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Character-based NMT with Transformer

2019-11-12 16:32:38
Rohit Gupta, Laurent Besacier, Marc Dymetman, Matthias Gallé

Abstract

Character-based translation has several appealing advantages, but its performance is in general worse than a carefully tuned BPE baseline. In this paper we study the impact of character-based input and output with the Transformer architecture. In particular, our experiments on EN-DE show that character-based Transformer models are more robust than their BPE counterpart, both when translating noisy text, and when translating text from a different domain. To obtain comparable BLEU scores in clean, in-domain data and close the gap with BPE-based models we use known techniques to train deeper Transformer models.

Abstract (translated)

URL

https://arxiv.org/abs/1911.04997

PDF

https://arxiv.org/pdf/1911.04997.pdf


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