Using R for Bayesian Spatial and Spatio-Temporal Health Modeling

Using R for Bayesian Spatial and Spatio-Temporal Health Modeling

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2021 · Inglese · Kindle · 2 edizioni
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Descrizione

Andrew B. Lawson explores the intricate relationship between geography and health in his enlightening work. The text delves into the methodologies of Bayesian spatial and spatio-temporal modeling, highlighting their significance in understanding health patterns. Through clear explanations and practical examples, readers are guided on how to utilize R for complex data analysis.

Lawson brings to the forefront the importance of considering spatial factors when evaluating health issues. He illustrates how location can significantly influence disease prevalence and health disparities. By integrating statistical techniques with real-world applications, the author equips practitioners and researchers with valuable tools for their work.

This comprehensive guide not only serves as an instructional resource but also encourages a deeper appreciation of the connections between health and environment. As an essential read for those involved in public health, epidemiology, or data science, it inspires rigorous analysis and innovative approaches to health modeling.

Dettagli del libro

Formato Kindle
Pagine 300 pagine
Lingua Inglese
Pubblicato Apr 28, 2021
Editore Chapman and Hall/CRC
Edizioni 2 edizioni
ISBN-10 1000376702
ISBN-13 9781000376708
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