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Referential Translation Machines for Predicting Translation Quality

机译:参照翻译机预测翻译质量

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摘要

We use 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 interpre-tants selected in the same domain, which are effective when making monolingual and bilingual similarity judgments. 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 and achieve the top performance in WMT13 quality estimation task (QET13). We improve our RTM models with the Parallel FDA5 instance selection model, with additional features for predicting the translation performance, and with improved learning models. We develop RTM models for each WMT14 QET (QET14) sub-task, obtain improvements over QET13 results, and rank 1st in all of the tasks and subtasks of QETH.
机译:我们使用参考翻译机(RTM)评估翻译输出。 RTM是一种计算模型,用于针对在同一域中选择的解释器识别任意两个数据集之间的翻译行为,这在做出单语和双语相似性判断时非常有效。 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消除了在生成翻译时访问SMT系统特定信息或培训数据或模型的先验知识的需求,并在WMT13质量评估任务(QET13)中实现了最高性能。我们使用Parallel FDA5实例选择模型,具有预测翻译性能的其他功能以及改进的学习模型来改进RTM模型。我们为每个WMT14 QET(QET14)子任务开发RTM模型,获得对QET13结果的改进,并在QETH的所有任务和子任务中排名第一。

著录项

  • 来源
  • 会议地点 Baltimore MA(US)
  • 作者

    Ergun Bicici; Andy Way;

  • 作者单位

    Centre for Next Generation Localisation School of Computing Dublin City University, Dublin, Ireland;

    Centre for Next Generation Localisation School of Computing Dublin City University, Dublin, Ireland;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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