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Statistical feature extraction based iris recognition system

机译:基于统计特征提取的虹膜识别系统

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摘要

Iris recognition systems have been proposed by numerous researchers using different feature extraction techniques for accurate and reliable biometric authentication. In this paper, a statistical feature extraction technique based on correlation between adjacent pixels has been proposed and implemented. Hamming distance based metric has been used for matching. Performance of the proposed iris recognition system (IRS) has been measured by recording false acceptance rate (FAR) and false rejection rate (FRR) at different thresholds in the distance metric. System performance has been evaluated by computing statistical features along two directions, namely, radial direction of circular iris region and angular direction extending from pupil to sclera. Experiments have also been conducted to study the effect of number of statistical parameters on FAR and FRR. Results obtained from the experiments based on different set of statistical features of iris images show that there is a significant improvement in equal error rate (EER) when number of statistical parameters for feature extraction is increased from three to six. Further, it has also been found that increasing radial/angular resolution, with normalization in place, improves EER for proposed iris recognition system.
机译:许多研究人员已经提出了虹膜识别系统,该虹膜识别系统使用不同的特征提取技术来进行准确而可靠的生物特征认证。本文提出并实现了一种基于相邻像素之间相关性的统计特征提取技术。基于汉明距离的度量已用于匹配。通过记录距离度量中不同阈值的错误接受率(FAR)和错误拒绝率(FRR),可以测量所提出的虹膜识别系统(IRS)的性能。通过沿两个方向(即,圆形虹膜区域的径向方向和从瞳孔到巩膜延伸的角度方向)的统计特征计算系统性能,可以评估系统性能。还进行了实验以研究统计参数数量对FAR和FRR的影响。从基于不同虹膜图像统计特征集的实验获得的结果表明,当特征提取统计参数的数量从三个增加到六个时,均等错误率(EER)有了显着提高。此外,还发现在适当的归一化的情况下提高径向/角度分辨率可改善所提出的虹膜识别系统的EER。

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