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Applied Logistic Regression by David W. Hosmer, Jr.

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Applied Logistic Regression

3rd Edition

David W. Hosmer, Jr., Stanley Lemeshow, Rodney X. Sturdivant

Wiley · Print & ebook · April 1, 2013

Reading lane: Regression Analysis

A new edition of the definitive guide to logistic regression modeling for health science and other applications This thoroughly expanded Third Edition provides an easily accessible introduction to the logistic regression (LR) model and highlights the power of this model by examining the relationship between a dichotomous outcome and a set of covariables.

At a Glance

Who It's For

Professionals and researchers modeling nominal or ordinal outcomes in health and social sciencesReaders seeking practical guidance on building and assessing logistic regression models

Book Details

Authors
David W. Hosmer, Jr., Stanley Lemeshow, Rodney X. Sturdivant
Publisher
Wiley
Published
April 1, 2013
Format
Print & ebook
Theme
Regression Analysis · Multivariate Analysis
Reading lane
Regression Analysis

Affinity

Publisher Categories

  • Regression Analysis

  • Public Health

  • Biostatistics

About This Book

A new edition of the definitive guide to logistic regression modeling for health science and other applications This thoroughly expanded Third Edition provides an easily accessible introduction to the logistic regression (LR) model and highlights the power of this model by examining the relationship between a dichotomous outcome and a set of covariables. Applied Logistic Regression , Third Edition emphasizes applications in the health sciences and handpicks topics that best...

Read full description

A new edition of the definitive guide to logistic regression modeling for health science and other applications This thoroughly expanded Third Edition provides an easily accessible introduction to the logistic regression (LR) model and highlights the power of this model by examining the relationship between a dichotomous outcome and a set of covariables. Applied Logistic Regression , Third Edition emphasizes applications in the health sciences and handpicks topics that best suit the use of modern statistical software. The book provides readers with state-of-the-art techniques for building, interpreting, and assessing the performance of LR models. New and updated features include: - A chapter on the analysis of correlated outcome data - A wealth of additional material for topics ranging from Bayesian methods to assessing model fit - Rich data sets from real-world studies that demonstrate each method under discussion - Detailed examples and interpretation of the presented results as well as exercises throughout Applied Logistic Regression , Third Edition is a must-have guide for professionals and researchers who need to model nominal or ordinal scaled outcome variables in public health, medicine, and the social sciences as well as a wide range of other fields and disciplines.

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