A Comparative Study and Performance Analysis of ATM Card Fraud Detection Techniques

Md. Mijanur Rahman, A. Saha
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引用次数: 2

Abstract

ATM card fraud is increasing gradually with the expansion of modern technology and global communication. In the whole world, it is resulting in the loss of billions of dollars each year. Fraud detection systems have become essential for all ATM card issuing banks to minimize their losses. The main goals are, firstly, to review alternative techniques that have been used in fraud detection and secondly compare and analyze these techniques that are already used in ATM card fraud detection. Recently different card security systems used different fraud detection techniques; these techniques are based on neural network, genetic algorithm, hidden Markov model, Bayesian network, decision tree, clustering method, support vector machine, etc. According to our survey, the most important parameters used for comparing these fraud detection systems are accuracy, speed and cost of fraud detection. This study is very useful for any ATM card provider to choose an appropriate solution for fraud detection problem and also enable us to build a hybrid approach for developing some effective algorithms which can perform properly on fraud detection mechanism.
ATM卡欺诈检测技术的比较研究与性能分析
随着现代技术和全球通信的发展,ATM卡诈骗逐渐增多。在全世界,它每年造成数十亿美元的损失。欺诈检测系统已成为所有ATM发卡银行将损失降至最低的关键。主要目标是,首先,回顾已用于欺诈检测的替代技术,然后比较和分析已用于ATM卡欺诈检测的这些技术。最近,不同的卡安全系统使用了不同的欺诈检测技术;这些技术基于神经网络、遗传算法、隐马尔可夫模型、贝叶斯网络、决策树、聚类方法、支持向量机等。根据我们的调查,用于比较这些欺诈检测系统的最重要参数是欺诈检测的准确性、速度和成本。这项研究对任何ATM卡提供商选择合适的欺诈检测问题解决方案都非常有用,也使我们能够建立一种混合方法来开发一些有效的算法,这些算法可以在欺诈检测机制上正确执行。
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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