A Feature Selection Method Based on Information Gain and Genetic Algorithm

S. Lei
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引用次数: 106

Abstract

With the rapid development of the Computer Science and Technology, It has become a major problem for the users that how to quickly find useful or needed information. Text categorization can help people to solve this question. The feature selection method has become one of the most critical techniques in the field of the text automatic categorization. A new method of the text feature selection based on Information Gain and Genetic Algorithm is proposed in this paper. This method chooses the feature based on information gain with the frequency of items. Meanwhile, for the information filtering systems, this method has been improved fitness function to fully consider the characteristics of weight, text and vector similarity dimension, etc. The experiment has proved that the method can reduce the dimension of text vector and improve the precision of text classification.
基于信息增益和遗传算法的特征选择方法
随着计算机科学技术的飞速发展,如何快速查找到有用或需要的信息已成为困扰用户的一大难题。文本分类可以帮助人们解决这个问题。特征选择方法已成为文本自动分类领域中最关键的技术之一。提出了一种基于信息增益和遗传算法的文本特征选择新方法。该方法根据信息增益与项目频率的关系选择特征。同时,对于信息过滤系统,该方法对适应度函数进行了改进,充分考虑了权值、文本和向量相似度等特征。实验证明,该方法可以降低文本向量的维数,提高文本分类的精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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