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Improving the Transformer Translation Model with Document-Level Context

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Abstract

Although the Transformer translation model In this work, we extend the Transformer model with a new context encoder to represent document-level context, which is then incorporated into the original encoder and decoder. As large-scale document-level parallel corpora are usually not available, we introduce a two-step training method to take full advantage of abundant sentence-level parallel corpora and limited document-level parallel corpora. Experiments on the NIST Chinese-English datasets and the IWSLT French-English datasets show that our approach improves over Transformer significantly.

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Publication details

DOI
10.18653/v1/d18-1049
OpenAlex
W2962712961
Document type
conference-paper
Language
EN
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