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Multi-Domain Neural Machine Translation (1805.02282v1)

Published 6 May 2018 in cs.CL

Abstract: We present an approach to neural machine translation (NMT) that supports multiple domains in a single model and allows switching between the domains when translating. The core idea is to treat text domains as distinct languages and use multilingual NMT methods to create multi-domain translation systems, we show that this approach results in significant translation quality gains over fine-tuning. We also explore whether the knowledge of pre-specified text domains is necessary, turns out that it is after all, but also that when it is not known quite high translation quality can be reached.

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Authors (2)
  1. Sander Tars (1 paper)
  2. Mark Fishel (15 papers)
Citations (48)