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On the d-posterior approach to the multiple testing problem

机译:关于多次检测问题的D-后探

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The problem of multiple testing is considered as a special case of the problem of guaranteed discrimination of hypotheses in a d-posterior approach. This approach is based on the Bayesian paradigm and applies only to the situation where there is a real sequence of statistical experiments that lead to a decision. A restriction on the d-posterior risk of the first kind, i.e. on the rate of correct null hypotheses, with the proviso that the statistical experiment led to its rejection, is guaranteed. The possibilities of this approach are illustrated through the example of the problem of distinguishing genes with increased expression. We propose a general Bayesian model for solving similar problems. In particular, the problem of hyperactive and repressed gene selection is solved. Unlike traditional methods of multiple testing, there is also the possibility to distinguish more than two hypotheses, such as, genes with unchanged, increased, or decreased expression.
机译:多次测试的问题被认为是D-后方法保证假设辨别问题的特殊情况。这种方法是基于贝叶斯范式,仅适用于存在导致决定的实际统计实验的情况。限制了第一类的D-后后风险,即在正确的空假设的速率下,保证了统计实验导致其拒绝的附带条件。通过将基因与表达增加的问题的问题的例子来说明这种方法的可能性。我们提出了一般的贝叶斯模型来解决类似的问题。特别是,解决了过度活跃和抑制基因选择的问题。与传统的多种测试方法不同,还有可能区分了两种以上的假设,例如具有不变,增加或减少表达的基因。

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