. }
  509. /* Wait for SPI */
  510. while (Flag.SPI_TX_End == 0) {};
  511. Flag.SPI_TX_End = 0;
  512. /* Feel buffer */
  513. tubesBuffer[0] = (uint8_t)(nixieCathodeMap[Tube_E][dig[Tube_E]] >> 8);
  514. tubesBuffer[1] = (uint8_t)((nixieCathodeMap[Tube_E][dig[Tube_E]]) | (nixieCathodeMap[Tube_D][dig[Tube_D]] >> 8));
  515. tubesBuffer[2] = (uint8_t)((nixieCathodeMap[Tube_D][dig[Tube_D]]) | (nixieCathodeMap[Tube_B][dig[Tube_B]] >> 8));
  516. tubesBuffer[3] = (uint8_t)((nixieCathodeMap[Tube_B][dig[Tube_B]]) | (nixieCathodeMap[Tube_A][dig[Tube_A]] >> 8));
  517. tubesBuffer[4] = (uint8_t)(nixieCathodeMap[Tube_A][dig[Tube_A]]);
  518. /* Start DMA transfer to SPI */
  519. DMA1_Channel1->CCR |= DMA_CCR_EN;
  520. /* On/Off tube power */
  521. if (dig[Tube_A] == 0xf) {
  522. TUBE_A_OFF;
  523. } else {
  524. TUBE_A_ON;
  525. }
  526. if (dig[Tube_B] == 0xf) {
  527. TUBE_B_OFF;
  528. } else {
  529. TUBE_B_ON;
  530. }
  531. if (dig[Tube_D] == 0xf) {
  532. TUBE_D_OFF;
  533. } else {
  534. TUBE_D_ON;
  535. }
  536. if (dig[Tube_E] == 0xf) {
  537. TUBE_E_OFF;
  538. } else {
  539. TUBE_E_ON;
  540. }
  541. }
  542. /**
  543. * @brief Вывод HEX значений цвета в таймер.
  544. * @param : RGB value in range 0x00-0xFF
  545. * @retval : None
  546. */
  547. static void Color_RGB(uint8_t r, uint8_t g, uint8_t b) {
  548. /* Более быстрый вариант, на пробу. */
  549. COLOR_R(r * 4);
  550. COLOR_G(g * 4);
  551. COLOR_B(b * 4);
  552. /* Предварительный обсчёт в переменные сделан для того,
  553. что-бы вывести значения в таймер максимально одновременно. */
  554. /*
  555. uint32_t val_r, val_g, val_b;
  556. // * 999 + 127 / 255 ???
  557. val_r = ((uint32_t)(r * 1000) + 128) / 256;
  558. val_g = ((uint32_t)(g * 1000) + 128) / 256;
  559. val_b = ((uint32_t)(b * 1000) + 128) / 256;
  560. COLOR_R((uint16_t)val_r);
  561. COLOR_G((uint16_t)val_g);
  562. COLOR_B((uint16_t)val_b);
  563. */
  564. }
  565. /**
  566. * @brief Обработка кнопок.
  567. * @param : None
  568. * @retval : None
  569. */
  570. static void btnProcess(void) {
  571. /* get pin state */
  572. uint32_t pins = BTNS_STATE;
  573. int i;
  574. for (i=0; i<BTN_NUM; i++) {
  575. if ((pins & Button[i].pin) == 0) {
  576. /* button pressed */
  577. Button[i].time ++;
  578. if (Button[i].time >= (BTN_TIME_HOLDED/BTN_SCAN_PERIOD)) {
  579. Button[i].time -= (BTN_TIME_REPEATED/BTN_SCAN_PERIOD);
  580. if (Button[i].holded == Button[i].pressed) {
  581. /* if pressed and holded - same function, then button pressed auto repeat */
  582. ES_PlaceEvent(Button[i].pressed);
  583. }
  584. }
  585. } else if (Button[i].time != 0) {
  586. /* button released */
  587. if (Button[i].time >= ((BTN_TIME_HOLDED - BTN_TIME_REPEATED)/BTN_SCAN_PERIOD)) {
  588. /* process long press */
  589. ES_PlaceEvent(Button[i].holded);
  590. } else if (Button[i].time >= (BTN_TIME_PRESSED/BTN_SCAN_PERIOD)) {
  591. /* process short press */
  592. ES_PlaceEvent(Button[i].pressed);
  593. }
  594. Button[i].time = 0;
  595. RTOS_SetTask(btnProcess, BTN_SCAN_PAUSE, BTN_SCAN_PERIOD);
  596. }
  597. } /* end FOR */
  598. }
  599. /**
  600. * On/off symbols on IN-15 tube.
  601. */
  602. void in15Off(void) {
  603. IN15_OFF;
  604. TUBE_C_OFF;
  605. }
  606. void in15Minus(void) {
  607. IN15_OFF;
  608. IN15_Minus;
  609. TUBE_C_ON;
  610. }
  611. void in15Plus(void) {
  612. IN15_OFF;
  613. IN15_Plus;
  614. TUBE_C_ON;
  615. }
  616. void in15Percent(void) {
  617. IN15_OFF;
  618. IN15_Percent;
  619. TUBE_C_ON;
  620. }
  621. void in15P(void) {
  622. IN15_OFF;
  623. IN15_P;
  624. TUBE_C_ON;
  625. }
  626. void showTime(void) {
  627. in15Minus();
  628. RTOS_SetTask(in15Off, 500, 0);
  629. uint8_t buf[4];
  630. buf[Tube_A] = Clock.Hr >> 4;
  631. buf[Tube_B] = Clock.Hr & 0xf;
  632. buf[Tube_D] = Clock.Min >> 4;
  633. buf[Tube_E] = Clock.Min & 0xf;
  634. showDigits(buf);
  635. }
  636. /**
  637. * Show info on tubes.
