面向心理语言学词关联任务建模的计算多维词汇相似度量

Bruno Gaume, L. Ho-Dac, Ludovic Tanguy, Cécile Fabre, Bénédicte Pierrejean, Nabil Hathout, Jérôme Farinas, J. Pinquier, Lola Danet, P. Péran, X. D. Boissezon, M. Jucla
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引用次数: 3

摘要

这篇论文介绍了一个多学科项目的第一批成果,“Evolex”项目,汇集了心理语言学、神经心理学、计算机科学、自然语言处理和语言学的研究人员。Evolex项目旨在提出一种新的基于数据的归纳方法,用于自动描述在词汇获取的心理语言学实验中收集的法语单词对之间的关系。该方法利用了几种互补的语义相似度计算度量。我们表明,一些测量与词汇关联的频率比其他测量更相关,并且它们在捕获不同语义关系的方式上也有所不同。这允许我们考虑构建多维词汇相似度来自动分类词汇关联。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Toward a Computational Multidimensional Lexical Similarity Measure for Modeling Word Association Tasks in Psycholinguistics
This paper presents the first results of a multidisciplinary project, the “Evolex” project, gathering researchers in Psycholinguistics, Neuropsychology, Computer Science, Natural Language Processing and Linguistics. The Evolex project aims at proposing a new data-based inductive method for automatically characterising the relation between pairs of french words collected in psycholinguistics experiments on lexical access. This method takes advantage of several complementary computational measures of semantic similarity. We show that some measures are more correlated than others with the frequency of lexical associations, and that they also differ in the way they capture different semantic relations. This allows us to consider building a multidimensional lexical similarity to automate the classification of lexical associations.
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