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Improving Domain-Specific Word Alignment for Computer Assisted Translation

机译:改进计算机辅助翻译的域特定词对齐

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This paper proposes an approach to improve word alignment in a specific domain, in which only a small-scale domain-specific corpus is available, by adapting the word alignment information in the general domain to the specific domain. This approach first trains two statistical word alignment models with the large-scale corpus in the general domain and the small-scale corpus in the specific domain respectively, and then improves the domain-specific word alignment with these two models. Experimental results show a significant improvement in terms of both alignment precision and recall. And the alignment results are applied in a computer assisted translation system to improve human translation efficiency.
机译:本文提出了一种改进特定域中的词对准的方法,其中仅通过将常规域中的词对准信息调整到特定域,仅可用于小规模域特定的语料库。 该方法首先在常规域中的大规模语料库和特定域中的小规模语料库列举两个统计词对齐模型,然后用这两个模型改善域特定的字对齐。 实验结果表明对准精度和召回方面的显着改善。 并且对准结果应用于计算机辅助翻译系统,以提高人类翻译效率。

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