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An approach for measuring semantic similarity between words using multiple information sources

机译:一种使用多个信息源测量词之间语义相似度的方法

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摘要

Semantic similarity between words is becoming a generic problem for many applications of computational linguistics and artificial intelligence. This paper explores the determination of semantic similarity by a number of information sources, which consist of structural semantic information from a lexical taxonomy and information content from a corpus. To investigate how information sources could be used effectively, a variety of strategies for using various possible information sources are implemented. A new measure is then proposed which combines information sources nonlinearly. Experimental evaluation against a benchmark set of human similarity ratings demonstrates that the proposed measure significantly outperforms traditional similarity measures.
机译:对于计算语言学和人工智能的许多应用,单词之间的语义相似性正成为一个普遍的问题。本文探讨了通过多种信息源确定语义相似性的方法,这些信息源包括词汇分类法中的结构性语义信息和语料库中的信息内容。为了研究如何有效地使用信息源,已实施了各种使用各种可能的信息源的策略。然后提出了一种新方法,该方法非线性地组合了信息源。根据一组人类相似性评级基准进行的实验评估表明,所提出的措施大大优于传统的相似性措施。

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