tof_isr.c 14 KB

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  1. #include "board.h"
  2. #include "tdc_tof.h"
  3. #define TOF_PWFW_DIFF ((uint16_t)(0x1620u * 25 / 100))
  4. #define TOF_PWFW_LOW ((uint16_t)(0x1620u * 40 / 100))
  5. #define TOF_PWFW_HIGH ((uint16_t)(0x1620u * 50 / 100))
  6. #define TOF_OFST_LOW (10)
  7. #define TOF_OFST_HIGH (26)
  8. uint8_t TdcFwOfst = (TOF_OFST_LOW + TOF_OFST_HIGH) / 2;
  9. uint32_t CntErrEvent = 0;
  10. uint8_t TdcIntStep = 0xFFu;
  11. float SumToF;
  12. float LastSumToF;
  13. float UToFAvg;
  14. float DToFAvg;
  15. float DiffToF;
  16. float DiffToF_LAST; // add by yuewei 20260325 用于记录上次飞行时间,便于低通平滑滤波
  17. float APSR_LAST; // add by yuewei 20260325 用于记录上次APSR值,便于防止二次修正来回跳变
  18. float DiffToFAvg;
  19. float DiffToFAvg2;
  20. float DiffToFAvg128;
  21. double CumFlow;
  22. uint16_t CalibTime;
  23. float CalibSpdLvl;
  24. float CalibTemp;
  25. tdc_itf_t *pTdcItf;
  26. void set_tdc_itf(tdc_itf_t *itf)
  27. {
  28. pTdcItf = itf;
  29. }
  30. uint32_t get_tof_flag(void)
  31. {
  32. return tof_flag;
  33. }
  34. void set_tof_flag(uint32_t flag)
  35. {
  36. tof_flag = flag;
  37. }
  38. uint16_t get_tof_state(void)
  39. {
  40. return tof_state;
  41. }
  42. void set_tof_state(uint16_t state)
  43. {
  44. tof_state = state;
  45. }
  46. float get_diff_tof(void)
  47. {
  48. return DiffToF;
  49. }
  50. uint8_t get_tdc_fw_ofst(void)
  51. {
  52. return TdcFwOfst;
  53. }
  54. void set_tdc_fw_ofst(uint8_t fw_ofst)
  55. {
  56. TdcFwOfst = fw_ofst;
  57. }
  58. uint8_t get_tdc_int_step(void)
  59. {
  60. return TdcIntStep;
  61. }
  62. void set_tdc_int_step(uint8_t int_step)
  63. {
  64. TdcIntStep = int_step;
  65. }
  66. // 可调滤波参数
  67. #define BUF_SIZE 3 // 减小窗口,避免整段温漂进入缓存
  68. #define LPF_ALPHA 0.22f // 大幅降低,强化平滑,压制缓慢漂移
  69. // 卡尔曼参数:大幅降低Q、提高R,不信任微小缓慢波动
  70. #define KALMAN_Q 0.002f
  71. #define KALMAN_R 0.025f
  72. #define KALMAN_INIT_P 0.1f
  73. #define TOF_MAX_CHANNELS 1
  74. typedef struct
  75. {
  76. float filter_buf[BUF_SIZE];
  77. uint8_t buf_index;
  78. uint8_t buffer_ready;
  79. float x_est;
  80. float p_est;
  81. const float Q;
  82. const float R;
  83. float lpf_out;
  84. uint8_t lpf_ready;
  85. float last_filtered;
  86. } TOF_Channel_t;
  87. static TOF_Channel_t tof_channels[TOF_MAX_CHANNELS] = {
  88. {
  89. .Q = KALMAN_Q,
  90. .R = KALMAN_R,
  91. .buf_index = 0,
  92. .buffer_ready = 0,
  93. .lpf_ready = 0,
  94. }
  95. };
  96. extern uint8_t G_STATIC_OT_SETTING_FLAG;
  97. static float filter_single_channel(float raw)
  98. {
  99. TOF_Channel_t *f = &tof_channels[0];
  100. float temp_buf[BUF_SIZE];
  101. uint8_t i, j;
  102. f->filter_buf[f->buf_index++] = raw;
