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Smoothing and Regression: Approaches, Computation, and Application
ISBN: 978-0-471-17946-7
Hardcover
648 pages
August 2000
US $210.00 Add to Cart

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  • Description
  • Table of Contents
  • Author Information
  • Reviews
Spline Regression (R. Eubank).

Variance Estimation and Smoothing-Parameter Selection for Spline Regression (A. van der Linde).

Kernel Regression (P. Sarda & P. Vieu).

Variance Estimation and Bandwidth Selection for Kernel Regression (E. Herrmann).

Spline and Kernel Regression under Shape Restrictions (M. Delecroix & C. Thomas-Agnan).

Spline and Kernel Regression for Dependent Data (R. Kohn, et al.).

Wavelets for Regression and Other Statistical Problems (G. Nason & B. Silverman).

Smoothing Methods for Discrete Data (J. Simonoff & G. Tutz).

Local Polynomial Fitting (J. Fan & I. Gijbels).

Additive and Generalized Additive Models (M. Schimek & B. Turlach).

Multivariate Spline Regression (C. Gu).

Multivariate and Semiparametric Kernel Regression (W. Härdle & M. Müller).

Spatial-Process Estimates as Smoothers (D. Nychka).

Resampling Methods for Nonparametric Regression (E. Mammen).

Multidimensional Smoothing and Visualization (D. Scott).

Projection Pursuit Regression (S. Klinke & J. Grassmann).

Sliced Inverse Regression (T. Kötter).

Dynamic and Semiparametric Models (L. Fahrmeir & L. Knorr-Held).

Nonparametric Bayesian Bivariate Surface Estimation (M. Smith, et al.).

Index.

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