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TAER: Time-Aware Entity Retrieval:Exploiting the Past to find Relevant Entities in News Articles

机译:TAER:时间感知实体检索:利用过去在新闻文章中查找相关实体

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Retrieving entities instead of just documents has become an important task for search engines. In this paper we study entity retrieval for news applications, and in particular the importance of the news trail history (i.e., past related articles) in determining the relevant entities in current articles. This is an important problem in applications that display retrieved entities to the user, together with the news article. We analyze and discuss some statistics about entities in news trails, unveiling some unknown findings such as the persistence of relevance over time. We focus on the task of query dependent entity retrieval over time. For this task we evaluate several features, and show that their combinations significantly improves performance.
机译:检索实体而不仅仅是文档已成为搜索引擎的一项重要任务。在本文中,我们研究了用于新闻应用程序的实体检索,尤其是新闻线索历史记录(即过去的相关文章)在确定当前文章中的相关实体方面的重要性。在将检索到的实体与新闻一起显示给用户的应用程序中,这是一个重要问题。我们分析并讨论了有关新闻线索中实体的一些统计数据,揭示了一些未知的发现,例如随着时间的流逝,相关性的持续存在。随着时间的推移,我们专注于查询相关实体检索的任务。对于此任务,我们评估了几个功能,并表明它们的组合可显着提高性能。

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