JOURNAL ARTICLE

Robust variable selection in the logistic regression model

Yunlu JiangJianto ZHANGYunxing HuangHang ZouMeihong HuangFanhong Chen

Year: 2021 Journal:   Hacettepe Journal of Mathematics and Statistics Vol: 50 (5)Pages: 1572-1582   Publisher: Hacettepe University

Abstract

In this paper, we proposed an adaptive robust variable selection procedure for the logistic regression model. The proposed method is robust to outliers and considers the goodness-of-fit of the regression model. Furthermore, we apply an MM algorithm to solve the proposed optimization problem. Monte Carlo studies are evaluated the finite-sample performance of the proposed method. The results show that when there are outliers in the dataset or the distribution of covariate variable deviates from the normal distribution, the finite-sample performance of the proposed method is better than that of other existing methods.Finally, the proposed methodology is applied to the data analysis of Parkinson's disease.

Keywords:
Outlier Covariate Mathematics Logistic regression Goodness of fit Feature selection Logistic distribution Statistics Robust regression Regression analysis Monte Carlo method Variable (mathematics) Selection (genetic algorithm) Computer science Artificial intelligence

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Topics

Advanced Statistical Methods and Models
Physical Sciences →  Mathematics →  Statistics and Probability
Statistical Methods and Inference
Physical Sciences →  Mathematics →  Statistics and Probability
Statistical Methods and Bayesian Inference
Physical Sciences →  Mathematics →  Statistics and Probability

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