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INCREMENTAL FACTORIZATION-BASED SMOOTHING OF SPARSE MULTI-DIMENSIONAL RISK TABLES

机译:基于增量分解的稀疏多维风险表的平滑度

摘要

A system for classifying a transaction as fraudulent includes a training component and a scoring component. The training component acts on historical data and also includes a multi-dimensional risk table component comprising one or more multidimensional risk tables each of which approximates an initial risk value for a substantially empty cell in a risk table based upon risk values in cells related to the substantially empty cell. The scoring component produces a score, based in part, on the risk tables associated with groupings of variables having values determined by the training component. The scoring component includes a statistical model that produces an output and wherein the transaction is classified as fraudulent when the output is above a selected threshold value.
机译:用于将交易分类为欺诈的系统包括训练组件和计分组件。训练组件作用于历史数据,并且还包括多维风险表组件,该多维风险表组件包括一个或多个多维风险表,每个多维风险表都基于与风险相关的单元格中的风险值来近似于风险表中基本为空的单元格的初始风险值。基本为空的单元格。计分组件部分地基于与具有由训练组件确定的值的变量分组相关联的风险表来产生分数。计分组件包括产生输出的统计模型,其中,当输出高于所选阈值时,交易被分类为欺诈。

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