Assessment of iris recognition reliability for eyes affected by ocular pathologies

Mateusz Trokielewicz, A. Czajka, P. Maciejewicz
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引用次数: 25

Abstract

This paper presents an analysis of how the iris recognition is impacted by eye diseases and an appropriate dataset comprising 2996 iris images of 230 distinct eyes (including 184 illness-affected eyes representing more than 20 different eye conditions). The images were collected in near infrared and visible light during a routine ophthalmological practice. The experimental study shows four valuable results. First, the enrollment process is highly sensitive to those eye conditions that make the iris obstructed or introduce geometrical distortions. Second, even those conditions that do not produce visible changes to the iris structure may increase the dissimilarity among samples of the same eyes. Third, eye conditions affecting iris geometry, its tissue structure or producing obstructions significantly decrease the iris recognition reliability. Fourth, for eyes afflicted by a disease, the most prominent effect of the disease on iris recognition is to cause segmentation errors. To our knowledge this is the first database of iris images for disease-affected eyes made publicly available to researchers, and the most comprehensive study of what we can expect when the iris recognition is deployed for non-healthy eyes.
受眼部病变影响的眼睛虹膜识别可靠性评估
本文分析了虹膜识别如何受到眼病的影响,并建立了一个适当的数据集,该数据集包含230只不同眼睛的2996张虹膜图像(包括代表20多种不同眼病的184只受疾病影响的眼睛)。图像是在常规眼科实践中在近红外和可见光下收集的。实验研究得到了四个有价值的结果。首先,注册过程对那些使虹膜阻塞或引入几何扭曲的眼睛状况高度敏感。其次,即使那些没有对虹膜结构产生明显变化的条件也可能增加同一只眼睛样本之间的差异性。第三,影响虹膜几何形状、虹膜组织结构或产生障碍物的眼部条件显著降低了虹膜识别的可靠性。第四,对于患有疾病的眼睛,疾病对虹膜识别最突出的影响是造成分割错误。据我们所知,这是第一个向研究人员公开提供受疾病影响的眼睛的虹膜图像数据库,也是对虹膜识别应用于非健康眼睛时我们所能期望的最全面的研究。
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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