IEICE Transactions on Information and Systems
Online ISSN : 1745-1361
Print ISSN : 0916-8532
Regular Section
Constraining a Generative Word Alignment Model with Discriminative Output
Chooi-Ling GOHTaro WATANABEHirofumi YAMAMOTOEiichiro SUMITA
著者情報
ジャーナル フリー

2010 年 E93.D 巻 7 号 p. 1976-1983

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抄録
We present a method to constrain a statistical generative word alignment model with the output from a discriminative model. The discriminative model is trained using a small set of hand-aligned data that ensures higher precision in alignment. On the other hand, the generative model improves the recall of alignment. By combining these two models, the alignment output becomes more suitable for use in developing a translation model for a phrase-based statistical machine translation (SMT) system. Our experimental results show that the joint alignment model improves the translation performance. The improvement in average of BLEU and METEOR scores is around 1.0-3.9 points.
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© 2010 The Institute of Electronics, Information and Communication Engineers
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