ClassFlowCNNGeneral.cpp 34 KB

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  1. #include "ClassFlowCNNGeneral.h"
  2. #include <math.h>
  3. #include <iomanip>
  4. #include <sys/types.h>
  5. #include <sstream> // std::stringstream
  6. #include "CTfLiteClass.h"
  7. #include "ClassLogFile.h"
  8. static const char* TAG = "flow_analog";
  9. bool debugdetailgeneral = false;
  10. ClassFlowCNNGeneral::ClassFlowCNNGeneral(ClassFlowAlignment *_flowalign, t_CNNType _cnntype) : ClassFlowImage(NULL, TAG)
  11. {
  12. string cnnmodelfile = "";
  13. modelxsize = 1;
  14. modelysize = 1;
  15. CNNGoodThreshold = 0.0;
  16. ListFlowControll = NULL;
  17. previousElement = NULL;
  18. SaveAllFiles = false;
  19. disabled = false;
  20. isLogImageSelect = false;
  21. CNNType = AutoDetect;
  22. CNNType = _cnntype;
  23. flowpostalignment = _flowalign;
  24. }
  25. string ClassFlowCNNGeneral::getReadout(int _analog = 0, bool _extendedResolution, int prev)
  26. {
  27. string result = "";
  28. if (GENERAL[_analog]->ROI.size() == 0)
  29. return result;
  30. if (CNNType == Analogue)
  31. {
  32. float zahl = GENERAL[_analog]->ROI[GENERAL[_analog]->ROI.size() - 1]->result_float;
  33. int ergebnis_nachkomma = ((int) floor(zahl * 10) + 10) % 10;
  34. prev = ZeigerEval(GENERAL[_analog]->ROI[GENERAL[_analog]->ROI.size() - 1]->result_float, prev);
  35. result = std::to_string(prev);
  36. if (_extendedResolution && (CNNType != Digital))
  37. result = result + std::to_string(ergebnis_nachkomma);
  38. for (int i = GENERAL[_analog]->ROI.size() - 2; i >= 0; --i)
  39. {
  40. prev = ZeigerEval(GENERAL[_analog]->ROI[i]->result_float, prev);
  41. result = std::to_string(prev) + result;
  42. }
  43. return result;
  44. }
  45. if (CNNType == Digital)
  46. {
  47. for (int i = 0; i < GENERAL[_analog]->ROI.size(); ++i)
  48. {
  49. if (GENERAL[_analog]->ROI[i]->result_klasse >= 10)
  50. result = result + "N";
  51. else
  52. result = result + std::to_string(GENERAL[_analog]->ROI[i]->result_klasse);
  53. }
  54. return result;
  55. }
  56. if ((CNNType == DoubleHyprid10) || (CNNType == Digital100))
  57. {
  58. float zahl = GENERAL[_analog]->ROI[GENERAL[_analog]->ROI.size() - 1]->result_float;
  59. if (zahl >= 0) // NaN?
  60. {
  61. if (_extendedResolution) // ist nur gesetzt, falls es die erste Ziffer ist (kein Analog vorher!)
  62. {
  63. int ergebnis_nachkomma = ((int) floor(zahl * 10)) % 10;
  64. int ergebnis_vorkomma = ((int) floor(zahl)) % 10;
  65. result = std::to_string(ergebnis_vorkomma) + std::to_string(ergebnis_nachkomma);
  66. prev = ergebnis_vorkomma;
  67. }
  68. else
  69. {
  70. prev = ZeigerEval(GENERAL[_analog]->ROI[GENERAL[_analog]->ROI.size() - 1]->result_float, prev);
  71. // prev = ZeigerEvalHybrid(GENERAL[_analog]->ROI[GENERAL[_analog]->ROI.size() - 1]->result_float, prev, prev);
  72. result = std::to_string(prev);
  73. }
  74. }
  75. else
  76. {
  77. result = "N";
  78. if (_extendedResolution && (CNNType != Digital))
  79. result = "NN";
  80. }
  81. for (int i = GENERAL[_analog]->ROI.size() - 2; i >= 0; --i)
  82. {
  83. if (GENERAL[_analog]->ROI[i]->result_float >= 0)
  84. {
  85. prev = ZeigerEvalHybrid(GENERAL[_analog]->ROI[i]->result_float, GENERAL[_analog]->ROI[i+1]->result_float, prev);
  86. result = std::to_string(prev) + result;
  87. }
  88. else
  89. {
  90. prev = -1;
  91. result = "N" + result;
  92. }
  93. }
  94. return result;
  95. }
  96. /*
  97. if (CNNType == Digital100)
  98. {
  99. int zif_akt = -1;
  100. float zahl = GENERAL[_analog]->ROI[GENERAL[_analog]->ROI.size() - 1]->result_float;
  101. if (zahl >= 0) // NaN?
