HausaMT v1.0: Towards English-Hausa Neural Machine Translation

June 09, 2020 ยท Declared Dead ยท ๐Ÿ› WINLP

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Authors Adewale Akinfaderin arXiv ID 2006.05014 Category cs.CL: Computation & Language Cross-listed cs.LG Citations 12 Venue WINLP Last Checked 5 months ago
Abstract
Neural Machine Translation (NMT) for low-resource languages suffers from low performance because of the lack of large amounts of parallel data and language diversity. To contribute to ameliorating this problem, we built a baseline model for English-Hausa machine translation, which is considered a task for low-resource language. The Hausa language is the second largest Afro-Asiatic language in the world after Arabic and it is the third largest language for trading across a larger swath of West Africa countries, after English and French. In this paper, we curated different datasets containing Hausa-English parallel corpus for our translation. We trained baseline models and evaluated the performance of our models using the Recurrent and Transformer encoder-decoder architecture with two tokenization approaches: standard word-level tokenization and Byte Pair Encoding (BPE) subword tokenization.
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