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Referential Translation Machines for Quality Estimation

机译:参考翻译机进行质量评估

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We introduce referential translation machines (RTM) for quality estimation of translation outputs. RTMs are a computational model for identifying the translation acts between any two data sets with respect to a reference corpus selected in the same domain, which can be used for estimating the quality of translation outputs, judging the semantic similarity between text, and evaluating the quality of student answers. RTMs achieve top performance in automatic, accurate, and language independent prediction of sentence-level and word-level statistical machine translation (SMT) quality. RTMs remove the need to access any SMT system specific information or prior knowledge of the training data or models used when generating the translations. We develop novel techniques for solving all subtasks in the WMT13 quality estimation (QE) task (QET 2013) based on individual RTM models. Our results achieve improvements over last year's QE task results (QET 2012), as well as our previous results, provide new features and techniques for QE, and rank 1st or 2nd in all of the subtasks.
机译:我们介绍了参考翻译机(RTM),用于估计翻译输出的质量。 RTM是一种计算模型,用于识别相对于在相同域中选择的参考语料库的任意两个数据集之间的翻译行为,该模型可用于估计翻译输出的质量,判断文本之间的语义相似度以及评估质量学生的答案。 RTM在自动,准确和独立于语言的句子级和单词级统计机器翻译(SMT)质量预测中实现了最佳性能。 RTM无需访问任何SMT系统特定信息或生成翻译时使用的培训数据或模型的先验知识。我们开发了新颖的技术,用于基于单个RTM模型解决WMT13质量评估(QE)任务(QET 2013)中的所有子任务。我们的结果比去年的量化宽松任务结果(QET 2012)和以前的结果有所改进,为量化宽松提供了新的功能和技术,在所有子任务中排名第一或第二。

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