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支持向量机的进化多核设计
引用本文:李仁兵,李艾华,白向峰,蔡艳平,王德生.支持向量机的进化多核设计[J].控制理论与应用,2011,28(6):793-798.
作者姓名:李仁兵  李艾华  白向峰  蔡艳平  王德生
作者单位:1. 第二炮兵工程学院502教研室,陕西西安710025;中国空气动力研究与发展中心,四川绵阳621000
2. 第二炮兵工程学院502教研室,陕西西安,710025
3. 第二炮兵青州士官学校204教研室,山东青州,262500
摘    要:为提高支持向量机分类精度,提出一种基于遗传程序设计的进化多核算法.算法中每个个体表示一个多核函数,并采用树形结构进行编码,增强了多核函数的非线性;初始种群由生长法产生,经过遗传操作后得到适合具体问题的进化多核函数.遗传程序设计的全局搜索性能使得算法设计不需要先验知识.与单核函数及其他多核函数的对比实验结果表明,进化多核...

关 键 词:进化多核  遗传程序设计  支持向量机  核函数
收稿时间:2010/8/29 0:00:00
修稿时间:2010/11/11 0:00:00

Evolutionary multiple kernels design for support vector machines
LI Ren-bing,LI Ai-hu,BAI Xiang-feng,CAI Yan-ping and WANG De-sheng.Evolutionary multiple kernels design for support vector machines[J].Control Theory & Applications,2011,28(6):793-798.
Authors:LI Ren-bing  LI Ai-hu  BAI Xiang-feng  CAI Yan-ping and WANG De-sheng
Affiliation:No. 502 Faculty, the Second Artillery Engineering College; China Aerodynamics Research and Development Center,No. 502 Faculty, the Second Artillery Engineering College,No. 502 Faculty, the Second Artillery Engineering College,No. 502 Faculty, the Second Artillery Engineering College,No. 204 Faculty, the Second Artillery Petty Officer School
Abstract:To boost the classification accuracy of support-vector-machines(SVM), we propose an algorithm with evolutionary multiple kernels(EMK), based on the genetic programming(GP). In this algorithm, each individual represents a multiple kernel function, and is encoded by the tree-structure for enhancing the non-linearity of the multiple kernel function. Grow method is applied to initialize the GP population, from which the EMK adapting to practical problems is obtained by genetic operations. No priori knowledge is required due to the global search of GP. Comparisons of experimental results of EMK with the single kernel function and other multiple kernel functions show that EMK effectively improves the classification performance of SVM.
Keywords:evolutionary multiple kernels  genetic programming  support vector machines  kernel function
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