scope.c 11 KB

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  1. #include <furi.h>
  2. #include <furi_hal.h>
  3. #include <furi_hal_resources.h>
  4. #include <gui/gui.h>
  5. #include <input/input.h>
  6. #include <stdlib.h>
  7. #include <string.h>
  8. #include "stm32wbxx_hal.h"
  9. #include "stm32wbxx_hal_tim.h"
  10. #include "stm32wbxx_nucleo.h"
  11. #include "stm32wbxx_hal_adc.h"
  12. #include "scope_icons.h"
  13. #define DIGITAL_SCALE_12BITS ((uint32_t) 0xFFF)
  14. #define ADC_CONVERTED_DATA_BUFFER_SIZE ((uint32_t) 128)
  15. #define VAR_CONVERTED_DATA_INIT_VALUE (DIGITAL_SCALE_12BITS + 1)
  16. #define VAR_CONVERTED_DATA_INIT_VALUE_16BITS (0xFFFF + 1U)
  17. #define __ADC_CALC_DATA_VOLTAGE(__VREFANALOG_VOLTAGE__, __ADC_DATA__) \
  18. ((__ADC_DATA__) * (__VREFANALOG_VOLTAGE__) / DIGITAL_SCALE_12BITS)
  19. #define VDDA_APPLI ((uint32_t)3300)
  20. const uint32_t AHBPrescTable[16UL] = {1UL, 3UL, 5UL, 1UL, 1UL, 6UL, 10UL, 32UL, 2UL, 4UL, 8UL, 16UL, 64UL, 128UL, 256UL, 512UL};
  21. const uint32_t APBPrescTable[8UL] = {0UL, 0UL, 0UL, 0UL, 1UL, 2UL, 3UL, 4UL};
  22. const uint32_t MSIRangeTable[16UL] = {100000UL, 200000UL, 400000UL, 800000UL, 1000000UL, 2000000UL, \
  23. 4000000UL, 8000000UL, 16000000UL, 24000000UL, 32000000UL, 48000000UL, 0UL, 0UL, 0UL, 0UL}; /* 0UL values are incorrect cases */
  24. void Error_Handler()
  25. {
  26. while (1) {
  27. }
  28. }
  29. uint32_t timebase = 50;
  30. static ADC_HandleTypeDef hadc1;
  31. static DMA_HandleTypeDef hdma_adc1;
  32. static TIM_HandleTypeDef htim2;
  33. __IO uint16_t aADCxConvertedData[ADC_CONVERTED_DATA_BUFFER_SIZE]; /* ADC group regular conversion data (array of data) */
  34. __IO uint16_t aADCxConvertedData_Voltage_mVolt[ADC_CONVERTED_DATA_BUFFER_SIZE]; /* Value of voltage calculated from ADC conversion data (unit: mV) (array of data) */
  35. __IO uint8_t ubDmaTransferStatus = 2; /* Variable set into DMA interruption callback */
  36. void HAL_MspInit(void)
  37. {
  38. }
  39. void HAL_ADC_MspInit(ADC_HandleTypeDef * hadc)
  40. {
  41. GPIO_InitTypeDef GPIO_InitStruct = { 0 };
  42. if (hadc->Instance == ADC1) {
  43. __HAL_RCC_ADC_CLK_ENABLE();
  44. __HAL_RCC_GPIOC_CLK_ENABLE();
  45. GPIO_InitStruct.Pin = GPIO_PIN_0;
  46. GPIO_InitStruct.Mode = GPIO_MODE_ANALOG;
  47. GPIO_InitStruct.Pull = GPIO_NOPULL;
  48. HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
  49. hdma_adc1.Instance = DMA1_Channel1;
  50. hdma_adc1.Init.Request = DMA_REQUEST_ADC1;
  51. hdma_adc1.Init.Direction = DMA_PERIPH_TO_MEMORY;
  52. hdma_adc1.Init.PeriphInc = DMA_PINC_DISABLE;
  53. hdma_adc1.Init.MemInc = DMA_MINC_ENABLE;
  54. hdma_adc1.Init.PeriphDataAlignment = DMA_PDATAALIGN_HALFWORD;
  55. hdma_adc1.Init.MemDataAlignment = DMA_MDATAALIGN_HALFWORD;
  56. hdma_adc1.Init.Mode = DMA_CIRCULAR;
  57. hdma_adc1.Init.Priority = DMA_PRIORITY_LOW;
  58. if (HAL_DMA_Init(&hdma_adc1) != HAL_OK) {
  59. Error_Handler();
  60. }
  61. __HAL_LINKDMA(hadc, DMA_Handle, hdma_adc1);
  62. HAL_NVIC_SetPriority(ADC1_IRQn, 15, 0);
