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Bayesian Robustness Modelling of Location and Scale Parameters

机译:位置和比例参数的贝叶斯鲁棒性建模

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The modelling process in Bayesian Statistics constitutes the fundamental stage of the analysis, since depending on the chosen probability laws the inferences may vary considerably. This is particularly true when conflicts arise between two or more sources of information. For instance, inference in the presence of an outlier (which conflicts with the information provided by the other observations) can be highly dependent on the assumed sampling distribution. When heavy-tailed (e.g. t) distributions are used, outliers may be rejected whereas this kind of robust inference is not available when we use light-tailed (e.g. normal) distributions. A long literature has established sufficient conditions on location-parameter models to resolve conflict in various ways. In this work, we consider a location-scale parameter structure, which is more complex than the single parameter cases because conflicts can arise between three sources of information, namely the likelihood, the prior distribution for the location parameter and the prior for the scale parameter. We establish sufficient conditions on the distributions in a location-scale model to resolve conflicts in different ways as a single observation tends to infinity. In addition, for each case, we explicitly give the limiting posterior distributions as the conflict becomes more extreme.
机译:贝叶斯统计中的建模过程构成了分析的基本阶段,因为根据所选择的概率定律,推论可能会有很大不同。当两个或多个信息源之间发生冲突时,尤其如此。例如,存在异常值的推断(与其他观测值所提供的信息相冲突)可能高度依赖于假设的采样分布。当使用重尾(例如t)分布时,离群值可能会被拒绝,而当我们使用轻尾(例如正态)分布时,这种鲁棒的推断是不可用的。长期的文献为位置参数模型建立了足够的条件,以各种方式解决冲突。在这项工作中,我们考虑了位置比例参数结构,该结构比单参数情况更为复杂,因为可能在三种信息源之间发生冲突,即可能性,位置参数的先验分布和比例参数的先验。我们在位置尺度模型中的分布上建立了充分的条件,以通过单一观察趋于无穷大以不同方式解决冲突。另外,对于每种情况,当冲突变得更加极端时,我们明确给出极限后验分布。

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