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An Area Concept Extraction Algorithm Based on Association Rule

机译:基于关联规则的区域概念提取算法

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Ontology learning is from a given area document sets automatic or semi-automatic extraction terms to construct a domain ontology. Area concept extraction is one of the most important aspects in building ontology. In this paper, we proposed an improved area concept extraction algorithm. In the algorithm, we firstly employed association rule algorithm to obtain the similarity between the sememes, and then used the similarity between the sememes to find the similarity between area concepts. Finally our paper achieves the whole area concepts extraction process. By analyzing the experimental results shows the effectiveness and correctness of the algorithm.
机译:本体学习是从给定区域的文档中设置自动或半自动提取术语来构造领域本体。区域概念提取是构建本体中最重要的方面之一。在本文中,我们提出了一种改进的区域概念提取算法。在算法中,我们首先采用关联规则算法来获取各词素之间的相似度,然后利用这些词素之间的相似度来寻找区域概念之间的相似度。最后,本文实现了整个区域概念的提取过程。通过分析实验结果表明了该算法的有效性和正确性。

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