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Accurate Iris recognition at a distance using stabilized Iris encoding and Zernike moments phase features

机译:使用稳定的Iris编码和Zernike矩相位特征,可以在远距离进行准确的Iris识别

摘要

Accurate iris recognition from the distantly acquired face or eye images requires development of effective strategies, which can account for significant variations in the segmented iris image quality. Such variations can be highly correlated with the consistency of encoded iris features and knowledge that such fragile bits can be exploited to improve matching accuracy. A nonlinear approach to simultaneously account for both local consistency of iris bit and also the overall quality of the weight map is proposed. Our approach therefore more effectively penalizes the fragile bits while simultaneously rewarding more consistent bits. In order to achieve more stable characterization of local iris features, a Zernike moment-based phase encoding of iris features is proposed. Such Zernike moments-based phase features are computed from the partially overlapping regions to more effectively accommodate local pixel region variations in the normalized iris images. A joint strategy is adopted to simultaneously extract and combine both the global and localized iris features. The superiority of the proposed iris matching strategy is ascertained by providing comparison with several state-of-the-art iris matching algorithms on three publicly available databases: 1) UBIRIS. v2; 2) FRGC; and 3) CASIA. v4-distance. Our experimental results suggest that proposed strategy can achieve significant improvement in iris matching accuracy over those competing approaches in the literature, i.e., average improvement of 54.3%, 32.7%, and 42.6% in equal error rates, respectively, for UBIRIS. v2, FRGC, and CASIA. v4-distance.
机译:从远距离获取的脸部或眼睛图像中准确识别虹膜需要开发有效的策略,这可以说明分割后的虹膜图像质量的显着变化。这样的变化可以与编码的虹膜特征的一致性高度相关,并且知道可以利用这种易碎的比特来提高匹配精度。提出了一种同时考虑虹膜位局部一致性和权重图整体质量的非线性方法。因此,我们的方法可以更有效地惩罚脆弱的位,同时奖励更一致的位。为了实现对局部虹膜特征的更稳定的表征,提出了基于Zernike矩的虹膜特征的相位编码。从部分重叠的区域计算出这样的基于Zernike矩的相位特征,以更有效地适应标准化虹膜图像中的局部像素区域变化。采用联合策略来同时提取和组合全局和局部虹膜特征。通过在三个公共数据库上与几种最新的虹膜匹配算法进行比较,可以确定提出的虹膜匹配策略的优越性:1)UBIRIS。 v2; 2)FRGC; 3)CASIA。 v4距离。我们的实验结果表明,与文献中的竞争方法相比,所提出的策略可以显着提高虹膜匹配的准确性,即UBIRIS的平均错误率分别平均提高了54.3%,32.7%和42.6%。 v2,FRGC和CASIA。 v4距离。

著录项

  • 作者

    Tan CW; Kumar A;

  • 作者单位
  • 年度 2014
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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