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March 3, 2026SHILAP Revista de lepidopterología0 citationsOpen Access

Comparative Analysis of Filter Methods for Gene Selection

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AEAbdelhamid ElwaerUniversity of TripoliADAbdeladeem DrederUniversity of Tripoli

Key Points

  • The analysis highlights predictive accuracy across multiple gene selection methods used on a breast cancer microarray dataset.
  • Techniques like Information Gain and Correlation-based Feature Selection demonstrated high classification accuracy, showing effectiveness.
  • Evaluation of nine filter-based methods reveals significant differences in computational costs despite similar performance outcomes.
  • This study provides practical insights for selecting gene filtering methods, emphasizing efficiency and balance in analysis.

Abstract

Gene expression data presents significant challenges due to their high dimensionality; effective gene selection methods are needed to obtain accurate analysis and biomarker discovery. In this paper, we conducted a comprehensive comparative study using nine filter-based gene selection techniques: Information Gain, Mutual Information, Correlation-based Feature Selection (CFS), Relief-F, T-Test, Wilcoxon, Chi2, Pearson correlation, and Gini index. A breast cancer microarray dataset was used to evaluate these methods based on their classification accuracy, computational efficiency, and stability of the selected gene subsets. Most methods achieve high predictive accuracy and perfect stability but differ in their computational costs. This study aims to provide practical insights for choosing appropriate filtering methods based on their balance performance and efficiency in analyzing gene expression.

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Cite This Study

Elwaer et al. (2025) studied this question.

synapsesocial.com/papers/69a75d0dc6e9836116a26796https://doi.org/10.35778/jazu.i56.a648
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