Research and Application of Face Recognition with ANN Based on Improved R-LDA

Wang Guo · Science Technology and Engineering · 2013

Face recognition(FR) system is automatically identifying or verifying a personal face acquired from a digital camera or a image generation device.In order to do this,facial features from the acquired image should be extracted and compared with a facial database.All FRs face an obstacle related to the viewing angle of the face including poor lighting and low resolution.Because of those problems,its recognition rate substantially decreases.A newly weighted regularization parameter based FR system which can improve recognition rate under certain environmental constraints is proposed.This approach is based on the conventional regularized linear discriminant analysis(R-LDA) and includes Artificial Neural Network(ANN) which can improve face recognition rate with a prominent classification ability.The revised R-LDA algorithm is attempted to address the Small Sample Size(SSS) problem that encountered in all FRs and the ANN is useful to detect the frontal views of faces.This algorithm has been tested on ORL and FERET database using MATLAB.Its test results show the better recognition comparing with other methods.

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