Face Detection using Orientation(In-Plane Rotation) Invariant Facial Region Segmentation and Local Binary Patterns(LBP) 


Vol. 44,  No. 7, pp. 692-702, Jul.  2017
10.5626/JOK.2017.44.7.692


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  Abstract

Face detection using the LBP based feature descriptor has issues in that it can not represent spatial information between facial shape and facial components such as eyes, nose and mouth. To address these issues, in previous research, a facial image was divided into a number of square sub-regions. However, since the sub-regions are divided into different numbers and sizes, the division criteria of the sub-region suitable for the database used in the experiment is ambiguous, the dimension of the LBP histogram increases in proportion to the number of sub-regions and as the number of sub-regions increases, the sensitivity to facial orientation rotation increases significantly. In this paper, we present a novel facial region segmentation method that can solve in-plane rotation issues associated with LBP based feature descriptors and the number of dimensions of feature descriptors. As a result, the proposed method showed detection accuracy of 99.0278% from a single facial image rotated in orientation.


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  Cite this article

[IEEE Style]

H. Lee, H. Kim, D. Lee, S. Lee, "Face Detection using Orientation(In-Plane Rotation) Invariant Facial Region Segmentation and Local Binary Patterns(LBP)," Journal of KIISE, JOK, vol. 44, no. 7, pp. 692-702, 2017. DOI: 10.5626/JOK.2017.44.7.692.


[ACM Style]

Hee-Jae Lee, Ha-Young Kim, David Lee, and Sang-Goog Lee. 2017. Face Detection using Orientation(In-Plane Rotation) Invariant Facial Region Segmentation and Local Binary Patterns(LBP). Journal of KIISE, JOK, 44, 7, (2017), 692-702. DOI: 10.5626/JOK.2017.44.7.692.


[KCI Style]

이희재, 김하영, 이다빛, 이상국, "방향 회전에 불변한 얼굴 영역 분할과 LBP를 이용한 얼굴 검출," 한국정보과학회 논문지, 제44권, 제7호, 692~702쪽, 2017. DOI: 10.5626/JOK.2017.44.7.692.


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