SOTAVerified

Unsupervised Statistical Machine Translation

2018-09-04EMNLP 2018Code Available1· sign in to hype

Mikel Artetxe, Gorka Labaka, Eneko Agirre

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Abstract

While modern machine translation has relied on large parallel corpora, a recent line of work has managed to train Neural Machine Translation (NMT) systems from monolingual corpora only (Artetxe et al., 2018c; Lample et al., 2018). Despite the potential of this approach for low-resource settings, existing systems are far behind their supervised counterparts, limiting their practical interest. In this paper, we propose an alternative approach based on phrase-based Statistical Machine Translation (SMT) that significantly closes the gap with supervised systems. Our method profits from the modular architecture of SMT: we first induce a phrase table from monolingual corpora through cross-lingual embedding mappings, combine it with an n-gram language model, and fine-tune hyperparameters through an unsupervised MERT variant. In addition, iterative backtranslation improves results further, yielding, for instance, 14.08 and 26.22 BLEU points in WMT 2014 English-German and English-French, respectively, an improvement of more than 7-10 BLEU points over previous unsupervised systems, and closing the gap with supervised SMT (Moses trained on Europarl) down to 2-5 BLEU points. Our implementation is available at https://github.com/artetxem/monoses

Tasks

Benchmark Results

DatasetModelMetricClaimedVerifiedStatus
WMT2014 English-FrenchSMT + iterative backtranslation (unsupervised)BLEU score26.22Unverified
WMT2014 English-GermanSMT + iterative backtranslation (unsupervised)BLEU score14.08Unverified
WMT2014 French-EnglishSMT + iterative backtranslation (unsupervised)BLEU score25.87Unverified
WMT2014 German-EnglishSMT + iterative backtranslation (unsupervised)BLEU score17.43Unverified
WMT2016 English-GermanSMT + iterative backtranslation (unsupervised)BLEU score18.23Unverified
WMT2016 German-EnglishSMT + iterative backtranslation (unsupervised)BLEU score23.05Unverified

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