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FEATURE-BASED KOREAN GRAMMAR UTILIZING LEARNED CONSTRAINT RULES
Authors:So-Young  Park  Yong-Jae  Kwak  Hae-Chang  Rim  Heui-Seok  Lim
Affiliation:NLP Lab., Department of CSE, Korea University, Anam-dong, Seongbuk-ku, Seoul, Korea;;NLP Lab., Department of Software, Hanshin University, Yangsan-dong, Ohsan, KyeonggiDo, Korea
Abstract:In this paper, we propose a feature-based Korean grammar utilizing the learned constraint rules in order to improve parsing efficiency. The proposed grammar consists of feature structures, feature operations, and constraint rules; and it has the following characteristics. First, a feature structure includes several features to express useful linguistic information for Korean parsing. Second, a feature operation generating a new feature structure is restricted to the binary-branching form which can deal with Korean properties such as variable word order and constituent ellipsis. Third, constraint rules improve efficiency by preventing feature operations from generating spurious feature structures. Moreover, these rules are learned from a Korean treebank by a decision tree learning algorithm. The experimental results show that the feature-based Korean grammar can reduce the number of candidates by a third of candidates at most and it runs 1.5 ~ 2 times faster than a CFG on a statistical parser.
Keywords:natural language processing  parsing algorithm  Korean grammar  constraint rules
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