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Method for training and using a classification model with association rule models

机译:训练和使用具有关联规则模型的分类模型的方法

摘要

A classification model is trained and used for detecting patterns in input data. The training of the model includes retrieving a set of previously recorded input data containing a plurality of items associated with a plurality of entities and adding to each entity a known classification. Furthermore, training the model includes determining rules from the set of previously recorded input data and the known classification by associating the classification of each entity with the respective items of said entity. The training of the model further includes determining a set of rules which are applicable, aggregating the lift values of the rules determined for said entity, and predicting a classification based on the aggregated association values for each entity. The resulting aggregated lift value together with the respective entity and classification are used as input for a standard classification algorithm, where the result is a classification model.
机译:训练分类模型并将其用于检测输入数据中的模式。模型的训练包括检索一组先前记录的输入数据,该输入数据包含与多个实体关联的多个项目,并将已知分类添加到每个实体。此外,训练模型包括通过将每个实体的分类与所述实体的各个项目相关联,从先前记录的输入数据和已知分类中确定规则。模型的训练还包括确定一组适用的规则,聚合为所述实体确定的规则的提升值,并基于每个实体的聚合关联值来预测分类。所得的合计提升值以及相应的实体和分类将用作标准分类算法的输入,其中结果是分类模型。

著录项

  • 公开/公告号US8799193B2

    专利类型

  • 公开/公告日2014-08-05

    原文格式PDF

  • 申请/专利权人 TONI BOLLINGER;

    申请/专利号US201013514044

  • 发明设计人 TONI BOLLINGER;

    申请日2010-12-07

  • 分类号G06N5/02;G06N99;G06F17/30;

  • 国家 US

  • 入库时间 2022-08-21 16:00:41

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