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Measuring Semantic Similarity Based on WordNet

机译:基于WordNet的语义相似度度量

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摘要

Semantic similarity between concepts is a fundamental problem and plays an important role in many applications of artificial intelligence, knowledge sharing and Web mining. In this paper, a new measure based on semantic ontology database WordNet is proposed which combines information content-based measure and the edge-counting techniques to measure semantic similarity. "PART-OF" and "IS-A" hierarchical relationsȁ9; influence are considered on the semantic similarity in this paper. Breadth-first search is used to find the shortest path between two concepts. The similarity of hiberarchy and superposition are calculated respectively. WordNet3.0 is employed; JWNL1.4.1 is used to operate WordNet. According to the experiment against a benchmark set by human similarity judgment, our measure achieves a better result.
机译:概念之间的语义相似性是一个基本问题,并且在人工智能,知识共享和Web挖掘的许多应用中起着重要作用。本文提出了一种基于语义本体数据库WordNet的度量方法,该方法结合了基于信息内容的度量和边缘计数技术来度量语义相似度。 “ PART-OF”和“ IS-A”层次关系ȁ9;本文考虑了影响语义相似度的因素。广度优先搜索用于查找两个概念之间的最短路径。分别计算层次结构和叠加的相似性。使用WordNet3.0; JWNL1.4.1用于操作WordNet。根据根据人类相似性判断设定的基准进行的实验,我们的测量取得了更好的结果。

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