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"A classic in its own right, this book continues to provide an introduction to modern generalized linear models for categorical variables. The text emphasizes methods that are most commonly used in practical application, such as classical inferences for two- and three-way contingency tables, logistic regression, loglinear models, models for multinomial (nominal and ordinal) responses, and methods for repeated measurement and other forms of clustered, correlated response data. Chapter headings remain essentially with the exception of a new one on Bayesian inference for parametric models. Other major changes include an expansion of clustered data, new research on analysis of data sets with robust variables, extensive discussions of ordinal data, more on interpretation, and additional exercises throughout the book. R and SAS are now showcased as the software of choice. An author web site with solutions, commentaries, software programs, and data sets is available"--
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Includes bibliographical references and index.
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- Created April 25, 2012
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September 12, 2024 | Edited by MARC Bot | import existing book |
February 2, 2023 | Edited by ImportBot | import existing book |
December 15, 2022 | Edited by MARC Bot | import existing book |
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April 25, 2012 | Created by LC Bot | Imported from Library of Congress MARC record |