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Using location aware business rules for preventing retail banking frauds

机译:使用位置感知业务规则来防止零售银行欺诈

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Fraud detection procedures for national and international economies have become quite an important task. Ensuring the security of transactions carried out by banks and other financial institutions is one of the major factors affecting the reputation and profitability of such organizations. However, since people who perform fraudulent transactions change their methods constantly in order not to get caught up, it gets more difficult to identify and detect this type of transactions. Detecting this type of transactions makes the support of technology compulsory, considering high volume and intensity of transactions. In this paper, we explore practicality of using location data to aid finding better business rules where they can easily be deployed with a rule-based fraud detection and prevention system for retail banking. In order to study the importance of location data, we first compiled a set of anonymized automated teller machine (ATM) usage data from a mid-size bank in Turkey. Depending on how much mobile the card owners are, we can easily devise business rules to detect the anomalies. Such anomalies can be directed to appropriate business units to be analyzed further or account owners may be required additional authorizations for banking activities (such as internet money transfers and payments). We have shown in this paper that a significant bulk of ATM users does not leave the vicinity of their living place. We also give some brief use cases and hints regarding what types of business rules can be extracted from location data.
机译:针对国家和国际经济的欺诈检测程序已成为相当重要的任务。确保银行和其他金融机构进行的交易的安全性是影响此类组织的声誉和盈利能力的主要因素之一。但是,由于执行欺诈性交易的人不断地改变其方法以免被追赶,因此识别和检测此类交易变得更加困难。考虑到大量的交易和强度,检测到这种类型的交易使技术支持成为强制性的。在本文中,我们探索了使用位置数据来帮助查找更好的业务规则的实用性,在这些规则中可以轻松地将它们与基于规则的零售银行欺诈检测和预防系统一起部署。为了研究位置数据的重要性,我们首先从土耳其的一家中型银行收集了一组匿名自动柜员机(ATM)使用数据。根据持卡人的移动量,我们可以轻松设计业务规则以检测异常情况。可以将此类异常情况定向到适当的业务部门,以进行进一步分析,或者可能要求帐户所有者进行银行活动的其他授权(例如,互联网汇款和付款)。我们已经在本文中表明,大量的ATM用户不会离开他们居住的地方。我们还提供一些简短的用例,并提示可以从位置数据中提取哪些类型的业务规则。

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