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MACHINE LEARNING MODEL THAT QUANTIFIES THE RELATIONSHIP OF SPECIFIC TERMS TO THE OUTCOME OF AN EVENT

机译:机器学习模型,可量化特定术语与事件结果之间的关系

摘要

A machine learning model is trained to quantify the relationship of specific terms or groups of terms to the outcome of an event. To train the model, a set of data including structured and unstructured data and information describing previous outcomes of the event is received. The unstructured data is analyzed and features corresponding to one or more terms are identified, extracted, and merged together with features extracted from the structured data. The model is trained based at least in part on a set of the merged features, each of which is associated with a value quantifying a relationship of the feature to the outcome of the event. An output is generated based at least in part on a likelihood of the outcome of the event that is predicted using the model and input values corresponding to at least some of the set of features used to train the model.
机译:训练机器学习模型以量化特定术语或术语组与事件结果的关系。为了训练模型,需要接收一组数据,包括结构化和非结构化数据以及描述事件先前结果的信息。分析非结构化数据,并识别,提取与一个或多个术语相对应的特征,并将其与从结构化数据中提取的特征合并在一起。至少部分地基于一组合并的特征来训练模型,每个特征都与量化特征与事件结果的关系的值相关联。至少部分地基于使用模型预测的事件结果的可能性以及与用于训练模型的一组特征中的至少一些特征相对应的输入值来生成输出。

著录项

  • 公开/公告号US2019370601A1

    专利类型

  • 公开/公告日2019-12-05

    原文格式PDF

  • 申请/专利权人 NUTANIX INC.;

    申请/专利号US201815948929

  • 发明设计人 REVATHI ANIL KUMAR;MARK ALBERT CHAMNESS;

    申请日2018-04-09

  • 分类号G06K9/62;G06F17/30;G06F15/18;

  • 国家 US

  • 入库时间 2022-08-21 11:18:45

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