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Bayesian inference in disputed authorship: A case study of cognitive errors and a new system for decision support

机译:贝叶斯在作者著作权方面的推断:认知错误的案例研究和新的决策支持系统

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Bayesian inference provides a formal framework for assessing the odds of hypotheses in light of evidence. This makes Bayesian inference applicable to a wide range of diagnostic challenges in the field of chance discovery, including the problem of disputed authorship that arises in electronic commerce, counter-terrorism and other forensic applications. For example, when two documents are so similar that one is likely to be a hoax written from the other, the question is: Which document is most likely the source and which document is most likely the hoax? Here I review a Bayesian study of disputed authorship performed by a biblical scholar, and I show that the scholar makes critical errors with respect to several issues, namely: Causal Basis, Likelihood Judgment and Conditional Dependency. The scholar's errors are important because they have a large effect on his conclusions and because similar errors often occur when people, both experts and novices, are faced with the challenges of Bayesian inference. As a practical solution, I introduce a graphical system designed to help prevent the observed errors. I discuss how this decision support system applies more generally to any problem of Bayesian inference, and how it differs from the graphical models of Bayesian Networks. (C) 2005 Elsevier Inc. All rights reserved.
机译:贝叶斯推理为根据证据评估假设可能性提供了正式的框架。这使得贝叶斯推理适用于机会发现领域中的各种诊断挑战,包括电子商务,反恐和其他法证应用中出现的有争议的作者身份问题。例如,当两个文档非常相似,以至于一个文档可能是另一个文档中的骗局时,问题是:哪个文档最有可能是源文件,哪个文档最有可能是骗局?在这里,我回顾了一位圣经学者对贝叶斯著作权争议的研究,发现该学者在以下几个方面犯了严重错误:因果关系,似然判断和条件依存。学者的错误很重要,因为它们对他的结论有很大的影响,并且当专家和新手都面临贝叶斯推理的挑战时,经常会发生类似的错误。作为一种实用的解决方案,我介绍了一个图形系统,旨在帮助防止观察到的错误。我将讨论该决策支持系统如何更广泛地应用于贝叶斯推理的任何问题,以及它与贝叶斯网络的图形模型有何不同。 (C)2005 Elsevier Inc.保留所有权利。

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