Modelling Word Similarity. An Evaluation of Automatic Synonymy Extraction Algorithms

被引:0
|
作者
Heylen, Kris [1 ]
Peirsman, Yves [1 ]
Geeraerts, Dirk [1 ]
Speelman, Dirk [1 ]
机构
[1] Univ Leuven, QLVL, B-3000 Louvain, Belgium
关键词
D O I
暂无
中图分类号
H0 [语言学];
学科分类号
030303 ; 0501 ; 050102 ;
摘要
Vector-based models of lexical semantics retrieve semantically related words automatically from large corpora by exploiting the property that words with a similar meaning tend to occur in similar contexts. Despite their increasing popularity, it is unclear which kind of semantic similarity they actually capture and for which kind of words. In this paper, we use three vector-based models to retrieve semantically related words for a set of Dutch nouns and we analyse whether three linguistic properties of the nouns influence the results. In particular, we compare results from a dependency-based model with those from a 1st and 2nd order bag-of-words model and we examine the effect of the nouns' frequency, semantic speficity and semantic class. We find that all three models find more synonyms for high-frequency nouns and those belonging to abstract semantic classses. Semantic specificty does not have a clear influence.
引用
收藏
页码:3243 / 3249
页数:7
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