Filter and Wrapper Stacking Ensemble (FWSE): a robust approach for reliable biomarker discovery in high-dimensional omics data

Sugam Budhraja*, Maryam Doborjeh, Balkaran Singh, Samuel Tan, Zohreh Doborjeh, Edmund Lai, Alexander Merkin, Jimmy Lee, Wilson Goh, Nikola Kasabov

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

4 Citations (Scopus)

Abstract

Selecting informative features, such as accurate biomarkers for disease diagnosis, prognosis and response to treatment, is an essential task in the field of bioinformatics. Medical data often contain thousands of features and identifying potential biomarkers is challenging due to small number of samples in the data, method dependence and non-reproducibility. This paper proposes a novel ensemble feature selection method, named Filter and Wrapper Stacking Ensemble (FWSE), to identify reproducible biomarkers from high-dimensional omics data. In FWSE, filter feature selection methods are run on numerous subsets of the data to eliminate irrelevant features, and then wrapper feature selection methods are applied to rank the top features. The method was validated on four high-dimensional medical datasets related to mental illnesses and cancer. The results indicate that the features selected by FWSE are stable and statistically more significant than the ones obtained by existing methods while also demonstrating biological relevance. Furthermore, FWSE is a generic method, applicable to various high-dimensional datasets in the fields of machine intelligence and bioinformatics.

Original languageEnglish
Article numberbbad382
JournalBriefings in Bioinformatics
Volume24
Issue number6
DOIs
Publication statusPublished - Nov 1 2023
Externally publishedYes

Bibliographical note

Publisher Copyright:
© The Author(s) 2023. Published by Oxford University Press.

ASJC Scopus Subject Areas

  • Information Systems
  • Molecular Biology

Keywords

  • biomarker discovery
  • ensemble learning
  • feature selection
  • genomics
  • high-dimensional data
  • proteomics

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