Two-Dimensional Face Surface Analysis Using Facial Feature Points Detection Approaches

Author:

Ahdid Rachid1,Azougaghe Es-said1,Safi Said1,Manaut Bouzid2

Affiliation:

1. Department of Mathematics and Informatics, Sultan Moulay Slimane University, Beni Mellal, Morocco

2. Departement of Physics, Sultan Moulay Slimane University, Beni Mellal, Morocco

Abstract

Geometrical features are widely used to descript human faces. Generally, they are extracted punctually from landmarks, namely facial feature points. The aims are various, such as face recognition, facial expression recognition, face detection. In this article, the authors present two feature extraction methods for two-dimensional face recognition. Their approaches are based on facial feature points detection by compute the Euclidean Distance between all pairs of this points for a first method (ED-FFP) and Geodesic Distance in the second approach (GD-FFP). These measures are employed as inputs to commonly used classification techniques such as Neural Networks (NN), k-Nearest Neighbor (KNN) and Support Vector Machines (SVM). To test the methods and evaluate its performance, a series of experiments were performed on two-dimensional face image databases (ORL and Yale). The experimental results also indicated that the extraction of image features is computationally more efficient using Geodesic Distance than Euclidean Distance.

Publisher

IGI Global

Subject

Marketing,Strategy and Management,Computer Networks and Communications,Computer Science Applications

Reference34 articles.

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4. Alain, R. (2009, May 6). Sparateurs Vaste Marge linaires. INSA Rouen –Dpartement ASI.

5. Bedoui. L. (2008). Authentification de visages par la mthode danalyse discriminante linaire de Fischer. Universit Mohamed Kheider de Biskra, Ingnieur dEtat en Automatique.

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