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Linear and Generalized Linear Mixed Models and Their Applications / by Jiming Jiang, Thuan Nguyen
(Springer Series in Statistics. ISSN:2197568X)

2nd ed. 2021.
出版者 (New York, NY : Springer New York : Imprint: Springer)
出版年 2021
本文言語 英語
大きさ XIV, 343 p. 13 illus., 8 illus. in color : online resource
著者標目 *Jiang, Jiming author
Nguyen, Thuan author
SpringerLink (Online service)
件 名 LCSH:Biometry
LCSH:Probabilities
LCSH:Statistics 
LCSH:Public health
LCSH:Numerical analysis
LCSH:Population genetics
FREE:Biostatistics
FREE:Probability Theory
FREE:Statistical Theory and Methods
FREE:Public Health
FREE:Numerical Analysis
FREE:Population Genetics
一般注記 1. Linear Mixed Models: Part I -- 2. Linear Mixed Models: Part II -- 3. Generalized Linear Mixed Models: Part I -- 4. Generalized Linear Mixed Models: Part II
Now in its second edition, this book covers two major classes of mixed effects models—linear mixed models and generalized linear mixed models—and it presents an up-to-date account of theory and methods in analysis of these models as well as their applications in various fields. It offers a systematic approach to inference about non-Gaussian linear mixed models. Furthermore, it discusses the latest developments and methods in the field, incorporating relevant updates since publication of the first edition. These include advances in high-dimensional linear mixed models in genome-wide association studies (GWAS), advances in inference about generalized linear mixed models with crossed random effects, new methods in mixed model prediction, mixed model selection, and mixed model diagnostics. This book is suitable for students, researchers, and practitioners who are interested in using mixed models for statistical data analysis with public health applications. It is best for graduatecourses in statistics, or for those who have taken a first course in mathematical statistics, are familiar with using computers for data analysis, and have a foundational background in calculus and linear algebra
HTTP:URL=https://doi.org/10.1007/978-1-0716-1282-8
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Springer eBooks 9781071612828
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データ種別 電子ブック
分 類 LCC:QH323.5
DC23:570.15195
書誌ID 4000135387
ISBN 9781071612828

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