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. 2021 Mar 30;22(7):3589. doi: 10.3390/ijms22073589

Table 5.

The prediction results compared with those of other methods on the training dataset.

Layer Method Acc Sn Sp MCC
First Layer
(Enhancer Identification)
iEnhancer-2L [19] 0.769 0.781 0.759 0.540
iEnhancer-PsedeKNC [20] 0.768 0.773 0.763 0.540
EnhancerPred [21] 0.732 0.726 0.738 0.464
iEnhancer-EL [22] 0.780 0.757 0.804 0.561
iEnhancer-5Step [23] 0.823 0.811 0.835 0.650
iEnhancer-ECNN [24] 0.769 0.785 0.752 0.537
iEnhancer-CNN [25] 0.806 0.759 0.889 0.693
iEnhancer-XG [26] 0.811 0.757 0.865 0.627
iEnhancer-GAN [This Study] 0.951 0.951 0.951 0.902
Second Layer
(Enhancer Strength Identification)
iEnhancer-2L [19] 0.619 0.622 0.618 0.240
iEnhancer-PsedeKNC [20] 0.634 0.626 0.644 0.270
EnhancerPred [21] 0.621 0.627 0.615 0.241
iEnhancer-EL [22] 0.650 0.690 0.611 0.315
iEnhancer-5Step [23] 0.681 0.753 0.608 0.370
iEnhancer-ECNN [24] 0.678 0.791 0.564 0.368
iEnhancer-CNN [25] 0.764 0.436 0.768 0.451
iEnhancer-XG [26] 0.667 0.749 0.586 0.340
iEnhancer-GAN [This Study] 0.872 0.873 0.871 0.744