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Multi-Way, Multilingual Neural Machine Translation with a Shared Attention Mechanism

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Abstract

We propose multi-way, multilingual neural machine translation. The proposed approach enables a single neural translation model to translate between multiple languages, with a number of parameters that grows only linearly with the number of languages. This is made possible by having a single attention mechanism that is shared across all language pairs. We train the proposed multiway, multilingual model on ten language pairs from WMT'15 simultaneously and observe clear performance improvements over models trained on only one language pair. In particular, we observe that the proposed model significantly improves the translation quality of low-resource language pairs.

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Publication details

DOI
10.18653/v1/n16-1101
OpenAlex
W2229833550
Document type
conference-paper
Language
EN
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