Detection of Feedback Reputation Fraud in Taobao Using Social Network Theory

Z. Yanchun, Zhang Wei, Yue Changhai
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引用次数: 14

Abstract

As the number of shoppers in C2C sites is rapidly growing in China, online customers may suffer from online fraud. The feedback reputation system has been used to prevent abusing behavior and secure transaction. However, large numbers of fraudsters manipulated their feedback scores by engaging in a number of legitimate sales. Furthermore, there exist agents of "Credit speculation", who boost the fraudsters' scores professionally in China. Since fraud behaviors are subtle and complex. it makes the fraudulent behavior more difficult to discover. In this study, we seek for extracting characteristic features in fraudsters' behaviors. We present an approach for analyzing online crediting behaviors, which utilizes the social network analysis (SNA) technique to detect the relationship of potential fraudsters. Some cases of real data from Taobao demonstrate our analyses.
基于社会网络理论的淘宝反馈信誉欺诈检测
随着中国C2C网站的购物者数量迅速增长,网上消费者可能会遭受网络欺诈。利用反馈信誉系统防止滥用行为,保证交易安全。然而,大量的欺诈者通过参与一些合法的销售来操纵他们的反馈分数。此外,中国还存在“信用投机”代理人,他们以专业的方式提高欺诈者的分数。因为欺诈行为是微妙而复杂的。这使得欺诈行为更难被发现。在本研究中,我们寻求提取欺诈者行为的特征特征。我们提出了一种分析在线信用行为的方法,该方法利用社会网络分析(SNA)技术来检测潜在欺诈者之间的关系。一些来自淘宝的真实数据案例证明了我们的分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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