A comparative evaluation of iris and ocular recognition methods on challenging ocular images

Vishnu Naresh Boddeti, J. Smereka, B. Kumar
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引用次数: 44

Abstract

Iris recognition is believed to offer excellent recognition rates for iris images acquired under controlled conditions. However, recognition rates degrade considerably when images exhibit impairments such as off-axis gaze, partial occlusions, specular reflections and out-of-focus and motion-induced blur. In this paper, we use the recently-available face and ocular challenge set (FOCS) to investigate the comparative recognition performance gains of using ocular images (i.e., iris regions as well as the surrounding peri-ocular regions) instead of just the iris regions. A new method for ocular recognition is presented and it is shown that use of ocular regions leads to better recognition rates than iris recognition on FOCS dataset. Another advantage of using ocular images for recognition is that it avoids the need for segmenting the iris images from their surrounding regions.
虹膜和眼识别方法在挑战性眼图像上的比较评价
虹膜识别被认为对在受控条件下获得的虹膜图像具有优异的识别率。然而,当图像表现出诸如离轴凝视、部分遮挡、镜面反射、失焦和运动引起的模糊等损伤时,识别率会大大降低。在本文中,我们使用最近可用的面部和眼部挑战集(FOCS)来研究使用眼部图像(即虹膜区域以及周围的眼周区域)而不是仅使用虹膜区域的比较识别性能增益。提出了一种新的眼部识别方法,结果表明,在FOCS数据集上使用眼部区域识别比虹膜识别具有更好的识别率。使用眼部图像进行识别的另一个优点是它避免了将虹膜图像与其周围区域进行分割的需要。
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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