Bandwidth selection for a data sharpening estimator in nonparametric regression |
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Authors: | Kanta Naito Masahiro Yoshizaki |
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Affiliation: | Department of Mathematics, Shimane University, Matsue 690-8504, Japan |
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Abstract: | This paper is concerned with data-based selection of the bandwidth for a data sharpening estimator in nonparametric regression. Two kinds of bandwidths are considered: a bandwidth vector which has a different bandwidth for each covariate, and a scalar bandwidth that is common for all covariates. A plug-in method is developed and its theoretical performance is fully investigated. The proposed plug-in method works efficiently in our simulation study. |
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Keywords: | 62G08 62G20 |
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