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An expert system for detecting automobile insurance fraud using social network analysis

机译:利用社交网络分析检测汽车保险欺诈的专家系统

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摘要

The article proposes an expert system for detection, and subsequent investigation, of groups of collaborating automobile insurance fraudsters. The system is described and examined in great detail, several technical difficulties in detecting fraud are also considered, for it to be applicable in practice. Opposed to many other approaches, the system uses networks for representation of data. Networks are the most natural representation of such a relational domain, allowing formulation and analysis of complex relations between entities. Fraudulent entities are found by employing a novel assessment algorithm, Iterative Assessment Algorithm (IAA), also presented in the article. Besides intrinsic attributes of entities, the algorithm explores also the relations between entities. The prototype was evaluated and rigorously analyzed on real world data. Results show that automobile insurance fraud can be efficiently detected with the proposed system and that appropriate data representation is vital.
机译:本文提出了一个专家系统,用于检测并随后调查协作的汽车保险欺诈者群体。对该系统进行了详细描述和检查,还考虑了检测欺诈的一些技术难题,以便在实践中应用。与许多其他方法相反,该系统使用网络表示数据。网络是这种关系域的最自然的表示形式,允许制定和分析实体之间的复杂关系。通过采用一种新颖的评估算法(迭代评估算法(IAA))也可以发现欺诈性实体,本文中也对此进行了介绍。除了实体的固有属性外,该算法还探索实体之间的关系。对原型进行了评估,并根据现实世界的数据进行了严格的分析。结果表明,使用所提出的系统可以有效地检测汽车保险欺诈,并且适当的数据表示至关重要。

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