  102. {
  103. if (_extendedResolution)
  104. {
  105. int ergebnis_nachkomma = ((int) floor(zahl * 10)) % 10;
  106. int ergebnis_vorkomma = ((int) floor(zahl)) % 10;
  107. result = std::to_string(ergebnis_vorkomma) + std::to_string(ergebnis_nachkomma);
  108. zif_akt = ergebnis_vorkomma;
  109. }
  110. else
  111. {
  112. zif_akt = ZeigerEvalHybrid(GENERAL[_analog]->ROI[GENERAL[_analog]->ROI.size() - 1]->result_float, -1, -1);
  113. result = std::to_string(zif_akt);
  114. }
  115. }
  116. else
  117. {
  118. result = "N";
  119. if (_extendedResolution && (CNNType != Digital))
  120. result = "NN";
  121. }
  122. for (int i = GENERAL[_analog]->ROI.size() - 2; i >= 0; --i)
  123. {
  124. if (GENERAL[_analog]->ROI[i]->result_float >= 0)
  125. {
  126. zif_akt = ZeigerEvalHybrid(GENERAL[_analog]->ROI[i]->result_float, GENERAL[_analog]->ROI[i+1]->result_float, zif_akt);
  127. result = std::to_string(zif_akt) + result;
  128. }
  129. else
  130. {
  131. zif_akt = -1;
  132. result = "N" + result;
  133. }
  134. }
  135. return result;
  136. }
  137. */
  138. return result;
  139. }
  140. int ClassFlowCNNGeneral::ZeigerEvalHybrid(float zahl, float zahl_vorgaenger, int eval_vorgaenger)
  141. {
  142. int ergebnis_nachkomma = ((int) floor(zahl * 10)) % 10;
  143. int ergebnis_vorkomma = ((int) floor(zahl) + 10) % 10;
  144. if (eval_vorgaenger < 0) // keine Vorzahl vorhanden !!! --> Runde die Zahl
  145. {
  146. if ((ergebnis_nachkomma <= 2) || (ergebnis_nachkomma >= 8)) // Band um die Ziffer --> Runden, da Ziffer im Rahmen Ungenauigkeit erreicht
  147. return ((int) round(zahl) + 10) % 10;
  148. else
  149. return ((int) trunc(zahl) + 10) % 10;
  150. }
  151. if ((zahl_vorgaenger >= 0.5 ) && (zahl_vorgaenger <= 9.5))
  152. {
  153. // kein Ziffernwechsel, da Vorkomma weit genug weg ist (0+/-0.5) --> zahl wird gerundet
  154. return ((int) round(zahl) + 10) % 10;
  155. }
  156. else
  157. {
  158. if (eval_vorgaenger <= 1) // Nulldurchgang hat stattgefunden (!Bewertung über Prev_value und nicht Zahl!) --> hier aufrunden (2.8 --> 3, aber auch 3.1 --> 3)
  159. {
  160. if (ergebnis_nachkomma > 5)
  161. return (ergebnis_vorkomma + 1) % 10;
  162. else
  163. return ergebnis_vorkomma;
  164. }
  165. else // bleibt nur >= 9.5 --> noch kein Nulldurchgang --> 2.8 --> 2, und 3.1 --> 2
  166. {
  167. if (ergebnis_nachkomma > 5)
  168. return ergebnis_vorkomma;
  169. else
  170. return (ergebnis_vorkomma - 1 + 10) % 10;
  171. }
  172. }
  173. return -1;
  174. /*
  175. if (zahl_vorgaenger > 9.2) // Ziffernwechsel beginnt
  176. {
  177. if (eval_vorgaenger == 0) // Wechsel hat schon stattgefunden
  178. {
  179. return ((int) round(zahl) + 10) % 10; // Annahme, dass die neue Zahl schon in der Nähe des Ziels ist
  180. }
  181. else
  182. {
  183. if (zahl_vorgaenger <= 9.5) // Wechsel startet gerade, aber beginnt erst
  184. {
  185. if ((ergebnis_nachkomma <= 2) || (ergebnis_nachkomma >= 8)) // Band um die Ziffer --> Runden, da Ziffer im Rahmen Ungenauigkeit erreicht
  186. return ((int) round(zahl) + 10) % 10;
  187. else
  188. return ((int) trunc(zahl) + 10) % 10;
  189. }
  190. else
  191. {
  192. return ((int) trunc(zahl) + 10) % 10; // Wechsel schon weiter fortgeschritten, d.h. über 2 als Nachkomma
  193. }
  194. }
  195. }
  196. if ((ergebnis_nachkomma <= 2) || (ergebnis_nachkomma >= 8)) // Band um die Ziffer --> Runden, da Ziffer im Rahmen Ungenauigkeit erreicht
  197. return ((int) round(zahl) + 10) % 10;
  198. return ((int) trunc(zahl) + 10) % 10;
  199. */
  200. }
  201. int ClassFlowCNNGeneral::ZeigerEval(float zahl, int ziffer_vorgaenger)
  202. {
  203. int ergebnis_nachkomma = ((int) floor(zahl * 10) + 10) % 10;
  204. int ergebnis_vorkomma = ((int) floor(zahl) + 10) % 10;
  205. int ergebnis, ergebnis_rating;
  206. if (ziffer_vorgaenger == -1)
  207. return ergebnis_vorkomma % 10;
  208. // Ist die aktuelle Stelle schon umgesprungen und die Vorstelle noch nicht?
