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Objective Bayesian analysis for CAR models

机译:CAR模型的客观贝叶斯分析

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Objective priors, especially reference priors, have been studied extensively for spatial data in the last decade. In this paper, we study objective priors for a CAR model. In particular, the properties of the reference prior and the corresponding posterior are studied. Furthermore, we show that the frequentist coverage probabilities of posterior credible intervals depend only on the spatial dependence parameter $$ho $$, and not on the regression coefficient or the error variance. Based on the simulation study for comparing the reference and Jeffreys priors, the performance of two reference priors is similar and better than the Jeffreys priors. One spatial dataset is used for illustration.
机译:在过去的十年中,对客观先验,尤其是参考先验,已经进行了广泛的空间数据研究。在本文中,我们研究了CAR模型的客观先验条件。特别地,研究了参考先验和相应后验的特性。此外,我们表明,后可信区间的频繁覆盖概率仅取决于空间依赖参数$$ rho $$,而不取决于回归系数或误差方差。基于对参考先验和杰弗里先验进行比较的仿真研究,两个参考先验的表现相似,并且优于杰弗里先验。一个空间数据集用于说明。

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