Unsupervised Quality Estimation for Neural Machine Translation
May 21, 2020 Β· Declared Dead Β· π Transactions of the Association for Computational Linguistics
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Authors
Marina Fomicheva, Shuo Sun, Lisa Yankovskaya, FrΓ©dΓ©ric Blain, Francisco GuzmΓ‘n, Mark Fishel, Nikolaos Aletras, Vishrav Chaudhary, Lucia Specia
arXiv ID
2005.10608
Category
cs.CL: Computation & Language
Citations
260
Venue
Transactions of the Association for Computational Linguistics
Last Checked
3 months ago
Abstract
Quality Estimation (QE) is an important component in making Machine Translation (MT) useful in real-world applications, as it is aimed to inform the user on the quality of the MT output at test time. Existing approaches require large amounts of expert annotated data, computation and time for training. As an alternative, we devise an unsupervised approach to QE where no training or access to additional resources besides the MT system itself is required. Different from most of the current work that treats the MT system as a black box, we explore useful information that can be extracted from the MT system as a by-product of translation. By employing methods for uncertainty quantification, we achieve very good correlation with human judgments of quality, rivalling state-of-the-art supervised QE models. To evaluate our approach we collect the first dataset that enables work on both black-box and glass-box approaches to QE.
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