Feature selection based on Mutual Information in supervised learning

ICNC(2011)

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摘要
How to use finite samples to effectively and efficiently estimate high-dimension MI(Mutual Information) is a crucial problem in MI based feature selection. In this paper, we propose a novel method of estimating high-dimension MI using clustering and corresponding algorithm applied in feature selection. This method is different from many proposed methods by others, which the high-dimension MI are not estimated directly. Theoretical analysis and practical evaluation of our algorithm are also included in this paper.
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关键词
supervised learning,pattern clustering,learning (artificial intelligence),mi based feature selection,mutual information,feature selection,learning artificial intelligence
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