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Fraud Detection by Human Agents: A Pilot Study

机译:代理人欺诈检测:一项初步研究

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摘要

Fraud is a constant problem for online auction sites. Besides failures in detecting fraudsters, the currently employed methods yield many false positives: bona fide sellers that end up harassed by the auction site as suspects. We advocate the use of human computation (also called erowdsourctng) to improve precision and recall of current fraud detection techniques. To examine the feasibility of our proposal, we did a pilot study with a set of human subjects, testing whether they could distinguish fraudsters from common sellers before negative feedback arrived and looking just at a snapshot of seller profiles. Here we present the methodology used and the obtained results, in terms of precision and recall of human classifiers, showing positive evidence that detecting fraudsters with human computation is viable.
机译:对于在线拍卖网站而言,欺诈一直是一个问题。除了未能发现欺诈者之外,当前采用的方法还产生了许多误报:善意的卖方最终被拍卖现场以嫌疑人的身份骚扰。我们提倡使用人工计算(也称为erowdsourctng)来提高准确性和召回当前的欺诈检测技术。为了检验我们提议的可行性,我们对一组人类受试者进行了一项试点研究,测试了他们是否可以在负面反馈到达之前将欺诈者与普通卖方区分开,并仅查看卖方资料的快照。在这里,我们根据人类分类器的精确度和召回率,介绍了所使用的方法和所获得的结果,显示出通过人工计算检测欺诈者是可行的积极证据。

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