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Periocular Region-Based Age-Invariant Face Recognition Using Local Binary Pattern

机译:基于围网的区域的年龄 - 不变性面部识别使用局部二进制模式

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The performance of the biometric face schemes suffers severely due to the variation in the subject's aging. Designing the face recognition systems which are invariant to the aging process is challenging as the age patterns are different for the different individuals and also limited databases are available. The aging-based face recognition is still an open challenge for researchers as none of the existing methods are on par with human ability in recognizing the similarity across two faces. In the proposed paper, the age-invariant features of the face are derived using the local descriptor, local binary pattern (LBP). Preprocessing techniques like enhancement and denoising are applied to the images to enhance the accuracy of the designed system. Chi-square distance is used as a classifier to find the matching score between two feature vectors of the probe and gallery images on four unique, challenging datasets. Publicly available face datasets such as FG-Net, FRGC, FERET, and Georgia Tech are used for the experimentation, and the results prove that the proposed system is robust to the changes in age and outperforms most of the existing systems.
机译:生物脸上方案患有狠狠由于主体的衰老变化的表现。设计这是不变的衰老过程是具有挑战性随着年龄的模式是不同的个体不同,也只限于数据库是可用的人脸识别系统。基于老化的面部识别仍然是研究人员开放的挑战,因为没有任何现有的方法是在同水准与跨两副面孔识别相似人的能力。在提议的文件,脸部的年龄不变特征是使用本地描述,局部二元模式(LBP)的。像增强和降噪预处理技术应用于图像,以提高设计系统的精度。卡方距离作为分类器来找到探针和画廊图像的两个特征向量之间的匹配得分上四个独特的,具有挑战性的数据集。可公开获得的数据集,面对诸如FG-NET,FRGC,FERET,和佐治亚理工学院被用于实验,结果证明,该系统是稳健的年龄,优于大部分现有系统的变化。

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