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Data Analysis Using Regression and Multilevel/Hierarchical Models

Data Analysis Using Regression and Multilevel/Hierarchical Models is a comprehensive manual for the applied researcher who wants to perform data analysis using linear and nonlinear regression and multilevel models. The book introduces a wide variety of models, whilst at the same time instructing the reader in how to fit these models using available software packages. The book illustrates the concepts by working through scores of real data examples that have arisen from the authors' own applied research, with programming codes provided for each one. Topics covered include causal inference, including regression, poststratification, matching, regression discontinuity, and instrumental variables, as well as multilevel logistic regression and missing-data imputation. Practical tips regarding building, fitting, and understanding are provided throughout. Author resource page: http://www.stat.columbia.edu/~gelman/arm/  more

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$38.57 at Amazon
  • From: Amazon
  • Posted: Jan-01-2009

I could only dream of a book this great!

This book is now my favorite statistics text. Every question I have ever had concerning anything from basic stats, to classic regressions to HLM has been answered by this book. It includes codes to use R which enables anyone to learn this stats program easily. My advice; BUY THIS BOOK!

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  • From: Amazon
  • Posted: Nov-02-2008

An excellent presentation of hierarchical models

I am reading this book for two reasons: improving my understanding of some statistical issues and becoming more proficient with modern statistical techniques. The book has been helpful on both fronts, often providing new (to me) points of view for looking at a problem and giving very accessible...

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  • From: Amazon
  • Posted: Jun-12-2008

very broad coverage of data analysis with hierarchical models

Andrew Gelman is a top researcher in Bayesian statistics as well as an excellent writer. He has written an excellent text on Bayesian data analysis that uses the Markov Chain Monte Carlo methods for dealing with hierarchical linear models. This book starts out on an introductory level covering...

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  • From: Amazon
  • Posted: May-26-2008

Easy to read

This book is full of examples and very well written, contains everything one needs for deep insight into multi level analysis

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  • From: Amazon
  • Posted: Jan-24-2008

Readable and informative

A great book for addressing how to work with data on multiple levels. It is both accessible and useful!

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  • From: Amazon
  • Posted: Jan-18-2008

A great achievement!

Andrew Gelman has written an excellent book about regression models, with examples solved in the R language. He provides enlightning views of even complex subjects, such as mixed-effects models. A reader not familiar with R, should probably acquire some knowledge of R before he/she can fully...

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  • From: Amazon
  • Posted: Nov-07-2007

Standard Gelman

Like all of Gelman's stuff, damn fine work. Nowhere near as advanced as his Bayesian pubs - and, hopefully, the next book will address HLM Bayesian models in a rigorous manner - it's where the world is moving.

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  • From: Amazon
  • Posted: Sep-21-2007

Outstandingly useful for social scientists

I found this book after reading up on the weaknesses of traditional psychological statistics and methods. I read through 3 or 4 classic texts on classical regression (Casella and Berger, etc) and a couple more texts on Bayesian analysis (including Gelman's own Bayesian Data Analysis). When this...

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  • From: Amazon
  • Posted: Aug-26-2007

Useful but plenty of flaws

I read this book looking for an accessible and comprehensive treatment of multilevel models. The topic of social science appealed because this area offers different examples yet has used multilevel techniques widely. See Bryk and Raudenbush for example. The issues I have with this book is that it...

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  • From: Amazon
  • Posted: Apr-08-2007

The best introduction to multilevel modeling out there

I have to qualify this review by saying that I proceeded from the 11th chapter since the first ten were more or less review. Also, I am not a statistician by any stretch of the imagination. My math background is pure math and economics degrees with some too-practical econometrics. In spite of...

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