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A Synthetic Fusion Rule Based on FLDA and PCA for Iris Recognition Using 1D Log-Gabor Filter

机译:基于FLDA和PCA的虹膜识别的合成融合规则,使用1D Log-Gabor滤波器

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Iris recognition is one of the most useful methods to identify or verify people in biometric recognition systems. Iris patterns contain many features that distinguish people from each other. In this paper, a novel iris recognition method is proposed based on the fusion of Fisher Linear Discriminate Analysis (FLDA) with embedding Principal Component Analysis (PCA) method. In this work, firstly we use 1D Log-Gabor to elicit the iris features from an approximation part. Secondly, we obtain an appropriate degree of clarity for the iris with fusion of FLDA/PCA to eliminate the optical reflections on the iris image. Experiments of our proposed algorithm are performed on the CASIA V1 database. The results of our proposed approach show a good performance with recognition rate up to 99.99%.
机译:虹膜识别是识别或验证生物识别系统中人员最有用的方法之一。虹膜模式包含许多功能,可区分人们彼此的人。本文基于嵌入主成分分析(PCA)方法,提出了一种基于Fisher线性区分分析(FLDA)的融合来提出了一种新颖的虹膜识别方法。在这项工作中,首先,我们使用1d log-gabor从近似部分引出虹膜功能。其次,我们获得了FLISA / PCA融合的虹膜的适当清晰度,以消除虹膜图像上的光学反射。在CASIA V1数据库上执行了我们所提出的算法的实验。我们拟议的方法的结果表现出良好的表现,识别率高达99.99%。

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