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A customized classification algorithm for credit card fraud detection

机译:定制的信用卡欺诈分类算法

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摘要

This paper presents Fraud-BNC, a customized Bayesian Network Classifier (BNC) algorithm for a real credit card fraud detection problem. The task of creating Fraud-BNC was automatically performed by a Hyper-Heuristic Evolutionary Algorithm (HHEA), which organizes the knowledge about the BNC algorithms into a taxonomy and searches for the best combination of these components for a given dataset. Fraud-BNC was automatically generated using a dataset from PagSeguro, the most popular Brazilian online payment service, and tested together with two strategies for dealing with cost-sensitive classification. Results obtained were compared to seven other algorithms, and analyzed considering the data classification problem and the economic efficiency of the method. Fraud-BNC presented itself as the best algorithm to provide a good trade-off between both perspectives, improving the current company’s economic efficiency in up to 72.64%.
机译:本文提出了Fraud-BNC,这是一种针对实际信用卡欺诈检测问题的定制贝叶斯网络分类器(BNC)算法。 Hyper-Heuristic进化算法(HHEA)自动执行创建欺诈BNC的任务,该算法将有关BNC算法的知识组织到分类中,并为给定的数据集搜索这些组件的最佳组合。 Fraud-BNC是使用来自巴西最受欢迎的在线支付服务PagSeguro的数据集自动生成的,并与用于处理成本敏感分类的两种策略一起进行了测试。将获得的结果与其他七个算法进行比较,并考虑到数据分类问题和该方法的经济效率进行分析。 Fraud-BNC提出了自己最好的算法,可以在两种观点之间做出良好的折衷,从而将当前公司的经济效率提高了72.64%。

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