  103. if (f->buf_index >= BUF_SIZE)
  104. {
  105. f->buf_index = 0;
  106. f->buffer_ready = 1;
  107. }
  108. if (!f->buffer_ready)
  109. {
  110. f->x_est = raw;
  111. f->p_est = KALMAN_INIT_P;
  112. f->lpf_out = raw;
  113. f->lpf_ready = 1;
  114. f->last_filtered = raw;
  115. return raw;
  116. }
  117. memcpy(temp_buf, f->filter_buf, sizeof(temp_buf));
  118. for (i = 0; i < BUF_SIZE - 1; i++)
  119. {
  120. for (j = 0; j < BUF_SIZE - i - 1; j++)
  121. {
  122. if (temp_buf[j] > temp_buf[j + 1])
  123. {
  124. float tmp = temp_buf[j];
  125. temp_buf[j] = temp_buf[j + 1];
  126. temp_buf[j + 1] = tmp;
  127. }
  128. }
  129. }
  130. float median_val = temp_buf[BUF_SIZE / 2];
  131. // 卡尔曼更新
  132. float x_pred = f->x_est;
  133. float p_pred = f->p_est + f->Q;
  134. float k_gain = p_pred / (p_pred + f->R);
  135. float x_cur = x_pred + k_gain * (median_val - x_pred);
  136. float p_cur = (1.0f - k_gain) * p_pred;
  137. f->x_est = x_cur;
  138. f->p_est = p_cur;
  139. // 一阶低通
  140. if (!f->lpf_ready)
  141. {
  142. f->lpf_out = x_cur;
  143. f->lpf_ready = 1;
  144. }
  145. f->lpf_out = LPF_ALPHA * x_cur + (1.0f - LPF_ALPHA) * f->lpf_out;
  146. // 仅保存上一帧输出,不再计算方差
  147. f->last_filtered = f->lpf_out;
  148. return f->lpf_out;
  149. }
  150. // 重置滤波全部状态
  151. void tof_filter_reset(void)
  152. {
  153. TOF_Channel_t *f = &tof_channels[0];
  154. memset(f->filter_buf, 0, sizeof(f->filter_buf));
  155. f->buf_index = 0;
  156. f->buffer_ready = 0;
  157. f->x_est = 0.0f;
  158. f->p_est = KALMAN_INIT_P;
  159. f->lpf_out = 0.0f;
  160. f->lpf_ready = 0;
  161. f->last_filtered = 0.0f;
  162. }
  163. // 初始化
  164. void tof_filter_init(uint8_t ch_num)
  165. {
  166. (void)ch_num; // 消除未使用警告
  167. tof_filter_reset();
  168. }
  169. // 输入原始数据,返回滤波结果(兼容旧接口,ch传0即可)
  170. float tof_filter_input_poll(uint8_t ch, float raw)
  171. {
  172. (void)ch; // 消除入参未使用警告
  173. if (G_STATIC_OT_SETTING_FLAG == 1)
  174. {
  175. return raw;
  176. }
  177. return filter_single_channel(raw);
  178. }
  179. void DiffToF2Flow(float dtof)
  180. {
  181. float TmpFloat;
  182. float apsr;
  183. double vol;
  184. TmpFloat = dtof * UsonicSpd * UsonicSpd * 0.00001f;
  185. apsr = bilinear_quad_apsr(TmpFloat, WaterTemp);
  186. vol = TmpFloat * apsr * pTdcItf->pipe_coe;
  187. pTdcItf->flow_vol(vol, TmpFloat);
  188. }
  189. void tof_isr_convert_tof_to_flow(void)
  190. {
  191. int16_t Tmp16;
  192. float TmpFloat;
  193. uint32_t Tu32;
  194. uint32_t ch = get_mux_ch();
  195. switch (TdcIntStep)
  196. {
  197. // case (0x00u):
  198. // Tu32 = (RTC_CntInt & 0x00000001u) ? TDC_CFG_FIRE_DOWN : TDC_CFG_FIRE_UP;
  199. // tdc_read_tof(TDC_CFG_DO_CKENA | Tu32);
  200. // // if(Tu32 == TDC_CFG_FIRE_UP)
