首页> 外文期刊>American journal of engineering and applied sciences >Recognition of Faces using Efficient Multiscale Local Binary Pattern and Kernel Discriminant Analysis in Varying Environment
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Recognition of Faces using Efficient Multiscale Local Binary Pattern and Kernel Discriminant Analysis in Varying Environment

机译:变环境中高效多尺度局部二值模式和核判别分析的人脸识别

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Face recognition involves matching face images with different environmental conditions. Matching face images with different environmental conditions is not a easy task. Also matching face images considering variations such as changing illumination, pose, facial expression and that with uncontrolled conditions becomes more difficult. This paper focuses on accurately recognizing face images considering all the above variations. The proposed system is based on collecting features from face images using Multiscale Local Binary pattern (MLBP) with eight orientations out of 59 crucial ones and then finding similarity using a kernel linear discriminant analysis. Literature suggested that MLBP can give up to 256 orientations for a single radius considered around a pixel and its neighborhood. The paper uses only 8 orientations for a single radius and four such radii (1, 3, 5 and 7) are considered around a single pixel with (8x4) 32 histogram features thus reducing the computational complexity. Various face image databases are considered in this paper namely, Labeled Faces in Wild (LFW), Japanese Female Facial Expression (JAFFE), AR and Asian. Results showed that the proposed system correctly identified 9 out of 10 subjects. The proposed system involves preprocessing including alignment and noise reduction using a Gaussian filter, feature extraction using MLBP based histograms and matching based on kernel linear discriminant analysis.
机译:人脸识别涉及将具有不同环境条件的人脸图像进行匹配。匹配具有不同环境条件的面部图像并非易事。考虑到诸如变化的照明,姿势,面部表情以及在不受控制的条件下的变化,匹配面部图像也变得更加困难。本文着重考虑以上所有变化,准确识别人脸图像。所提出的系统是基于使用59个关键方向中的八个方向的多尺度局部二值模式(MLBP)从面部图像收集特征,然后使用核线性判别分析找到相似性的。文献表明,对于一个围绕像素及其附近区域的单个半径,MLBP最多可以放弃256个方向。本文仅对单个半径使用8个方向,并且在具有(8x4)32个直方图特征的单个像素周围考虑了四个这样的半径(1、3、5和7),从而降低了计算复杂度。本文考虑了各种面部图像数据库,即“狂野面孔”(LFW),“日本女性面部表情”(JAFFE),AR和亚洲人。结果表明,提出的系统正确地识别了10个对象中的9个。拟议的系统涉及预处理,包括使用高斯滤波器的对齐和降噪,使用基于MLBP的直方图进行特征提取以及基于核线性判别分析的匹配。

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