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Visual Analytics for Supporting Entity Relationship Discovery on Text Data

机译:可视化分析,用于支持文本数据上的实体关系发现

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To conduct content analysis over text data, one may look out for important named objects and entities that refer to real world instances, synthesizing them into knowledge relevant to a given information seeking task. In this paper, we introduce a visual analytics tool called ER-Explorer to support such an analysis task. ER-Explorer consists of a data model known as TUBE and a set of data manipulation operations specially designed for examining entities and relationships in text. As part of TUBE, a set of interestingness measures is defined to help exploring entities and their relationships. We illustrate the use of ER-Explorer in performing the task of finding associations between two given entities over a text data collection.
机译:为了对文本数据进行内容分析,可能要寻找引用真实世界实例的重要命名对象和实体,然后将它们合成为与给定信息搜索任务相关的知识。在本文中,我们介绍了一种名为ER-Explorer的可视化分析工具,以支持此类分析任务。 ER-Explorer由一个称为TUBE的数据模型和一组专门设计用于检查文本中的实体和关系的数据处理操作组成。作为TUBE的一部分,定义了一组有趣的措施来帮助探索实体及其之间的关系。我们说明了ER-Explorer在执行查找文本数据集合中两个给定实体之间的关联的任务中的用法。

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