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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Efficient iris segmentation method in unconstrained environments
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Efficient iris segmentation method in unconstrained environments

机译:无约束环境中的有效虹膜分割方法

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摘要

Recently, iris recognition systems have gained increased attention especially in non-cooperative environments. One of the crucial steps in the iris recognition system is the iris segmentation because it significantly affects the accuracy of the feature extraction and iris matching steps. Traditional iris segmentation methods provide excellent results when iris images are captured using near infrared cameras under ideal imaging conditions, but the accuracy of these algorithms significantly decreases when the iris images are taken in visible wavelength under non-ideal imaging conditions. In this paper, a new algorithm is proposed to segments iris images captured in visible wavelength under unconstrained environments. The proposed algorithm reduces the error percentage even in the presence of types of noise include iris obstructions and specular reflection. The proposed algorithm starts with determining the expected region of the iris using the K-means clustering algorithm. The Circular Hough Transform (CHT) is then employed in order to estimate the iris radius and center. A new efficient algorithm is developed to detect and isolate the upper eyelids. Finally, the non-iris regions are removed. Results of applying the proposed algorithm on UBIRIS iris image databases demonstrate that it improves the segmentation accuracy and time.
机译:近来,虹膜识别系统已引起越来越多的关注,尤其是在非合作环境中。虹膜识别系统中的关键步骤之一是虹膜分割,因为它会显着影响特征提取和虹膜匹配步骤的准确性。当在理想成像条件下使用近红外摄像机捕获虹膜图像时,传统的虹膜分割方法可提供出色的结果,但是当在非理想成像条件下以可见波长拍摄虹膜图像时,这些算法的准确性会大大降低。在本文中,提出了一种新的算法来分割在不受约束的环境下在可见波长下捕获的虹膜图像。即使在存在包括虹膜障碍和镜面反射的噪声类型的情况下,所提出的算法也可以降低错误百分比。所提出的算法从使用K均值聚类算法确定虹膜的预期区域开始。然后,采用环形霍夫变换(CHT)来估计虹膜半径和中心。开发了一种新的有效算法来检测和隔离上眼睑。最后,去除非虹膜区域。在UBIRIS虹膜图像数据库上应用该算法的结果表明,该算法提高了分割精度和时间。

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