Hyponymy acquisition from Chinese text by SVM

NLPKE(2009)

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摘要
Hyponymy as one of semantic relation taxonomies provides a fundamental knowledge for natural language processing applications. In this paper, we propose a method for automatically learning hyponymy terms by machine learning technique from text for Chinese. Our method relies on hand-crafted hyponymy patterns, and uses the syntactic features to build a multiple classifier to identify novel hyponymy pairs (hyponym /hypernym or hypernym /hyponym) in a sentence by SVM. Experimental results show that the method is effective in acquiring hyponymy from Chinese free text.
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关键词
hyponymy pairs,svm,chinese free text,syntactic features,hypernym/hyponym,multiple classifier,hyponymym,hand-crafted hyponymy pattern,natural language processing,machine learning,hyponymy terms learning,text analysis,support vector machines,semantic relation taxonomy,hyponymy acquisition
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