JOURNAL ARTICLE

A Comparative Study of Semiparametric Estimation in Partially Linear Single-index Models

Young-Ju Kim

Year: 2014 Journal:   Communications in Statistics - Simulation and Computation Vol: 45 (7)Pages: 2577-2585   Publisher: Taylor & Francis

Abstract

We consider a semiparametric method based on partial splines for estimating the unknown function and partially linear regression parameters in partially linear single-index models. Three methods—project pursuit regression (PPR), average derivative estimation (ADE), and a boosting method—are considered for estimating the single-index parameters. Simulations revealed that PPR with partial splines was superior in estimating single-index parameters, while the boosting method with partial splines performed no better than PPR and ADE. All three methods performed similarly in estimating the partially linear regression parameters. The relative performances of the methods are also illustrated using a real-world data example.

Keywords:
Mathematics Single-index model Linear regression Boosting (machine learning) Spline (mechanical) Semiparametric regression Semiparametric model Regression Index (typography) Linear model Statistics Regression analysis Applied mathematics Computer science Parametric statistics 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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