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Efficient SVM-based Recognition of Chinese Personal Names

机译:基于SVM的中文人名识别

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摘要

This paper provides a flexible and efficient method to identify Chinese personal names based on SVM (Support Vector Machines). In its approach, forming rules of personal name is employed to select candidate set, then SVM based identification strategies is used to recognize real personal name in the candidate set. Basic semanteme of word in context and frequency information of word inside candidate are selected as features in its methodology, which reduce the feature space scale dramatically and calculate more efficiently. Results of open testing achieved F-measure 90.59% in 2 million words news and F-measure 86.67% in 16.17 million words news based on this project.
机译:本文提供了一种基于SVM(支持向量机)的灵活高效的中文姓名识别方法。在其方法中,采用人名形成规则来选择候选集,然后使用基于SVM的识别策略来识别候选集中的真实人名。该方法选择了上下文中单词的基本语义和候选单词内部的频率信息作为特征,从而大大减少了特征空间尺度,提高了计算效率。根据该项目,公开测试的结果在200万个单词的新闻中达到了F-措施90.59%,在1617万个单词的新闻中达到了F-措施86.67%。

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