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Reconceptualizing the p-value from a likelihood ratio test: a probabilistic pairwise comparison of models based on Kullback-Leibler discrepancy measures

机译:从似然比测试中重新重复p值:基于Kullback-Leibler差异测量的模型的概率成对比较

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Discrepancy measures are often employed in problems involving the selection and assessment of statistical models. A discrepancy gauges the separation between a fitted candidate model and the underlying generating model. In this work, we consider pairwise comparisons of fitted models based on a probabilistic evaluation of the ordering of the constituent discrepancies. An estimator of the probability is derived using the bootstrap. In the framework of hypothesis testing, nested models are often compared on the basis of the p-value. Specifically, the simpler null model is favored unless the p-value is sufficiently small, in which case the null model is rejected and the more general alternative model is retained. Using suitably defined discrepancy measures, we mathematically show that, in general settings, the likelihood ratio test p-value is approximated by the bootstrapped discrepancy comparison probability (BDCP). We argue that the connection between the p-value and the BDCP leads to potentially new insights regarding the utility and limitations of the p-value. The BDCP framework also facilitates discrepancy-based inferences in settings beyond the limited confines of nested model hypothesis testing.
机译:差异措施通常用于涉及统计模型的选择和评估的问题。差异仪表拟合候选模型与底层生成模型之间的分离。在这项工作中,我们考虑了基于组成差异排序的概率评估的拟合模型的成对比较。使用Bootstrap导出概率的估计器。在假设检测框架中,通常在P值的基础上比较嵌套模型。具体地,除非P值足够小,在这种情况下,除非P值足够小,在这种情况下,否则拒绝空模型并保留更通用的替代模型。使用适当定义的差异措施,我们在数学上表明,在一般设置中,似然比测试p值由自举的差异比较概率(BDCP)近似。我们争辩说,P值和BDCP之间的连接导致对P值的实用性和局限性的潜在新的见解。 BDCP框架还促进了嵌套模型假设检测的有限范围内的环境中基于差异的推论。

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