  209. // Akt.: 2.1, Vorstelle = 0.9 => 1.9
  210. ergebnis_rating = ergebnis_nachkomma - ziffer_vorgaenger;
  211. // Keine Ahnung was der Code macht. Bei Übergang Analog zu Digital verursacht er
  212. // eine -1 auf der kleinsten Digitalstelle.
  213. /*if (ergebnis_nachkomma >= 5)
  214. ergebnis_rating-=5;
  215. else
  216. ergebnis_rating+=5;*/
  217. ergebnis = (int) round(zahl);
  218. if (ergebnis_rating < 0)
  219. ergebnis-=1;
  220. if (ergebnis == -1)
  221. ergebnis+=10;
  222. ergebnis = (ergebnis + 10) % 10;
  223. return ergebnis;
  224. }
  225. bool ClassFlowCNNGeneral::ReadParameter(FILE* pfile, string& aktparamgraph)
  226. {
  227. std::vector<string> zerlegt;
  228. aktparamgraph = trim(aktparamgraph);
  229. if (aktparamgraph.size() == 0)
  230. if (!this->GetNextParagraph(pfile, aktparamgraph))
  231. return false;
  232. if ((toUpper(aktparamgraph) != "[ANALOG]") && (toUpper(aktparamgraph) != ";[ANALOG]")
  233. && (toUpper(aktparamgraph) != "[DIGIT]") && (toUpper(aktparamgraph) != ";[DIGIT]")
  234. && (toUpper(aktparamgraph) != "[DIGITS]") && (toUpper(aktparamgraph) != ";[DIGITS]")
  235. ) // Paragraph passt nicht
  236. return false;
  237. if (aktparamgraph[0] == ';')
  238. {
  239. disabled = true;
  240. while (getNextLine(pfile, &aktparamgraph) && !isNewParagraph(aktparamgraph));
  241. printf("[Analog/Digit] is disabled !!!\n");
  242. return true;
  243. }
  244. while (this->getNextLine(pfile, &aktparamgraph) && !this->isNewParagraph(aktparamgraph))
  245. {
  246. zerlegt = this->ZerlegeZeile(aktparamgraph);
  247. if ((toUpper(zerlegt[0]) == "LOGIMAGELOCATION") && (zerlegt.size() > 1))
  248. {
  249. this->LogImageLocation = "/sdcard" + zerlegt[1];
  250. this->isLogImage = true;
  251. }
  252. if ((toUpper(zerlegt[0]) == "LOGIMAGESELECT") && (zerlegt.size() > 1))
  253. {
  254. LogImageSelect = zerlegt[1];
  255. isLogImageSelect = true;
  256. }
  257. if ((toUpper(zerlegt[0]) == "LOGFILERETENTIONINDAYS") && (zerlegt.size() > 1))
  258. {
  259. this->logfileRetentionInDays = std::stoi(zerlegt[1]);
  260. }
  261. // if ((toUpper(zerlegt[0]) == "MODELTYPE") && (zerlegt.size() > 1))
  262. // {
  263. // if (toUpper(zerlegt[1]) == "DIGITHYPRID")
  264. // CNNType = DigitalHyprid;
  265. // }
  266. if ((toUpper(zerlegt[0]) == "MODEL") && (zerlegt.size() > 1))
  267. {
  268. this->cnnmodelfile = zerlegt[1];
  269. }
  270. if ((toUpper(zerlegt[0]) == "CNNGOODTHRESHOLD") && (zerlegt.size() > 1))
  271. {
  272. CNNGoodThreshold = std::stof(zerlegt[1]);
  273. }
  274. if (zerlegt.size() >= 5)
  275. {
  276. general* _analog = GetGENERAL(zerlegt[0], true);
  277. roi* neuroi = _analog->ROI[_analog->ROI.size()-1];
  278. neuroi->posx = std::stoi(zerlegt[1]);
  279. neuroi->posy = std::stoi(zerlegt[2]);
  280. neuroi->deltax = std::stoi(zerlegt[3]);
  281. neuroi->deltay = std::stoi(zerlegt[4]);
  282. neuroi->result_float = -1;
  283. neuroi->image = NULL;
  284. neuroi->image_org = NULL;
  285. }
  286. if ((toUpper(zerlegt[0]) == "SAVEALLFILES") && (zerlegt.size() > 1))
  287. {
  288. if (toUpper(zerlegt[1]) == "TRUE")
  289. SaveAllFiles = true;
  290. }
  291. }
  292. if (!getNetworkParameter())
  293. return false;
  294. for (int _ana = 0; _ana < GENERAL.size(); ++_ana)
  295. for (int i = 0; i < GENERAL[_ana]->ROI.size(); ++i)
  296. {
  297. GENERAL[_ana]->ROI[i]->image = new CImageBasis(modelxsize, modelysize, modelchannel);
  298. GENERAL[_ana]->ROI[i]->image_org = new CImageBasis(GENERAL[_ana]->ROI[i]->deltax, GENERAL[_ana]->ROI[i]->deltay, 3);
  299. }
  300. return true;
  301. }
  302. general* ClassFlowCNNGeneral::FindGENERAL(string _name_number)
  303. {
  304. for (int i = 0; i < GENERAL.size(); ++i)
  305. if (GENERAL[i]->name == _name_number)
  306. return GENERAL[i];
  307. return NULL;
  308. }
