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Multi-way, multilingual neural machine translation

机译:多路,多语言神经机器翻译

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We propose multi-way, multilingual neural machine translation. The proposed approach enables a single neural translation model to translate between multiple languages, with a number of parameters that grows only linearly with the number of languages. This is made possible by having a single attention mechanism that is shared across all language pairs. We train the proposed multi-way, multilingual model on ten language pairs from WMT'15 simultaneously and observe clear performance improvements over models trained on only one language pair. We empirically evaluate the proposed model on low-resource language translation tasks. In particular, we observe that the proposed multilingual model outperforms strong conventional statistical machine translation systems on Turkish-English and Uzbek-English by incorporating the resources of other language pairs.
机译:我们提出了多途径,多语言的神经机器翻译。所提出的方法使单个神经翻译模型能够在多种语言之间进行翻译,其参数数量仅随语言数量线性增长。通过拥有在所有语言对之间共享的单一关注机制,这才有可能实现。我们同时在来自WMT'15的十种语言对上训练了拟议的多方位,多语言模型,并且与仅在一种语言对上训练的模型相比,我们观察到明显的性能改进。我们根据经验评估了该模型在资源匮乏的语言翻译任务中的作用。尤其是,我们注意到,通过合并其他语言对的资源,所提出的多语言模型在土耳其语-英语和乌兹别克语-英语上优于强大的常规统计机器翻译系统。

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