A Comparison on Fine-grained Pre-trained Embeddings for the WMT19Chinese-English News Translation Task.

WMT (2)(2019)

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摘要
This paper describes our submission to the WMT 2019 Chinese-English (zh-en) news translation shared task. Our systems are based on RNN architectures with pre-trained embeddings which utilize character and subcharacter information. We compare models with these different granularity levels using different evaluating metics. We find that a finer granularity embeddings can help the model according to character level evaluation and that the pre-trained embeddings can also be beneficial for model performance marginally when the training data is limited.
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关键词
embeddings,translation,fine-grained,pre-trained,chinese-english
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