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A Unified Conditional Frequentist and Bayesian Test for Fixed and Sequential Simple Hypothesis Testing

机译:固定和顺序简单假设检验的统一条件频率和贝叶斯检验

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摘要

Preexperimental frequentist error probabilities are arguably inadequate, as summaries of evidence from data, in many hypothesis-testing settings. The conditional frequentist may respond to this by identifying certain subsets of the outcome space and reporting a conditional error probability, given the subset of the outcome space in which the observed data lie. Statistical methods consistent with the likelihood principle, including Bayesian methods, avoid the problem by a more extreme form of conditioning.In this paper we prove that the conditional frequentist\u27s method can be made exactly equivalent to the Bayesian\u27s in simple versus simple hypothesis testing: specifically, we find a conditioning strategy for which the conditional frequentist\u27s reported conditional error probabilities are the same as the Bayesian\u27s posterior probabilities of error. A conditional frequentist who uses such a strategy can exploit other features of the Bayesian approach--for example, the validity of sequential hypothesis tests (including versions of the sequential probability ratio test, or SPRT) even if the stopping rule is incompletely specified.
机译:在许多假设检验环境中,作为数据证据的总结,实验前的频繁主义者错误概率可能不足。有条件的常客可以通过确定结果空间的某些子集并报告给定的观察结果数据的结果空间的子集来报告条件错误概率,从而对此做出响应。与贝叶斯方法相一致的统计方法(包括贝叶斯方法)通过更极端的条件形式避免了这一问题。本文证明,在简单假设和简单假设中,条件常压者方法可以完全等同于贝叶斯方法。测试:具体地说,我们找到了一种条件调节策略,该条件调节者报告的条件错误概率与贝叶斯后验误差概率相同。使用这种策略的条件常客可以利用贝叶斯方法的其他功能-例如,即使未完全指定停止规则,顺序假设检验(包括顺序概率比检验或SPRT的版本)的有效性。

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