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Limitations of MT Quality Estimation Supervised Systems: The Tails Prediction Problem

机译:MT质量估计监督系统的限制:尾部预测问题

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In this paper we address the question of the reliability of the predictions made by MT Quality Estimation (QE) systems. In particular, we show that standard supervised QE systems, usually trained to minimize MAE, make serious mistakes at predicting the quality of the sentences in the tails of the quality range. We describe the problem and propose several experiments to clarify their causes and effects. We use the WMT12 and WMT13 QE Shared Task datasets to prove that our claims hold in general and are not specific to a dataset or a system.
机译:在本文中,我们解决了MT质量估计(QE)系统的预测的可靠性问题。 特别是,我们展示了标准的监督QE系统,通常培训以最大限度地减少MAE,使严重错误预测质量范围的尾部的句子的质量。 我们描述了问题,并提出了几个实验,以澄清其原因和影响。 我们使用WMT12和WMT13 QE共享任务数据集来证明我们的索赔一般保持并不特定于数据集或系统。

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