文本分类中的语义概念原语计算

Quan Zhang, Yi Yuan, Xiangfeng Wei, Zhejie Chi, Peimin Cong, Yihua Du
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引用次数: 1

摘要

提出了一种利用语义计算提高文本分类性能的方法。它采用带有语义关系的概念原语作为知识表达。在语义表达的基础上,挖掘不同文本分类之间原语的关联关系,这些关联规则以关联关系作为文本分类特征。该方法不仅考虑了文本包含什么样的语义原语,而且考虑了语义原语之间的关联关系。此外,我们还使用公共文本分类文本集对该方法进行了测试。实验结果表明,与常用方法相比,该方法提高了文本分类性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Semantic conceptual primitives computing in text classification
This paper presents a method for enhancing text classification performance with semantic computing. It adopts conceptual primitives with semantic relations as knowledge expression. Based on the semantic expression, it mined the association relation of primitives among different text classification, and these association rules take association relation as text classification feature. The presented method not only considers what kind of the semantic primitives that a text contains, but also takes account of the association relation of the semantic primitives. Moreover, we test the method with public text classification text set. The experiment result shows that, comparing with the commonly used methods, this method prompts text classification performance.
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