JOURNAL ARTICLE

Linear Smoothers and Additive Models

Andreas BujaTrevor HastieRobert Tibshirani

Year: 1989 Journal:   The Annals of Statistics Vol: 17 (2)   Publisher: Institute of Mathematical Statistics

Abstract

We study linear smoothers and their use in building nonparametric regression models. In the first part of this paper we examine certain aspects of linear smoothers for scatterplots; examples of these are the running-mean and running-line, kernel and cubic spline smoothers. The eigenvalue and singular value decompositions of the corresponding smoother matrix are used to describe qualitatively a smoother, and several other topics such as the number of degrees of freedom of a smoother are discussed. In the second part of the paper we describe how linear smoothers can be used to estimate the additive model, a powerful nonparametric regression model, using the "back-fitting algorithm." We show that backfitting is the Gauss-Seidel iterative method for solving a set of normal equations associated with the additive model. We provide conditions for consistency and nondegeneracy and prove convergence for the backfitting and related algorithms for a class of smoothers that includes cubic spline smoothers.

Keywords:
Mathematics Additive model Smoothing spline Applied mathematics Nonparametric regression Spline (mechanical) Smoothing Mathematical optimization Eigenvalues and eigenvectors Nonparametric statistics Spline interpolation Statistics

Metrics

991
Cited By
28.69
FWCI (Field Weighted Citation Impact)
54
Refs
1.00
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Statistical and numerical algorithms
Physical Sciences →  Mathematics →  Applied Mathematics
Advanced Statistical Methods and Models
Physical Sciences →  Mathematics →  Statistics and Probability
Image and Signal Denoising Methods
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition

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