DocumentCode :
263924
Title :
A novel approach to nose-tip and eye-corners detection using HK-classification in case of 3D face analysis
Author :
Khadhraoui, Taher ; Benzarti, Faouzi ; Amiri, Hamid
Author_Institution :
Nat. Sch. of Eng. of Tunis (ENIT), LR-SITI-ENIT Lab., Tunis, Tunisia
fYear :
2014
fDate :
17-19 Jan. 2014
Firstpage :
1
Lastpage :
4
Abstract :
In this paper, we present an automatic 3D face analysis algorithm and demonstrate its performance on CASIA 3D data. The idea is to develop an automatic extraction approach of 3D facial features, using a geometric approach based on an analysis of the curves. 3D Face analysis has been considered as a major solution to deal with unsolved issues of reliable 2D face recognition. Facial feature extraction is important in many face related applications, such as face recognition, pose normalization, expression understanding and face tracking. Experimental results, using a common experimental setup on CASIA 3D dataset, are presented to demonstrate the accuracy and relevance of the proposed approach. Our technique displays, a 100% of good nose tip localization in 8 mm precision and 100% of good localization for the eye inner corner in 10 mm precision.
Keywords :
edge detection; face recognition; feature extraction; gaze tracking; image classification; 3D facial feature extraction; CASIA 3D dataset; HK-classification; automatic 3D face analysis algorithm; automatic extraction approach; curve analysis; eye-corner detection; face tracking; geometric approach; nose tip localization; nose-tip detection; pose normalization; reliable 2D face recognition; Face; Face recognition; Feature extraction; Nose; Solid modeling; Three-dimensional displays; Vectors; 3D face analysis; Biometrics; Curvature analysis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Applications and Information Systems (WCCAIS), 2014 World Congress on
Conference_Location :
Hammamet
Print_ISBN :
978-1-4799-3350-1
Type :
conf
DOI :
10.1109/WCCAIS.2014.6916642
Filename :
6916642
Link To Document :
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