Abstract:Machine translation quality estimation (QE) predicts human judgements of a translation hypothesis without seeing the reference. Stateof-the-art QE systems based on pretrained language models have been achieving remarkable correlations with human judgements yet they are computationally heavy and require human annotations, which are slow and expensive to create. To address these limitations, we define the problem of metric estimation (ME) where one predicts the automated metric scores also without the reference.… Show more
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