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On Visualizing Heterogeneous Semantic Networks from Multiple Data Sources

机译:从多个数据源可视化异构语义网络

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In this paper, we focus on the visualization of heterogeneous semantic networks obtained from multiple data sources. A semantic network comprising a set of entities and relationships is often used for representing knowledge derived from textual data or database records. Although the semantic networks created for the same domain at different data sources may cover a similar set of entities, these networks could also be very different because of naming conventions, coverage, view points, and other reasons. Since digital libraries often contain data from multiple sources, we propose a visualization tool to integrate and analyze the differences among multiple social networks. Through a case study on two terrorism-related semantic networks derived from Wikipedia and Terrorism Knowledge Base (TKB) respectively, the effectiveness of our proposed visualization tool is demonstrated.
机译:在本文中,我们专注于从多个数据源获得的异构语义网络的可视化。包括一组实体和关系的语义网络通常用于表示从文本数据或数据库记录中获得的知识。尽管在不同数据源为同一域创建的语义网络可能覆盖一组相似的实体,但是由于命名约定,覆盖范围,观点和其他原因,这些网络也可能有很大不同。由于数字图书馆通常包含来自多个来源的数据,因此我们建议使用可视化工具来集成和分析多个社交网络之间的差异。通过对分别来自维基百科和恐怖主义知识库(TKB)的两个与恐怖主义有关的语义网络的案例研究,证明了我们提出的可视化工具的有效性。

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