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scHD4E: Novel ensemble learning-based differential expression analysis method for single-cell RNA-sequencing data

Author Affiliations
Gopalganj Science and Technology University, Keio University, University of Rajshahi
Published InComputers in Biology and Medicine
Year2024
Citations4

Abstract

Differential expression (DE) analysis between cell types for scRNA-seq data by capturing its complicated features is crucial. Recently, different methods have been developed for targeting the scRNA-seq data analysis based on different modeling frameworks, assumptions, strategies and test statistic in considering various data features. The scDEA is an ensemble learning-based DE analysis method developed recently, yielding p-values using Lancaster's combination, generated by 12 individual DE analysis methods, and producing more accurate and stable results than individual methods. The objective of our study is to propose a new ensemble learning-based DE analysis method, scHD4E, using top performers in only 4 separate methods. The top performer 4 methods have been selected through an evaluation process using six real scRNA-seq data sets. We…
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