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Person Identification Based Colored Iris Biometric and Contour let Transform

机译:基于人员识别的有色虹膜生物特征识别和轮廓变换

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Iris identification requires high quality iris image for high identification rate. The work proposed in this paper operates the iris identification system on the distorted colored images captured under visible light. The proposed idea minimizes the number of iris regions affected by distortion, by dividing the iris region into separable regions, and then regions without distortion part are chosen. High quality feature extraction is introduced in this paper by using contourlet transform (CT) since the actual construction of the iris picture can be captured by CT. The normalized iris image is decomposed into a set of directional sub bands with features captured in various scales and different directions. Euclidian distance (ED) and neural network (NN) are used as classifiers, based on three channels (Red, Green, and Blue) of the color image. Simulation results show that the proposed method outperforms the classical methods operating on the whole iris for standard databases (UPOL and UBIRISv1) and a suggested one.
机译:虹膜识别需要高质量的虹膜图像以实现高识别率。本文提出的工作将虹膜识别系统用于在可见光下捕获的失真彩色图像上。提出的想法通过将虹膜区域划分为可分离的区域来最小化受变形影响的虹膜区域的数量,然后选择没有失真部分的区域。由于虹膜图像的实际构造可以通过CT捕获,因此本文采用轮廓波变换(CT)引入了高质量的特征提取。归一化的虹膜图像被分解为一组方向子带,这些特征带以各种比例和不同方向捕获。基于彩色图像的三个通道(红色,绿色和蓝色),将欧几里得距离(ED)和神经网络(NN)用作分类器。仿真结果表明,对于标准数据库(UPOL和UBIRISv1)而言,所提出的方法优于在整个虹膜上运行的经典方法,并提出了一种建议的方法。

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