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Extending the Linear Model with R: Generalized Linear, Mixed Effects and Nonparametric Regression Models, Second Edition (Chapman & Hall/CR
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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.
- Sales Rank: #413560 in Books
- Brand: imusti
- Published on: 2016-03-24
- Original language: English
- Number of items: 1
- Dimensions: 9.50" h x 6.50" w x 1.00" l, .0 pounds
- Binding: Hardcover
- 413 pages
- CRC Press
Review
Praise for the First Edition:
"… well-written and the discussions are easy to follow … very useful as a reference book for applied statisticians and would also serve well as a textbook for students graduating in statistics."
―Computational Statistics, April 2009, Vol. 24
"The text is well organized and carefully written … provides an overview of many modern statistical methodologies and their applications to real data using software. This makes it a useful text for practitioners and graduate students alike."
―Journal of the American Statistical Association, December 2007, Vol. 102, No. 480
"I enjoyed this text as much as [Faraway’s Linear Models with R]. The book is recommended as a textbook for a computational statistical and data mining course including GLMs and non-parametric regression, and will also be of great value to the applied statistician whose statistical programming environment of choice is R."
―Journal of Applied Statistics, July 2007, Vol. 34, No. 5
"This is a very pleasant book to read. It clearly demonstrates the different methods available and in which situations each one applies. It covers almost all of the standard topics beyond linear models that a graduate student in statistics should know. It also includes discussion of topics such as model diagnostics, rarely addressed in books of this type. The presentation incorporates an abundance of well-chosen examples … this book is highly recommended …"
―Biometrics, December 2006
About the Author
Julian J. Faraway is a professor of statistics in the Department of Mathematical Sciences at the University of Bath. His research focuses on the analysis of functional and shape data with particular application to the modeling of human motion. He earned a PhD in statistics from the University of California, Berkeley.
Most helpful customer reviews
1 of 1 people found the following review helpful.
Good Book
By K L Mahoney
Good book for those who are new to linear models in R.
Pros:
- The datasets that are associated with the faraway package.
- Detailed code and plenty of problems to work through.
- Lots of online support.
Cons:
- A couple sections were a little foggy. I would have liked a more in depth discussion of what/why a particular method was chosen or applied.
2 of 2 people found the following review helpful.
Great for a Professional Learning New Topics
By Laurie S. P.
As a Property and Casualty actuary, I've worked extensively with generalized linear models, but had recently become introduced to mixed effects models and wanted to dig deeper. The organization of the book made it very easy to find the parts of the book that were relevant for me. The writing was top notch and the examples were well chosen and discussed. This is an excellent book for an analytics professional who wants to add to his/her personal toolbox.
BTW, Amazon shows this review as having been written by my wife, but Stephen Prevatt actually wrote this review.
1 of 1 people found the following review helpful.
Two Stars
By Jersey Girl
Not as thorough as Linear Model with R. Very disappointing
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