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Predicting Concreteness and Imageability of Words Within and Across Languages via Word Embeddings

机译:通过词嵌入预测语言在内部和跨语言中的词的具体性和可成像性

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摘要

The notions of concreteness and image-ability, traditionally important in psy-cholinguistics. are gaining significance in semantic-oriented natural language processing tasks. In this paper we investigate the predictability of these two concepts via supervised learning, using word embeddings as explanatory variables. We perform predictions both within and across languages by exploiting collections of cross-lingual embeddings aligned to a single vector space. We show that the notions of concreteness and imageability are highly predictable both within and across languages, with a moderate loss of up to 20% in correlation when predicting across languages. We further show that the cross-lingual transfer via word embeddings is more efficient than the simple transfer via bilingual dictionaries.
机译:具体性和可成像性的概念在心理学心理学中传统上很重要。在面向语义的自然语言处理任务中正变得越来越重要。在本文中,我们通过单词嵌入作为解释变量,通过监督学习研究了这两个概念的可预测性。通过利用与单个向量空间对齐的跨语言嵌入的集合,我们可以在语言内部和语言之间执行预测。我们表明,具体性和可成像性的概念在语言内部和语言之间都是可以高度预测的,跨语言进行预测时,相关性损失高达20%。我们进一步表明,通过单词嵌入的跨语言传输比通过双语词典的简单传输更有效。

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  • 来源
  • 会议地点 Melbourne(AU)
  • 作者单位

    Dept. of Knowledge Technologies Jozef Stefan Institute Jamova cesta 39, SI-1000 Ljubljana;

    Dept. of Translation, Faculty of Arts University of Ljubljana Askerceva 2, SI-1000 Ljubljana;

    Faculty of Humanities and Social Sciences University of Zagreb Ivana Lucica 3, HR-10000 Zagreb;

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