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首页> 外文期刊>IEEE transactions on information forensics and security >Application of Projective Invariants in Hand Geometry Biometrics
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Application of Projective Invariants in Hand Geometry Biometrics

机译:射影不变量在手部几何生物特征学中的应用

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Our research focuses on finding mathematical representations of biometric features that are not only distinctive, but also invariant to projective transformations. We have chosen hand geometry technology to work with, because it has wide public awareness and acceptance and most important, large space for improvement. Unlike the traditional hand geometry technologies, the hand descriptor in our hand geometry system is constructed using projective-invariant features. Hand identification can be accomplished by a single view of a hand regardless of the viewing angles. The noise immunity and the discriminability possessed by a hand feature vector using different types of projective invariants are studied. We have found an appropriate symmetric polynomial representation of the hand features with which both noise immunity and discrimminability of a hand feature vector are considerably improved. Experimental results show that the system achieves an equal error rate (EER) of 2.11% by a 5-D feature vector on a database of 52 hand images. The EER reduces to 0.00% when the feature vector dimension increases to 18. In this paper, we extend the concept of hand geometry from a geometrical size-based technique that requires physical hand constraints to a projective invariant-based technique that allows free hand motion.
机译:我们的研究重点是寻找生物特征的数学表示形式,这些特征不仅具有独特性,而且对于投影变换而言是不变的。我们选择了手部几何技术,因为它具有广泛的公众意识和接受度,并且最重要的是有很大的改进空间。与传统的手部几何技术不同,我们的手部几何系统中的手部描述符是使用射影不变特征构造的。无论视角如何,都可以通过单手查看来完成手的识别。研究了使用不同类型的射影不变量的手形特征向量所具有的抗噪性和可分辨性。我们已经发现了手部特征的适当的对称多项式表示,通过该多项式,手部特征向量的抗噪性和可分辨性都得到了显着改善。实验结果表明,该系统在52个手部图像的数据库上通过5-D特征向量实现了2.11%的均等错误率(EER)。当特征向量维数增加到18时,EER降低到0.00%。在本文中,我们将手几何的概念从基于几何尺寸的技术(需要物理手约束)扩展到基于投影不变式的技术,允许自由手运动。

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