银行内部支付系统异常检测的多级广义聚类方法及算法

E. Žunić, Zlatan Tucakovic, K. Hodzic, Sead Delalic
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引用次数: 4

摘要

在真实的数据集中经常出现变量或多个变量具有异常值的情况。这些情况被称为异常或异常值。对于任何分析,检测它们都是必要的,因为它们会使分析产生偏差。本文提出了一种基于中值而非均值的鲁棒异常检测方法。解释了该方法,以及它的参数和它们如何影响结果。然后实现该方法,并在内部银行支付系统上使用。并给出了分析结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-level Generalized Clustering Approach and Algorithm for Anomaly Detection in Internal Banking Payment Systems
In real datasets often occur cases, where variable or multiple variables have unusual values. These cases are known as anomalies or outliers. For any analysis, it is essential to detect them, because they can bias the analysis. In this paper, a robust anomaly detection method is presented, and it is based on median, rather then on mean value. The method is explained, as well as its parameters and the way how they affect the results. The method is then implemented, and used on Internal Banking Payment Systems. Analysis is given and results are presented.
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