Liu | Association Models in Epidemiology | Buch | 978-1-032-35340-1 | sack.de

Buch, Englisch, 485 Seiten, Format (B × H): 183 mm x 260 mm, Gewicht: 1101 g

Reihe: Chapman & Hall/CRC Biostatistics Series

Liu

Association Models in Epidemiology

Study Designs, Modeling Strategies, and Analytic Methods
1. Auflage 2024
ISBN: 978-1-032-35340-1
Verlag: Chapman and Hall/CRC

Study Designs, Modeling Strategies, and Analytic Methods

Buch, Englisch, 485 Seiten, Format (B × H): 183 mm x 260 mm, Gewicht: 1101 g

Reihe: Chapman & Hall/CRC Biostatistics Series

ISBN: 978-1-032-35340-1
Verlag: Chapman and Hall/CRC


Association Models in Epidemiology: Study Designs, Modeling Strategies, and Analytic Methods is written by an epidemiologist for graduate students, researchers, and practitioners who will use regression techniques to analyze data. It focuses on association models rather than prediction models. The book targets students and working professionals who lack bona fide modeling experts but are committed to conducting appropriate regression analyses and generating valid findings from their projects. This book aims to offer detailed strategies to guide them in modeling epidemiologic data.

Features

- Custom-Tailored Models: Discover association models specifically designed for epidemiologic study designs.

- Epidemiologic Principles in Action: Learn how to apply and translate epidemiologic principles into regression modeling techniques.

- Model Specification Guidance: Get expert guidance on model specifications to estimate exposure-outcome associations, accurately controlling for confounding bias.

- Accessible Language: Explore regression intricacies in user-friendly language, accompanied by real-world examples that make learning easier.

- Step-by-Step Approach: Follow a straightforward step-by-step approach to master strategies and procedures for analysis.

- Rich in Examples: Benefit from 120 examples, 77 figures, 86 tables, and 174 SAS® outputs with annotations to enhance your understanding.

- Book website located here.

Crafted for two primary audiences, this text benefits graduate epidemiology students seeking to understand how epidemiologic principles inform modeling analyses and public health professionals conducting independent analyses in their work. Therefore, this book serves as a textbook in the classroom and as a reference book in the workplace. A wealth of supporting material is available for download from the book’s CRC Press webpage. Upon completing this text, readers should gain confidence in accurately estimating associations between risk factors and outcomes, controlling confounding bias, and assessing effect modification.

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Zielgruppe


Academic, Postgraduate, Professional Practice & Development, Undergraduate Advanced, and Undergraduate Core


Autoren/Hrsg.


Weitere Infos & Material


1. Association Models in Analytic Epidemiologic Research: Principles and Methods. 2. Modeling for Cohort Studies: Incidence Rate Ratio, Risk Ratio, and Risk Difference. 3. Modeling for Cohort Studies: Time-to-Event Outcome. 4. Modeling for Cohort Studies: Propensity Score Method. 5. Modeling for Traditional Case-Control Studies. 6. Modeling for Matched Case-Control Studies. 7. Modeling for Population-Based Case-Control Studies. 8. Modeling for Cross-Sectional Studies. 9. Modeling for Ecologic Studies. 10. Spline Regression Models: Beyond Linearity and Categorization.


Hongjie Liu is professor of epidemiology at the School of Public Health, University of Maryland, College Park. He earned his doctoral degree in epidemiology from the School of Public Health at the University of California, Los Angeles (UCLA). His research focuses on the epidemiology of infectious diseases and research methodology. He has served as the principal investigator, co-investigator, and biostatistics consultant in over 30 research projects and published 125 peer-reviewed papers. Over the past two decades, Dr. Liu has taught intermediate and advanced epidemiology to master's and doctoral students. His courses emphasize the integration of epidemiologic principles with regression techniques.



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