  309. general* ClassFlowCNNGeneral::GetGENERAL(string _name, bool _create = true)
  310. {
  311. string _analog, _roi;
  312. int _pospunkt = _name.find_first_of(".");
  313. if (_pospunkt > -1)
  314. {
  315. _analog = _name.substr(0, _pospunkt);
  316. _roi = _name.substr(_pospunkt+1, _name.length() - _pospunkt - 1);
  317. }
  318. else
  319. {
  320. _analog = "default";
  321. _roi = _name;
  322. }
  323. general *_ret = NULL;
  324. for (int i = 0; i < GENERAL.size(); ++i)
  325. if (GENERAL[i]->name == _analog)
  326. _ret = GENERAL[i];
  327. if (!_create) // nicht gefunden und soll auch nicht erzeugt werden
  328. return _ret;
  329. if (_ret == NULL)
  330. {
  331. _ret = new general;
  332. _ret->name = _analog;
  333. GENERAL.push_back(_ret);
  334. }
  335. roi* neuroi = new roi;
  336. neuroi->name = _roi;
  337. _ret->ROI.push_back(neuroi);
  338. printf("GetGENERAL - GENERAL %s - roi %s\n", _analog.c_str(), _roi.c_str());
  339. return _ret;
  340. }
  341. string ClassFlowCNNGeneral::getHTMLSingleStep(string host)
  342. {
  343. string result, zw;
  344. std::vector<HTMLInfo*> htmlinfo;
  345. result = "<p>Found ROIs: </p> <p><img src=\"" + host + "/img_tmp/alg_roi.jpg\"></p>\n";
  346. result = result + "Analog Pointers: <p> ";
  347. htmlinfo = GetHTMLInfo();
  348. for (int i = 0; i < htmlinfo.size(); ++i)
  349. {
  350. std::stringstream stream;
  351. stream << std::fixed << std::setprecision(1) << htmlinfo[i]->val;
  352. zw = stream.str();
  353. result = result + "<img src=\"" + host + "/img_tmp/" + htmlinfo[i]->filename + "\"> " + zw;
  354. delete htmlinfo[i];
  355. }
  356. htmlinfo.clear();
  357. return result;
  358. }
  359. bool ClassFlowCNNGeneral::doFlow(string time)
  360. {
  361. if (disabled)
  362. return true;
  363. if (!doAlignAndCut(time)){
  364. return false;
  365. };
  366. if (debugdetailgeneral) LogFile.WriteToFile("ClassFlowCNNGeneral::doFlow nach Alignment");
  367. doNeuralNetwork(time);
  368. RemoveOldLogs();
  369. return true;
  370. }
  371. bool ClassFlowCNNGeneral::doAlignAndCut(string time)
  372. {
  373. if (disabled)
  374. return true;
  375. CAlignAndCutImage *caic = flowpostalignment->GetAlignAndCutImage();
  376. for (int _ana = 0; _ana < GENERAL.size(); ++_ana)
  377. for (int i = 0; i < GENERAL[_ana]->ROI.size(); ++i)
  378. {
  379. printf("General %d - Align&Cut\n", i);
  380. caic->CutAndSave(GENERAL[_ana]->ROI[i]->posx, GENERAL[_ana]->ROI[i]->posy, GENERAL[_ana]->ROI[i]->deltax, GENERAL[_ana]->ROI[i]->deltay, GENERAL[_ana]->ROI[i]->image_org);
  381. if (SaveAllFiles)
  382. {
  383. if (GENERAL[_ana]->name == "default")
  384. GENERAL[_ana]->ROI[i]->image_org->SaveToFile(FormatFileName("/sdcard/img_tmp/" + GENERAL[_ana]->ROI[i]->name + ".jpg"));
  385. else
  386. GENERAL[_ana]->ROI[i]->image_org->SaveToFile(FormatFileName("/sdcard/img_tmp/" + GENERAL[_ana]->name + "_" + GENERAL[_ana]->ROI[i]->name + ".jpg"));
  387. }
  388. GENERAL[_ana]->ROI[i]->image_org->Resize(modelxsize, modelysize, GENERAL[_ana]->ROI[i]->image);
  389. if (SaveAllFiles)
  390. {
  391. if (GENERAL[_ana]->name == "default")
  392. GENERAL[_ana]->ROI[i]->image->SaveToFile(FormatFileName("/sdcard/img_tmp/" + GENERAL[_ana]->ROI[i]->name + ".bmp"));
  393. else
  394. GENERAL[_ana]->ROI[i]->image->SaveToFile(FormatFileName("/sdcard/img_tmp/" + GENERAL[_ana]->name + "_" + GENERAL[_ana]->ROI[i]->name + ".bmp"));
  395. }
  396. }
  397. return true;
  398. }
  399. void ClassFlowCNNGeneral::DrawROI(CImageBasis *_zw)
  400. {
  401. if (CNNType == Analogue)
  402. {
  403. int r = 0;
  404. int g = 255;
  405. int b = 0;
  406. for (int _ana = 0; _ana < GENERAL.size(); ++_ana)
  407. for (int i = 0; i < GENERAL[_ana]->ROI.size(); ++i)
  408. {
  409. _zw->drawRect(GENERAL[_ana]->ROI[i]->posx, GENERAL[_ana]->ROI[i]->posy, GENERAL[_ana]->ROI[i]->deltax, GENERAL[_ana]->ROI[i]->deltay, r, g, b, 1);
