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Toward Replicability With Confidence Intervals for the Exceedance Probability

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DataCite Commons2021-05-10 更新2024-07-27 收录
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Several scientific fields including psychology are undergoing a replication crisis. There are many reasons for this problem, one of which is a misuse of <i>p</i>-values. There are several alternatives to <i>p</i>-values, and in this article we describe a complement that is geared toward replication. In particular, we focus on confidence intervals for the probability that a parameter estimate will exceed a specified value in an exact replication study. These intervals convey uncertainty in a way that <i>p</i>-values and standard confidence intervals do not, and can help researchers to draw sounder scientific conclusions. After briefly reviewing background on <i>p</i>-values and a few alternatives, we describe our approach and provide examples with simulated and real data. For linear models, we also describe how confidence intervals for the exceedance probability are related to <i>p</i>-values and confidence intervals for parameters.

提供机构:
Taylor & Francis
创建时间:
2019-11-22
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