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A new user-based model for credit card fraud detection based on artificial immune system

机译:基于人工免疫系统的基于用户的信用卡欺诈检测新模型

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In this paper we present a new model based on Artificial Immune System for credit card fraud detection. In this model, which is based on Artificial Immune Recognition System, user behavior is considered. The model puts together the two methodologies of fraud detection, namely tracking account behavior and general thresholding. The system generates normal memory cells using each user's transaction records, yet fraud memory cells are generated based on all fraudulent records. To get more accurate results, we have performed analysis on training data in order to control the number of memory cells. During the test phase each user's transaction is presented to his/her own normal memory cells, together with fraud memory cells.
机译:在本文中,我们提出了一种基于人工免疫系统的信用卡欺诈检测新模型。在基于人工免疫识别系统的模型中,考虑了用户行为。该模型汇总了欺诈检测的两种方法,即跟踪帐户行为和常规阈值。该系统使用每个用户的交易记录生成普通存储单元,但会基于所有欺诈记录生成欺诈存储单元。为了获得更准确的结果,我们对训练数据进行了分析,以控制存储单元的数量。在测试阶段,每个用户的交易与欺诈性存储单元一起呈现给他/她自己的普通存储单元。

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