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基于模糊熵的支撑矢量预选取方法

The Pre-selecting Method of Support Vectors Based on Fuzzy Entropy

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【作者】 伍忠东谢维信高新波

【Author】 WU Zhong-dong~1, XIE Wei-xin~2, GAO Xin-bo~1 (1. School of Electronic Engineering, Xidian University, Xi’an 710071,China; 2. College of Information Engineering, Shenzhen University, Shenzhen 518060,China)

【机构】 西安电子科技大学电子工程学院深圳大学信息工程学院西安电子科技大学电子工程学院 西安 710071深圳 518060西安 710071

【摘要】 在基于支撑矢量机的分类器学习算法中,预先选择支撑矢量是非常重要的.依据模糊熵理论,提出一种启发式的支撑矢量预选取方法———模糊熵方法.该方法针对支撑矢量数目较小的情况,可以有效地预选取出包含支撑矢量的边界集.利用边界集作为训练集可以大大简化支撑矢量机的训练而不影响分类性能.与其它方法相比,该方法的主要优点是不需要参数来确定边界集的阈值.仿真实验结果表明该方法是有效和可行的.

【Abstract】 For the support vector machine based learning algorithm of classifier, it is very importance for the support vector to be pre-selected. Based on fuzzy entropy theory, it proposes a new heuristic method for pre-selecting support vector. Under the circumstances that there are a little support vectors in training set, the new method can effectively pre-select the boundary subset which contain overwhelming majority support vectors. To substitute the boundary subset for training set, our method greatly reduces the training samples, while the ability of support vector machine to classification is unaffected. Comparing with other analogous methods, the merit of our method is that there are no parameters for determining the border of subset. The simulate results indicate that our approach is efficient and practical.

【关键词】 支撑矢量机模糊熵支撑矢量
【Key words】 support vector machinefuzzy entropysupport vector
  • 【文献出处】 复旦学报(自然科学版) ,Journal of Fudan University , 编辑部邮箱 ,2004年05期
  • 【分类号】TP391.4
  • 【被引频次】4
  • 【下载频次】115
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