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A New SVM Multiclass Incremental Learning Algorithm

机译:一种新的SVM多类增量学习算法

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摘要

A new support vector machine (SVM) multiclass incremental learning algorithm is proposed. To each class training sample, the hyperellipsoidal classifier that includes as many samples as possible and pushes the outlier samples away is trained in the feature space. When the new samples are added to the classification system, the algorithm reuses the old classifiers that have nothing to do with the new sample classes. To be classified sample, the Mahalanobis distances are used to decide the class of classified sample. If the sample point is not surrounded by any hyperellipsoidal or is surrounded by more than one hyperellipsoidal, the membership is used to confirm its class. The experimental results show that the algorithm has higher performance in classification precision and classification speed.
机译:提出了一种新的支持向量机(SVM)多类增量学习算法。对于每个类别的训练样本,在特征空间中训练包含尽可能多的样本并将异常样本推开的超椭球分类器。将新样本添加到分类系统后,该算法将重用与新样本类无关的旧分类器。为了分类样本,使用马氏距离来确定分类样本的类别。如果采样点没有被任何超椭球体包围或被一个以上的超椭球体包围,则隶属关系用于确认其类别。实验结果表明,该算法具有较高的分类精度和分类速度。

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  • 来源
    《Mathematical Problems in Engineering》 |2015年第9期|745815.1-745815.5|共5页
  • 作者

    Qin Yuping; Li Dan; Zhang Aihua;

  • 作者单位

    Bohai Univ, Coll Engn, Jinzhou 121013, Peoples R China.;

    Bohai Univ, Coll Math & Phys, Jinzhou 121013, Peoples R China.;

    Bohai Univ, Coll Engn, Jinzhou 121013, Peoples R China.;

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