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Explaining and Generalizing Back-Translation through Wake-Sleep

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abstract

Back-translation has become a commonly employed heuristic for semi-supervised neural machine translation. The technique is both straightforward to apply and has led to state-of-the-art results. In this work, we offer a principled interpretation of back-translation as approximate inference in a generative model of bitext and show how the standard implementation of back-translation corresponds to a single iteration of the wake-sleep algorithm in our proposed model. Moreover, this interpretation suggests a natural iterative generalization, which we demonstrate leads to further improvement of up to 1.6 BLEU.

fields

cs.CL 1

years

2019 1

verdicts

ACCEPT 1

representative citing papers

Improving Back-Translation with Uncertainty-based Confidence Estimation

cs.CL · 2019-08-31 · accept · novelty 6.0

Uncertainty-based confidence estimation, computed with Monte Carlo Dropout, improves back-translation for NMT by weighting synthetic sentence pairs and reweighting attention, yielding consistent BLEU gains on Chinese-English and English-German.

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  • Improving Back-Translation with Uncertainty-based Confidence Estimation cs.CL · 2019-08-31 · accept · none · ref 10 · internal anchor

    Uncertainty-based confidence estimation, computed with Monte Carlo Dropout, improves back-translation for NMT by weighting synthetic sentence pairs and reweighting attention, yielding consistent BLEU gains on Chinese-English and English-German.