  201. // // {
  202. // // LOG("ch-%d-0-U, %.6f\n", ch, TdcScale*TdcUToF[0]);
  203. // // }
  204. // // else
  205. // // {
  206. // // LOG("ch-%d-0-D, %.6f\n", ch, TdcScale*TdcDToF[0]);
  207. // // }
  208. // // LOG("ch-%d-0-U:%.6f-D:%.6f\n\n", ch, TdcScale*TdcUToF[0],TdcScale*TdcDToF[0]);
  209. // Tu32 = (RTC_CntInt & 0x00000001u) ? TDC_CFG_FIRE_UP : TDC_CFG_FIRE_DOWN;
  210. // tdc_start_tof(TDC_CFG_DO_CKDIS | Tu32);
  211. // TdcIntStep = 0x01u;
  212. // break;
  213. case (0x01u):
  214. // // RTC_CntInt奇数UP、偶数DOWN
  215. // Tu32 = (RTC_CntInt & 0x00000001u) ? TDC_CFG_FIRE_UP : TDC_CFG_FIRE_DOWN;
  216. // 根据RTC_CntInt设置校准、采集温度,读取飞行时间
  217. if ((RTC_CntInt & RTC_CNTMSK_CAL) == 0x0u)
  218. {
  219. // 间隔8秒进行一次校准
  220. tdc_read_tof(TDC_CFG_DO_CKENA);
  221. tdc_start_cal(TDC_CFG_DO_WREG | TDC_CFG_DO_CKDIS);
  222. if (tof_flag & TOF_FLAG_UNALGND_CHOP)
  223. {
  224. TdcIntStep = 0x03u;
  225. }
  226. else
  227. {
  228. TdcIntStep = 0x02u;
  229. }
  230. }
  231. else if ((RTC_CntInt & RTC_CNTMSK_TEMP) == 0x4u)
  232. {
  233. // 间隔4秒采集一次温度
  234. tdc_read_tof(TDC_CFG_DO_CKENA);
  235. tdc_start_temp(TDC_CFG_DO_WREG | TDC_CFG_DO_CKDIS);
  236. TdcIntStep = 0x04u;
  237. }
  238. else
  239. {
  240. // 读取飞行时间
  241. tdc_read_tof(TDC_CFG_DO_CKENA | TDC_CFG_DO_CKDIS);
  242. TdcIntStep = 0xFFu;
  243. }
  244. // LOG("ch-%d-1-U:%.6f-D:%.6f\n\n", ch, TdcScale*TdcUToF[0],TdcScale*TdcDToF[0]);
  245. // if(Tu32 == TDC_CFG_FIRE_UP)
  246. // {
  247. // LOG("ch-%d-1-U, %.6f\n\n", ch, TdcScale*TdcUToF[0]);
  248. // }
  249. // else
  250. // {
  251. // LOG("ch-%d-1-D, %.6f\n\n", ch, TdcScale*TdcDToF[0]);
  252. // }
  253. // 清反向计量标识
  254. pTdcItf->bw_flow_flag = 0;
  255. // 空管
  256. if (tof_flag & TOF_FLAG_BLANK_PIPE)
  257. {
  258. // 设置对应德通道为空管
  259. pTdcItf->set_blank(ch);
  260. // DiffTof from normal channel
  261. // 正常的通道进行计量
  262. if (pTdcItf->ch_bit_map ^ TdcItf.blank_flag)
  263. {
  264. DiffToF2Flow(DiffToF);
  265. SERPLOT_PRINT_4FLOAT_1PREAMBLE(DiffToF, UToFAvg, DToFAvg, CumFlow);
  266. }
  267. break;
  268. }
  269. else
  270. {
  271. // 指定通道清除空管
  272. pTdcItf->clr_blank(ch);
  273. }
  274. // 计算脉冲宽度
  275. Tmp16 = TdcUPwFw - TdcDPwFw;
  276. // 判断脉冲宽度有效性
  277. if (Tmp16 < (0 - TOF_PWFW_DIFF) || Tmp16 > TOF_PWFW_DIFF)
  278. {
  279. // 无效脉冲宽度
  280. tof_flag |= TOF_FLAG_UNPAIR_WAVE;
  281. CntErrEvent++;
  282. }
  283. else
  284. {
  285. // 有效脉冲宽度
  286. tof_flag &= ~TOF_FLAG_UNPAIR_WAVE;
  287. // 记录UP和DOWM平均飞行时间
  288. UToFAvg = TdcScale * TdcUToF[0];
  289. DToFAvg = TdcScale * TdcDToF[0];
  290. }
  291. // 判断offset有效性
  292. if (TdcFwOfst < TOF_OFST_LOW || TdcFwOfst > TOF_OFST_HIGH)
  293. {
  294. // out of range
