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. 2023 Mar 8;15(6):1673. doi: 10.3390/cancers15061673

Table 4.

Classification performances of the 10-fold machine learning classifiers on features extracted from each of the five pre-trained deep models.

Feature Extractor Classifier Accuracy Sensitivity Specificity Precision F1-Score
AlexNet NB 0.7768±0.0067 0.6746±0.0117 0.8366±0.0089 0.7079±0.0112 0.6905±0.0090
SVM 0.7709±0.0143 0.6692±0.0244 0.8305±0.0147 0.6989±0.0214 0.6830±0.0203
LDA 0.7963±0.0065 0.6650±0.0125 0.8732±0.0076 0.7547±0.0114 0.7067±0.0097
DT 0.7160±0.0215 0.6008±0.0445 0.7834±0.0286 0.6223±0.0329 0.6079±0.0324
GoogleNet NB 0.7480±0.0108 0.5867±0.0202 0.8424±0.0124 0.6864±0.0178 0.6319±0.0166
SVM 0.7238±0.0088 0.4462±0.0158 0.8863±0.0107 0.6984±0.0215 0.5438±0.0154
LDA 0.7758±0.0069 0.6583±0.0157 0.8446±0.0064 0.7127±0.0099 0.6841±0.0120
DT 0.7740±0.0220 0.6925±0.0408 0.8217±0.0239 0.6968±0.0312 0.6925±0.0310
InceptionV3 NB 0.7575±0.009 0.6137±0.0194 0.8417±0.0093 0.6945±0.0139 0.6511±0.0149
SVM 0.7242±0.0069 0.4163±0.0179 0.9044±0.0033 0.7174±0.0114 0.5263±0.0167
LDA 0.7698±0.0060 0.5854±0.0134 0.8778±0.0056 0.7373±0.0098 0.6523±0.0105
DT 0.6909±0.0210 0.5300±0.0409 0.7851±0.0306 0.5963±0.0353 0.5572±0.0306
ResNet50 NB 0.6878±0.0103 0.8013±0.0135 0.6215±0.0149 0.5539±0.0105 0.6547±0.0098
SVM 0.7240±0.0065 0.3167±0.0115 0.9624±0.0074 0.8343±0.0279 0.4584±0.0138
LDA 0.7748±0.0098 0.5375±0.0221 0.9137±0.0130 0.7874±0.0220 0.6373±0.0173
DT 0.7665±0.0159 0.6088±0.0300 0.8588±0.0189 0.7190±0.0287 0.6575±0.0242
XceptionNet NB 0.7240±0.0094 0.6667±0.0001 0.7576±0.0149 0.6182±0.0146 0.6411±0.0079
SVM 0.7597±0.0094 0.5258±0.0219 0.8966±0.0085 0.7489±0.0167 0.6170±0.0182
LDA 0.7972±0.0058 0.6662±0.0100 0.8739±0.0058 0.7558±0.0094 0.7081±0.0086
DT 0.7403±0.0243 0.6733±0.0379 0.7795±0.0286 0.6446±0.0344 0.6567±0.0313