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A BAYESIAN APPROACH FOR SUSPICIOUS FINANCIAL ACTIVITY REPORTING

机译:可疑金融活动报告的贝叶斯方法

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This paper presents a Bayesian network (BN)-based approach to analyse customers' transactions in a financial institution and then to detect suspicious patterns in them. The approach is developed as part of an anti-money laundering system that requires identification of suspicious transactions so that they are reported to the concerned authorities in a timely manner. The proposed BN is designed on the basis of rules suggested by the State Bank of Pakistan in its 2008 regulations to declare a transaction as suspicious. Using transaction history, the proposed approach assigns a baseline money laundering score to each customer. The score is an indication of the customer's transaction behaviour. During the live operational mode, if there is a significant difference in customer's historical transactional pattern and the current behaviour, an alert is generated which requires the branch manager (or compliance head) to verify the reason for the difference. The approach has been tested on real financial transactions set having more than 8.2 million records of more than hundred thousand customers.
机译:本文提出一种基于贝叶斯网络(BN)的方法来分析金融机构中客户的交易,然后检测其中的可疑模式。该方法是反洗钱系统的一部分,该系统要求识别可疑交易,以便及时向有关当局报告。拟议中的国阵是根据巴基斯坦国家银行在其2008年法规中建议宣布可疑交易的规则设计的。利用交易历史,所提出的方法为每个客户分配了基线洗钱分数。分数表示客户的交易行为。在实时运营模式下,如果客户的历史交易模式和当前行为存在显着差异,则会生成警报,要求分支机构经理(或合规负责人)验证差异的原因。该方法已经过真实金融交易集的测试,该交易集拥有超过820万条记录,超过十万个客户。

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