Literature DB >> 17278560

Wrapper-filter feature selection algorithm using a memetic framework.

Zexuan Zhu, Yew-Soon Ong, Manoranjan Dash.   

Abstract

This correspondence presents a novel hybrid wrapper and filter feature selection algorithm for a classification problem using a memetic framework. It incorporates a filter ranking method in the traditional genetic algorithm to improve classification performance and accelerate the search in identifying the core feature subsets. Particularly, the method adds or deletes a feature from a candidate feature subset based on the univariate feature ranking information. This empirical study on commonly used data sets from the University of California, Irvine repository and microarray data sets shows that the proposed method outperforms existing methods in terms of classification accuracy, number of selected features, and computational efficiency. Furthermore, we investigate several major issues of memetic algorithm (MA) to identify a good balance between local search and genetic search so as to maximize search quality and efficiency in the hybrid filter and wrapper MA.

Mesh:

Year:  2007        PMID: 17278560     DOI: 10.1109/tsmcb.2006.883267

Source DB:  PubMed          Journal:  IEEE Trans Syst Man Cybern B Cybern        ISSN: 1083-4419


  13 in total

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9.  Gene Selection via a New Hybrid Ant Colony Optimization Algorithm for Cancer Classification in High-Dimensional Data.

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10.  Multi-Population Genetic Algorithm for Multilabel Feature Selection Based on Label Complementary Communication.

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