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NAMED ENTITY DISAMBIGUATION: A HYBRID APPROACH

机译:命名实体歧义化:一种混合方法

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Semantic annotation of named entities for enriching unstructured content is a critical step in development of Semantic Web and many Natural Language Processing applications. To this end, this paper addresses the named entity disambiguation problem that aims at detecting entity mentions in a text and then linking them to entries in a knowledge base. In this paper, we propose a hybrid method, combining heuristics and statistics, for named entity disambiguation. The novelty is that the disambiguation process is incremental and includes several rounds that filter the candidate referents, by exploiting previously identified entities and extending the text by those entity attributes every time they are successfully resolved in a round. Experiments are conducted to evaluate and show the advantages of the proposed method. The experiment results show that our approach achieves high accuracy and can be used to construct a robust entity disambiguation system.
机译:命名实体的语义注释以丰富非结构化内容是语义Web和许多自然语言处理应用程序开发中的关键步骤。为此,本文解决了命名实体歧义消除问题,该问题旨在检测文本中的实体提及,然后将其链接到知识库中的条目。在本文中,我们提出了一种混合方法,将启发式方法和统计方法相结合,以解决命名实体的歧义问题。新颖之处在于,消除歧义的过程是渐进式的,并且包括多次回合,通过利用先前识别的实体并在每次成功解决它们后,通过这些实体属性扩展文本,从而过滤候选引用对象。实验进行了评估,并表明了该方法的优点。实验结果表明,该方法具有较高的准确性,可用于构建鲁棒的实体消歧系统。

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