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Recognizing Relation Expression between Named Entities based on Inherent and Context-dependent Features of Relational words

机译:基于关系词的固有和上下文相关特征的命名实体之间的关系表达

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This paper proposes a supervised learn-ing method to recognize expressions that show a relation between two named en-tities, e.g., person, location, or organiza-tion. The method uses two novel fea-tures, 1) whether the candidate words in-herently express relations and 2) how the candidate words are influenced by the past relations of two entities. These features together with conventional syntactic and contextual features are organized as a tree structure and are fed into a boosting-based classification algorithm. Experimental re-sults show that the proposed method out-performs conventional methods.
机译:本文提出了一种监督式学习方法,用于识别表示两个命名实体(例如人,位置或组织)之间的关系的表达式。该方法使用两个新颖的功能:1)候选词是否固有地表达关系; 2)候选词如何受两个实体的过去关系影响。这些特征与常规句法和上下文特征一起被组织为树结构,并被馈送到基于提升的分类算法中。实验结果表明,该方法优于常规方法。

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