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A new support vector machine for microarray classification and adaptive gene selection

机译:一种用于微阵列分类和自适应基因选择的新型支持向量机

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This paper presents a new support vector machine for simultaneous gene selection and microarray classification. By introducing the adaptive elastic net penalty which is a convex combination of weighted 1-norm penalty and weighted 2-norm penalty, the proposed support vector machine can encourage an adaptive grouping effect and reduce the shrinkage bias for the large coefficients. According to a reasonable correlation between the two regularization parameters, the optimal coefficient paths are shown to be piecewise linear and the corresponding solving algorithm is developed. Experiments are performed on leukaemia data that verify the research results.
机译:本文提出了一种用于同时基因选择和微阵列分类的新型支持向量机。通过引入自适应弹性净罚分,它是加权1-范数罚分和加权2-范数罚分的凸组合,所提出的支持向量机可以鼓励自适应分组效应并减小大系数的收缩偏差。根据两个正则化参数之间的合理相关性,最优系数路径显示为分段线性,并开发了相应的求解算法。对白血病数据进行了实验,以验证研究结果。

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