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The Conway–Maxwell–Poisson Distribution

The Conway–Maxwell–Poisson Distribution

The Conway–Maxwell–Poisson Distribution

Kimberly F. Sellers, Georgetown University, Washington DC
March 2023
Hardback
9781108481106
$135.00
USD
Hardback
eBook

    While the Poisson distribution is a classical statistical model for count data, the distributional model hinges on the constraining property that its mean equal its variance. This text instead introduces the Conway-Maxwell-Poisson distribution and motivates its use in developing flexible statistical methods based on its distributional form. This two-parameter model not only contains the Poisson distribution as a special case but, in its ability to account for data over- or under-dispersion, encompasses both the geometric and Bernoulli distributions. The resulting statistical methods serve in a multitude of ways, from an exploratory data analysis tool, to a flexible modeling impetus for varied statistical methods involving count data. The first comprehensive reference on the subject, this text contains numerous illustrative examples demonstrating R code and output. It is essential reading for academics in statistics and data science, as well as quantitative researchers and data analysts in economics, biostatistics and other applied disciplines.

    • The first comprehensive reference on the Conway-Maxwell-Poisson distribution
    • Teaches readers how to write the relevant code and shows how the output will appear, with detailed discussion of R packages, and numerous illustrative examples
    • Compares various potential models for analysis to demonstrate the appeal of the Conway-Maxwell-Poisson model in relevant scenarios

    Reviews & endorsements

    'This book will be a great resource for anyone interested in modeling or analyzing count data. It offers a comprehensive perspective on the Conway-Maxwell-Poisson distribution.' Somnath Datta, University of Florida

    'This book is a terrific one-stop-shop for 'everything COM-Poisson', not only integrating theoretical knowledge around the Conway-Maxwell Poisson distribution and its uses, but also providing practical notes and tips for applying the various relevant R libraries. Researchers and practitioners modeling count data or developing tools for modeling count data should find this book highly useful.' Galit Shmueli, National Tsing Hua University

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    Product details

    March 2023
    Hardback
    9781108481106
    250 pages
    235 × 155 × 25 mm
    0.65kg
    Not yet published - available from February 2025

    Table of Contents

    • Preface
    • 1. Introduction: count data containing dispersion
    • 2. The Conway-Maxwell-Poisson (COM-Poisson) distribution
    • 3. Distributional extensions and generalities
    • 4. Multivariate forms of the COM-Poisson distribution
    • 5. COM-Poisson regression
    • 6. COM-Poisson control charts
    • 7. COM-Poisson models for serially dependent count data
    • 8. COM-Poisson cure rate models
    • Bibliography
    • Index.