Statistical Machine Translation Model Based on a Synchronous Tree-Substitution Grammar
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    Abstract:

    A translation model based on synchronous tree-substitution-grammar is presented in this paper. It can elegantly model the global reordering and discontinuous phrases. Furthermore, it can learn non-isomorphic tree-to-tree mappings. Experimental results on two different data sets show that the proposed model significantly outperforms the phrase-based model and the model based on synchronous context-free grammar.

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蒋宏飞,李生,付国宏,赵铁军,张民.一种基于同步树替换文法的统计机器翻译模型.软件学报,2009,20(5):1241-1253

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  • Received:April 08,2008
  • Revised:July 02,2008
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