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Automated classification of mislabeled near-infrared left and right iris images using convolutional neural networks

机译:使用卷积神经网络对标签错误的近红外左和右虹膜图像进行自动分类

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In this paper, we propose a Convolutional Neural Network (CNN) with unified architecture (no need to re-design it for each unique iris database used) that operates well in a diverse set of iris databases. The CNN is designed to automatically recognize mislabeled left and right iris images by iris recognition system operators, and thus, extend the capabilities of a conventional iris recognition system. Our proposed approach is composed of three steps. First, for each iris database used as input, a CNN is trained using part of the database. Second, an empirical parameter optimization study is conducted so that classification performance is acceptable. Finally, the proposed classifier is tested on the remaining images of the same database used for training. The performance of the proposed network is evaluated on small- and large-scale iris databases, including the NIST's Iris Challenge Evaluation (ICE), LG ICAM 4000 iris, the CASIA Lamp, and the Pupil Light Reflex (PLR) databases. Experimental results show that independent of the databases used or whether the classification performance is tested on either a left-or right-side dataset, our approach results in a classification performance ranging from 97.5 to 100%.
机译:在本文中,我们提出了一种卷积神经网络(CNN),统一架构(无需重新设计它用于每个唯一的虹膜数据库),其在多样化的IRIS数据库中运行良好。 CNN旨在通过IRIS识别系统运营商自动识别误标标签和右虹膜图像,因此扩展了传统虹膜识别系统的能力。我们所提出的方法由三个步骤组成。首先,对于用作输入的每个虹膜数据库,使用数据库的一部分训练CNN。其次,进行了经验参数优化研究,以便分类性能是可接受的。最后,在用于训练的同一数据库的剩余图像上测试所提出的分类器。建议网络的性能在小型和大型虹膜数据库上进行评估,包括NIST的虹膜挑战评估(ICE),LG ICAM 4000虹膜,CASIA灯和瞳孔光反射(PLR)数据库。实验结果表明,独立于所使用的数据库或在左侧或右侧数据集是否测试分类性能,我们的方法导致分类性能范围为97.5至100%。

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