2018
DOI: 10.1155/2018/5683539
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Automatic Variable Selection for Partially Linear Functional Additive Model and Its Application to the Tecator Data Set

Abstract: We introduce a new partially linear functional additive model, and we consider the problem of variable selection for this model. Based on the functional principal components method and the centered spline basis function approximation, a new variable selection procedure is proposed by using the smooth-threshold estimating equation (SEE). The proposed procedure automatically eliminates inactive predictors by setting the corresponding parameters to be zero and simultaneously estimates the nonzero regression coeff… Show more

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