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      Google’s Multilingual Neural Machine Translation System: Enabling Zero-Shot Translation

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          Deep Recurrent Models with Fast-Forward Connections for Neural Machine Translation

          Neural machine translation (NMT) aims at solving machine translation (MT) problems using neural networks and has exhibited promising results in recent years. However, most of the existing NMT models are shallow and there is still a performance gap between a single NMT model and the best conventional MT system. In this work, we introduce a new type of linear connections, named fast-forward connections, based on deep Long Short-Term Memory (LSTM) networks, and an interleaved bi-directional architecture for stacking the LSTM layers. Fast-forward connections play an essential role in propagating the gradients and building a deep topology of depth 16. On the WMT’14 English-to-French task, we achieve BLEU=37.7 with a single attention model, which outperforms the corresponding single shallow model by 6.2 BLEU points. This is the first time that a single NMT model achieves state-of-the-art performance and outperforms the best conventional model by 0.7 BLEU points. We can still achieve BLEU=36.3 even without using an attention mechanism. After special handling of unknown words and model ensembling, we obtain the best score reported to date on this task with BLEU=40.4. Our models are also validated on the more difficult WMT’14 English-to-German task.
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            Interlingual Machine Translation

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              Author and article information

              Journal
              Transactions of the Association for Computational Linguistics
              Transactions of the Association for Computational Linguistics
              MIT Press - Journals
              2307-387X
              December 2017
              December 2017
              : 5
              : 339-351
              Affiliations
              [1 ]Google,
              [2 ]Google
              Article
              10.1162/tacl_a_00065
              f5e0e212-a82a-43df-a750-1389dd90b585
              © 2017
              History

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