用于虹膜识别的梯度向量场鲁棒方向估计

Zhenan Sun, Yunhong Wang, T. Tan, Jiali Cui
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引用次数: 30

摘要

虹膜识别作为一种可靠的个人身份识别方法,越来越受到人们的重视。基于鲁棒统计理论,提出了一种新的几何驱动虹膜识别方法。虹膜图像被认为是一个由分段光滑斑块组成的三维表面。二维矢量的方向是图像表面法向量的平面投影,对光照不敏感,与梯度矢量的方向相反。因此,利用虹膜图像梯度向量场(GVF)的方向信息来表示虹膜图案。对梯度矢量流场进行鲁棒方向估计,先进行方向扩散,再进行矢量方向滤波,提取稳定的虹膜特征。大量的实验结果表明,该算法的识别性能与公开文献中最好的方法相当。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Robust direction estimation of gradient vector field for iris recognition
As a reliable personal identification method, iris recognition has been receiving increasing attention. Based on the theory of robust statistics, a novel geometry-driven method for iris recognition is presented in this paper. An iris image is considered as a 3D surface of piecewise smooth patches. The direction of the 2D vector, which is the planar projection of the normal vector of image surface, is illumination insensitive and opposite to the direction of gradient vector. So the directional information of iris image's gradient vector field (GVF) is used to represent iris pattern. Robust direction estimation, direction diffusion followed by vector directional filtering, is performed on the GVF to extract stable iris feature. Extensive experimental results demonstrate that the recognition performance of the proposed algorithm is comparable with the best method in the open literature.
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