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Comparing Objective and Subjective Bayes Factors for the Two-Sample Comparison: The Classification Theorem in Action

机译:比较目标和主观贝叶斯因子的两个样本比较:行动中的分类定理

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摘要

Many Bayes factors have been proposed for comparing population means in two-sample (independent samples) studies. Recently, Wang and Liu presented an "objective" Bayes factor (BF) as an alternative to a "subjective" one presented by Gonen et al. Their report was evidently intended to show the superiority of their BF based on "undesirable behavior" of the latter. A wonderful aspect of Bayesian models is that they provide an opportunity to "lay all cards on the table." What distinguishes the various BFs in the two-sample problem is the choice of priors (cards) for the model parameters. This article discusses desiderata of BFs that have been proposed, and proposes a new criterion to compare BFs, no matter whether subjectively or objectively determined. A BF may be preferred if it correctly classifies the data as coming from the correct model most often. The criterion is based on a famous result in classification theory to minimize the total probability of misclassification. This criterion is objective, easily verified by simulation, shows clearly the effects (positive or negative) of assuming particular priors, provides new insights into the appropriateness of BFs in general, and provides a new answer to the question, "Which BF is best?"
机译:已经提出了许多贝叶斯因子,用于将人口手段与两种样本(独立样本)研究进行比较。最近,王和刘呈现了一个“客观”贝叶斯因子(BF),作为由Gonen等人提出的“主观”的替代品。他们的报告显然旨在基于后者的“不良行为”来展示他们的BF的优越性。贝叶斯模型的一个美妙方面是他们为“在桌上铺设了所有牌”的机会提供了机会。在两个样本问题中区分各种BFS的区别是模型参数的Priors(卡)的选择。本文讨论了已提出的BFS的Desiderata,并提出了对比较BFS的新标准,无论是主观的还是客观地确定。如果它最常正确地将数据正确分类数据,则可以优选BF。标准基于着名的分类理论的结果,以最大限度地减少错误分类的总概率。该标准是客观的,通过模拟很容易验证,清楚地显示了假设特定前瞻的效果(正面或负面),提供了一般来说BFS的适当性的新见解,并为该问题提供了新的答案,“哪个BF是最好的? “

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