rgb381.c 12 KB

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  1. /*
  2. * ALS308.c
  3. *
  4. * Created on: 2022年4月11日
  5. * Author: amos
  6. */
  7. #include "rgb381.h"
  8. #include "TCA9548A.h"
  9. #include <string.h>
  10. #define I2C_TIMEOUT_1000MS 16000000 // 定义超时时间(毫秒)
  11. #define CARD_NO_ALIGN 3
  12. #define CARD_NO_MIN 10
  13. ColorSensor CS[CS_MAX] = {0}; //检测孔
  14. uint8_t SensorState1=0,SensorState2=0,SensorState3=0,SensorState4=0,SensorState5=0,
  15. SensorState6=0,SensorState7=0,SensorState8=0,SensorState9=0,SensorState10=0;
  16. //extern uint8_t I2C_data;
  17. int8_t I2CWriteOneByte(I2C_HandleTypeDef *hi2c, uint8_t u8SlaveAddr, uint8_t u8DataAddr, uint8_t data)
  18. {
  19. // HAL 库返回值:HAL_OK 表示成功
  20. HAL_StatusTypeDef status = HAL_I2C_Mem_Write(hi2c,
  21. (uint16_t)(u8SlaveAddr << 1), // 7位地址左移1位,HAL内部会处理读写位
  22. (uint16_t)u8DataAddr, // 寄存器地址(8位)
  23. I2C_MEMADD_SIZE_8BIT, // 寄存器地址宽度 8 位
  24. &data, // 要写入的数据
  25. 1, // 数据长度(字节)
  26. 100); // 超时时间 ms
  27. if (status == HAL_OK)
  28. return 0; // 成功
  29. else
  30. return 3; // 统一返回 3(或按原函数错误码细化)
  31. }
  32. uint8_t I2CReadOneByte(I2C_HandleTypeDef *hi2c, uint8_t u8SlaveAddr, uint8_t u8DataAddr)
  33. {
  34. uint8_t rdata = 0;
  35. HAL_StatusTypeDef status = HAL_I2C_Mem_Read(hi2c,
  36. (uint16_t)(u8SlaveAddr << 1),
  37. (uint16_t)u8DataAddr,
  38. I2C_MEMADD_SIZE_8BIT,
  39. &rdata,
  40. 1,
  41. 100);
  42. if (status == HAL_OK)
  43. return rdata;
  44. else
  45. return 0; // 失败返回 0(与原函数一致)
  46. }
  47. uint8_t I2C_data = 0;
  48. void TCA9548A_SetChannel(uint8_t ID)
  49. {
  50. /********************************************************/
  51. /**************background light--PA0*********************/
  52. /*********************WIFI_EN--PA12**********************/
  53. /**********************I2C_S0--PB3***********************/
  54. /***********************I2C_S1--PB2**********************/
  55. /**********************I2C_S2--PB1***********************/
  56. /**********************I2C_S3--PB0***********************/
  57. /**********************I2C_S4--PF5***********************/
  58. /******************Device_num1--PB15*********************/
  59. /******************Device_num2--PB14*********************/
  60. /******************Device_num3--PB13*********************/
  61. /******************Device_num4--PB12*********************/
  62. /***********************LED--PF4*************************/
  63. /***********************DEC--PB15************************/
  64. switch(ID)
  65. {
  66. case 0:
  67. I2C_data = TCA9548A_CHANNEL_0;
  68. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR,I2C_data,ID);
  69. break;
  70. case 1:
  71. I2C_data = TCA9548A_CHANNEL_0;
  72. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR,I2C_data,I2C_data);
  73. HAL_Delay(50);
  74. I2C_data = TCA9548A_CHANNEL_2;
  75. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR,I2C_data,I2C_data);
  76. break;
  77. case 2:
  78. I2C_data = TCA9548A_CHANNEL_3;
  79. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR,I2C_data,I2C_data);
  80. break;
  81. case 3:
  82. I2C_data = TCA9548A_CHANNEL_4;
