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Model diagnostics for smoothing spline ANOVA models
Authors:Chong Gu
Abstract:The author proposes some simple diagnostics for assessing the necessity of selected terms in smoothing spline ANOVA models. The elimination of practically insignificant terms generally enhances the interpretability of the estimates and sometimes may also have inferential implications. The diagnostics are derived from Kullback‐Leibler geometry and are illustrated in the settings of regression, probability density estimation, and hazard rate estimation.
Keywords:ANOVA decomposition  diagnostics  Kullback‐Leibler projection  penalized likelihood estimate
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