Title of article :
Facial Expression Recognition Using Texture Description of Displacement Image
Author/Authors :
Sadeghi، Hamid نويسنده Amirkabir University of Technology Sadeghi, Hamid , Raie، Abolghasem Asadollah نويسنده Amirkabir University of Technology Raie, Abolghasem Asadollah , Mohammadi، Mohammad Reza نويسنده Department of Physics, Sistan and Baluchestan University, Zahedan 98135–674, I.R. Iran ,
Issue Information :
دوفصلنامه با شماره پیاپی 8 سال 2014
Pages :
8
From page :
205
To page :
212
Abstract :
In recent years, facial expression recognition, as an interesting problem in computer vision has been performed by means of static and dynamic methods. Dynamic information plays an important role in recognizing facial expression in the image sequences. However, using the entire dynamic information in the expression image sequences is of higher computational cost compared to the static methods. To reduce the computational cost, instead of entire image sequence, only neutral and emotional faces can be employed. In the previous research, this idea was used by means of Difference of Local Binary Pattern Histogram Sequences (DLBPHS) method in which facial important small displacements were vanished by subtracting Local Binary Pattern (LBP) features of neutral and emotional face images. In this paper, a novel approach is proposed to utilize two face images. In the proposed method, the face component displacements are highlighted by subtracting neutral image from emotional image; then, LBP features are extracted from the difference image as well as the emotional one. Then, the feature vector is created by concatenating two LBP histograms. Finally, a Support Vector Machine (SVM) is used to classify the extracted feature vectors. The proposed method is evaluated on standard databases and the results show a signi?cant accuracy improvement compared to DLBPHS.
Journal title :
Journal of Information Systems and Telecommunication
Serial Year :
2014
Journal title :
Journal of Information Systems and Telecommunication
Record number :
1784066
Link To Document :
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