Description

Start Analyzing a Wide Range of Problems

Since the publication of the bestselling, highly recommended first edition, R has considerably expanded both in popularity and in the number of packages available. Extending the Linear Model with R: Generalized Linear, Mixed Effects and Nonparametric Regression Models, Second Edition takes advantage of the greater functionality now available in R and substantially revises and adds several topics.

New to the Second Edition

  • Expanded coverage of binary and binomial responses, including proportion responses, quasibinomial and beta regression, and applied considerations regarding these models
  • New sections on Poisson models with dispersion, zero inflated count models, linear discriminant analysis, and sandwich and robust estimation for generalized linear models (GLMs)
  • Revised chapters on random effects and repeated measures that reflect changes in the lme4 package and show how to perform hypothesis testing for the models using other methods
  • New chapter on the Bayesian analysis of mixed effect models that illustrates the use of STAN and presents the approximation method of INLA
  • Revised chapter on generalized linear mixed models to reflect the much richer choice of fitting software now available
  • Updated coverage of splines and confidence bands in the chapter on nonparametric regression
  • New material on random forests for regression and classification
  • Revamped R code throughout, particularly the many plots using the ggplot2 package
  • Revised and expanded exercises with solutions now included

Demonstrates the Interplay of Theory and Practice

This textbook continues to cover a range of techniques that grow from the linear regression model. It presents three extensions to the linear framework: GLMs, mixed effect models, and nonparametric regression models. The book explains data analysis using real examples and includes all the R commands necessary to reproduce the analyses.

Extending the Linear Model with R: Generalized Linear, Mixed Effects and Nonparametric Regression Models, Second Edition

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£84.99

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Hardback by Julian J. Faraway

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Short Description:

Start Analyzing a Wide Range of Problems Since the publication of the bestselling, highly recommended first edition, R has considerably... Read more

    Publisher: Taylor & Francis Inc
    Publication Date: 24/03/2016
    ISBN13: 9781498720960, 978-1498720960
    ISBN10: 149872096X

    Number of Pages: 414

    Non Fiction , Mathematics & Science , Education

    Description

    Start Analyzing a Wide Range of Problems

    Since the publication of the bestselling, highly recommended first edition, R has considerably expanded both in popularity and in the number of packages available. Extending the Linear Model with R: Generalized Linear, Mixed Effects and Nonparametric Regression Models, Second Edition takes advantage of the greater functionality now available in R and substantially revises and adds several topics.

    New to the Second Edition

    • Expanded coverage of binary and binomial responses, including proportion responses, quasibinomial and beta regression, and applied considerations regarding these models
    • New sections on Poisson models with dispersion, zero inflated count models, linear discriminant analysis, and sandwich and robust estimation for generalized linear models (GLMs)
    • Revised chapters on random effects and repeated measures that reflect changes in the lme4 package and show how to perform hypothesis testing for the models using other methods
    • New chapter on the Bayesian analysis of mixed effect models that illustrates the use of STAN and presents the approximation method of INLA
    • Revised chapter on generalized linear mixed models to reflect the much richer choice of fitting software now available
    • Updated coverage of splines and confidence bands in the chapter on nonparametric regression
    • New material on random forests for regression and classification
    • Revamped R code throughout, particularly the many plots using the ggplot2 package
    • Revised and expanded exercises with solutions now included

    Demonstrates the Interplay of Theory and Practice

    This textbook continues to cover a range of techniques that grow from the linear regression model. It presents three extensions to the linear framework: GLMs, mixed effect models, and nonparametric regression models. The book explains data analysis using real examples and includes all the R commands necessary to reproduce the analyses.

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