Objective Bayesian testing for the linear combinations of normal means

被引:0
|
作者
Woo Dong Lee
Sang Gil Kang
Yongku Kim
机构
[1] Daegu Haany University,Department of Data Management
[2] Sangji University,Department of Computer and Data Information
[3] Kyungpook National University,Department of Statistics
来源
Statistical Papers | 2019年 / 60卷
关键词
Bayes factor; Divergence-based prior; Intrinsic prior; Linear combinations of normal means; Reference prior;
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摘要
This study considers objective Bayesian testing for the linear combinations of the means of several normal populations. We propose solutions based on a Bayesian model selection procedure to this problem in which no subjective input is considered. We first construct suitable priors to test the linear combinations of means based on measuring the divergence between competing models (so-called divergence-based priors). Next, we derive the intrinsic priors for which the Bayes factors and model selection probabilities are well defined. Finally, the behavior of the Bayes factors based on the DB priors, intrinsic priors, and classical test are compared in a simulation study and an example.
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页码:147 / 172
页数:25
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