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Homomorphic filtering based illumination normalization method for face recognition
Authors:Chun-Nian Fan  Fu-Yan Zhang
Affiliation:a Department of Computer Science and Technology, Nanjing University, Nanjing 210093, PR China
b Computer and Software Institute, Nanjing University of Information Science and Technology, Nanjing 210044, PR China
Abstract:The appearance of a face image is severely affected by illumination conditions that will hinder the automatic face recognition process. To recognize faces under varying lighting conditions, a homomorphic filtering-based illumination normalization method is proposed in this paper. In this work, the effect of illumination is effectively reduced by a modified implementation of homomorphic filtering whose key component is a Difference of Gaussian (DoG) filter, and the contrast is enhanced by histogram equalization. The resulted face image is not only reduced illumination effect but also preserved edges and details that will facilitate the further face recognition task. Among others, our method has the following advantages: (1) neither does it need any prior information of 3D shape or light sources, nor many training samples thus can be directly applied to single training image per person condition; and (2) it is simple and computationally fast because there are mature and fast algorithms for the Fourier transform used in homomorphic filter. The Eigenfaces method is chosen to recognize the normalized face images. Experimental results on the Yale face database B and the CMU PIE face database demonstrate the significant performance improvement of the proposed method in the face recognition system for the face images with large illumination variations.
Keywords:Face recognition  Illumination  Homomorphic filter
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