  410. _zw->drawEllipse( (int) (GENERAL[_ana]->ROI[i]->posx + GENERAL[_ana]->ROI[i]->deltax/2), (int) (GENERAL[_ana]->ROI[i]->posy + GENERAL[_ana]->ROI[i]->deltay/2), (int) (GENERAL[_ana]->ROI[i]->deltax/2), (int) (GENERAL[_ana]->ROI[i]->deltay/2), r, g, b, 2);
  411. _zw->drawLine((int) (GENERAL[_ana]->ROI[i]->posx + GENERAL[_ana]->ROI[i]->deltax/2), (int) GENERAL[_ana]->ROI[i]->posy, (int) (GENERAL[_ana]->ROI[i]->posx + GENERAL[_ana]->ROI[i]->deltax/2), (int) (GENERAL[_ana]->ROI[i]->posy + GENERAL[_ana]->ROI[i]->deltay), r, g, b, 2);
  412. _zw->drawLine((int) GENERAL[_ana]->ROI[i]->posx, (int) (GENERAL[_ana]->ROI[i]->posy + GENERAL[_ana]->ROI[i]->deltay/2), (int) GENERAL[_ana]->ROI[i]->posx + GENERAL[_ana]->ROI[i]->deltax, (int) (GENERAL[_ana]->ROI[i]->posy + GENERAL[_ana]->ROI[i]->deltay/2), r, g, b, 2);
  413. }
  414. }
  415. else
  416. {
  417. for (int _dig = 0; _dig < GENERAL.size(); ++_dig)
  418. for (int i = 0; i < GENERAL[_dig]->ROI.size(); ++i)
  419. _zw->drawRect(GENERAL[_dig]->ROI[i]->posx, GENERAL[_dig]->ROI[i]->posy, GENERAL[_dig]->ROI[i]->deltax, GENERAL[_dig]->ROI[i]->deltay, 0, 0, (255 - _dig*100), 2);
  420. }
  421. }
  422. bool ClassFlowCNNGeneral::getNetworkParameter()
  423. {
  424. if (disabled)
  425. return true;
  426. CTfLiteClass *tflite = new CTfLiteClass;
  427. string zwcnn = "/sdcard" + cnnmodelfile;
  428. zwcnn = FormatFileName(zwcnn);
  429. printf(zwcnn.c_str());printf("\n");
  430. if (!tflite->LoadModel(zwcnn)) {
  431. printf("Can't read model file /sdcard%s\n", cnnmodelfile.c_str());
  432. LogFile.WriteToFile("Cannot load model");
  433. delete tflite;
  434. return false;
  435. }
  436. tflite->MakeAllocate();
  437. if (CNNType == AutoDetect)
  438. {
  439. tflite->GetInputDimension(false);
  440. modelxsize = tflite->ReadInputDimenstion(0);
  441. modelysize = tflite->ReadInputDimenstion(1);
  442. modelchannel = tflite->ReadInputDimenstion(2);
  443. int _anzoutputdimensions = tflite->GetAnzOutPut();
  444. switch (_anzoutputdimensions)
  445. {
  446. case 2:
  447. CNNType = Analogue;
  448. printf("TFlite-Type set to Analogue\n");
  449. break;
  450. case 10:
  451. CNNType = DoubleHyprid10;
  452. printf("TFlite-Type set to DoubleHyprid10\n");
  453. break;
  454. case 11:
  455. CNNType = Digital;
  456. printf("TFlite-Type set to Digital\n");
  457. break;
  458. case 20:
  459. CNNType = DigitalHyprid10;
  460. printf("TFlite-Type set to DigitalHyprid10\n");
  461. break;
  462. // case 22:
  463. // CNNType = DigitalHyprid;
  464. // printf("TFlite-Type set to DigitalHyprid\n");
  465. // break;
  466. case 100:
  467. CNNType = Digital100;
  468. printf("TFlite-Type set to Digital\n");
  469. break;
  470. default:
  471. printf("ERROR ERROR ERROR - tflite passt nicht zur Firmware - ERROR ERROR ERROR\n");
  472. }
  473. }
  474. delete tflite;
  475. return true;
  476. }
  477. bool ClassFlowCNNGeneral::doNeuralNetwork(string time)
  478. {
  479. if (disabled)
  480. return true;
  481. string logPath = CreateLogFolder(time);
  482. CTfLiteClass *tflite = new CTfLiteClass;
  483. string zwcnn = "/sdcard" + cnnmodelfile;
  484. zwcnn = FormatFileName(zwcnn);
  485. printf(zwcnn.c_str());printf("\n");
  486. if (!tflite->LoadModel(zwcnn)) {
  487. printf("Can't read model file /sdcard%s\n", cnnmodelfile.c_str());
  488. LogFile.WriteToFile("Cannot load model");
  489. delete tflite;
  490. return false;
  491. }
  492. tflite->MakeAllocate();
  493. for (int _ana = 0; _ana < GENERAL.size(); ++_ana)
  494. {
  495. for (int i = 0; i < GENERAL[_ana]->ROI.size(); ++i)
  496. {
  497. printf("General %d - TfLite\n", i);
  498. switch (CNNType) {
  499. case Analogue:
  500. {
  501. float f1, f2;
  502. f1 = 0; f2 = 0;
  503. tflite->LoadInputImageBasis(GENERAL[_ana]->ROI[i]->image);
  504. tflite->Invoke();
