首页> 外文会议>2014 IEEE/IAPR International Joint Conference on Biometrics >Generalized textured contact lens detection by extracting BSIF description from Cartesian iris images
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Generalized textured contact lens detection by extracting BSIF description from Cartesian iris images

机译:通过从笛卡尔虹膜图像中提取BSIF描述来进行广义纹理隐形眼镜检测

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摘要

Textured contact lenses cause severe problems for iris biometric systems because they can be used to alter the appearance of iris texture in order to deliberately increase the false positive and, especially, false negative match rates. Many texture analysis based techniques have been proposed for detecting the presence of cosmetic contact lenses. However, it has been shown recently that the generalization capability of the existing approaches is not sufficient because they have been developed for detecting specific lens texture patterns and evaluated only on those same lens types seen during development phase. This scenario does not apply in unpredictable practical applications because unseen lens patterns will be definitely experienced in operation. In this paper, we address this issue by studying the effect of different iris image preprocessing techniques and introducing a novel approach formore generalized cosmetic contact lens detection using binarized statistical image features (BSIF).Our extensive experimental analysis on benchmark datasets shows that the BSIF description extracted from preprocessed Cartesian iris texture images yields to promising generalization capabilities across unseen texture patterns and different iris sensors with mean equal error rate of 0.14%and 0.88%, respectively. The findings support the intuition that the textural differences between genuine iris texture and fake ones are best described by preserving the regular structure of different printing signatures without transforming the iris images into polar coordinate system.
机译:带纹理的隐形眼镜会给虹膜生物特征识别系统造成严重问题,因为它们可用于更改虹膜纹理的外观,以便故意增加假阳性和特别是假阴性的匹配率。已经提出了许多基于纹理分析的技术来检测化妆品隐形眼镜的存在。然而,近来已经表明,现有方法的泛化能力不足,因为它们已经被开发用于检测特定的镜片纹理图案并且仅针对在开发阶段看到的那些相同的镜片类型进行评估。这种情况不适用于不可预测的实际应用,因为在操作中肯定会遇到看不见的透镜图案。在本文中,我们通过研究不同虹膜图像预处理技术的效果并引入一种使用二值化统计图像特征(BSIF)进行广义化妆品隐形眼镜检测的新方法来解决此问题。我们对基准数据集进行的广泛实验分析表明,BSIF描述从预处理的笛卡尔虹膜纹理图像中提取出来的图像在不可见的纹理图案和不同的虹膜传感器上具有令人满意的泛化能力,平均均等错误率分别为0.14%和0.88%。这些发现支持这样的直觉,即通过保留不同印刷签名的规则结构而不将虹膜图像转换为极坐标系,可以最好地描述真实虹膜纹理和假虹膜纹理之间的纹理差异。

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