Evaluation of Greek Word Embeddings

April 08, 2019 ยท Declared Dead ยท ๐Ÿ› International Conference on Language Resources and Evaluation

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Authors Stamatis Outsios, Christos Karatsalos, Konstantinos Skianis, Michalis Vazirgiannis arXiv ID 1904.04032 Category cs.CL: Computation & Language Citations 11 Venue International Conference on Language Resources and Evaluation Last Checked 5 months ago
Abstract
Since word embeddings have been the most popular input for many NLP tasks, evaluating their quality is of critical importance. Most research efforts are focusing on English word embeddings. This paper addresses the problem of constructing and evaluating such models for the Greek language. We created a new word analogy corpus considering the original English Word2vec word analogy corpus and some specific linguistic aspects of the Greek language as well. Moreover, we created a Greek version of WordSim353 corpora for a basic evaluation of word similarities. We tested seven word vector models and our evaluation showed that we are able to create meaningful representations. Last, we discovered that the morphological complexity of the Greek language and polysemy can influence the quality of the resulting word embeddings.
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