  83. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR,I2C_data,I2C_data);
  84. break;
  85. case 4:
  86. I2C_data = TCA9548A_CHANNEL_5;
  87. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR,I2C_data,I2C_data);
  88. break;
  89. case 5:
  90. I2C_data = TCA9548A_CHANNEL_6;
  91. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR,I2C_data,I2C_data);
  92. break;
  93. case 6:
  94. I2C_data = TCA9548A_CHANNEL_7;
  95. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR,I2C_data,I2C_data);
  96. break;
  97. case 7:
  98. I2C_data = TCA9548A_CHANNEL_8;
  99. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR,I2C_data,I2C_data);
  100. break;
  101. case 8:
  102. I2C_data = TCA9548A_CHANNEL_1;
  103. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR,I2C_data,I2C_data);
  104. HAL_Delay(50);
  105. I2C_data = TCA9548A_CHANNEL_0;
  106. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR1,I2C_data,I2C_data);
  107. HAL_Delay(50);
  108. I2C_data = TCA9548A_CHANNEL_2;
  109. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR1,I2C_data,I2C_data);
  110. break;
  111. case 9:
  112. // I2C_data = TCA9548A_CHANNEL_0;
  113. // I2CWriteOneByte(I2C0,TCA9548A_SLAVE_ADDR1,I2C_data,I2C_data);
  114. // DelayMS(100);
  115. I2C_data = TCA9548A_CHANNEL_3;
  116. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR1,I2C_data,I2C_data);
  117. break;
  118. case 10:
  119. // I2C_data = TCA9548A_CHANNEL_0;
  120. // I2CWriteOneByte(I2C0,TCA9548A_SLAVE_ADDR1,I2C_data,I2C_data);
  121. // DelayMS(100);
  122. I2C_data = TCA9548A_CHANNEL_4;
  123. I2CWriteOneByte(&hi2c1,TCA9548A_SLAVE_ADDR1,I2C_data,I2C_data);
  124. break;
  125. default:
  126. break;
  127. }
  128. }
  129. void SensorMeasurementFactor(uint8_t measfactor)
  130. {
  131. I2CWriteOneByte(&hi2c1,RGB381_ADDR,RGB381_MeasRate,measfactor);
  132. }
  133. void SensorSetGain(uint8_t gain)
  134. {
  135. I2CWriteOneByte(&hi2c1,RGB381_ADDR,RGB381_Gain,gain);
  136. }
  137. uint8_t SensorGetID(uint8_t ID)
  138. {
  139. TCA9548A_SetChannel(ID);
  140. HAL_Delay(100);
  141. return I2CReadOneByte(&hi2c1,RGB381_ADDR,RGB381_PartID);
  142. // return I2CReadOneByte(I2C0,RGB381_ADDR,RGB381_PartID);
  143. }
  144. void SensorGetRawData(ColorSensor *CS)
  145. {
  146. uint32_t u32Timeout = I2C_TIMEOUT_1000MS; // 转换为时钟周期数
  147. uint32_t u32StartTick = sysinf.ms_conter;
  148. uint32_t u32LastTick;
  149. uint32_t time;
  150. TCA9548A_SetChannel(CS->ID);
  151. HAL_Delay(40);
  152. u32LastTick = sysinf.ms_conter;
  153. time = u32LastTick - u32StartTick;
  154. while((I2CReadOneByte(&hi2c1,RGB381_ADDR,RGB381_MainState)&0x08)==0x08){
  155. // 超时检测
  156. u32LastTick = sysinf.ms_conter;
  157. time = u32LastTick - u32StartTick;
  158. if(u32LastTick < u32StartTick){
  159. time = u32LastTick + 0x1000000 - u32StartTick;
  160. }
  161. if ((time) > u32Timeout) {
  162. CS->RDR = 0;
  163. Van_Device_Printf(VAN_LOG_ERROR, "error_state :%d\n",time);
  164. return; // 返回超时错误码
  165. }
  166. };
  167. HAL_Delay(10);
  168. // LOG_E("error_state :%d\n",time);
  169. CS->RDR=(I2CReadOneByte(&hi2c1,RGB381_ADDR,RGB381_R_DataLow)|
  170. (I2CReadOneByte(&hi2c1,RGB381_ADDR,RGB381_R_DataMid)<<8)|
