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Many-to-English Machine Translation Tools, Data, and Pretrained Models

2021-04-01 · ACL 2021 5 · Thamme Gowda, Zhao Zhang, Chris A Mattmann, Jonathan May

While there are more than 7000 languages in the world, most translation research efforts have targeted a few high-resource languages. Commercial translation systems support only one hundred languages or fewer, and do not make these models available for transfer to low resource languages. In this work, we present useful tools for machine translation research: MTData, NLCodec, and RTG. We demonstrate their usefulness by creating a multilingual neural machine translation model capable of translating from 500 source languages to English. We make this multilingual model readily downloadable and usable as a service, or as a parent model for transfer-learning to even lower-resource languages.

📄 PDF Abstract BibTeX arXiv:2104.00290

Code (2)

isi-nlp/nlcodec 공식 구현
thammegowda/006-many-to-eng 공식 구현

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Machine TranslationTransfer LearningTranslation

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