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Data Analysis Using Regression and Multilevel/Hierarchical Models

Andrew Gelman; Jennifer Hill · Cambridge University Press eBooks · 2006

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Data Analysis Using Regression and Multilevel/Hierarchical Models, first published in 2007, 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.

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APA 7

Gelman, A. & Hill, J. (2006). Data Analysis Using Regression and Multilevel/Hierarchical Models. Cambridge University Press eBooks. https://doi.org/10.1017/cbo9780511790942

MLA

Gelman, Andrew, and Jennifer Hill. Data Analysis Using Regression and Multilevel/Hierarchical Models. Cambridge University Press eBooks, 2006. https://doi.org/10.1017/cbo9780511790942.

Chicago

Gelman, Andrew and Jennifer Hill. 2006. Data Analysis Using Regression and Multilevel/Hierarchical Models. Cambridge University Press eBooks. https://doi.org/10.1017/cbo9780511790942.

Harvard

Gelman, A. and Hill, J. 2006, Data Analysis Using Regression and Multilevel/Hierarchical Models, Cambridge University Press eBooks, available at: https://doi.org/10.1017/cbo9780511790942 [Accessed 7 Aug. 2026].

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Title
Data Analysis Using Regression and Multilevel/Hierarchical Models
Author / contributors
Andrew Gelman; Jennifer Hill
Publisher
Cambridge University Press eBooks
Publication year
2006
Language
English

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