  171. (I2CReadOneByte(&hi2c1,RGB381_ADDR,RGB381_R_DataHIG)<<16));
  172. if(CS->RDR == 0){
  173. HAL_Delay(10);
  174. CS->RDR=(I2CReadOneByte(&hi2c1,RGB381_ADDR,RGB381_R_DataLow)|
  175. (I2CReadOneByte(&hi2c1,RGB381_ADDR,RGB381_R_DataMid)<<8)|
  176. (I2CReadOneByte(&hi2c1,RGB381_ADDR,RGB381_R_DataHIG)<<16));
  177. if(CS->RDR == 0){
  178. Van_Device_Printf(VAN_LOG_ERROR, "error_Data\n");
  179. }
  180. }
  181. // CS->RDG=(I2CReadOneByte(I2C0,RGB381_ADDR,RGB381_G_DataLow)|
  182. // (I2CReadOneByte(I2C0,RGB381_ADDR,RGB381_G_DataMid)<<8)|
  183. // (I2CReadOneByte(I2C0,RGB381_ADDR,RGB381_G_DataHIG)<<16));
  184. // CS->RDB=(I2CReadOneByte(I2C0,RGB381_ADDR,RGB381_B_DataLow)|
  185. // (I2CReadOneByte(I2C0,RGB381_ADDR,RGB381_B_DataMid)<<8)|
  186. // (I2CReadOneByte(I2C0,RGB381_ADDR,RGB381_B_DataHIG)<<16));
  187. }
  188. void SensorEnable(void)
  189. {
  190. I2CWriteOneByte(&hi2c1,RGB381_ADDR,RGB381_MainCtrl,CS_Modle|ALS_Active);
  191. HAL_Delay(10);
  192. }
  193. uint8_t SensorInit(ColorSensor *CS)
  194. {
  195. if(SensorGetID(CS->ID)==0xC2)// device id is 0xC2
  196. {
  197. SensorEnable();
  198. SensorMeasurementFactor(ALS_MeasRes_17B|ALS_MeasRate_50ms);
  199. SensorSetGain(ALS_Gain_9X);
  200. CS->TtMax=0.0;
  201. // CS->TtNow=0.0;
  202. // CS->ColDifInit=0.0;
  203. // CS->ColDifNow=0.0;
  204. // CS->ColDifMax=0.0;
  205. CS->Tt=30.0;
  206. CS->STD=0.0;
  207. CS->average=0.0;
  208. memset(CS->SAMP, 0, sizeof(CS->SAMP));
  209. CS->std_num=0;
  210. CS->gain=0;
  211. SensorGetRawData(CS);
  212. for(int i = 0; i < 10; i++)
  213. {
  214. if(CS->RDR > CS_RDR_MIN)
  215. return 0;
  216. HAL_Delay(100);
  217. SensorGetRawData(CS);
  218. }
  219. return 1;
  220. }
  221. else
  222. return 1;
  223. }
  224. int SensorSelfCheck(void)
  225. {
  226. SensorState1=SensorInit(&CS[0]);
  227. SensorState2=SensorInit(&CS[1]);
  228. SensorState3=SensorInit(&CS[2]);
  229. SensorState4=SensorInit(&CS[3]);
  230. SensorState5=SensorInit(&CS[4]);
  231. SensorState6=SensorInit(&CS[5]);
  232. SensorState7=SensorInit(&CS[6]);
  233. SensorState8=SensorInit(&CS[7]);
  234. SensorState9=SensorInit(&CS[8]);
  235. SensorState10=SensorInit(&CS[9]);
  236. if(SensorState1|SensorState2|SensorState3|SensorState4|SensorState5|SensorState6|SensorState7|SensorState8|SensorState9|SensorState10)
  237. return -1;
  238. else return 0;
  239. }
  240. void SensorGetCalData(ColorSensor *CS)
  241. {
  242. // SensorGetRawData(CS);
  243. //CS->AccArea+=CS->RtR;
  244. }
  245. void SensorInitial(void)
  246. {
  247. CS[0].ID = Sensor1;
  248. CS[1].ID = Sensor2;
  249. CS[2].ID = Sensor3;
  250. CS[3].ID = Sensor4;
  251. CS[4].ID = Sensor5;
  252. CS[5].ID = Sensor6;
  253. CS[6].ID = Sensor7;
  254. CS[7].ID = Sensor8;
  255. CS[8].ID = Sensor9;
  256. CS[9].ID = Sensor10;
  257. }
  258. int Returntozero(ColorSensor *CS) //lxx-add-2022.12.26
  259. {
  260. //lxx-add-2023.03.27
  261. SensorGetRawData(CS);
  262. CS->CDR = (float)CS->RDR;
  263. if(CS->RDR < CARD_NO_MIN){
  264. return 1;
  265. }
  266. if(CS->RDC/CS->RDR > CARD_NO_ALIGN){
  267. return 1;
  268. }
  269. return 0;
  270. }
  271. void Get_SAMP_DATA(ColorSensor *CS)
  272. {