  505. if (debugdetailgeneral) LogFile.WriteToFile("Nach Invoke");
  506. f1 = tflite->GetOutputValue(0);
  507. f2 = tflite->GetOutputValue(1);
  508. float result = fmod(atan2(f1, f2) / (M_PI * 2) + 2, 1);
  509. GENERAL[_ana]->ROI[i]->result_float = result * 10;
  510. printf("Result General(Analog)%i: %f\n", i, GENERAL[_ana]->ROI[i]->result_float);
  511. if (isLogImage)
  512. LogImage(logPath, GENERAL[_ana]->ROI[i]->name, &GENERAL[_ana]->ROI[i]->result_float, NULL, time, GENERAL[_ana]->ROI[i]->image_org);
  513. } break;
  514. case Digital:
  515. {
  516. GENERAL[_ana]->ROI[i]->result_klasse = 0;
  517. GENERAL[_ana]->ROI[i]->result_klasse = tflite->GetClassFromImageBasis(GENERAL[_ana]->ROI[i]->image);
  518. printf("Result General(Digit)%i: %d\n", i, GENERAL[_ana]->ROI[i]->result_klasse);
  519. if (isLogImage)
  520. {
  521. string _imagename = GENERAL[_ana]->name + "_" + GENERAL[_ana]->ROI[i]->name;
  522. if (isLogImageSelect)
  523. {
  524. if (LogImageSelect.find(GENERAL[_ana]->ROI[i]->name) != std::string::npos)
  525. LogImage(logPath, _imagename, NULL, &GENERAL[_ana]->ROI[i]->result_klasse, time, GENERAL[_ana]->ROI[i]->image_org);
  526. }
  527. else
  528. {
  529. LogImage(logPath, _imagename, NULL, &GENERAL[_ana]->ROI[i]->result_klasse, time, GENERAL[_ana]->ROI[i]->image_org);
  530. }
  531. }
  532. } break;
  533. /*
  534. case DigitalHyprid:
  535. {
  536. int _num, _nachkomma;
  537. tflite->LoadInputImageBasis(GENERAL[_ana]->ROI[i]->image);
  538. tflite->Invoke();
  539. if (debugdetailgeneral) LogFile.WriteToFile("Nach Invoke");
  540. _num = tflite->GetOutClassification(0, 10);
  541. _nachkomma = tflite->GetOutClassification(11, 21);
  542. string _zwres = "Nach Invoke - Nummer: " + to_string(_num) + " Nachkomma: " + to_string(_nachkomma);
  543. if (debugdetailgeneral) LogFile.WriteToFile(_zwres);
  544. if ((_num == 10) || (_nachkomma == 10)) // NaN detektiert
  545. GENERAL[_ana]->ROI[i]->result_float = -1;
  546. else
  547. GENERAL[_ana]->ROI[i]->result_float = fmod((double) _num + (((double)_nachkomma)-5)/10 + (double) 10, 10);
  548. printf("Result General(DigitalHyprid)%i: %f\n", i, GENERAL[_ana]->ROI[i]->result_float);
  549. _zwres = "Result General(DigitalHyprid)" + to_string(i) + ": " + to_string(GENERAL[_ana]->ROI[i]->result_float);
  550. if (debugdetailgeneral) LogFile.WriteToFile(_zwres);
  551. if (isLogImage)
  552. {
  553. string _imagename = GENERAL[_ana]->name + "_" + GENERAL[_ana]->ROI[i]->name;
  554. if (isLogImageSelect)
  555. {
  556. if (LogImageSelect.find(GENERAL[_ana]->ROI[i]->name) != std::string::npos)
  557. LogImage(logPath, _imagename, NULL, &GENERAL[_ana]->ROI[i]->result_klasse, time, GENERAL[_ana]->ROI[i]->image_org);
  558. }
  559. else
  560. {
  561. LogImage(logPath, _imagename, NULL, &GENERAL[_ana]->ROI[i]->result_klasse, time, GENERAL[_ana]->ROI[i]->image_org);
  562. }
  563. }
  564. } break;
  565. */
  566. case DigitalHyprid10:
  567. {
  568. int _num, _nachkomma;
  569. tflite->LoadInputImageBasis(GENERAL[_ana]->ROI[i]->image);
  570. tflite->Invoke();
  571. if (debugdetailgeneral) LogFile.WriteToFile("Nach Invoke");
  572. _num = tflite->GetOutClassification(0, 9);
  573. _nachkomma = tflite->GetOutClassification(10, 19);
  574. string _zwres = "Nach Invoke - Nummer: " + to_string(_num) + " Nachkomma: " + to_string(_nachkomma);
  575. if (debugdetailgeneral) LogFile.WriteToFile(_zwres);
  576. GENERAL[_ana]->ROI[i]->result_float = fmod((double) _num + (((double)_nachkomma)-5)/10 + (double) 10, 10);
  577. printf("Result General(DigitalHyprid)%i: %f\n", i, GENERAL[_ana]->ROI[i]->result_float);
  578. _zwres = "Result General(DigitalHyprid)" + to_string(i) + ": " + to_string(GENERAL[_ana]->ROI[i]->result_float);
  579. if (debugdetailgeneral) LogFile.WriteToFile(_zwres);
  580. if (isLogImage)
  581. {
