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A Model for Ranking Entities and Its Application to Wikipedia

机译:将实体的模型及其在维基百科的应用

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Entity Ranking (ER) is a recently emerging search task in Information Retrieval, where the goal is not finding documents matching the query words, but instead finding entities which match types and attributes mentioned in the query. In this paper we propose a formal model to define entities as well as a complete ER system, providing examples of its application to enterprise, Web, and Wikipedia scenarios. Since searching for entities on Web scale repositories is an open challenge as the effectiveness of ranking is usually not satisfactory, we present a set of algorithms based on our model and evaluate their retrieval effectiveness. The results show that combining simple Link Analysis, Natural Language Processing, and Named Entity Recognition methods improves retrieval performance of entity search by over 53% for P@10 and 35% for MAP.
机译:实体排名(ER)是信息检索中最近出现的搜索任务,其中目标不是找到与查询字词匹配的文档,而是找到匹配查询中提到的类型和属性的实体。在本文中,我们提出了一个正式模型来定义实体以及完整的ER系统,为企业,Web和维基百科方案提供其应用的示例。由于搜索Web比例存储库的实体是一个开放挑战,因为排名的有效性通常不令人满意,我们提出了一组基于我们的模型的算法,并评估了他们的检索效率。结果表明,结合简单的链路分析,自然语言处理和命名实体识别方法可以提高实体搜索的检索性能超过53%的P @ 10和35%的地图。

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