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Applied Regression Analysis and Generalized Linear Models
Contributor(s): Fox, John (Author)
ISBN: 1452205663     ISBN-13: 9781452205663
Publisher: Sage Publications, Inc
OUR PRICE:   $177.21  
Product Type: Hardcover - Other Formats
Published: May 2015
Qty:
Additional Information
BISAC Categories:
- Social Science | Statistics
- Social Science | Methodology
- Psychology | Research & Methodology
Dewey: 300.151
LCCN: 2014959146
Physical Information: 1.4" H x 7.1" W x 10.1" (3.10 lbs) 816 pages
 
Descriptions, Reviews, Etc.
Publisher Description:

Combining a modern, data-analytic perspective with a focus on applications in the social sciences, the Third Edition of Applied Regression Analysis and Generalized Linear Models provides in-depth coverage of regression analysis, generalized linear models, and closely related methods, such as bootstrapping and missing data. Updated throughout, this Third Edition includes new chapters on mixed-effects models for hierarchical and longitudinal data. Although the text is largely accessible to readers with a modest background in statistics and mathematics, author John Fox also presents more advanced material in optional sections and chapters throughout the book.


Contributor Bio(s): Fox, John: -

John Fox received a BA from the City College of New York and a PhD from the University of Michigan, both in Sociology. He is Professor Emeritus of Sociology at McMaster University in Hamilton, Ontario, Canada, where he was previously the Senator William McMaster Professor of Social Statistics. Prior to coming to McMaster, he was Professor of Sociology, Professor of Mathematics and Statistics, and Coordinator of the Statistical Consulting Service at York University in Toronto. Professor Fox is the author of many articles and books on applied statistics, including \emph{Applied Regression Analysis and Generalized Linear Models, Third Edition} (Sage, 2016). He is an elected member of the R Foundation, an associate editor of the Journal of Statistical Software, a prior editor of R News and its successor the R Journal, and a prior editor of the Sage Quantitative Applications in the Social Sciences monograph series.