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Application of pyramidal directional filters for biometric identification using conjunctival vasculature patterns

机译:角膜定向过滤器在结膜脉管系统生物特征识别中的应用

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Directional pyramidal filter banks as feature extractors for ocular vascular biometrics are proposed. Apart from the red, green, and blue (RGB) format, we analyze the significance of using HSV, YCbCr, and layer combinations (R+Cr)/2, (G+Cr)/2, (B+Cr)/2. For classification, Linear Discriminant Analysis (LDA) is used. We outline the advantages of a Contourlet transform implementation for eye vein biometrics, based on vascular patterns seen on the white of the eye. The performance of the proposed algorithm is evaluated using Receiver Operating Characteristic (ROC) curves. Area under the curve (AUC), equal error rate (EER), and decidability values are used as performance metrics. The dataset consists of more than 1600 still images and video frames acquired in two separate sessions from 40 subjects. All images were captured from a distance of 5 feet using a DSLR camera with an attached white LED light source. We evaluate and discuss the results of cross matching features extracted from still images and video recordings of conjunctival vasculature patterns. The best AUC value of 0.9999 with an EER of 0.064% resulted from using Cb layer in YCbCr color space. The best (lowest value) EER of 0.032% was obtained with an AUC value of 0.9998 using the green layer of the RGB images.
机译:提出了定向金字塔形滤波器组作为眼部血管生物特征的特征提取器。除了红色,绿色和蓝色(RGB)格式外,我们还分析了使用HSV,YCbCr和图层组合(R + Cr)/ 2,(G + Cr)/ 2,(B + Cr)/ 2的重要性。对于分类,使用线性判别分析(LDA)。我们概述了Contourlet变换实现方式的优点,该实现方式基于在眼白上看到的血管图案,从而实现了眼静脉生物特征识别。使用接收器工作特性(ROC)曲线评估了所提出算法的性能。曲线下的面积(AUC),均等错误率(EER)和可判定性值用作性能指标。数据集包括在两个单独的会话中从40个主题中获取的1600多个静止图像和视频帧。使用带有连接的白色LED光源的DSLR相机,从5英尺远的距离捕获所有图像。我们评估和讨论从结膜脉管系统模式的静止图像和视频记录中提取的交叉匹配特征的结果。由于在YCbCr颜色空间中使用Cb层,导致最佳AUC值为0.9999,EER为0.064%。使用RGB图像的绿色层获得的最佳(最低)EER为0.032%,AUC值为0.9998。

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