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A Comparison of Bayes Factors for Separated Models: Some Simulation Results

机译:分离模型的贝叶斯因素比较:一些模拟结果

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摘要

Some alternative Bayes Factors: Intrinsic, Posterior, and Fractional have been proposed to overcome the difficulties presented when prior information is weak and improper prior are used. Additional difficulties also appear when the models are separated or non nested. This article presents both simulation results and some illustrative examples analysis comparing these alternative Bayes factors to discriminate among the Lognormal, the Weibull, the Gamma, and the Exponential distributions. Simulation results are obtained for different sample sizes generated from the distributions. Results from simulations indicates that these alternative Bayes factors are useful for comparing non nested models. The simulations also show some similar behavior and that when both models are true they choose the simplest model. Some illustrative example are also presented.
机译:为了克服先验信息薄弱和使用不当先验信息时出现的困难,提出了一些替代性的贝叶斯因素:内在,后验和小数。当模型分离或不嵌套时,还会出现其他困难。本文介绍了仿真结果和一些说明性示例分析,将这些备选贝叶斯因子进行比较,以区分对数正态分布,威布尔分布,伽玛分布和指数分布。对于从分布生成的不同样本量,可以获得仿真结果。仿真结果表明,这些备选贝叶斯因子对于比较非嵌套模型很有用。仿真还显示了一些类似的行为,并且当两个模型都为真时,它们选择最简单的模型。还提供了一些说明性示例。

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