  582. string _imagename = GENERAL[_ana]->name + "_" + GENERAL[_ana]->ROI[i]->name;
  583. if (isLogImageSelect)
  584. {
  585. if (LogImageSelect.find(GENERAL[_ana]->ROI[i]->name) != std::string::npos)
  586. LogImage(logPath, _imagename, NULL, &GENERAL[_ana]->ROI[i]->result_klasse, time, GENERAL[_ana]->ROI[i]->image_org);
  587. }
  588. else
  589. {
  590. LogImage(logPath, _imagename, NULL, &GENERAL[_ana]->ROI[i]->result_klasse, time, GENERAL[_ana]->ROI[i]->image_org);
  591. }
  592. }
  593. } break;
  594. case DoubleHyprid10:
  595. {
  596. int _num, _numplus, _numminus;
  597. float _val, _valplus, _valminus;
  598. float _fit;
  599. float _result_save_file;
  600. tflite->LoadInputImageBasis(GENERAL[_ana]->ROI[i]->image);
  601. tflite->Invoke();
  602. if (debugdetailgeneral) LogFile.WriteToFile("Nach Invoke");
  603. _num = tflite->GetOutClassification(0, 9);
  604. _numplus = (_num + 1) % 10;
  605. _numminus = (_num - 1 + 10) % 10;
  606. _val = tflite->GetOutputValue(_num);
  607. _valplus = tflite->GetOutputValue(_numplus);
  608. _valminus = tflite->GetOutputValue(_numminus);
  609. float result = _num;
  610. if (_valplus > _valminus)
  611. {
  612. result = result + _valplus / (_valplus + _val);
  613. _fit = _val + _valplus;
  614. }
  615. else
  616. {
  617. result = result - _valminus / (_val + _valminus);
  618. _fit = _val + _valminus;
  619. }
  620. if (result > 10)
  621. result = result - 10;
  622. if (result < 0)
  623. result = result + 10;
  624. string zw = "_num (p, m): " + to_string(_num) + " " + to_string(_numplus) + " " + to_string(_numminus);
  625. zw = zw + " _val (p, m): " + to_string(_val) + " " + to_string(_valplus) + " " + to_string(_valminus);
  626. zw = zw + " result: " + to_string(result) + " _fit: " + to_string(_fit);
  627. printf("details cnn: %s\n", zw.c_str());
  628. LogFile.WriteToFile(zw);
  629. _result_save_file = result;
  630. if (_fit < CNNGoodThreshold)
  631. {
  632. GENERAL[_ana]->ROI[i]->isReject = true;
  633. result = -1;
  634. _result_save_file+= 100; // Für den Fall, dass fit nicht ausreichend, soll trotzdem das Ergebnis mit "-10x.y" abgespeichert werden.
  635. string zw = "Value Rejected due to Threshold (Fit: " + to_string(_fit) + "Threshold: " + to_string(CNNGoodThreshold);
  636. printf("Value Rejected due to Threshold (Fit: %f, Threshold: %f\n", _fit, CNNGoodThreshold);
  637. LogFile.WriteToFile(zw);
  638. }
  639. else
  640. {
  641. GENERAL[_ana]->ROI[i]->isReject = false;
  642. }
  643. GENERAL[_ana]->ROI[i]->result_float = result;
  644. printf("Result General(Analog)%i: %f\n", i, GENERAL[_ana]->ROI[i]->result_float);
  645. if (isLogImage)
  646. {
  647. string _imagename = GENERAL[_ana]->name + "_" + GENERAL[_ana]->ROI[i]->name;
  648. if (isLogImageSelect)
  649. {
  650. if (LogImageSelect.find(GENERAL[_ana]->ROI[i]->name) != std::string::npos)
  651. LogImage(logPath, _imagename, &_result_save_file, NULL, time, GENERAL[_ana]->ROI[i]->image_org);
  652. }
  653. else
  654. {
  655. LogImage(logPath, _imagename, &_result_save_file, NULL, time, GENERAL[_ana]->ROI[i]->image_org);
  656. }
  657. }
  658. }
  659. break;
  660. case Digital100:
  661. {
  662. int _num;
  663. float _fit;
  664. float _result_save_file;
  665. tflite->LoadInputImageBasis(GENERAL[_ana]->ROI[i]->image);
  666. tflite->Invoke();
  667. _num = tflite->GetOutClassification();
  668. _fit = tflite->GetOutputValue(_num);
  669. GENERAL[_ana]->ROI[i]->result_float = (float)_num / 10.0;
  670. _result_save_file = GENERAL[_ana]->ROI[i]->result_float;
  671. if (_fit < CNNGoodThreshold)
  672. {
  673. GENERAL[_ana]->ROI[i]->isReject = true;
  674. GENERAL[_ana]->ROI[i]->result_float = -1;
  675. _result_save_file+= 100; // Für den Fall, dass fit nicht ausreichend, soll trotzdem das Ergebnis mit "-10x.y" abgespeichert werden.
