A New Fast Local Laplacian Completed Local Ternary Count (FLL-CLTC) for Facial Image Classification

Face recognition is one of the most interesting areas of research areas because of its importance in authentication and security. Differentiating between different facial images is not easy because of the similarities in facial features. Human faces can also be covered obscured by eyeglasses, facial...

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Main Authors: Khaled M. Alalayah, Reyazur Rashid Irshad, Taha H. Rassem, Badiea Abdulkarem Mohammed
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9099214/
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spelling doaj-0a8d072b98db4a3d8eb901f504b493712021-03-30T02:15:59ZengIEEEIEEE Access2169-35362020-01-018982449825410.1109/ACCESS.2020.29973129099214A New Fast Local Laplacian Completed Local Ternary Count (FLL-CLTC) for Facial Image ClassificationKhaled M. Alalayah0https://orcid.org/0000-0003-4580-8022Reyazur Rashid Irshad1https://orcid.org/0000-0001-7457-5673Taha H. Rassem2https://orcid.org/0000-0001-6259-0622Badiea Abdulkarem Mohammed3https://orcid.org/0000-0003-3539-4161College of Science and Arts Sharoura, Najran University, Najran, Saudi ArabiaCollege of Science and Arts Sharoura, Najran University, Najran, Saudi ArabiaFaculty of Computing, Universiti Malaysia Pahang, Kuantan, MalaysiaCollege of Computer Science and Engineering, University of Hail, Hail, Saudi ArabiaFace recognition is one of the most interesting areas of research areas because of its importance in authentication and security. Differentiating between different facial images is not easy because of the similarities in facial features. Human faces can also be covered obscured by eyeglasses, facial expressions and hairstyles can also be changed causing difficulty in finding similar faces. Thus, the need for powerful image features has become a critical issue in the face recognition systems. Many texture features have been used in these systems, including Local Binary Pattern (LBP), Local Ternary Pattern (LTP), Completed Local Binary Pattern (CLBP), Completed Local Binary Count (CLBC) and Completed Local Ternary Pattern (CLTP). In this paper, a new texture descriptor, namely, Completed Local Ternary Count (CLTC), is proposed by adding a threshold value for the CLBC to overcome its sensitivity to noise drawback. The CLTC is also enhanced by adding the Fast-Local Laplacian filter during the pre-processing stage to increase the discriminative property of the proposed descriptor. The proposed Fast-Local Laplacian CLTC (FLL-CLTC) texture descriptor is evaluated for face recognition task using five different face image datasets. The experimental results of the FLL-CLTC showed that the proposed FLL-CLTC outperformed the CLBP and CLTP texture descriptors in term of recognition accuracy. The FLL-CLTC achieved 99.1%, 86.93%, 93.21%, 84.92% and 99.15% with JAFFE, YALE, Georgia Tech, Caltech and ORL face image datasets, respectively.https://ieeexplore.ieee.org/document/9099214/Face recognitiontexture descriptorlocal binary patternlocal binary countfast local Laplacian
collection DOAJ
language English
format Article
sources DOAJ
author Khaled M. Alalayah
Reyazur Rashid Irshad
Taha H. Rassem
Badiea Abdulkarem Mohammed
spellingShingle Khaled M. Alalayah
Reyazur Rashid Irshad
Taha H. Rassem
Badiea Abdulkarem Mohammed
A New Fast Local Laplacian Completed Local Ternary Count (FLL-CLTC) for Facial Image Classification
IEEE Access
Face recognition
texture descriptor
local binary pattern
local binary count
fast local Laplacian
author_facet Khaled M. Alalayah
Reyazur Rashid Irshad
Taha H. Rassem
Badiea Abdulkarem Mohammed
author_sort Khaled M. Alalayah
title A New Fast Local Laplacian Completed Local Ternary Count (FLL-CLTC) for Facial Image Classification
title_short A New Fast Local Laplacian Completed Local Ternary Count (FLL-CLTC) for Facial Image Classification
title_full A New Fast Local Laplacian Completed Local Ternary Count (FLL-CLTC) for Facial Image Classification
title_fullStr A New Fast Local Laplacian Completed Local Ternary Count (FLL-CLTC) for Facial Image Classification
title_full_unstemmed A New Fast Local Laplacian Completed Local Ternary Count (FLL-CLTC) for Facial Image Classification
title_sort new fast local laplacian completed local ternary count (fll-cltc) for facial image classification
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description Face recognition is one of the most interesting areas of research areas because of its importance in authentication and security. Differentiating between different facial images is not easy because of the similarities in facial features. Human faces can also be covered obscured by eyeglasses, facial expressions and hairstyles can also be changed causing difficulty in finding similar faces. Thus, the need for powerful image features has become a critical issue in the face recognition systems. Many texture features have been used in these systems, including Local Binary Pattern (LBP), Local Ternary Pattern (LTP), Completed Local Binary Pattern (CLBP), Completed Local Binary Count (CLBC) and Completed Local Ternary Pattern (CLTP). In this paper, a new texture descriptor, namely, Completed Local Ternary Count (CLTC), is proposed by adding a threshold value for the CLBC to overcome its sensitivity to noise drawback. The CLTC is also enhanced by adding the Fast-Local Laplacian filter during the pre-processing stage to increase the discriminative property of the proposed descriptor. The proposed Fast-Local Laplacian CLTC (FLL-CLTC) texture descriptor is evaluated for face recognition task using five different face image datasets. The experimental results of the FLL-CLTC showed that the proposed FLL-CLTC outperformed the CLBP and CLTP texture descriptors in term of recognition accuracy. The FLL-CLTC achieved 99.1%, 86.93%, 93.21%, 84.92% and 99.15% with JAFFE, YALE, Georgia Tech, Caltech and ORL face image datasets, respectively.
topic Face recognition
texture descriptor
local binary pattern
local binary count
fast local Laplacian
url https://ieeexplore.ieee.org/document/9099214/
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