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Bayesian Modeling of Ecological Data.

Bayesian Modeling of Ecological Data. エコロジカル・データのベイズ・モデリング

・ISBN 978-1-58488-919-9 2011 hard GB£ 171.99

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・ISBN 978-0-367-57671-4 2020 paper GB£ 53.99

¥17,103.- (税込) (※)価格はご注文時の参考価格となります。
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電子版あり 大学・学術機関向け電子ブック(eBook)ISBN 978-0-429-14208-6

著者・編者Parent, Eric / Rivot, E.,
シリーズStatistics: Textbooks and Monographs
出版社(Chapman & Hall / CRC, US)
ページ数432 pp.
言語ENG
ニュース番号<586-289>

解説

Making statistical modeling and inference more accessible to ecologists and related scientists, Introduction to Hierarchical Bayesian Modeling for Ecological Data gives readers a flexible and effective framework to learn about complex ecological processes from various sources of data. It also helps readers get started on building their own statistical models.

The text begins with simple models that progressively become more complex and realistic through explanatory covariates and intermediate hidden states variables. When fitting the models to data, the authors gradually present the concepts and techniques of the Bayesian paradigm from a practical point of view using real case studies. They emphasize how hierarchical Bayesian modeling supports multidimensional models involving complex interactions between parameters and latent variables. Data sets, exercises, and R and WinBUGS codes are available on the authors' website.

This book shows how Bayesian statistical modeling provides an intuitive way to organize data, test ideas, investigate competing hypotheses, and assess degrees of confidence of predictions. It also illustrates how conditional reasoning can dismantle a complex reality into more understandable pieces. As conditional reasoning is intimately linked with Bayesian thinking, considering hierarchical models within the Bayesian setting offers a unified and coherent framework for modeling, estimation, and prediction.