CL-IMS @ DIACR-Ita: Volente o Nolente: BERT does not outperform SGNS on Semantic Change Detection
November 14, 2020 ยท Declared Dead ยท ๐ International Workshop on Evaluation of Natural Language and Speech Tools for Italian
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Authors
Severin Laicher, Gioia Baldissin, Enrique Castaรฑeda, Dominik Schlechtweg, Sabine Schulte im Walde
arXiv ID
2011.07247
Category
cs.CL: Computation & Language
Citations
3
Venue
International Workshop on Evaluation of Natural Language and Speech Tools for Italian
Last Checked
5 months ago
Abstract
We present the results of our participation in the DIACR-Ita shared task on lexical semantic change detection for Italian. We exploit Average Pairwise Distance of token-based BERT embeddings between time points and rank 5 (of 8) in the official ranking with an accuracy of $.72$. While we tune parameters on the English data set of SemEval-2020 Task 1 and reach high performance, this does not translate to the Italian DIACR-Ita data set. Our results show that we do not manage to find robust ways to exploit BERT embeddings in lexical semantic change detection.
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