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Semiparametric regression with R
~
Harezlak, Jaroslaw.
Semiparametric regression with R
Record Type:
Electronic resources : Monograph/item
Title/Author:
Semiparametric regression with Rby Jaroslaw Harezlak, David Ruppert, Matt P. Wand.
Author:
Harezlak, Jaroslaw.
other author:
Ruppert, David.
Published:
New York, NY :Springer New York :2018.
Description:
xi, 331 p. :ill. (some col.), digital ;24 cm.
Contained By:
Springer eBooks
Subject:
Regression analysis.
Online resource:
https://doi.org/10.1007/978-1-4939-8853-2
ISBN:
9781493988532$q(electronic bk.)
Semiparametric regression with R
Harezlak, Jaroslaw.
Semiparametric regression with R
[electronic resource] /by Jaroslaw Harezlak, David Ruppert, Matt P. Wand. - New York, NY :Springer New York :2018. - xi, 331 p. :ill. (some col.), digital ;24 cm. - Use R!,2197-5736. - Use R!..
Introduction -- Penalized Splines -- Generalized Additive Models -- Semiparametric Regression Analysis of Grouped Data -- Bivariate Function Extensions -- Selection of Additional Topics -- Index.
This easy-to-follow applied book expands upon the authors' prior work on semiparametric regression to include the use of R software. In 2003, authors Ruppert and Wand co-wrote Semiparametric Regression with R.J. Carroll, which introduced the techniques and benefits of semiparametric regression in a concise and user-friendly fashion. Fifteen years later, semiparametric regression is applied widely, powerful new methodology is continually being developed, and advances in the R computing environment make it easier than ever before to carry out analyses. Semiparametric Regression with R introduces the basic concepts of semiparametric regression with a focus on applications and R software. This volume features case studies from environmental, economic, financial, and other fields. The examples and corresponding code can be used or adapted to apply semiparametric regression to a wide range of problems. It contains more than fifty exercises, and the accompanying HRW package contains all datasets and scripts used in the book, as well as some useful R functions. This book is suitable as a textbook for advanced undergraduates and graduate students, as well as a guide for statistically-oriented practitioners, and could be used in conjunction with Semiparametric Regression. Readers are assumed to have a basic knowledge of R and some exposure to linear models. For the underpinning principles, calculus-based probability, statistics, and linear algebra are desirable.
ISBN: 9781493988532$q(electronic bk.)
Standard No.: 10.1007/978-1-4939-8853-2doiSubjects--Topical Terms:
181872
Regression analysis.
LC Class. No.: QA278.2 / .H374 2018
Dewey Class. No.: 519.536
Semiparametric regression with R
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Introduction -- Penalized Splines -- Generalized Additive Models -- Semiparametric Regression Analysis of Grouped Data -- Bivariate Function Extensions -- Selection of Additional Topics -- Index.
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This easy-to-follow applied book expands upon the authors' prior work on semiparametric regression to include the use of R software. In 2003, authors Ruppert and Wand co-wrote Semiparametric Regression with R.J. Carroll, which introduced the techniques and benefits of semiparametric regression in a concise and user-friendly fashion. Fifteen years later, semiparametric regression is applied widely, powerful new methodology is continually being developed, and advances in the R computing environment make it easier than ever before to carry out analyses. Semiparametric Regression with R introduces the basic concepts of semiparametric regression with a focus on applications and R software. This volume features case studies from environmental, economic, financial, and other fields. The examples and corresponding code can be used or adapted to apply semiparametric regression to a wide range of problems. It contains more than fifty exercises, and the accompanying HRW package contains all datasets and scripts used in the book, as well as some useful R functions. This book is suitable as a textbook for advanced undergraduates and graduate students, as well as a guide for statistically-oriented practitioners, and could be used in conjunction with Semiparametric Regression. Readers are assumed to have a basic knowledge of R and some exposure to linear models. For the underpinning principles, calculus-based probability, statistics, and linear algebra are desirable.
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