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. 2023 Nov 4;19:119. doi: 10.1186/s13007-023-01092-0

Table 1.

Performance evaluation of different feature selection combined with machine learning schemes (Train dataset)

Method Feature selection No. of features Accuracy %
Lightgbm F-score 150 96.53
XGBoost F-score 430 97.88
SVM F-score 180 96.34
RFC F-score 210 94.41
Lightgbm CV2 20,000 97.11
XGBoost CV2 20,000 97.59
SVM CV2 7000 94.22
RFC CV2 14,000 89.71
Lightgbm MIC 100 95.49
XGBoost MIC 100 96.59
SVM MIC 110 97.23
RFC MIC 120 93.55