Algorithm for clustering analysis of gene expression data using MapReduce framework

Bioinformatics is a fast growing field in data mining techniques to solve biological problems. Few decades' fast developments in genomic and other molecular research in information technologies have combined to produce an enormous amount of information relevant to molecular biology. The study o...

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Vydané v:2016 International Conference on Computing Technologies and Intelligent Data Engineering (ICCTIDE'16) s. 1 - 4
Hlavní autori: Priya, P. Packia Amutha, Lawrance, R.
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Jazyk:English
Vydavateľské údaje: IEEE 01.01.2016
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Abstract Bioinformatics is a fast growing field in data mining techniques to solve biological problems. Few decades' fast developments in genomic and other molecular research in information technologies have combined to produce an enormous amount of information relevant to molecular biology. The study of gene expression data investigation has developed in the few years from being purely data-centric to interrelate. The developments in gene expression based analysis methods are association, classification, clustering, and prediction studies. In recent times, industries have a rapid growth of data; a data analysis tool is required to satisfy the need for analyzing a huge volume of data. The MapReduce framework is designed to compute data demanding applications to support effective decision making. This document afford an outline of the MapReduce programming model, different methods to implement MapReduce models to process large-scale datasets and used to cluster the given gene dataset based on specified features.
AbstractList Bioinformatics is a fast growing field in data mining techniques to solve biological problems. Few decades' fast developments in genomic and other molecular research in information technologies have combined to produce an enormous amount of information relevant to molecular biology. The study of gene expression data investigation has developed in the few years from being purely data-centric to interrelate. The developments in gene expression based analysis methods are association, classification, clustering, and prediction studies. In recent times, industries have a rapid growth of data; a data analysis tool is required to satisfy the need for analyzing a huge volume of data. The MapReduce framework is designed to compute data demanding applications to support effective decision making. This document afford an outline of the MapReduce programming model, different methods to implement MapReduce models to process large-scale datasets and used to cluster the given gene dataset based on specified features.
Author Priya, P. Packia Amutha
Lawrance, R.
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  organization: Department of Computer Science, Ayya Nadar Janaki Ammal College, Sivakasi
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  givenname: R.
  surname: Lawrance
  fullname: Lawrance, R.
  email: lawrancer@yahoo.com
  organization: Department of Computer Applications, Ayya Nadar Janaki Ammal College, Sivakasi
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Snippet Bioinformatics is a fast growing field in data mining techniques to solve biological problems. Few decades' fast developments in genomic and other molecular...
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SubjectTerms Algorithm design and analysis
Big data
Bioinformatics
Canopy Clustering Algorithm
Clustering
Clustering algorithms
Data mining
Gene expression
Gene expression data
MapReduce
Microarray
Partitioning algorithms
Title Algorithm for clustering analysis of gene expression data using MapReduce framework
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