Combining Ranking with Traditional Methods for Ordinal Class Imbalance

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Áreas de investigación:
Año:
2017
Tipo de publicación:
Artículo en conferencia
Palabras clave:
Ordinal classification, Class imbalance, Ranking, SVM
Autores:
Volumen:
10306
Título del libro:
International Work Conference on Artificial Neural Networks (IWANN2017)
Serie:
Lecture Notes in Computer Science
Páginas:
538-548
ISBN:
978-3-319-59146-9
Abstract:
In classification problems, a dataset is said to be imbalanced when the distribution of the target variable is very unequal. Classes contribute unequally to the decision boundary, and special metrics are used to evaluate these datasets. In previous work, we presented pairwise ranking as a method for binary imbalanced classification, and extended to the ordinal case using weights. In this work, we extend ordinal classification using traditional balancing methods. A comparison is made against traditional and ordinal SVMs, in which the ranking adaption proposed is found to be competitive.
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