基于最大Shapley值的最优特征选择方法的确定

F. Mokdad, D. Bouchaffra, Nabil Zerrouki, A. Touazi
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引用次数: 9

摘要

提出了一种基于博弈论的特征选择方法。在这种情况下,玩家是各种特征选择方法,特征函数(收益)代表玩家联盟内的特征排名协议。计算分配给每种特征选择方法的Shapley值,并从高到低排序。Shapley值最高的特征选择方法被认为是最佳特征选择方法。最后,我们执行了一个分数融合方案,使用Borda计数(BC)共识函数作为最大shapley值建议方法的基准。为了验证实验获得的结果,我们通过调用SVM分类器,使用一组UCI和Statlog数据集进行了分类。实验结果表明,与一些最先进的方法相比,所提出的方法是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Determination of an optimal feature selection method based on maximum Shapley value
We propose a novel feature selection methodology based on game theory. In this context, the players are the various feature selection methods and the characteristic function (payoff) represents the feature ranking agreement within a coalition of players. The Shapley value assigned to each feature selection method is computed and ranked from higher to lower. The best feature selection method is identified as the one having the highest Shapley value. Finally, we have performed a score fusion scheme using the Borda Count (BC) consensus function as a benchmark to the maximum-Shapley value proposed approach. In order to validate the results obtained experimentally, we have performed a classification using a set of UCI and Statlog datasets by invoking an SVM classifier. Experimental results demonstrate the efficiency of the proposed methodology compared to some state-of-the-art approaches.
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