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. 2018 Sep 7;20(9):684. doi: 10.3390/e20090684

Table 6.

Comparison of the performance of the learning models in full training mode—Monk’s Problem 2 dataset.

Learning Model Number of Rules Percent Correct TP Rate FP Rate Precision Recall F-Measure MCC ROC Area PRC Area RMSE
ENORA-ACC 7 75.87 0.759 0.370 0.753 0.759 0.745 0.436 0.695 0.680 0.491
ENORA-AUC 7 68.71 0.687 0.163 0.836 0.687 0.687 0.523 0.762 0.729 0.559
ENORA-RMSE 7 77.70 0.777 0.360 0.777 0.777 0.762 0.481 0.708 0.695 0.472
NSGA-II-ACC 7 68.38 0.684 0.588 0.704 0.684 0.597 0.203 0.548 0.580 0.562
NSGA-II-AUC 7 66.38 0.664 0.175 0.830 0.664 0.661 0.497 0.744 0.715 0.580
NSGA-II-RMSE 7 68.71 0.687 0.591 0.737 0.687 0.595 0.226 0.548 0.583 0.559
PART 47 94.01 0.940 0.087 0.940 0.940 0.940 0.866 0.980 0.979 0.218
JRip 1 65.72 0.657 0.657 0.432 0.657 0.521 0.000 0.500 0.549 0.475
OneR 1 65.72 0.657 0.657 0.432 0.657 0.521 0.000 0.500 0.549 0.585
ZeroR - 65.72 0.657 0.657 0.432 0.657 0.521 0.000 0.500 0.549 0.475