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Incremental Learning Algorithm for Support Vector Data Description

机译:支持向量数据描述的增量学习算法

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摘要

Support vector data description (SVDD) has become a very attractive kernel method due to its good results in many novelty detection problems/Training SVDD involves solving a constrained convex quadratic programming,which requires large memory and enormous amounts of training time for large-scale data set.In this paper,we analyze the possible changes of support vector set after new samples are added to training set according to the relationship between the Karush-Kuhn-Tucker (KKT) conditions of SVDD and the distribution of the training samples.Based on the analysis result,a novel algorithm for SVDD incremental learning is proposed.In this algorithm,the useless sample is discarded and useful information in training samples is accumulated.Experimental results indicate the effectiveness of the proposed algorithm.
机译:支持向量数据描述(SVDD)由于其在许多新颖性检测问题中的良好结果而成为非常吸引人的内核方法/训练SVDD涉及解决约束凸二次编程,这需要大内存和大量训练时间才能处理大规模数据本文根据SVDD的Karush-Kuhn-Tucker(KKT)条件与训练样本分布之间的关系,分析了将新样本添加到训练集合后支持向量集可能发生的变化。分析结果提出了一种新的SVDD增量学习算法。该算法丢弃了无用的样本,并积累了训练样本中的有用信息。实验结果表明了该算法的有效性。

著录项

  • 来源
    《Journal of software》 |2011年第7期|p.1166-1173|共8页
  • 作者

    Xiaopeng Hua; Shifei Ding;

  • 作者单位

    School of Computer Science & Technology, China University of Mining & Technology, Xuzhou, China,School of Information Engineering, Yancheng Institute of Technology, Yancheng, China;

    School of Computer Science & Technology, China University of Mining & Technology, Xuzhou, China,Beijing Key Laboratory of Intelligent Telecommunications Software and Multimedia, Beijing University of Posts and Telecommunications, Beijing, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    support vector data description; incremental learning; karush-kuhn-tucker condition;

    机译:支持矢量数据描述;增量学习;卡鲁什-库恩-塔克条件;

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