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A novel LBP fuzzy feature extraction method for face recognition

机译:一种新的LBP人脸识别模糊特征提取方法

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This paper presents theoretically simple, yet computationally efficient approach for face recognition. In this approach the face image is divided into several sub-regions from which the information derived using the Local Binary Pattern (LBP) over a window and the information at the central pixel, which is a product of information source and fuzzy membership value. The LBP features possess the texture discriminative property with low computational cost. By taking the information from both LBP and the central pixel, the shortcoming of LBP is removed. The proposed approach fares well over PCA and LDA when implemented using SVM and KNN as the classifiers on ORL database and CSIST database.
机译:本文提出了理论上简单但计算效率高的人脸识别方法。在这种方法中,将脸部图像划分为几个子区域,从这些子区域中,使用窗口上的本地二进制模式(LBP)导出的信息以及中央像素处的信息(信息源和模糊隶属度值的乘积)。 LBP特征具有纹理区分性,且计算成本低。通过从LBP和中心像素中获取信息,可以消除LBP的缺点。当使用SVM和KNN作为ORL数据库和CSIST数据库的分类器来实现时,所提出的方法在PCA和LDA上效果很好。

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