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Evaluation of Semantic Similarity in WSD: An Analysis to Incorporate it into the Association of Terms

机译:WSD中语义相似性的评估:将其纳入术语关联的分析

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Semantic association requires an analysis on similarity in order to provide better combinations. Several semantic similarity measures have been proposed for the Word Sense Disambiguation (WSD) problem. Therefore, this work aims to evaluate the performance of five semantic similarity measures into a thesaurus by WSD approach so as to incorporate semantic similarities into association problems. Experiments were conducted using two main algorithms of WSD domain. The results showed that the application of semantic similarity improves precision and recall on disambiguation domain. In order to complement the evaluation, we proposed a hybrid approach and we evaluated it over other measures presented. According to our results, it was possible to adapt a similarity measure for the problem of finding semantic associations in texts.
机译:语义关联需要对相似性进行分析,以提供更好的组合。针对词义消歧(WSD)问题,已提出了几种语义相似性度量。因此,这项工作旨在通过WSD方法评估五个语义相似性度量到同义词库中的性能,以便将语义相似性纳入关联问题中。使用WSD域的两个主要算法进行了实验。结果表明,语义相似度的应用提高了歧义域的准确性和召回率。为了补充评估,我们提出了一种混合方法,并且对提出的其他措施进行了评估。根据我们的结果,可以为在文本中查找语义关联的问题改编相似性度量。

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