The Effect of Different Classifiers on Recursive Cluster Elimination in the Analysis of Transcriptomic Data

dc.contributor.author Bulut, Nurten
dc.contributor.author Bakir-Güngör, Burcu
dc.contributor.author Qaqish, Bahjat F.
dc.contributor.author Yousef, Malik
dc.date.accessioned 2025-09-25T10:58:51Z
dc.date.available 2025-09-25T10:58:51Z
dc.date.issued 2023
dc.description.abstract Gene expression data with limited sample size and a large number of genes are frequently encountered in genetic studies. In such high-dimensional data, identification of genes that distinguish between disease states is a challenging task. Feature selection (FS) is a useful approach in dealing with high dimensionality. Support Vector Machines Recursive Cluster Elimination (SVM-RCE) is a technique for FS in high-dimensional data. The SVM-RCE approach has been utilized for identification of clusters of genes whose expression levels correlate with pathological state. A key step in SVM-RCE is the use of an SVM classifier to assign an area under the curve (AUC) score to each gene cluster based on its ability to predict class labels. In this study, we investigate the use of alternative classifiers in the cluster-scoring step. Specifically, we compare Support Vector Machines, Random Forest, XgBoost, Naive Bayes, and linear logistic regression. In addition to AUC score performance evaluation, the algorithms are compared in terms of the number of selected genes at different levels of clustering and in terms of the running time. © 2023 Elsevier B.V., All rights reserved. en_US
dc.identifier.doi 10.1109/ASYU58738.2023.10296645
dc.identifier.isbn 9798350306590
dc.identifier.scopus 2-s2.0-85178313998
dc.identifier.uri https://doi.org/10.1109/ASYU58738.2023.10296645
dc.identifier.uri https://hdl.handle.net/20.500.12573/4777
dc.language.iso en en_US
dc.publisher Institute of Electrical and Electronics Engineers Inc. en_US
dc.relation.ispartof -- 2023 Innovations in Intelligent Systems and Applications Conference, ASYU 2023 -- Sivas; Sivas Cumhuriyet University -- 194153 en_US
dc.rights info:eu-repo/semantics/closedAccess en_US
dc.subject Clustering en_US
dc.subject Feature Selection en_US
dc.subject Gene Expression Data Analysis en_US
dc.subject Recursive Cluster Elimination en_US
dc.subject Clustering Algorithms en_US
dc.subject Feature Selection en_US
dc.subject Gene Expression en_US
dc.subject Logistic Regression en_US
dc.subject Areas Under The Curves en_US
dc.subject Clusterings en_US
dc.subject Features Selection en_US
dc.subject Gene Expression Data en_US
dc.subject Gene Expression Data Analysis en_US
dc.subject High Dimensional Data en_US
dc.subject Recursive Cluster Elimination en_US
dc.subject Sample Sizes en_US
dc.subject Support Vectors Machine en_US
dc.subject Transcriptomics en_US
dc.subject Support Vector Machines en_US
dc.title The Effect of Different Classifiers on Recursive Cluster Elimination in the Analysis of Transcriptomic Data en_US
dc.type Conference Object en_US
dspace.entity.type Publication
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gdc.coar.access metadata only access
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gdc.collaboration.industrial false
gdc.description.department Abdullah Gül University en_US
gdc.description.departmenttemp [Bulut] Nurten, Department of Computer Engineering, Abdullah Gül Üniversitesi, Kayseri, Turkey; [Bakir-Güngör] Burcu, Department of Computer Engineering, Abdullah Gül Üniversitesi, Kayseri, Turkey; [Qaqish] Bahjat F., UNC Gillings School of Global Public Health, Chapel Hill, United States; [Yousef] Malik, Department of Information Systems, Zefat Academic College, Safad, Israel en_US
gdc.description.endpage 5
gdc.description.publicationcategory Konferans Öğesi - Uluslararası - Kurum Öğretim Elemanı en_US
gdc.description.scopusquality N/A
gdc.description.startpage 1
gdc.description.wosquality N/A
gdc.identifier.openalex W4388037907
gdc.index.type Scopus
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gdc.oaire.publicfunded false
gdc.openalex.collaboration International
gdc.openalex.fwci 0.0
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gdc.opencitations.count 0
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gdc.virtual.author Bulut, Nurten
gdc.virtual.author Güngör, Burcu
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