Generalized Additive Models: An Introduction with R, Second Edition / Edition 2

Generalized Additive Models: An Introduction with R, Second Edition / Edition 2

by Simon N. Wood
ISBN-10:
1498728332
ISBN-13:
9781498728331
Pub. Date:
05/30/2017
Publisher:
Taylor & Francis
ISBN-10:
1498728332
ISBN-13:
9781498728331
Pub. Date:
05/30/2017
Publisher:
Taylor & Francis
Generalized Additive Models: An Introduction with R, Second Edition / Edition 2

Generalized Additive Models: An Introduction with R, Second Edition / Edition 2

by Simon N. Wood
$110.0
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Overview

The first edition of this book has established itself as one of the leading references on generalized additive models (GAMs), and the only book on the topic to be introductory in nature with a wealth of practical examples and software implementation. It is self-contained, providing the necessary background in linear models, linear mixed models, and generalized linear models (GLMs), before presenting a balanced treatment of the theory and applications of GAMs and related models.

The author bases his approach on a framework of penalized regression splines, and while firmly focused on the practical aspects of GAMs, discussions include fairly full explanations of the theory underlying the methods. Use of R software helps explain the theory and illustrates the practical application of the methodology. Each chapter contains an extensive set of exercises, with solutions in an appendix or in the book’s R data package gamair, to enable use as a course text or for self-study.


Product Details

ISBN-13: 9781498728331
Publisher: Taylor & Francis
Publication date: 05/30/2017
Series: Chapman & Hall/CRC Texts in Statistical Science
Edition description: Revised
Pages: 496
Sales rank: 172,787
Product dimensions: 6.12(w) x 9.19(h) x (d)

About the Author

Simon N. Wood is a professor of Statistical Science at the University of Bristol, UK, and author of the R package mgcv.

Table of Contents

Preface

Linear Models

Linear Mixed Models

Generalized Linear Models

Introducing GAMs

Smoothers

GAM theory

GAMs in Practice: mgcv

Appendices A,B,C

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