  295. TdcFwOfst = (TOF_OFST_LOW + TOF_OFST_HIGH) / 2; // default offset
  296. }
  297. else if (tof_flag & TOF_FLAG_UNPAIR_WAVE)
  298. {
  299. // first wave for up and down is different
  300. TdcFwOfst += (TdcFwOfst <= (TOF_OFST_LOW + 3)) ? 2 : -2;
  301. }
  302. else if (TdcUPwFw < TOF_PWFW_LOW && TdcDPwFw < TOF_PWFW_LOW && TdcFwOfst > TOF_OFST_LOW)
  303. {
  304. TdcFwOfst -= 1;
  305. }
  306. else if (TdcUPwFw > TOF_PWFW_HIGH && TdcDPwFw > TOF_PWFW_HIGH && TdcFwOfst < TOF_OFST_HIGH)
  307. {
  308. TdcFwOfst += 1;
  309. }
  310. // 本次UP和DOWN飞行时间求和
  311. SumToF = UToFAvg + DToFAvg; // alomost fixed regardless of water speed
  312. // 本次飞行时间和与上次飞行时间和德差值在50内认为有效
  313. if (fabsf(SumToF - LastSumToF) < 50.0f)
  314. {
  315. // 计算飞行时间
  316. DiffToF = UToFAvg - DToFAvg - pTdcItf->path_skew[ch];
  317. // add by yuewei 20260325 低通平滑滤波
  318. // DiffToF = DiffToF * DIFF_TOFF_FILTER_ALPHA + (1 - DIFF_TOFF_FILTER_ALPHA) * DiffToF_LAST;
  319. // DiffToF = tof_filter(DiffToF);//20260429
  320. DiffToF = tof_filter_input_poll(ch, DiffToF);
  321. // LOG("ch%d, U=%.6f, D=%.6f\n", ch, UToFAvg, DToFAvg);
  322. // LOG("int_cnt=%d, step=%d, ch=%d, DiffToF=%.6f\n\n", int_cnt, get_tdc_int_step(), ch, DiffToF);
  323. }
  324. // 本次飞行时间和赋值给上次飞行时间和
  325. LastSumToF = SumToF;
  326. if (tof_state & (TOF_ST_METER | TOF_ST_CALIB))
  327. {
  328. DiffToFAvg += (DiffToF - DiffToFAvg) * (1.0f / 6);
  329. DiffToFAvg2 += (DiffToF - DiffToFAvg2) * (1.0f / 2);
  330. DiffToFAvg128 += (DiffToF - DiffToFAvg128) * (1.0f / 128);
  331. if (tof_flag & TOF_FLAG_VALID_FLOW)
  332. {
  333. if (fabsf(DiffToFAvg) < 0.35f)
  334. {
  335. tof_flag &= ~TOF_FLAG_VALID_FLOW;
  336. if (tof_state & TOF_ST_CALIB && CalibTime > CALIB_TIME_LTH)
  337. {
  338. tof_flag |= TOF_FLAG_CALIB_DONE;
  339. }
  340. }
  341. }
  342. else
  343. {
  344. // modified by yuewei 20260519,加入n值,始动流量
  345. // if (fabsf(DiffToFAvg) > 0.45f || fabsf(DiffToFAvg2) > 1.0f)
  346. if (fabsf(DiffToFAvg * 100.00f) > Paramx.n || fabsf(DiffToFAvg2) > 1.0f)
  347. {
  348. tof_flag |= TOF_FLAG_VALID_FLOW;
  349. if (tof_state & TOF_ST_CALIB)
  350. {
  351. tof_flag |= TOF_FLAG_CALIB_FLOW;
  352. CumFlow = 0;
  353. CalibTime = 0;
  354. CalibSpdLvl = 0;
  355. CalibTemp = 0;
  356. }
  357. }
  358. }
  359. // 是有效德流量
  360. if (tof_flag & TOF_FLAG_VALID_FLOW)
  361. {
  362. TmpFloat = DiffToF * UsonicSpd * UsonicSpd * 0.00001f;
  363. // 一次校准模式
  364. if (tof_state & TOF_ST_CALIB)
  365. {
  366. CumFlow += TmpFloat * pTdcItf->pipe_coe;
  367. pTdcItf->check_flow(CumFlow, TmpFloat, WaterTemp);
  368. if (tof_flag & TOF_FLAG_CALIB_FLOW)
  369. {
  370. if (DiffToFAvg2 > 0.5f)
  371. {
  372. CalibSpdLvl += TmpFloat;
  373. CalibTemp += WaterTemp;
  374. CalibTime++;
  375. }
  376. else