  676. string zw = "Value Rejected due to Threshold (Fit: " + to_string(_fit) + "Threshold: " + to_string(CNNGoodThreshold);
  677. printf("Value Rejected due to Threshold (Fit: %f, Threshold: %f\n", _fit, CNNGoodThreshold);
  678. LogFile.WriteToFile(zw);
  679. }
  680. else
  681. {
  682. GENERAL[_ana]->ROI[i]->isReject = false;
  683. }
  684. printf("Result General(Analog)%i: %f\n", i, GENERAL[_ana]->ROI[i]->result_float);
  685. if (isLogImage)
  686. {
  687. string _imagename = GENERAL[_ana]->name + "_" + GENERAL[_ana]->ROI[i]->name;
  688. if (isLogImageSelect)
  689. {
  690. if (LogImageSelect.find(GENERAL[_ana]->ROI[i]->name) != std::string::npos)
  691. LogImage(logPath, _imagename, &_result_save_file, NULL, time, GENERAL[_ana]->ROI[i]->image_org);
  692. }
  693. else
  694. {
  695. LogImage(logPath, _imagename, &_result_save_file, NULL, time, GENERAL[_ana]->ROI[i]->image_org);
  696. }
  697. }
  698. } break;
  699. default:
  700. break;
  701. }
  702. }
  703. }
  704. delete tflite;
  705. return true;
  706. }
  707. bool ClassFlowCNNGeneral::isExtendedResolution(int _number)
  708. {
  709. if (!(CNNType == Digital))
  710. return true;
  711. return false;
  712. }
  713. std::vector<HTMLInfo*> ClassFlowCNNGeneral::GetHTMLInfo()
  714. {
  715. std::vector<HTMLInfo*> result;
  716. for (int _ana = 0; _ana < GENERAL.size(); ++_ana)
  717. for (int i = 0; i < GENERAL[_ana]->ROI.size(); ++i)
  718. {
  719. if (GENERAL[_ana]->name == "default")
  720. GENERAL[_ana]->ROI[i]->image->SaveToFile(FormatFileName("/sdcard/img_tmp/" + GENERAL[_ana]->ROI[i]->name + ".bmp"));
  721. else
  722. GENERAL[_ana]->ROI[i]->image->SaveToFile(FormatFileName("/sdcard/img_tmp/" + GENERAL[_ana]->name + "_" + GENERAL[_ana]->ROI[i]->name + ".bmp"));
  723. HTMLInfo *zw = new HTMLInfo;
  724. if (GENERAL[_ana]->name == "default")
  725. {
  726. zw->filename = GENERAL[_ana]->ROI[i]->name + ".bmp";
  727. zw->filename_org = GENERAL[_ana]->ROI[i]->name + ".jpg";
  728. }
  729. else
  730. {
  731. zw->filename = GENERAL[_ana]->name + "_" + GENERAL[_ana]->ROI[i]->name + ".bmp";
  732. zw->filename_org = GENERAL[_ana]->name + "_" + GENERAL[_ana]->ROI[i]->name + ".jpg";
  733. }
  734. if (CNNType == Digital)
  735. zw->val = GENERAL[_ana]->ROI[i]->result_klasse;
  736. else
  737. zw->val = GENERAL[_ana]->ROI[i]->result_float;
  738. zw->image = GENERAL[_ana]->ROI[i]->image;
  739. zw->image_org = GENERAL[_ana]->ROI[i]->image_org;
  740. result.push_back(zw);
  741. }
  742. return result;
  743. }
  744. int ClassFlowCNNGeneral::getAnzahlGENERAL()
  745. {
  746. return GENERAL.size();
  747. }
  748. string ClassFlowCNNGeneral::getNameGENERAL(int _analog)
  749. {
  750. if (_analog < GENERAL.size())
  751. return GENERAL[_analog]->name;
  752. return "GENERAL DOES NOT EXIST";
  753. }
  754. general* ClassFlowCNNGeneral::GetGENERAL(int _analog)
  755. {
  756. if (_analog < GENERAL.size())
  757. return GENERAL[_analog];
  758. return NULL;
  759. }
  760. void ClassFlowCNNGeneral::UpdateNameNumbers(std::vector<std::string> *_name_numbers)
  761. {
  762. for (int _dig = 0; _dig < GENERAL.size(); _dig++)
  763. {
  764. std::string _name = GENERAL[_dig]->name;
  765. bool found = false;
  766. for (int i = 0; i < (*_name_numbers).size(); ++i)
  767. {
  768. if ((*_name_numbers)[i] == _name)
  769. found = true;
  770. }
  771. if (!found)
  772. (*_name_numbers).push_back(_name);
  773. }
  774. }