A global model for joint lemmatization and part-of-speech prediction.

ACL '09: Proceedings of the Joint Conference of the 47th Annual Meeting of the ACL and the 4th International Joint Conference on Natural Language Processing of the AFNLP: Volume 1 - Volume 1(2009)

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摘要
We present a global joint model for lemmatization and part-of-speech prediction. Using only morphological lexicons and unlabeled data, we learn a partially-supervised part-of-speech tagger and a lemmatizer which are combined using features on a dynamically linked dependency structure of words. We evaluate our model on English, Bulgarian, Czech, and Slovene, and demonstrate substantial improvements over both a direct transduction approach to lemmatization and a pipelined approach, which predicts part-of-speech tags before lemmatization.
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关键词
part-of-speech prediction,part-of-speech tag,partially-supervised part-of-speech tagger,direct transduction approach,global joint model,pipelined approach,dependency structure,morphological lexicon,substantial improvement,unlabeled data,global model,joint lemmatization
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