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ATM Fraud Detection using Behavior Model

机译:ATM欺诈检测使用行为模型

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This research study relationships between fraud and non-fraud transactions of the ATM. Given the transactions, which are obtained from a commercial bank in Thailand, a behavior of each account in one day such as the total amount withdraw and the number of transactions are extracted. Given the set of transactions in each account, the reference is computed within the specific time-window. The reference value and spread are used for constructing a boundary to define the normal and abnormal behavior. Given an instance of aggregate transactions over certain time window, it is predicted as a fraud if the total amount and the total number of transactions per day lies outside the boundary. Experiments are conducted to compare the accuracy between different aggregation time windows and boundaries with different spreading factors.
机译:本研究研究了ATM的欺诈与非欺诈交易之间的关系。鉴于从泰国商业银行获得的交易,一天中每个账户的行为,例如退出总额和交易数量。鉴于每个帐户中的一组事务,参考在特定的时间窗口中计算。参考值和扩展用于构建边界以定义正常和异常行为。鉴于某些时间窗口中的总交易实例,如果总金额和每天的交易总数在边界之外,则预测为欺诈。进行实验以比较不同聚合时间窗口与不同传播因子的边界之间的准确性。

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