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When a Good Translation is Wrong in Context: Context-Aware Machine Translation Improves on Deixis, Ellipsis, and Lexical Cohesion

机译:当上下文中的一个好的翻译是错误的:上下文知识机器翻译改善了Deixis,省略号和词汇凝聚力

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Though machine translation errors caused by the lack of context beyond one sentence have long been acknowledged, the development of context-aware NMT systems is hampered by several problems. Firstly, standard metrics are not sensitive to improvements in consistency in document-level translations. Secondly, previous work on context-aware NMT assumed that the sentence-aligned parallel data consisted of complete documents while in most practical scenarios such document-level data constitutes only a fraction of the available parallel data. To address the first issue, we perform a human study on an English-Russian subtitles dataset and identify deixis, ellipsis and lexical cohesion as three main sources of inconsistency. We then create test sets targeting these phenomena. To address the second shortcoming, we consider a set-up in which a much larger amount of sentence-level data is available compared to that aligned at the document level. We introduce a model that is suitable for this scenario and demonstrate major gains over a context-agnostic baseline on our new benchmarks without sacrificing performance as measured with BLEU.~1
机译:虽然在长期以来一句话之外缺乏上下文引起的机器翻译错误,但是通过几个问题阻碍了上下文知识NMT系统的发展。首先,标准度量对文档级翻译中的一致性不敏感。其次,先前的上下文知识NMT的工作假设句子对齐的并行数据由完整的文档组成,而在大多数实际情况下,这种文档级数据仅构成可用并行数据的一小部分。为了解决第一个问题,我们对英语 - 俄语字幕数据集进行人类研究,并将Deixis,省略和词汇凝聚力识别为三个主要不一致的主要来源。然后,我们创建针对这些现象的测试集。为了解决第二个缺点,我们考虑一个设置,其中与文档级别的对齐相比,可以获得更大的句子级数据。我们介绍了一个适合这种情况的模型,并在我们的新基准测试中展示了在我们的新基准的背景 - 不可知的基准上的主要增益,而不会牺牲与Bleu测量的表现。〜1

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