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A Novel Twin Support Vector Machine for Binary Classification Problems

机译:新型的双支持向量机,用于二分类问题

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摘要

Based on the recently proposed twin support vector machine and twin bounded support vector machine, in this paper, we propose a novel twin support vector machine (NTSVM) for binary classification problems. The significance of our proposed NTSVM is that the objective function is changed in the spirit of regression, such that hyperplanes separate as much as possible. In addition, the successive overrelaxation technique is used to solve quadratic programming problems to speed up the training process. Experimental results obtained on several artificial and UCI benchmark datasets show the feasibility and effectiveness of the proposed method.
机译:在最近提出的孪生支持向量机和孪生有界支持向量机的基础上,本文提出了一种新颖的孪生支持向量机(NTSVM),用于二元分类问题。我们提出的NTSVM的意义在于,本着回归的精神改变了目标函数,以使超平面尽可能地分开。另外,连续超松弛技术用于解决二次编程问题,以加快训练过程。在几个人工和UCI基准数据集上获得的实验结果表明了该方法的可行性和有效性。

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