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Identifying Suspicious Bidders Utilizing Hierarchical Clustering and Decision Trees

机译:识别使用分层聚类和决策树的可疑投标人

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Identifying bidders with suspicious bidding activities related to possible online auction fraud is a difficult task due to a large number of users participating in online auctions. In order to reduce the number of users to be investigated, we examine observable features of a bidder's behavior, and utilize a hierarchical clustering technique to divide a collection of bidders into normal and deviant groups. Based on the clustering results, we generate a decision tree that can be used to efficiently characterize new bidders as normal, suspicious, or highly suspicious. To illustrate the effectiveness of our proposed approach, we collected real auction datasets from online auctions, and used 3-fold validation approach to show that the error rates of the generated decision trees are reasonably low.
机译:由于大量用户参与在线拍卖,识别与可能的在线拍卖欺诈有关的可疑招标活动的投标人是一项艰巨的任务。为了减少要调查的用户数量,我们检查出价者行为的可观察功能,并利用分层聚类技术将投标人集合划分为正常和异常组。根据聚类结果,我们生成一个决策树,可以用来有效地将新投标人视为正常,可疑或高度可疑的。为了说明我们所提出的方法的有效性,我们从在线拍卖中收集了真正的拍卖数据集,并使用了3倍验证方法来表明所生成的决策树的错误率合理低。

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