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A new mutual information based measure for feature selection

机译:一种基于互信息的新特征选择方法

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摘要

In this paper, we discuss the problem of feature selection and the importance of using mutual information in evaluating the discrimination ability of feature subsets between class labels. Because of the difficulties associated with estimating the exact value of mutual information, we propose a new evaluation measure that is based on the information gain and takes into consideration the interaction between features. The proposed measure is integrated into a robust feature selection scheme and compared with the well-known mutual information feature selection (MIFS) algorithm using the problems of texture classification, speech segment classification and speaker identification.
机译:在本文中,我们讨论了特征选择的问题以及在评估类标签之间特征子集的辨别能力时使用互信息的重要性。由于估计相互信息的准确值存在困难,因此我们提出了一种新的评估方法,该方法基于信息获取并考虑了要素之间的相互作用。所提出的措施被集成到一个健壮的特征选择方案中,并与使用纹理分类,语音片段分类和说话人识别等问题的众所周知的互信息特征选择(MIFS)算法进行了比较。

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