Support vector machine-based classification of rock texture images aided by efficient feature selection

Changjing Shang, Dave Barnes

Allbwn ymchwil: Pennod mewn Llyfr/Adroddiad/Trafodion CynhadleddTrafodion Cynhadledd (Nid-Cyfnodolyn fathau)

17 Dyfyniadau (Scopus)

Crynodeb

This paper presents a study on rock texture image classification using support vector machines (and also K-nearest neighbours and decision trees) with the aid of feature selection techniques. It offers both unsupervised and supervised methods for feature selection, based on data reliability and information gain ranking respectively. Following this approach, the conventional classifiers which are sensitive to the dimensionality of feature patterns, become effective on classification of images whose pattern representation may otherwise involve a large number of features. The work is successfully applied to complex images. Classifiers built using features selected by either of these methods generally outperform their counterparts that employ the full set of original features which has a dimensionality several folds higher than that of the selected feature subset. This is confirmed by systematic experimental investigations. This study therefore, helps to accomplish challenging image classification tasks effectively and efficiently. In particular, the approach retains the underlying semantics of a selected feature subset. This is very important to ensure that the classification results are understandable by the user.
Iaith wreiddiolSaesneg
TeitlThe 2012 International Joint Conference on Neural Networks (IJCNN)
CyhoeddwrIEEE Press
Tudalennau1-8
Nifer y tudalennau8
ISBN (Electronig)978-1-4673-1489-3
ISBN (Argraffiad)978-1-4673-1488-6
StatwsCyhoeddwyd - 2012
Digwyddiad2012 International Joint Conference on Neural Networks (IJCNN) - Brisbane, Awstralia
Hyd: 10 Meh 201215 Meh 2012

Cynhadledd

Cynhadledd2012 International Joint Conference on Neural Networks (IJCNN)
Gwlad/TiriogaethAwstralia
DinasBrisbane
Cyfnod10 Meh 201215 Meh 2012

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