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Benchmarking Neural Machine Translation for Southern African Languages (1906.10511v1)

Published 17 Jun 2019 in cs.CL, cs.LG, and stat.ML

Abstract: Unlike major Western languages, most African languages are very low-resourced. Furthermore, the resources that do exist are often scattered and difficult to obtain and discover. As a result, the data and code for existing research has rarely been shared. This has lead a struggle to reproduce reported results, and few publicly available benchmarks for African machine translation models exist. To start to address these problems, we trained neural machine translation models for 5 Southern African languages on publicly-available datasets. Code is provided for training the models and evaluate the models on a newly released evaluation set, with the aim of spur future research in the field for Southern African languages.

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Authors (2)
  1. Laura Martinus (6 papers)
  2. Jade Z. Abbott (3 papers)
Citations (18)