Bayesian Inference under Small Sample Sizes Using General Noninformative Priors

被引:7
|
作者
He, Jingjing [1 ]
Wang, Wei [1 ]
Huang, Min [1 ]
Wang, Shaohua [2 ]
Guan, Xuefei [3 ]
机构
[1] Beihang Univ, Sch Reliabil & Syst Engn, Beijing 100191, Peoples R China
[2] China Aviat Power Plant Res Inst, Zhuzhou 412002, Peoples R China
[3] China Acad Engn Phys, Grad Sch, Beijing 100193, Peoples R China
基金
中国国家自然科学基金;
关键词
Bayesian inference; noninformative prior; Jeffreys' prior; invariant; PRIOR DISTRIBUTIONS; PROBABILITY; SELECTION; INFORMATION;
D O I
10.3390/math9212810
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
This paper proposes a Bayesian inference method for problems with small sample sizes. A general type of noninformative prior is proposed to formulate the Bayesian posterior. It is shown that this type of prior can represent a broad range of priors such as classical noninformative priors and asymptotically locally invariant priors and can be derived as the limiting states of normal-inverse-Gamma conjugate priors, allowing for analytical evaluations of Bayesian posteriors and predictors. The performance of different noninformative priors under small sample sizes is compared using the likelihood combining both fitting and prediction performances. Laplace approximation is used to evaluate the likelihood. A realistic fatigue reliability problem was used to illustrate the method. Following that, an actual aeroengine disk lifing application with two test samples is presented, and the results are compared with the existing method.
引用
收藏
页数:20
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