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NICT's Corpus Filtering Systems for the WMT18 Parallel Corpus Filtering Task

2018-09-19WS 2018Unverified0· sign in to hype

Rui Wang, Benjamin Marie, Masao Utiyama, Eiichiro Sumita

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Abstract

This paper presents the NICT's participation in the WMT18 shared parallel corpus filtering task. The organizers provided 1 billion words German-English corpus crawled from the web as part of the Paracrawl project. This corpus is too noisy to build an acceptable neural machine translation (NMT) system. Using the clean data of the WMT18 shared news translation task, we designed several features and trained a classifier to score each sentence pairs in the noisy data. Finally, we sampled 100 million and 10 million words and built corresponding NMT systems. Empirical results show that our NMT systems trained on sampled data achieve promising performance.

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