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Boundary Bias Correction for Nonparametric Deconvolution
Authors:Shunpu Zhang  Rohana J Karunamuni
Institution:(1) Department of Mathematical Sciences, University of Alberta, Edmonton, Alberta, Canada, T6G 2G1
Abstract:In this paper we consider the deconvolution problem in nonparametric density estimation. That is, one wishes to estimate the unknown density of a random variable X, say f X , based on the observed variables Y's, where Y = X + isin with isin being the error. Previous results on this problem have considered the estimation of f X at interior points. Here we study the deconvolution problem for boundary points. A kernel-type estimator is proposed, and its mean squared error properties, including the rates of convergence, are investigated for supersmooth and ordinary smooth error distributions. Results of a simulation study are also presented.
Keywords:Deconvolution  density estimation  boundary effects  bandwidth variation
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