Face Recognition System using Discrete Cosine Transform combined with MLP and RBF Neural Networks

Author:

Chelali Fatma Zohra1,Djeradi Amar1

Affiliation:

1. Speech Communication and Signal Processing Laboratory, Houari Boumedienne University of Sciences and Technologies, El Alia, Algeria

Abstract

Proposed is an efficient face recognition algorithm using the discrete cosine transform DCT Technique for reducing dimensionality and image parameterization. These DCT coefficients are examined by a MLP (Multi-Layer Perceptron) and radial basis function RBF neural networks. Their purpose is to present a face recognition system that is a combination of discrete cosine transform (DCT) algorithm with a MLP and RBF neural networks. Neural networks have been widely applied in pattern recognition for the reason that neural-networks-based classifiers can incorporate both statistical and structural information and achieve better performance than the simple minimum distance classifiers. The authors demonstrate experimentally that when DCT coefficients are fed into a back propagation neural network for classification, a high recognition rate can be achieved by using a very small proportion of transform coefficients. Comparison with other statistical methods like Principal component Analysis (PCA) and Linear Discriminant Analysis (LDA) is presented. Their face recognition system is tested on the computer vision science research projects and the ORL database.

Publisher

IGI Global

Subject

Computer Networks and Communications

Reference32 articles.

1. Eigenfaces vs. Fisherfaces: recognition using class specific linear projection

2. Chang, C.-Y., & Hsu, H. (2008). Apply an adaptive center selection algorithm to Radial basis function neural network for face recognition. In Proceedings of the 3rd International Conference on Innovative Computing Information and Control.

3. Chelali, F. Z., & Djeradi, A. (2008, July 7-10). Real time face recognition from video stream using eigen faces. In Proceedings of the International Conference on Artificial Intelligence and Pattern Recognition, Orlando, FL (pp. 75-80).

4. Chelali, F. Z., Djeradi, A., & Djeradi, R. (2009a). Linear discriminant analysis for face recognition. In Proceedings of the International Conference on Multimedia and Systems, Ouarzazate, Morocco.

5. Chelali, F. Z., Djeradi, A., & Djeradi, R. (2009b). Face recognition system based on PCA and LDA. In Proceedings of the International Conference on Artificial Intelligence and Pattern Recognition, Orlando, FL (pp. 24-34).

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