On Relevant Features Selection Based on Information Theory

IF 0.5 4区 数学 Q4 STATISTICS & PROBABILITY Theory of Probability and its Applications Pub Date : 2023-11-01 DOI:10.1137/s0040585x97t991520
A. V. Bulinski
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引用次数: 0

Abstract

It is shown that widely used suboptimal algorithms of feature selection based on information theory concepts do not necessarily identify a collection of features (relevant in a sense) affecting the studied random response. This can be considered as a reflection of the epistasis phenomenon known in genetics, when individual features have little effect on increased risk of complex disease, whereas certain combinations of features have significant impact on risk. It is demonstrated that a similar effect is also manifested in inferences employing statistical estimates of mutual information.
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基于信息论的相关特征选择
研究表明,广泛使用的基于信息论概念的次优特征选择算法不一定能识别出影响所研究随机响应的特征集合(在某种意义上是相关的)。这可以被认为是遗传学中已知的上位现象的反映,当个体特征对复杂疾病的风险增加影响很小时,而某些特征的组合对风险有显著影响。结果表明,在采用互信息统计估计的推论中也表现出类似的效果。
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来源期刊
Theory of Probability and its Applications
Theory of Probability and its Applications 数学-统计学与概率论
CiteScore
1.00
自引率
16.70%
发文量
54
审稿时长
6 months
期刊介绍: Theory of Probability and Its Applications (TVP) accepts original articles and communications on the theory of probability, general problems of mathematical statistics, and applications of the theory of probability to natural science and technology. Articles of the latter type will be accepted only if the mathematical methods applied are essentially new.
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