  273. CS->SAMP[0] = CS->RtR;
  274. // CS->CALCU_SAMP[samp_num] = (uint16_t)CS->RtR;
  275. }
  276. void Get_Tt(ColorSensor *CS)
  277. {
  278. if(CS->Tt == 30.0)
  279. {
  280. if(CS->RtR>(10*fabs(CS->STD)+CS->average))
  281. {
  282. CS->std_num++;
  283. if(CS->std_num==5) //连续5次
  284. {
  285. // CS->Tt = (sampleTimes-(5-1))/6.0f; //每分钟6次;
  286. }
  287. }
  288. else
  289. {
  290. CS->std_num=0;
  291. }
  292. }
  293. }
  294. void Get_average(ColorSensor *CS)
  295. {
  296. float sum= 0;
  297. int i = 0;
  298. for(i=0;i<SAMP_SIZE;i++)
  299. {
  300. sum += CS->SAMP[i];
  301. }
  302. CS->average = sum/(SAMP_SIZE);
  303. }
  304. void Get_STD(ColorSensor *CS)
  305. {
  306. int i = 0;
  307. float sum = 0;
  308. for(i=0;i<SAMP_SIZE;i++)
  309. {
  310. sum += (CS->SAMP[i]-CS->average)*(CS->SAMP[i]-CS->average);
  311. }
  312. CS->STD = sqrtf(sum / (SAMP_SIZE - 1));
  313. }
  314. void Get_GAIN(ColorSensor *CS) //lxx_add_2023.07.27
  315. {
  316. SensorGetRawData(CS);
  317. CS->RDC = (float)CS->RDR;
  318. if(CS->RDC < CS_RDR_MIN)
  319. {
  320. // error_set(ERROR_SENSOR_SELF_CHECK);
  321. return;
  322. }
  323. CS->gain = 1000.0/(float)CS->RDC;
  324. }
  325. void Sensor_calibration_data(ColorSensor *CS) //lxx_add_2023.07.27
  326. {
  327. CS->RtR = (CS->CDR-CS->RDR)*CS->gain;
  328. }
  329. void sample_first_zero(void)
  330. {
  331. for (int i = 0; i < CS_MAX; i++)
  332. {
  333. Returntozero(&CS[i]);
  334. //从零点输出
  335. Sensor_calibration_data(&CS[i]);
  336. }
  337. }
  338. int check_first_zero(void)
  339. {
  340. int noAlignNum = 0;
  341. for (int i = 0; i < CS_MAX; i++)
  342. {
  343. if(Returntozero(&CS[i]) == 1){
  344. noAlignNum ++;
  345. }
  346. }
  347. if(noAlignNum == 0){
  348. error_clear();
  349. return 0;
  350. }else{
  351. error_set(ERROR_SENSOR_SELF_CHECK);
  352. return 1;
  353. }
  354. }
  355. void sample_calibrate_calc(uint32_t times)
  356. {
  357. for (int i = 0; i < CS_MAX; i++)
  358. {
  359. SensorGetRawData(&CS[i]); // get the original data every 1S
  360. if(CS->RDR == 0){
  361. // if(!(g_cfg.skip_CheckOrRun & SKIP_CHECK_CARDINSERT)){
  362. // error_set(ERROR_SENSOR_SELF_CHECK);
  363. // return;
  364. // }
  365. }
  366. Sensor_calibration_data(&CS[i]);
  367. }
  368. if (times < 19)
  369. {
  370. for (int i = 0; i < CS_MAX; i++)
  371. {
  372. Get_SAMP_DATA(&CS[i]);// save the returntozero data in 30minutes
  373. }
  374. // samp_num++;
  375. }
  376. }
  377. void sample_calc_avg_std(void)
  378. {
  379. for (int i = 0; i < CS_MAX; i++)
  380. {
  381. Get_average(&CS[i]);
  382. Get_STD(&CS[i]);
  383. }
  384. }
  385. void sample_calc_tt(void)
  386. {
  387. for (int i = 0; i < CS_MAX; i++)
  388. {
  389. Get_Tt(&CS[i]);
  390. }
  391. }
  392. void sample_calc_result(void)
  393. {
  394. // for (int i = 0; i < CS_MAX; i++)
  395. // {
  396. // //从二维码获取Tt范围
  397. // CS[i].TtMax = card_param_info.hole_info[i].TtMax[0] + card_param_info.hole_info[i].TtMax[1] / 100.0f;
  398. // CS[i].TtMin = card_param_info.hole_info[i].TtMin[0] + card_param_info.hole_info[i].TtMin[1] / 100.0f;
  399. // }
  400. // SystemResaultJudge();
  401. }