Paying Attention to Multi-Word Expressions in Neural Machine Translation

October 17, 2017 ยท Declared Dead ยท ๐Ÿ› Machine Translation Summit

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Authors Matฤซss Rikters, Ondล™ej Bojar arXiv ID 1710.06313 Category cs.CL: Computation & Language Citations 23 Venue Machine Translation Summit Last Checked 4 months ago
Abstract
Processing of multi-word expressions (MWEs) is a known problem for any natural language processing task. Even neural machine translation (NMT) struggles to overcome it. This paper presents results of experiments on investigating NMT attention allocation to the MWEs and improving automated translation of sentences that contain MWEs in English->Latvian and English->Czech NMT systems. Two improvement strategies were explored -(1) bilingual pairs of automatically extracted MWE candidates were added to the parallel corpus used to train the NMT system, and (2) full sentences containing the automatically extracted MWE candidates were added to the parallel corpus. Both approaches allowed to increase automated evaluation results. The best result - 0.99 BLEU point increase - has been reached with the first approach, while with the second approach minimal improvements achieved. We also provide open-source software and tools used for MWE extraction and alignment inspection.
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