Hybrid Genetic Algorithm and Simulated Annealing for Clustering Microarray Gene Expression data
Gene expression is the process by which information in gene is used to create proteins. The gene expression studies generate large amount of data. These data, referred to as the gene expression matrix, represent the expression levels for thousands of genes recorded at a few time instances. A typical...
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| Published in | Journal of physics. Conference series Vol. 1767; no. 1; pp. 12034 - 12044 |
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| Main Authors | , , , |
| Format | Journal Article |
| Language | English |
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01.02.2021
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| ISSN | 1742-6588 1742-6596 1742-6596 |
| DOI | 10.1088/1742-6596/1767/1/012034 |
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| Abstract | Gene expression is the process by which information in gene is used to create proteins. The gene expression studies generate large amount of data. These data, referred to as the gene expression matrix, represent the expression levels for thousands of genes recorded at a few time instances. A typical microarray experiment involves the hybridization of an mRNA molecule to the DNA template from which it is originated. Many DNA samples are used to construct an array. The amount of mRNA bound to each site on the array indicates the expression level of the various genes. This number may run in thousands. All the data is collected and a profile is generated for gene expression in the cell. Clustering is a process of partitioning a set of meaningful subclasses called clusters. Clustering is a key step in the analysis of gene expression data. Genetic Algorithms are a family of computational models inspired by evolution. The searching capability of genetic algorithms is exploited in order to search for appropriate cluster center in feature space such that a similarity metric of resulting clusters is optimized. The chromosome which are represented as strings of real numbers, encode the centers of fixed number of clusters. The experiment results are demonstrated on real data sets and the performance of GA is evaluated in comparison with the state-of-the art algorithm K-Means with use of internal validation criteria. |
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| AbstractList | Gene expression is the process by which information in gene is used to create proteins. The gene expression studies generate large amount of data. These data, referred to as the gene expression matrix, represent the expression levels for thousands of genes recorded at a few time instances. A typical microarray experiment involves the hybridization of an mRNA molecule to the DNA template from which it is originated. Many DNA samples are used to construct an array. The amount of mRNA bound to each site on the array indicates the expression level of the various genes. This number may run in thousands. All the data is collected and a profile is generated for gene expression in the cell. Clustering is a process of partitioning a set of meaningful subclasses called clusters. Clustering is a key step in the analysis of gene expression data. Genetic Algorithms are a family of computational models inspired by evolution. The searching capability of genetic algorithms is exploited in order to search for appropriate cluster center in feature space such that a similarity metric of resulting clusters is optimized. The chromosome which are represented as strings of real numbers, encode the centers of fixed number of clusters. The experiment results are demonstrated on real data sets and the performance of GA is evaluated in comparison with the state-of-the art algorithm K-Means with use of internal validation criteria. |
| Author | Sadhasivam, N Sivakumar, T Pandi, M Senthil Madasamy, N |
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| Cites_doi | 10.1504/IJBIC.2015.072265 10.1109/CINE48825.2020.234391 10.1093/bioinformatics/btg330 10.1109/ACCESS.2020.3019844 10.1109/ACCESS.2019.2952548 10.1186/s12859-017-1933-0 10.1016/S0031-3203(01)00108-X 10.1145/331499.331504 10.1109/JBHI.2019.2944865 10.1109/TCBB.2017.2705686 10.1023/A:1023949509487 10.1093/bioinformatics/17.4.309 |
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| DOI | 10.1088/1742-6596/1767/1/012034 |
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| Snippet | Gene expression is the process by which information in gene is used to create proteins. The gene expression studies generate large amount of data. These data,... |
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| SubjectTerms | Arrays Clustering Deoxyribonucleic acid DNA Evolutionary algorithms Gene expression Genes Genetic algorithms Physics Real numbers Simulated annealing |
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| Title | Hybrid Genetic Algorithm and Simulated Annealing for Clustering Microarray Gene Expression data |
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