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1 Probst, P., "Tunability : Importance of Hyperparameters of Machine Learning Algorithms" 20 (20): 1-32, 2018
2 Hastie, T., "The Elements of Statistical Learning: Data Mining, Inference, and Prediction" Springer Science &Business Media 413-414, 2009
3 Ooi, S. Y., "Temporal Sampling Forest(TS-F) : An Ensemble Temporal Learner" 21 (21): 7039-7052, 2017
4 Ho, D. H., "Recent Research Trend in Flexible and Stretchable Electrode for Wearable Device" 21 (21): 45-62, 2018
5 Trung, T. Q., "Recent Progress on Stretchable Electronic Devices with Intrinsically Stretchable Components" 29 : 2017
6 Kim, S. J, "Random Forest’s Assessment Model for Corporate Bond Ratings" 371-376, 2014
7 Breiman, L., "Random Forests" 45 (45): 5-32, 2001
8 Rodriguez-Galiano, V., "Predictive Modeling of Groundwater Nitrate Pollution using Random Forest and Multisource Variables Related to Intrinsic and Specific Vulnerability : A Case Study in an Agricultural Setting(Southern Spain)" 476 : 189-206, 2014
9 Pokutta, S, "Machine Learning in Engineering Applications and Trends" 14-16, 2016
10 Fernández-Delgado, M., "Do We Need Hundreds of Classifiers to Solve Real World Classification Problems?" 15 : 3133-3181, 2014
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