  63. HAL_NVIC_EnableIRQ(ADC1_IRQn);
  64. }
  65. }
  66. void HAL_ADC_MspDeInit(ADC_HandleTypeDef * hadc)
  67. {
  68. if (hadc->Instance == ADC1) {
  69. __HAL_RCC_ADC_CLK_DISABLE();
  70. HAL_GPIO_DeInit(GPIOC, GPIO_PIN_0);
  71. HAL_DMA_DeInit(hadc->DMA_Handle);
  72. HAL_NVIC_DisableIRQ(ADC1_IRQn);
  73. }
  74. }
  75. void HAL_TIM_Base_MspInit(TIM_HandleTypeDef * htim_base)
  76. {
  77. if (htim_base->Instance == TIM2) {
  78. __HAL_RCC_TIM2_CLK_ENABLE();
  79. HAL_NVIC_SetPriority(TIM2_IRQn, 15, 0);
  80. HAL_NVIC_EnableIRQ(TIM2_IRQn);
  81. }
  82. }
  83. void HAL_TIM_Base_MspDeInit(TIM_HandleTypeDef * htim_base)
  84. {
  85. if (htim_base->Instance == TIM2) {
  86. __HAL_RCC_TIM2_CLK_DISABLE();
  87. HAL_NVIC_DisableIRQ(TIM2_IRQn);
  88. }
  89. }
  90. void DMA1_Channel1_IRQHandler(void)
  91. {
  92. HAL_DMA_IRQHandler(&hdma_adc1);
  93. }
  94. void ADC1_IRQHandler(void)
  95. {
  96. HAL_ADC_IRQHandler(&hadc1);
  97. }
  98. void TIM2_IRQHandler(void)
  99. {
  100. HAL_TIM_IRQHandler(&htim2);
  101. }
  102. static void MX_ADC1_Init(void)
  103. {
  104. ADC_ChannelConfTypeDef sConfig = { 0 };
  105. hadc1.Instance = ADC1;
  106. hadc1.Init.ClockPrescaler = ADC_CLOCK_SYNC_PCLK_DIV4;
  107. hadc1.Init.Resolution = ADC_RESOLUTION_12B;
  108. hadc1.Init.DataAlign = ADC_DATAALIGN_RIGHT;
  109. hadc1.Init.ScanConvMode = ADC_SCAN_DISABLE;
  110. hadc1.Init.EOCSelection = ADC_EOC_SINGLE_CONV;
  111. hadc1.Init.LowPowerAutoWait = DISABLE;
  112. hadc1.Init.ContinuousConvMode = DISABLE;
  113. hadc1.Init.NbrOfConversion = 1;
  114. hadc1.Init.DiscontinuousConvMode = DISABLE;
  115. hadc1.Init.ExternalTrigConv = ADC_EXTERNALTRIG_T2_TRGO;
  116. hadc1.Init.ExternalTrigConvEdge = ADC_EXTERNALTRIGCONVEDGE_RISING;
  117. hadc1.Init.DMAContinuousRequests = ENABLE;
  118. hadc1.Init.Overrun = ADC_OVR_DATA_OVERWRITTEN;
  119. hadc1.Init.OversamplingMode = DISABLE;
  120. if (HAL_ADC_Init(&hadc1) != HAL_OK) {
  121. Error_Handler();
  122. }
  123. sConfig.Channel = ADC_CHANNEL_1;
  124. sConfig.Rank = ADC_REGULAR_RANK_1;
  125. sConfig.SamplingTime = ADC_SAMPLETIME_2CYCLE_5; ////ADC_SAMPLETIME_640CYCLES_5;
  126. sConfig.SingleDiff = ADC_SINGLE_ENDED;
  127. sConfig.OffsetNumber = ADC_OFFSET_NONE;
  128. sConfig.Offset = 0;
  129. if (HAL_ADC_ConfigChannel(&hadc1, &sConfig) != HAL_OK) {
  130. Error_Handler();
  131. }
  132. }
  133. static void MX_TIM2_Init(void)
  134. {
  135. uint32_t period = HAL_RCC_GetPCLK1Freq() / timebase;
  136. TIM_ClockConfigTypeDef sClockSourceConfig = { 0 };
  137. TIM_MasterConfigTypeDef sMasterConfig = { 0 };
  138. htim2.Instance = TIM2;
  139. htim2.Init.Prescaler = 1;
  140. htim2.Init.CounterMode = TIM_COUNTERMODE_UP;
  141. htim2.Init.Period = period;
  142. htim2.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
  143. htim2.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
  144. if (HAL_TIM_Base_Init(&htim2) != HAL_OK) {
  145. Error_Handler();
  146. }
  147. sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
