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Semantic Concept Discovery over Event Databases

机译:对事件数据库的语义概念发现

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In this paper, we study the problem of identifying certain types of concept (e.g., persons, organizations, topics) for a given analysis question with the goal of assisting a human analyst in writing a deep analysis report. We consider a case where we have a large event database describing events and their associated news articles along with meta-data describing various event attributes such as people and organizations involved and the topic of the event. We describe the use of semantic technologies in question understanding and deep analysis of the event database, and show a detailed evaluation of our proposed concept discovery techniques using reports from Human Rights Watch organization and other sources. Our study finds that combining our neural network based semantic term embeddings over structured data with an index-based method can significantly outperform either method alone.
机译:在本文中,我们研究了给定分析问题的某些类型的概念(例如,人员,组织,主题)的问题,其目的是协助人类分析师写入深入分析报告。我们考虑了我们有一个大型事件数据库描述事件及其相关新闻文章以及描述所涉及的人员和组织等各种事件属性的元数据以及事件的主题。我们描述了对事件数据库的问题理解和深度分析的使用语义技术,并显示了使用人权观看组织和其他来源的报告的提出概念发现技术的详细评估。我们的研究发现,将基于神经网络的语义术语嵌入与基于索引的方法的结构化数据相结合,可以显着优于单独的方法。

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