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p 曲线的某些性质及其在逐步出版偏倚中的应用。

Some properties of p-curves, with an application to gradual publication bias.

机构信息

Department of Psychology, University of Tübingen.

Department of Psychology, University of Otago.

出版信息

Psychol Methods. 2018 Sep;23(3):546-560. doi: 10.1037/met0000125. Epub 2017 Apr 20.

Abstract

p-curves provide a useful window for peeking into the file drawer in a way that might reveal p-hacking (Simonsohn, Nelson, & Simmons, 2014a). The properties of p-curves are commonly investigated by computer simulations. On the basis of these simulations, it has been proposed that the skewness of this curve can be used as a diagnostic tool to decide whether the significant p values within a certain domain of research suggest the presence of p-hacking or actually demonstrate that there is a true effect. Here we introduce a rigorous mathematical approach that allows the properties of p-curves to be examined without simulations. This approach allows the computation of a p-curve for any statistic whose sampling distribution is known and thereby allows a thorough evaluation of its properties. For example, it shows under which conditions p-curves would exhibit the shape of a monotone decreasing function. In addition, we used weighted distribution functions to analyze how 2 different types of publication bias (i.e., cliff effects and gradual publication bias) influence the shapes of p-curves. The results of 2 survey experiments with more than 1,000 participants support the existence of a cliff effect at p = .05 and also suggest that researchers tend to be more likely to recommend submission of an article as the level of statistical significance increases beyond this p level. This gradual bias produces right-skewed p-curves mimicking the existence of real effects even when no such effects are actually present. (PsycINFO Database Record

摘要

p 曲线为窥视文件抽屉提供了一个有用的窗口,以揭示 p 操纵(Simonsohn、Nelson 和 Simmons,2014a)。p 曲线的性质通常通过计算机模拟进行研究。基于这些模拟,有人提出该曲线的偏度可以用作诊断工具,以确定研究某个领域内的显著 p 值是否表明存在 p 操纵,或者实际上表明存在真实效应。在这里,我们引入了一种严格的数学方法,无需模拟即可检查 p 曲线的性质。该方法允许计算任何采样分布已知的统计量的 p 曲线,从而可以对其性质进行彻底评估。例如,它展示了在哪些条件下 p 曲线将呈现单调递减函数的形状。此外,我们使用加权分布函数来分析 2 种不同类型的发表偏倚(即悬崖效应和逐渐发表偏倚)如何影响 p 曲线的形状。对超过 1000 名参与者进行的 2 项调查实验的结果支持在 p =.05 处存在悬崖效应,并且还表明,随着统计显着性水平超过该 p 水平,研究人员更倾向于建议提交文章。这种逐渐的偏差会产生右偏的 p 曲线,即使实际上不存在真实效应,也会模仿真实效应的存在。

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