A Word Embedding Approach to Predicting the Compositionality of Multiword Expressions

Bahar Salehi, Paul F. Cook, Timothy J. Baldwin · 2015

This paper presents the first attempt to use word embeddings to predict the compositionality of multiword expressions.We consider both single-and multi-prototype word embeddings.Experimental results show that, in combination with a back-off method based on string similarity, word embeddings outperform a method using count-based distributional similarity.Our best results are competitive with, or superior to, state-of-the-art methods over three standard compositionality datasets, which include two types of multiword expressions and two languages.

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