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Detecting and measuring risk with predictive models using content mining

机译:使用内容挖掘通过预测模型检测和测量风险

摘要

Computer implemented methods and systems of processing transactions to determine the risk of transaction convert high categorical information, such as text data, to low categorical information, such as category or cluster IDs. The text data may be merchant names or other textual content of the transactions, or data related to a consumer, or any other type of entity which engages in the transaction. Content mining techniques are used to provide the conversion from high to low categorical information. In operation, the resulting low categorical information is input, along with other data, into a statistical model. The statistical model provides an output of the level of risk in the transaction. Methods of converting the high categorical information to low categorical clusters, of using such information, and other aspects of the use of such clusters are disclosed.
机译:处理交易以确定交易风险的计算机实现的方法和系统将诸如文本数据之类的高类别信息转换为诸如类别或群集ID之类的低类别信息。文本数据可以是商家名称或交易的其他文本内容,也可以是与消费者有关的数据,也可以是参与交易的任何其他类型的实体。内容挖掘技术用于提供从高分类信息到低分类信息的转换。在操作中,所得的低分类信息与其他数据一起输入到统计模型中。统计模型提供了交易中风险级别的输出。公开了将高分类信息转换为低分类聚类,使用此类信息以及使用此类聚类的其他方面的方法。

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