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UNIOR NLP at MWSA Task - GlobaLex 2020: Siamese LSTM with Attention for Word Sense Alignment

Proceedings of the 2020 Globalex Workshop on Linked Lexicography

DOI:10.63317/2w6btggsqzwq

Abstract

In this paper we describe the system submitted to the ELEXIS Monolingual Word Sense Alignment Task. We test different systems,which are two types of LSTMs and a system based on a pretrained Bidirectional Encoder Representations from Transformers (BERT)model, to solve the task. LSTM models use fastText pre-trained word vectors features with different settings. For training the models,we did not combine external data with the dataset provided for the task. We select a sub-set of languages among the proposed ones,namely a set of Romance languages, i.e., Italian, Spanish, Portuguese, together with English and Dutch. The Siamese LSTM withattention and PoS tagging (LSTM-A) performed better than the other two systems, achieving a 5-Class Accuracy score of 0.844 in theOverall Results, ranking the first position among five teams.

Details

Paper ID
lrec2020-ws-globalex-13
Pages
pp. 76-83
BibKey
manna-etal-2020-unior
Editor
N/A
Publisher
European Language Resources Association (ELRA)
ISSN
N/A
ISBN
N/A
Workshop
Proceedings of the 2020 Globalex Workshop on Linked Lexicography
Location
undefined, undefined
Date
11 May 2020 16 May 2020

Authors

  • RM

    Raffaele Manna

  • GS

    Giulia Speranza

  • Md

    Maria Pia di Buono

  • JM

    Johanna Monti

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