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Autores:
Carlos Fernandez-Lozano, José Antonio Seoane, Marcos Gestal, Tom R. Gaunt, Colin Campbell
Título: Texture Classification using Kernel-Based Techniques
Congreso: International Work Conference on Artificial Neural Network (IWANN)
Lugar Celebración: Puerto de la Cruz
Fecha Celebración: 12-14 de Junio de 2013
Publicación: IWANN 2013, Part I
ISBN: 978-3-642-38678-7
Volumen: LNCS 7902
Páginas: 427-434
Editorial: Springer Berlin Heidelberg
Fecha Publicación: Junio 2013
doi: 10.1007/978-3-642-38679-4_42
Citas Google Scholar: 1
Congreso indexado en Australian Ranking of ICT Conference (CORE): categoria B

Abstract:

In this paper, a high-dimensional textural heterogenous dataset is evaluated. This problem should be studied with specific techniques or a solution for decreasing dimensionality should be applied in order to improve the classi- fication results. Thus, this problem is tackled by means of three differente techniques: an specific technique such as Multiple Kernel Learning, and two different feature selection techniques such as Support Vector Machines- Recursive Feature Elimination and a Genetic Algorithm-based approaches. We found that the best technique is Support Vector Machines-Recursive Feature Elimination, with a AUROC score of 92,45%