Low-complexity iris recognition method using 2D Gauss-Hermite moments

S. Rahman, M. Reza, Q. M. Z. Hasani
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引用次数: 4

Abstract

The authenticity and reliability of iris recognition-based biometric identification system is well-proven. Traditional iris recognition methods use expensive feature extraction algorithms and complex-valued IrisCodes that may hinder the development of a fast identification technique for multimodal biometric system. In this paper, a new set of computationally efficient real-valued features is proposed for recognition of iris patterns using the two dimensional higher-order Gauss-Hermite moments. The IrisCodes generated from the zero-crossings of these moment-based features are capable of capturing hidden nonlinear structures and are potentially invariant to distortions of iris patterns. Experimental results conducted on a generic data set consisting of iris images obtained from two well-known databases show that the proposed method provides encouraging performance. In particular, an acceptable recognition performance in terms of probability of detection for a given false alarm rate may be achieved by the proposed method with a significantly low-level of computational complexity.
基于二维高斯-埃尔米特矩的低复杂度虹膜识别方法
基于虹膜识别的生物特征识别系统的真实性和可靠性得到了很好的验证。传统的虹膜识别方法使用昂贵的特征提取算法和复杂值的虹膜编码,这可能会阻碍多模态生物识别系统快速识别技术的发展。本文利用二维高阶高斯-埃尔米特矩,提出了一组计算效率高的实值特征用于虹膜图像的识别。由这些基于矩的特征的零交叉点生成的IrisCodes能够捕获隐藏的非线性结构,并且对虹膜图案的扭曲具有潜在的不变性。对来自两个知名数据库的虹膜图像组成的通用数据集进行的实验结果表明,所提出的方法具有令人鼓舞的性能。特别地,对于给定的虚警率,可以通过所提出的具有低得多的计算复杂度的方法来实现可接受的识别性能。
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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