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Uniform Local Derivative Patterns and Their Application in Face Recognition

机译:统一的局部导数模式及其在人脸识别中的应用

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In recent years, local feature descriptors have received more and more attention due to their effectiveness in the field of face recognition. Local Derivative Patterns (LDPs) for local feature descriptions attract researchers' great interest. However, an LDP produces 2~p different patterns for p neighbors through the transition of LDPs for an image, which lead to high dimension features for image analysis. In this paper, LDPs are expanded to Uniform Local Derivative Patterns (ULDPs) that have the same binary encoding way as LDPs but different transition patterns by introducing uniform patterns. A uniform pattern is the one that contains at most two bitwise transitions from 0 to 1 or vice versa when the binary bit is circular. Then, the number of the transition patterns is reduced from 2~p to p(p -1)+3 for p neighbors, e.g., 256 to 59 for p=8. For face recognition, the histogram features are combined together in four directions, and both non-preprocessed and preprocessed images are used to evaluate the performance of the proposed ULDPs method. Extensive experimental results on three publicly available face databases show that the proposed ULDPs approach has better recognition performance than that obtained by using the LDPs method.
机译:近年来,由于局部特征描述符在面部识别领域的有效性,因此受到越来越多的关注。用于局部特征描述的局部导数模式(LDPs)引起了研究人员的极大兴趣。但是,LDP通过图像的LDP过渡为p个邻居生成2〜p个不同的图案,这导致了图像分析的高维特征。在本文中,通过引入统一模式,将LDP扩展为具有与LDP相同的二进制编码方式,但过渡模式不同的统一局部派生模式(ULDP)。统一模式是指当二进制位为圆形时,最多包含两个从0到1或反之亦然的按位转换的模式。然后,对于p个邻居,转变模式的数量从2p减少到p(p -1)+3,例如对于p = 8,从256减少到59。对于面部识别,直方图特征在四个方向上组合在一起,并且未预处理图像和预处理图像均用于评估所提出的ULDPs方法的性能。在三个公开的人脸数据库上的大量实验结果表明,与使用LDPs方法获得的识别性能相比,所提出的ULDPs方法具有更好的识别性能。

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