  148. if (HAL_TIM_ConfigClockSource(&htim2, &sClockSourceConfig) != HAL_OK) {
  149. Error_Handler();
  150. }
  151. sMasterConfig.MasterOutputTrigger = TIM_TRGO_UPDATE;
  152. sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
  153. if (HAL_TIMEx_MasterConfigSynchronization(&htim2, &sMasterConfig) !=
  154. HAL_OK) {
  155. Error_Handler();
  156. }
  157. }
  158. static void MX_DMA_Init(void)
  159. {
  160. __HAL_RCC_DMAMUX1_CLK_ENABLE();
  161. __HAL_RCC_DMA1_CLK_ENABLE();
  162. HAL_NVIC_SetPriority(DMA1_Channel1_IRQn, 15, 0);
  163. HAL_NVIC_EnableIRQ(DMA1_Channel1_IRQn);
  164. }
  165. static void MX_GPIO_Init(void)
  166. {
  167. __HAL_RCC_GPIOC_CLK_ENABLE();
  168. }
  169. void HAL_ADC_ConvCpltCallback(ADC_HandleTypeDef * hadc)
  170. {
  171. UNUSED(hadc);
  172. uint32_t tmp_index = 0;
  173. for (tmp_index = (ADC_CONVERTED_DATA_BUFFER_SIZE / 2);
  174. tmp_index < ADC_CONVERTED_DATA_BUFFER_SIZE; tmp_index++) {
  175. aADCxConvertedData_Voltage_mVolt[tmp_index] =
  176. __ADC_CALC_DATA_VOLTAGE(VDDA_APPLI,
  177. aADCxConvertedData[tmp_index]);
  178. }
  179. ubDmaTransferStatus = 1;
  180. }
  181. void HAL_ADC_ConvHalfCpltCallback(ADC_HandleTypeDef * hadc)
  182. {
  183. UNUSED(hadc);
  184. uint32_t tmp_index = 0;
  185. for (tmp_index = 0; tmp_index < (ADC_CONVERTED_DATA_BUFFER_SIZE / 2);
  186. tmp_index++) {
  187. aADCxConvertedData_Voltage_mVolt[tmp_index] =
  188. __ADC_CALC_DATA_VOLTAGE(VDDA_APPLI,
  189. aADCxConvertedData[tmp_index]);
  190. }
  191. ubDmaTransferStatus = 0;
  192. }
  193. void HAL_ADC_ErrorCallback(ADC_HandleTypeDef * hadc)
  194. {
  195. UNUSED(hadc);
  196. Error_Handler();
  197. }
  198. typedef struct {
  199. uint8_t x, y;
  200. } ImagePosition;
  201. uint16_t val1;
  202. static ImagePosition image_position = {.x = 0,.y = 0 };
  203. void assert_failed(uint8_t * file, uint32_t line)
  204. {
  205. UNUSED(file);
  206. UNUSED(line);
  207. while (1) {
  208. }
  209. }
  210. // Screen is 128x64 px
  211. static void app_draw_callback(Canvas * canvas, void *ctx)
  212. {
  213. UNUSED(ctx);
  214. char buf[50];
  215. snprintf(buf, 50, "Time: %.3f", (double)1.0/((double)timebase));
  216. canvas_draw_str(canvas, 10, 10, buf);
  217. for(uint32_t x = 1; x < ADC_CONVERTED_DATA_BUFFER_SIZE; x++){
  218. uint32_t prev = 64 - (aADCxConvertedData_Voltage_mVolt[x-1] / (VDDA_APPLI / 64));
  219. uint32_t cur = 64 - (aADCxConvertedData_Voltage_mVolt[x] / (VDDA_APPLI / 64));
  220. canvas_draw_line(canvas, x - 1, prev, x, cur);
  221. }
  222. canvas_draw_line(canvas, 0, 0, 0, 63);
  223. canvas_draw_line(canvas, 0, 63, 128, 63);
  224. }
  225. static void app_input_callback(InputEvent * input_event, void *ctx)
  226. {
  227. furi_assert(ctx);
  228. FuriMessageQueue *event_queue = ctx;
  229. furi_message_queue_put(event_queue, input_event, FuriWaitForever);
  230. }
  231. // ramVector found from - https://community.nxp.com/t5/i-MX-Processors/Relocate-vector-table-to-ITCM/m-p/1302304
  232. // the aligned aspect is key!
