A Hybrid Feature Selection Model for Genome Wide Association Studies - Sait Can Yucebas - Books - LAP LAMBERT Academic Publishing - 9783659588280 - September 12, 2014
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A Hybrid Feature Selection Model for Genome Wide Association Studies

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Through Genome Wide Association Studies (GWAS) many SNP-complex disease relations have been investigated so far. GWAS presents high amount ? high dimensional data and relations between SNPs, phenotypes and diseases are most likely to be nonlinear. In order to handle high volume-high dimensional data and to be able to find the nonlinear relations, data mining approaches are needed. In this work, a hybrid feature selection model of support vector machine and decision tree has been designed. This model also combines the genotype and phenotype information to increase the diagnostic performance. The model is tested on prostate cancer and melanoma data and shows promising results.

Media Books     Paperback Book   (Book with soft cover and glued back)
Released September 12, 2014
ISBN13 9783659588280
Publishers LAP LAMBERT Academic Publishing
Pages 232
Dimensions 150 × 220 × 10 mm   ·   364 g
Language German