Selection Of Independent Binary Features Using Probabilities: An Example From Veterinary Medicine
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Nov 1, 2005
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Ludmila I. Kuncheva
School of Informatics, University of Wales, Bangor, UK
Zoë S.J. Hoare
School of Informatics, University of Wales, Bangor, UK
Peter D. Cockcrof
Department of Clinical Veterinary Medicine, University of Cambridge, UK
Abstract
Supervised classification into c mutually exclusive classes based on n binary features is considered. The only information available is an n×c table with probabilities. Knowing that the best d features are not the d best, simulations were run for 4 feature selection methods and an application to diagnosing BSE in cattle and Scrapie in sheep is presented.
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