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Statistical Methods for Mediation, Confounding and Moderation Analysis Using R and SAS.

Statistical Methods for Mediation, Confounding and Moderation Analysis Using R and SAS.

・ISBN 978-0-367-36547-9 hard GB£ 171.99

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電子版あり 大学・学術機関向け電子ブック(eBook)ISBN 978-0-429-34694-1

著者・編者Yu, Qingzhao / Li, Bin,
シリーズChapman & Hall/CRC Biostatistics Series
出版社(Chapman & Hall/CRC, UK)
出版年月2022
ページ数294 pp.
言語ENG
ニュース番号<M25-5585>

解説

Third-variable effect refers to the effect transmitted by third-variables that intervene in the relationship between an exposure and a response variable. Differentiating between the indirect effect of individual factors from multiple third-variables is a constant problem for modern researchers.

Statistical Methods for Mediation, Confounding and Moderation Analysis Using R and SAS introduces general definitions of third-variable effects that are adaptable to all different types of response (categorical or continuous), exposure, or third-variables. Using this method, multiple third- variables of different types can be considered simultaneously, and the indirect effect carried by individual third-variables can be separated from the total effect. Readers of all disciplines familiar with introductory statistics will find this a valuable resource for analysis.

Key Features:

  • Parametric and nonparametric method in third variable analysis
  • Multivariate and Multiple third-variable effect analysis
  • Multilevel mediation/confounding analysis
  • Third-variable effect analysis with high-dimensional data Moderation/Interaction effect analysis within the third-variable analysis
  • R packages and SAS macros to implement methods proposed in the book