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Persistent Experimenters, Stopping Rules, and Statistical Inference

机译:持久性实验者,停止规则和统计推断

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摘要

This paper considers a key point of contention between classical and Bayesian statistics that is brought to the fore when examining so-called ‘persistent experimenters’—the issue of stopping rules, or more accurately, outcome spaces, and their influence on statistical analysis. First, a working definition of classical and Bayesian statistical tests is given, which makes clear that (1) once an experimental outcome is recorded, other possible outcomes matter only for classical inference, and (2) full outcome spaces are nevertheless relevant to both the classical and Bayesian approaches, when it comes to planning/choosing a test. The latter point is shown to have important repercussions. Here we argue that it undermines what Bayesians may admit to be a compelling argument against their approach—the Bayesian indifference to persistent experimenters and their optional stopping rules. We acknowledge the prima facie appeal of the pro-classical ‘optional stopping intuition’, even for those who ordinarily have Bayesian sympathies. The final section of the paper, however, provides three error theories that may assist a Bayesian in explaining away the apparent anomaly in their reasoning.
机译:本文考虑了经典统计和贝叶斯统计之间的一个关键争论点,该点在检查所谓的“持久性实验者”时会脱颖而出-停止规则(或更准确地说是结果空间)及其对统计分析的影响。首先,给出了经典和贝叶斯统计检验的有效定义,该定义明确指出:(1)一旦记录了实验结果,其他可能的结果仅对经典推论重要;(2)完整的结果空间与两者均相关。在计划/选择测试时,采用经典和贝叶斯方法。后一点显示出重要的影响。在这里,我们认为,这破坏了贝叶斯主义者可能接受的反对其方法的引人注目的论点-贝叶斯对持久性实验者的冷漠态度以及他们可选的停止规则。我们承认亲古典的“选择性停止直觉”表面上的吸引力,即使对于那些通常有贝叶斯同情心的人也是如此。然而,本文的最后一部分提供了三种错误理论,这些理论可以帮助贝叶斯解释其推理中的明显异常。

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  • 来源
    《Erkenntnis》 |2013年第4期|937-961|共25页
  • 作者

    Katie Steele;

  • 作者单位

    Department of Philosophy Logic and Scientific Method London School of Economics and Political Science (LSE)">(1);

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