Generalized Linear Mixed Models
eBook - ePub

Generalized Linear Mixed Models

Modern Concepts, Methods and Applications

  1. 668 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Generalized Linear Mixed Models

Modern Concepts, Methods and Applications

About this book

Generalized Linear Mixed Models: Modern Concepts, Methods, and Applications (2nd edition) presents an updated introduction to linear modeling using the generalized linear mixed model (GLMM) as the overarching conceptual framework. For students new to statistical modeling, this book helps them see the big picture – linear modeling as broadly understood and its intimate connection with statistical design and mathematical statistics. For readers experienced in statistical practice, but new to GLMMs, the book provides a comprehensive introduction to GLMM methodology and its underlying theory.

Unlike textbooks that focus on classical linear models or generalized linear models or mixed models, this book covers all of the above as members of a unified GLMM family of linear models. In addition to essential theory and methodology, this book features a rich collection of examples using SAS® software to illustrate GLMM practice. This second edition is updated to reflect lessons learned and experience gained regarding best practices and modeling choices faced by GLMM practitioners. New to this edition are two chapters focusing on Bayesian methods for GLMMs.

Key Features:

  • Most statistical modeling books cover classical linear models or advanced generalized and mixed models; this book covers all members of the GLMM family – classical and advanced models
  • Incorporates lessons learned from experience and on-going research to provide up-to-date examples of best practices
  • Illustrates connections between statistical design and modeling: guidelines for translating study design into appropriate model and in-depth illustrations of how to implement these guidelines; use of GLMM methods to improve planning and design
  • Discusses the difference between marginal and conditional models, differences in the inference space they are intended to address and when each type of model is appropriate
  • In addition to likelihood-based frequentist estimation and inference, provides a brief introduction to Bayesian methods for GLMMs

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Yes, you can access Generalized Linear Mixed Models by Walter W. Stroup,Marina Ptukhina,Julie Garai in PDF and/or ePUB format, as well as other popular books in Mathematics & Probability & Statistics. We have over one million books available in our catalogue for you to explore.

Information

Table of contents

  1. Cover
  2. Half-Title Page
  3. Series Page
  4. Title Page
  5. Copyright Page
  6. Table of Contents
  7. Preface to First Edition
  8. Preface to the Second Edition
  9. Part I Essential Background
  10. Part II Estimation and Inference Theory
  11. Part III Applications
  12. References
  13. Index