Syntactic Skeleton-Based Translation

Xiao, Tong (Northeastern University) | Zhu, Jingbo (Northeastern University) | Zhang, Chunliang (Northeastern University) | Liu, Tongran (Institute of Psychology (CAS))

AAAI Conferences 

In this paper we propose an approach to modeling syntactically-motivated skeletal structure of source sentence for machine translation. This model allows for application of high-level syntactic transfer rules and low-level non-syntactic rules. It thus involves fully syntactic, non-syntactic, and partially syntactic derivations via a single grammar and decoding paradigm. On large-scale Chinese-English and English-Chinese translation tasks, we obtain an average improvement of +0.9 BLEU across the newswire and web genres.

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