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Using Standardized Lexical Semantic Knowledge to Measure Similarity

机译:使用标准化词汇语义知识来测量相似性

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The issue of sentence semantic similarity is important and essential to many applications of Natural Language Processing. This issue was treated in some frameworks dealing with the similarity between short texts especially with the similarity between sentence pairs. However, the semantic component was paradoxically weak in the proposed methods. In order to address this weakness, we propose in this paper a new method to estimate the semantic sentence similarity based on the LMF ISO-24613 standard. Indeed, LMF provides a fine structure and incorporates an abundance of lexical knowledge which is interconnected together, notably sense knowledge such as semantic predicates, semantic classes, thematic roles and various sense relations. Our method proved to be effective through the applications carried out on the Arabic language. The main reason behind this choice is that an Arabic dictionary which conforms to the LMF standard is at hand within our research team. Experiments on a set of selected sentence pairs demonstrate that the proposed method provides a similarity measure that coincides with human intuition.
机译:句子语义相似性问题对于自然语言处理的许多应用是重要的,重要的。在一些框架中处理了这个问题,处理短文本之间的相似性,特别是句子对之间的相似性。然而,在所提出的方法中,语义组分是矛盾的。为了解决这种弱点,我们提出了一种基于LMF ISO-24613标准来估算语义句欲的新方法。实际上,LMF提供了精细结构,并结合了一个丰富的词汇知识,这些知识是互连的,显着感知语义谓词,语义类别,主题角色和各种感道关系等知识。我们的方法证明通过在阿拉伯语上进行的应用程序有效。这种选择背后的主要原因是阿拉伯文字典,符合LMF标准在我们的研究团队中。在一组选定的句子对上的实验表明,该方法提供了与人类直觉一致的相似度措施。

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