Adaptations on the Use of p-Values for Statistical Inference: An Interpretation of Messages from Recent Public Discussions

IF 0.9 Q4 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS Stats Pub Date : 2023-04-25 DOI:10.3390/stats6020035
E. Verykouki, Chris Nakas
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Abstract

P-values have played a central role in the advancement of research in virtually all scientific fields; however, there has been significant controversy over their use. “The ASA president’s task force statement on statistical significance and replicability” has provided a solid basis for resolving the quarrel, but although the significance part is clearly dealt with, the replicability part raises further discussions. Given the clear statement regarding significance, in this article, we consider the validity of p-value use for statistical inference as de facto. We briefly review the bibliography regarding the relevant controversy in recent years and illustrate how already proposed approaches, or slight adaptations thereof, can be readily implemented to address both significance and reproducibility, adding credibility to empirical study findings. The definitions used for the notions of replicability and reproducibility are also clearly described. We argue that any p-value must be reported along with its corresponding s-value followed by (1−α)% confidence intervals and the rejection replication index.
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p值在统计推断中的应用:对近期公开讨论信息的解读
p值在几乎所有科学领域的研究进展中发挥了核心作用;然而,它们的使用一直存在重大争议。“ASA主席的工作组关于统计显著性和可复制性的声明”为解决争论提供了坚实的基础,但尽管显著性部分得到了明确的处理,但可复制性部分引发了进一步的讨论。鉴于关于显著性的明确声明,在本文中,我们认为p值用于统计推断的有效性事实上。我们简要回顾了近年来有关争议的参考文献,并说明了如何已经提出的方法,或对其进行轻微调整,可以很容易地实施,以解决重要性和可重复性,增加实证研究结果的可信度。用于可复制性和可再现性概念的定义也被清楚地描述。我们认为,任何p值都必须与其对应的s值一起报告,然后是(1−α)%置信区间和拒绝复制指数。
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来源期刊
CiteScore
0.60
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0.00%
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0
审稿时长
7 weeks
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