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Evaluating Distributional Features for Multiword Expression Recognition

机译:评估多字expression识别的分布特征

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In this paper we consider the task of extracting multiword expression for Russian thesaurus RuThes, which contains various types of phrases, including non-compositional phrases, multiword terms and their variants, light verb constructions, and others. We study several embedding-based features for phrases and their components and estimate their contribution to finding multiword expressions of different types comparing them with traditional association and context measures. We found that one of the distributional features has relatively high results of MWE extraction even when used alone. Different forms of its combination with other features (phrase frequency, association measures) improve both initial orderings.
机译:在本文中,我们考虑提取俄罗斯词库ruthes多字expression的任务,其中包含各种类型的短语,包括非组成短语,多字词术语及其变体,轻动词结构等。我们研究了几个基于嵌入的基于嵌入的特征,并估算了他们对与传统关联和上下文测量相比的不同类型的多个表达式的贡献。我们发现,即使单独使用,其中一个分布特征也具有相对高的MWE提取结果。其与其他特征(短语频率,关联措施)的不同形式改善了初始排序。

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