书目名称 | Mixed-Effects Models and Small Area Estimation | 编辑 | Shonosuke Sugasawa,Tatsuya Kubokawa | 视频video | | 概述 | Introduces not only classical theory of mixed-effects models but also recently proposed techniques.Explains in detail self-contained theory and methods of mixed-effects models adopted in small area.Il | 丛书名称 | SpringerBriefs in Statistics | 图书封面 |  | 描述 | .This book provides a self-contained introduction of mixed-effects models and small area estimation techniques. In particular, it focuses on both introducing classical theory and reviewing the latest methods. First, basic issues of mixed-effects models, such as parameter estimation, random effects prediction, variable selection, and asymptotic theory, are introduced. Standard mixed-effects models used in small area estimation, known as the Fay-Herriot model and the nested error regression model, are then introduced. Both frequentist and Bayesian approaches are given to compute predictors of small area parameters of interest. For measuring uncertainty of the predictors, several methods to calculate mean squared errors and confidence intervals are discussed. Various advanced approaches using mixed-effects models are introduced, from frequentist to Bayesian approaches. This book is helpful for researchers and graduate students in fields requiring data analysis skills as well as in mathematical statistics.. | 出版日期 | Book 2023 | 关键词 | Mixed-effects Models; Small Area Estimation; Empirical Bayes; Bayesian Statistics; Random Effects; Fay-He | 版次 | 1 | doi | https://doi.org/10.1007/978-981-19-9486-9 | isbn_softcover | 978-981-19-9485-2 | isbn_ebook | 978-981-19-9486-9Series ISSN 2191-544X Series E-ISSN 2191-5458 | issn_series | 2191-544X | copyright | The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd. 2023 |
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