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Elastic Net Procedure for Partially Linear Models

2015/07/22 by Chunhong Li, Li, Chunhong, Hongshuai Dai +4
Mathematics · Computer Science · #Statistical Methods and Inference #Advanced Statistical Methods and Models #Neural Networks and Applications

paper · pdf · doi:10.48550/arxiv.1507.06032

Abstract

Variable selection plays an important role in the high-dimensional data analysis. However the high-dimensional data often induces the strongly correlated variables problem. In this paper, we propose Elastic Net procedure for partially linear models and prove the group effect of its estimate. By a simulation study, we show that the strongly correlated variables problem can be better handled by the Elastic Net procedure than Lasso, ALasso and Ridge. Based on an empirical analysis, we can get that the Elastic Net procedure is particularly useful when the number of predictors p is much bigger than the sample size n.

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