BERT Masked Language Modeling for Co-reference Resolution
2019-08-01WS 2019Unverified0· sign in to hype
Felipe Alfaro, Marta R. Costa-juss{\`a}, Jos{\'e} A. R. Fonollosa
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This paper explains the TALP-UPC participation for the Gendered Pronoun Resolution shared-task of the 1st ACL Workshop on Gender Bias for Natural Language Processing. We have implemented two models for mask language modeling using pre-trained BERT adjusted to work for a classification problem. The proposed solutions are based on the word probabilities of the original BERT model, but using common English names to replace the original test names.