Changeable Biometrics for Appearance Based Face Recognition

MinYi Jeong, Chulhan Lee, Jongsun Kim, Jeung-Yoon Choi, K. Toh, Jaihie Kim
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引用次数: 49

Abstract

To enhance security and privacy in biometrics, changeable (or cancelable) biometrics have recently been introduced. The idea is to transform a biometric signal or feature into a new one for enrollment and matching. In this paper, we proposed changeable biometrics for face recognition using an appearance based approach. PCA and ICA coefficient vectors extracted from an input face image are normalized using their norm. The two normalized vectors are scrambled randomly and a new transformed face coefficient vector (transformed template) is generated by addition of the two normalized vectors. When a transformed template is compromised, it is replaced by using a new scrambling rule. Because the transformed template is generated by the addition of two vectors, the original PCA and ICA coefficients cannot be recovered from the transformed coefficients. In our experiment, we compared the performance between the cases when PCA and ICA coefficient vectors are used for verification and when the transformed coefficient vectors are used for verification.
基于外观的人脸识别的可变生物特征
为了提高生物识别技术的安全性和隐私性,最近引入了可更改(或可取消)生物识别技术。这个想法是将生物识别信号或特征转换为新的信号或特征,以便登记和匹配。在本文中,我们提出了一种基于外观的人脸识别方法。从输入的人脸图像中提取PCA和ICA系数向量,使用它们的范数进行归一化。将两个归一化向量随机置乱,将两个归一化向量相加生成一个新的变换后的人脸系数向量(变换后的模板)。当转换后的模板被破坏时,使用新的置乱规则替换它。由于转换后的模板是由两个向量相加生成的,因此不能从转换后的系数中恢复原始的PCA和ICA系数。在我们的实验中,我们比较了使用PCA和ICA系数向量进行验证和使用变换后的系数向量进行验证的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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