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Facial Expression Recognition Using Local Transitional Pattern on Gabor Filtered Facial Images

Author Affiliations
University of Ulsan, East West University
Published InIETE Technical Review
Year2013
Citations79

Abstract

AbstractAutomatic facial expression analysis plays a major role in catching emotional state of a human being and can be effectively used in the field of human-computer interaction. Using an effective facial feature is the most critical part for a successful facial expression recognition system. This paper proposes a novel approach in pursuit of recognizing facial expression where facial feature is represented by a hybrid of Gabor wavelet transform of an image and local transitional patterncode. Expression images are classified into prototype expressions via support vector machine with different kernels. Experimental results using Cohn-Kanade expression database is compared with other methods to demonstrate the superiority of the proposed approach which successfully identifies more than 95% of facial expressions correctly.
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