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A novel method for low-constrained iris boundary localization

机译:低约束虹膜边界定位的新方法

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摘要

Iris recognition systems are strongly dependent on their segmentation processes, which have traditionally assumed rigid experimental constraints to achieve good performance, but now move towards less constrained environments. This work presents a novel method on iris segmentation that covers the localization of the pupillary and limbic iris boundaries. The method consists of an energy minimization procedure posed as a multilabel one-directional graph, followed by a model fitting process and the use of physiological priors. Accurate segmentations are achieved even in the presence of clutter, lenses, glasses, motion blur, and variable illumination. The contributions of this paper are a fast and reliable method for the accurate localization of the iris boundaries in low-constrained conditions, and a novel database for iris segmentation incorporating challenging iris images, which has been publicly released to the research community. The proposed method has been evaluated over three different databases, showing higher performance in comparison to traditional techniques.
机译:虹膜识别系统强烈依赖于其分割过程,传统上假定分割过程要经过严格的实验约束才能获得良好的性能,但现在正朝着不受限制的环境发展。这项工作提出了一种虹膜分割的新方法,该方法涵盖了瞳孔和边缘虹膜边界的定位。该方法包括以多标签单向图形式构成的能量最小化过程,然后进行模型拟合过程和使用生理先验。即使在杂波,镜头,眼镜,运动模糊和可变照明的情况下,也可以实现准确的分割。本文的贡献是一种在低约束条件下准确定位虹膜边界的快速而可靠的方法,并且是一个新的用于虹膜分割的数据库,该数据库结合了具有挑战性的虹膜图像,并已向研究社区公开发布。所提出的方法已经在三个不同的数据库上进行了评估,与传统技术相比,其性能更高。

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