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  • 标题:Credible Confidence: A Pragmatic View on the Frequentist vs Bayesian Debate
  • 本地全文:下载
  • 作者:Casper J. Albers ; Henk A. L. Kiers ; Don van Ravenzwaaij
  • 期刊名称:Collabra: Psychology
  • 电子版ISSN:2474-7394
  • 出版年度:2018
  • 卷号:4
  • 期号:1
  • 页码:1-8
  • DOI:10.1525/collabra.149
  • 出版社:University of California Press
  • 摘要:The debate between Bayesians and frequentist statisticians has been going on for decades. Whilst there are fundamental theoretical and philosophical differences between both schools of thought, we argue that in two most common situations the practical differences are negligible when off-the-shelf Bayesian analysis (i.e., using ‘objective’ priors) is used. We emphasize this reasoning by focusing on interval estimates: confidence intervals and credible intervals. We show that this is the case for the most common empirical situations in the social sciences, the estimation of a proportion of a binomial distribution and the estimation of the mean of a unimodal distribution. Numerical differences between both approaches are small, sometimes even smaller than those between two competing frequentist or two competing Bayesian approaches. We outline the ramifications of this for scientific practice.
  • 关键词:confidence interval; credible interval; frequentist statistics; Bayesian statistics
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