株式会社極東書店トップ商品一覧Introduction to Applied Bayesian Statistics and Estimation for Social Scientists. 1st ed. Softcover of orig. ed. 2007

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Introduction to Applied Bayesian Statistics and Estimation for Social Scientists. 1st ed. Softcover of orig. ed. 2007

Introduction to Applied Bayesian Statistics and Estimation for Social Scientists. 1st ed. Softcover of orig. ed. 2007

・ISBN 978-1-4419-2434-6 paper EUR 119.99

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お気に入り
著者・編者Lynch, Scott M.,
シリーズ (Statistics for Social and Behavioral Sciences)
出版社 (Springer-Verlag New York Inc., US)
出版年月2010
ページ数359 pp.
言語ENG
ニュース番号<A04-93601>

解説

"Introduction to Applied Bayesian Statistics and Estimation for Social Scientists" covers the complete process of Bayesian statistical analysis in great detail from the development of a model through the process of making statistical inference. The key feature of this book is that it covers models that are most commonly used in social science research - including the linear regression model, generalized linear models, hierarchical models, and multivariate regression models - and it thoroughly develops each real-data example in painstaking detail.

The first part of the book provides a detailed introduction to mathematical statistics and the Bayesian approach to statistics, as well as a thorough explanation of the rationale for using simulation methods to construct summaries of posterior distributions. Markov chain Monte Carlo (MCMC) methods - including the Gibbs sampler and the Metropolis-Hastings algorithm - are then introduced as general methods for simulating samples from distributions. Extensive discussion of programming MCMC algorithms, monitoring their performance, and improving them is provided before turning to the larger examples involving real social science models and data.