An efficient approach to face recognition using a modified center-symmetric local binary pattern (MCS-LBP)

被引:0
|
作者
Alapati, Anusha [1 ]
Kang, Dae-Seong [1 ]
机构
[1] Dong-A University, Dept. of Electronics Engineering, 37 Nakdong-daero 550 beon-gil, Saha-gu, Busan, Korea, Republic of
关键词
Extraction - Pixels - Feature extraction - Image representation - Local binary pattern;
D O I
10.14257/ijmue.2015.10.8.02
中图分类号
学科分类号
摘要
In this paper, we present a novel face recognition method called Multi-scale block Center-Symmetric Local Binary Pattern (MCS-LBP). The face recognition process mainly consists of three phase: face representation, feature extraction, and classification. However, the most important phase is extraction, in which unique features of the face image are extracted. The Center-Symmetric Local Binary Pattern (CS-LBP) feature can be viewed as a combination of texture-based features and gradient-based features. However, it has less dimensional area; the bit-wise comparison made between two single pixel values is significantly affected by noise and sensitive to image translation and rotation. To address this problem, we present a modified feature called MCS-LBP. Instead of individual pixels, in the modified CS-LBP, the comparison is performed based on average gray values of sub-regions. Hence, it provides more complete representation than the Local Binary Pattern (LBP) and CS-LBP operator. Experiments demonstrate the proposed method. © 2015 SERSC.
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页码:13 / 22
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