Amharic-Arabic Neural Machine Translation

December 26, 2019 ยท Declared Dead ยท ๐Ÿ› 5th International Conference on Data Mining and Applications (DMAP 2019)

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Authors Ibrahim Gashaw, H L Shashirekha arXiv ID 1912.13161 Category cs.CL: Computation & Language Cross-listed cs.LG Citations 10 Venue 5th International Conference on Data Mining and Applications (DMAP 2019) Last Checked 5 months ago
Abstract
Many automatic translation works have been addressed between major European language pairs, by taking advantage of large scale parallel corpora, but very few research works are conducted on the Amharic-Arabic language pair due to its parallel data scarcity. Two Long Short-Term Memory (LSTM) and Gated Recurrent Units (GRU) based Neural Machine Translation (NMT) models are developed using Attention-based Encoder-Decoder architecture which is adapted from the open-source OpenNMT system. In order to perform the experiment, a small parallel Quranic text corpus is constructed by modifying the existing monolingual Arabic text and its equivalent translation of Amharic language text corpora available on Tanzile. LSTM and GRU based NMT models and Google Translation system are compared and found that LSTM based OpenNMT outperforms GRU based OpenNMT and Google Translation system, with a BLEU score of 12%, 11%, and 6% respectively.
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