  233. #define TABLE_SIZE 79
  234. uint32_t ramVector[TABLE_SIZE+1] __attribute__((aligned(512)));
  235. int32_t scope_main(void *p)
  236. {
  237. __disable_irq();
  238. memcpy(ramVector, (uint32_t*)(FLASH_BASE | SCB->VTOR), sizeof(uint32_t) * TABLE_SIZE);
  239. SCB->VTOR = (uint32_t)ramVector;
  240. ramVector[27] = (uint32_t)DMA1_Channel1_IRQHandler;
  241. ramVector[34] = (uint32_t)ADC1_IRQHandler;
  242. ramVector[44] = (uint32_t)TIM2_IRQHandler;
  243. __enable_irq();
  244. UNUSED(p);
  245. HAL_NVIC_SetPriorityGrouping(NVIC_PRIORITYGROUP_4);
  246. FuriMessageQueue *event_queue =
  247. furi_message_queue_alloc(8, sizeof(InputEvent));
  248. uint32_t tmp_index_adc_converted_data = 0;
  249. MX_GPIO_Init();
  250. MX_DMA_Init();
  251. MX_TIM2_Init();
  252. VREFBUF->CSR |= VREFBUF_CSR_ENVR;
  253. VREFBUF->CSR &= ~VREFBUF_CSR_HIZ;
  254. VREFBUF->CSR |= VREFBUF_CSR_VRS;
  255. while (!(VREFBUF->CSR & VREFBUF_CSR_VRR)) {
  256. };
  257. MX_ADC1_Init();
  258. for (tmp_index_adc_converted_data = 0;
  259. tmp_index_adc_converted_data < ADC_CONVERTED_DATA_BUFFER_SIZE;
  260. tmp_index_adc_converted_data++) {
  261. aADCxConvertedData[tmp_index_adc_converted_data] =
  262. VAR_CONVERTED_DATA_INIT_VALUE;
  263. }
  264. if (HAL_ADCEx_Calibration_Start(&hadc1, ADC_SINGLE_ENDED) != HAL_OK) {
  265. Error_Handler();
  266. }
  267. if (HAL_TIM_Base_Start(&htim2) != HAL_OK) {
  268. Error_Handler();
  269. }
  270. if (HAL_ADC_Start_DMA(&hadc1,
  271. (uint32_t *) aADCxConvertedData,
  272. ADC_CONVERTED_DATA_BUFFER_SIZE) != HAL_OK) {
  273. Error_Handler();
  274. }
  275. ViewPort *view_port = view_port_alloc();
  276. view_port_draw_callback_set(view_port, app_draw_callback, view_port);
  277. view_port_input_callback_set(view_port, app_input_callback,
  278. event_queue);
  279. // Register view port in GUI
  280. Gui *gui = furi_record_open(RECORD_GUI);
  281. gui_add_view_port(gui, view_port, GuiLayerFullscreen);
  282. InputEvent event;
  283. bool running = true;
  284. while (running) {
  285. if (furi_message_queue_get(event_queue, &event, 1) ==
  286. FuriStatusOk) {
  287. if ((event.type == InputTypePress)
  288. || (event.type == InputTypeRepeat)) {
  289. switch (event.key) {
  290. case InputKeyLeft:
  291. image_position.x -= 2;
  292. break;
  293. case InputKeyRight:
  294. image_position.x += 2;
  295. break;
  296. case InputKeyUp:
  297. image_position.y -= 2;
  298. break;
  299. case InputKeyDown:
  300. image_position.y += 2;
  301. break;
  302. default:
  303. running = false;
  304. break;
  305. }
  306. }
  307. }
  308. val1 = aADCxConvertedData_Voltage_mVolt[0];
  309. view_port_update(view_port);
  310. }
  311. HAL_ADC_Stop_DMA (&hadc1);
  312. __disable_irq();
  313. SCB->VTOR = 0;
  314. __enable_irq();
  315. UNUSED(p);
  316. view_port_enabled_set(view_port, false);
  317. gui_remove_view_port(gui, view_port);
  318. view_port_free(view_port);
  319. furi_message_queue_free(event_queue);
  320. furi_record_close(RECORD_GUI);
  321. return 0;
  322. }