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Critical Evaluation of Data Requires Rigorous but Broadly Based Statistical Inference

机译:数据的关键评估需要严格但广泛地基于统计推理

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The rampant misuse of the P value and of its stated meaning lead the American Statistical Association to comment, researchers often wish to turn a P value into a statement about the truth of a null hypothesis, or about the probability that random chance produced the observed data. The P value is neither. It is a statement about data in relation to a specified hypothetical explanation and is not a statement about the explanation itself. 1 The American Statistical Association is not alone in its concern: a host of recent literature provides context for the desire to use statistical inference to reinforce rigor and reproducibility in scientific research. 2-4 A central focus of this literature is the widely acknowledged and severe limitations we impose on ourselves with a blind and naive adherence to the exclusive use of P values for understanding significance of research findings.
机译:猖獗的P值滥用和其陈述的意义引导了美国统计协会的评论,研究人员经常希望将P值转变为关于空假设的真实性的陈述,或者随机机会产生观察到的数据的概率 。 p值既不是。 它是关于与指定假设解释相关的数据的陈述,并且不是关于解释本身的陈述。 1美国统计会的关注并不孤单:最近的一系列文献为希望利用统计推理来加强科研中的严格和可重复性的愿望提供了背景。 2-4这篇文学的中央焦点是我们对自己强加的广泛承认和严重的局限性,盲目和天真地遵守对研究结果的重要性的专用使用P值。

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