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Beschreibung
A guide on the use of SVMs in pattern classification, including a rigorous performance comparison of classifiers and regressors. The book presents architectures for multiclass classification and function approximation problems, as well as evaluation criteria for classifiers and regressors. Features: Clarifies the characteristics of two-class SVMs; Discusses kernel methods for improving the generalization ability of neural networks and fuzzy systems; Contains ample illustrations and examples; Includes performance evaluation using publicly available data sets; Examines Mahalanobis kernels, empirical feature space, and the effect of model selection by cross-validation; Covers sparse SVMs, learning using privileged information, semi-supervised learning, multiple classifier systems, and multiple kernel learning; Explores incremental training based batch training and active-set training methods, and decomposition techniques for linear programming SVMs; Discusses variable selection for support vector regressors.
Details
| Verlag | Springer London |
| Ersterscheinung | 04. Mai 2012 |
| Maße | 23.5 cm x 15.5 cm |
| Gewicht | 739 Gramm |
| Format | Softcover |
| ISBN-13 | 9781447125488 |
| Auflage | Softcover reprint of hardcover 2nd ed. 2010 |
| Seiten | 473 |