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Support Vector Machines for Automatic Target Recognition Using Wavelet Kernel

Authors :
Yuan-kui Liu
Yangyu Fan
Jiong Zhao
Source :
2007 International Conference on Wavelet Analysis and Pattern Recognition.
Publication Year :
2007
Publisher :
IEEE, 2007.

Abstract

The classification problem of small target is a very significant but challenging task in the field of automatic target recognition. In this paper, an enhanced support vector machine with the wavelet kernel function was proposed. In order to concentrate on the classification, It is assumed that regions containing possible targets are provided. Then the Hu's moment invariants are chosen as the feature vectors used for classifiers. Finally, the classification is performed by a support vector classifier used Db4 wavelet kernel. Compared to the Gaussian kernel classifier, simulation results show that this method leads to a more admissible result in terms of classification accuracy and robustness.

Details

Database :
OpenAIRE
Journal :
2007 International Conference on Wavelet Analysis and Pattern Recognition
Accession number :
edsair.doi...........c9d6a29c9509f6549ce9948c3044da07
Full Text :
https://doi.org/10.1109/icwapr.2007.4421658