  377. {
  378. tof_flag &= ~TOF_FLAG_CALIB_FLOW;
  379. if (CalibTime > CALIB_TIME_LTH)
  380. {
  381. CalibSpdLvl /= CalibTime;
  382. CalibTemp /= CalibTime;
  383. tof_flag |= TOF_FLAG_CALIB_FALL;
  384. }
  385. }
  386. }
  387. }
  388. else
  389. {
  390. // 正常计量模式
  391. DiffToF2Flow(DiffToF);
  392. // DiffToF2Flow(DiffToFAvg);
  393. }
  394. }
  395. else
  396. {
  397. FlowVol = 0; // 始动流量切除时,瞬时流量清零yw2026-6-25
  398. }
  399. // 串口打印,功能未开启
  400. // SERPLOT_PRINT_4FLOAT_1PREAMBLE(DiffToF, UToFAvg, DToFAvg, DiffToFAvg);
  401. SERPLOT_PRINT_4FLOAT_1PREAMBLE(DiffToF, DiffToF * UsonicSpd * UsonicSpd * 0.00001f, DToFAvg, DiffToFAvg);
  402. }
  403. break;
  404. case (0x02u):
  405. tdc_read_cal(TDC_CFG_DO_CKENA);
  406. tdc_start_cal(TDC_CFG_DO_CKDIS);
  407. TdcIntStep = 0x03u;
  408. break;
  409. case (0x03u):
  410. tdc_read_cal(TDC_CFG_DO_CKENA | TDC_CFG_DO_CKDIS);
  411. TdcIntStep = 0xFFu;
  412. break;
  413. case (0x04u):
  414. tdc_read_temp(TDC_CFG_DO_CKENA | TDC_CFG_DO_CKDIS);
  415. TdcIntStep = 0xFFu;
  416. break;
  417. case (0x80u):
  418. TdcIntStep = 0xFFu;
  419. }
  420. }
  421. uint8_t temp_flag=0;
  422. void PORTD_F_IRQHandler(void)
  423. {
  424. uint32_t ClkEn;
  425. uint32_t ClkOff;
  426. rt_base_t level;
  427. uint16_t ISRB, ISRD, ISRE;
  428. temp_flag=1;
  429. // M0P_GPIO->PD_ICLR = (1u << 3);
  430. // M0P_GPIO->PD_ICLR = (1u << 4);
  431. // M0P_GPIO->PD_ICLR &= ~(1 << 3);
  432. // M0P_GPIO->PD_ICLR &= ~(1 << 4);
  433. // ISRD = M0P_GPIO->PD_STAT;
  434. // M0P_GPIO->PD_ICLR = ~ISRD;
  435. // return;
  436. ///////////add key isr handler wxl2026-5-22///////////////////
  437. extern uint8_t key_irq_handler(void);
  438. key_irq_handler();
  439. if (GpioGetEvents(GpioPortD, GpioBitMsk3) == 0) // not tdc int wxl2026-5-26
  440. {
  441. return;
  442. }
  443. // get_internal_time();
  444. level = rt_hw_interrupt_disable();
  445. ClkEn = M0P_SYSCTRL->PERI_CLKEN0;
  446. ClkOff = (~ClkEn) & (1u << 28); // check GPIO clk is off or not
  447. if (ClkOff)
  448. {
  449. M0P_SYSCTRL->PERI_CLKEN0 = ClkEn | (1u << 28); // set GPIO clk on
  450. }
  451. // ISRB = M0P_GPIO->PB_STAT;
  452. // M0P_GPIO->PB_ICLR = ~ISRB;
  453. // ISRE = M0P_GPIO->PE_STAT;
  454. // M0P_GPIO->PE_ICLR = ~ISRE;
  455. if (ClkOff)
  456. {
  457. M0P_SYSCTRL->PERI_CLKEN0 = ClkEn; // set back GPIO clk off
  458. }
  459. rt_hw_interrupt_enable(level);
  460. // 只处理 TDC 中断
  461. // if (ISRD & GpioBitMsk3)
  462. //{
  463. // 发送信号量,唤醒线程处理
  464. rt_sem_release(&tdc_isr_sem);
  465. // LOG("rt_sem_release\n");
  466. //}
  467. ISRD = M0P_GPIO->PD_STAT;
  468. M0P_GPIO->PD_ICLR = ~ISRD;
  469. // M0P_GPIO->PD_ICLR = (1u << 3);
  470. // G_TDC_DEEP_SLEEP = 0;
  471. }