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Adjusted Confidence Bands in Nonparametric Regression
Authors:Guoyi Zhang  Yan Lu
Affiliation:1. Department of Mathematics and Statistics , Arizona State University , Tempe, Arizona, USA guoyi.zhang@asu.edu;3. Department of Mathematics and Statistics , University of New Mexico , Albuquerque, New Mexico, USA
Abstract:
Suppose we have {(x i , y i )} i = 1, 2,…, n, a sequence of independent observations. We wish to find approximate 1 ? α simultaneous confidence bands for the regression curve. Many previous confidence bands in the literature have practical difficulties. In this article, the local linear smoother is used to estimate the regression curve. The bias of the estimator is considered. Different methods of constructing confidence bands are discussed. Finally, a possible method incorporating logistic regression in an innovative way is proposed to construct the bands for random designs. Simulations are used to study the performance or properties of the methods. The procedure for constructing confidence bands is entirely data-driven. The advantage of the proposed method is that it is simple to use and can be applied to random designs. It can be considered as a practically useful and efficient method.
Keywords:Confidence bands  Local linear smoother  Nonparametric regression
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