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用于多类分类的层次式支持向量机
引用本文:段修生,单甘霖,张岐龙. 用于多类分类的层次式支持向量机[J]. 军械工程学院学报, 2009, 21(1): 64-66
作者姓名:段修生  单甘霖  张岐龙
作者单位:军械工程学院光学与电子工程系;
基金项目:国防预研基金项目(513270203)
摘    要:针对支持向量机存在的训练数据量大导致的训练时间过长和训练数据不平衡导致的分类结果会向训练数据多的类倾斜等问题,提出了适合于多类分类的层次式支持向量机。在训练过程中,首先折衷考虑各类之间的距离和各类的训练数据长度,据此将训练样本分为距离较远且其长度基本平衡的2类,然后逐层进行训练,最终形成二叉树分类结构。仿真实验证明,该方法能够有效地缩短训练和分类时间,且对多类分类中的数据不平衡问题有一定的效果。

关 键 词:层次式支持向量机  多类分类  二叉树

Hierarchical Support Vector Machine for Multi-class Classification
DUAN Xiu-sheng,SHAN Gan-lin,ZHANG Qi-long. Hierarchical Support Vector Machine for Multi-class Classification[J]. Journal of Ordnance Engineering College, 2009, 21(1): 64-66
Authors:DUAN Xiu-sheng  SHAN Gan-lin  ZHANG Qi-long
Affiliation:Department of Optics and Electronics Engineering;Ordnance Engineering College;Shijiazhuang 050003;China
Abstract:In the process of training Support Vector Machine Classifier,the training time will be much longer when training data are large,and the accuracy of each class will be inclining towards the class that has more training data when training data are uneven.The layers SVM are presented in this paper.In the process of training,the distances between classes and lengths of each class are considered,and training data are split into two classes whose the distance is longer and length is in balance.The simulation vali...
Keywords:hierarchical support vector machine  multi-class classification  inominal tree  
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