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A Red Eye Detector for Iris Segmentation using Shape Context

机译:使用形状上下文的虹膜分割红眼探测器

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摘要

In iris recognition systems, it is essential to accurately locate the pupil and the iris. Among segmentation algorithms for systems utilizing near-infrared light, some make the assumption that the pupil is darker than the rest of the image. For this class of algorithms, the red eye effect, which makes the pupil region brighter than the iris, could damage their performance. Other segmentation algorithms use edge information to fit circles, yet noisy images make them inaccurate. Therefore, it is desirable to use different segmentation algorithms for images with and without the red eye effect. In this paper, we introduce a novel method which distinguishes iris images exhibiting the red eye effect from those with a dark pupil. Our detector starts with a 2D darkness map of the iris image, and generates a customized shape context descriptor from the estimated pupil region. The descriptor is then compared with the reference descriptor, generated from a number of training images with dark pupils. The distance to the reference descriptor is used to define how close the estimated pupil region is from a dark pupil. Tests with images captured with our own acquisition system shows the proposed pupil detector is highly effective.
机译:在虹膜识别系统中,必须准确地定位瞳孔和虹膜。用于利用近红外光的系统的分段算法中,一些假设瞳孔比图像的其余部分越暗。对于这类算法,红色眼睛效应使得瞳孔区域比虹膜更亮,可能会损坏它们的性能。其他分段算法使用边缘信息来适合圆圈,但嘈杂的图像使它们不准确。因此,期望使用具有和没有红色眼睛效应的图像的不同分段算法。在本文中,我们介绍了一种新的方法,将虹膜图像区分虹膜图像与黑色瞳孔的虹膜图像。我们的检测器从虹膜图像的2D黑暗映射开始,并从估计的瞳孔区域生成自定义的形状上下文描述符。然后将描述符与参考描述符进行比较,该参考描述符从具有暗学生的多个训练图像生成。与参考描述符的距离用于定义估计的瞳孔区域来自深色瞳孔的接近。使用我们自己的采集系统捕获的图像的测试显示了所提出的瞳孔探测器非常有效。

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