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Face recognition with radial basis function (RBF) neural networks

IEEE Transactions on Neural Networks · 2002 · Vol. 13(3) · pp. 697–710
Meng Joo ErShiqian WuJuwei LuHock Lye Toh

Abstract

A general and efficient design approach using a radial basis function (RBF) neural classifier to cope with small training sets of high dimension, which is a problem frequently encountered in face recognition, is presented. In order to avoid overfitting and reduce the computational burden, face features are first extracted by the principal component analysis (PCA) method. Then, the resulting features are further processed by the Fisher's linear discriminant (FLD) technique to acquire lower-dimensional discriminant patterns. A novel paradigm is proposed whereby data information is encapsulated in determining the structure and initial parameters of the RBF neural classifier before learning takes place. A hybrid learning algorithm is used to train the RBF neural networks so that the dimension of the search space is drastically reduced in the gradient paradigm. Simulation results conducted on the ORL database show that the system achieves excellent performance both in terms of error rates of classification and learning efficiency.

Face and Expression RecognitionAdvanced Algorithms and ApplicationsRemote Sensing and Land UseRadial basis functionOverfittingArtificial intelligenceComputer sciencePattern recognition (psychology)Linear discriminant analysisArtificial neural networkFacial recognition systemPrincipal component analysisRadial basis function network
Citations
657
FWCI
10.51
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References
53
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99%
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