  638. */
  639. void showWD(void) {
  640. dispWDT = DISP_WDT_TIME;
  641. IN15_OFF;
  642. uint8_t buf[4];
  643. buf[Tube_A] = 0xf;
  644. buf[Tube_B] = Clock.WD & 0xf;
  645. buf[Tube_D] = 0xf;
  646. buf[Tube_E] = 0xf;
  647. showDigits(buf);
  648. }
  649. void showDay(void) {
  650. dispWDT = DISP_WDT_TIME;
  651. IN15_OFF;
  652. uint8_t buf[4];
  653. buf[Tube_A] = Clock.Day >> 4;
  654. buf[Tube_B] = Clock.Day & 0xf;
  655. buf[Tube_D] = 0xf;
  656. buf[Tube_E] = 0xf;
  657. showDigits(buf);
  658. }
  659. void showMonth(void) {
  660. dispWDT = DISP_WDT_TIME;
  661. IN15_OFF;
  662. uint8_t buf[4];
  663. buf[Tube_A] = 0xf;
  664. buf[Tube_B] = 0xf;
  665. buf[Tube_D] = Clock.Mon >> 4;
  666. buf[Tube_E] = Clock.Mon & 0xf;
  667. showDigits(buf);
  668. }
  669. void showDayMon(void) {
  670. dispWDT = DISP_WDT_TIME;
  671. IN15_OFF;
  672. uint8_t buf[4];
  673. buf[Tube_A] = Clock.Day >> 4;
  674. buf[Tube_B] = Clock.Day & 0xf;
  675. buf[Tube_D] = Clock.Mon >> 4;
  676. buf[Tube_E] = Clock.Mon & 0xf;
  677. showDigits(buf);
  678. }
  679. void showYear(void) {
  680. dispWDT = DISP_WDT_TIME;
  681. IN15_OFF;
  682. uint8_t buf[4];
  683. buf[Tube_A] = 2;
  684. buf[Tube_B] = 0;
  685. buf[Tube_D] = Clock.Year >> 4;
  686. buf[Tube_E] = Clock.Year & 0xf;
  687. showDigits(buf);
  688. }
  689. void showHumidity(void) {
  690. dispWDT = DISP_WDT_TIME;
  691. in15Percent();
  692. uint8_t buf[4];
  693. buf[Tube_A] = Humidity / 10;
  694. buf[Tube_B] = Humidity % 10;
  695. buf[Tube_D] = 0xf;
  696. buf[Tube_E] = 0xf;
  697. showDigits(buf);
  698. }
  699. void showTemperature(void) {
  700. dispWDT = DISP_WDT_TIME;
  701. in15Plus();
  702. uint8_t buf[4];
  703. buf[Tube_A] = 0xf;
  704. buf[Tube_B] = 0xf;
  705. buf[Tube_D] = Temperature / 10;
  706. buf[Tube_E] = Temperature % 10;
  707. showDigits(buf);
  708. }
  709. void showPressure(void) {
  710. dispWDT = DISP_WDT_TIME;
  711. in15P();
  712. uint8_t buf[4];
  713. buf[Tube_A] = 0xf;
  714. buf[Tube_B] = Pressure.s16.u8H & 0xf;
  715. buf[Tube_D] = Pressure.s16.u8L >> 4;
  716. buf[Tube_E] = Pressure.s16.u8L & 0xf;
  717. showDigits(buf);
  718. }
  719. /* Simple function for cyclic show all sensor data */
  720. void showSensorData(void) {
  721. ES_SetState(stShowSensorData);
  722. showTemperature();
  723. tdelay_ms(3000);
  724. showHumidity();
  725. tdelay_ms(3000);
  726. showPressure();
  727. tdelay_ms(3000);
  728. ES_SetState(stShowTime);
  729. showTime();
  730. }
  731. /* USER CODE END 4 */
  732. /**
  733. * @brief This function is executed in case of error occurrence.
  734. * @retval None
  735. */
  736. void Error_Handler(void)
  737. {
  738. /* USER CODE BEGIN Error_Handler_Debug */
  739. /* User can add his own implementation to report the HAL error return state */
  740. __disable_irq();
  741. while (1)
  742. {
  743. }
  744. /* USER CODE END Error_Handler_Debug */
  745. }
  746. #ifdef USE_FULL_ASSERT
  747. /**
  748. * @brief Reports the name of the source file and the source line number
  749. * where the assert_param error has occurred.
  750. * @param file: pointer to the source file name
  751. * @param line: assert_param error line source number
  752. * @retval None
  753. */
  754. void assert_failed(uint8_t *file, uint32_t line)
  755. {
  756. /* USER CODE BEGIN 6 */
  757. /* User can add his own implementation to report the file name and line number,
  758. ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
  759. /* USER CODE END 6 */
  760. }
  761. #endif /* USE_FULL_ASSERT */
  762. /************************ (C) COPYRIGHT STMicroelectronics *****END OF FILE****/