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Texture code matrix-based multi-instance iris recognition

机译:基于纹理代码矩阵的多实例虹膜识别

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摘要

This paper proposes a novel texture feature for iris recognition. The iris recognition system consists of three major components: pre-processing, feature extraction and classification. During pre-processing, iris is segmented using constrained circular Hough transform, which reduces both time and space complexity. In this work, from normalized iris image, a novel texture code matrix is generated, which is then used to obtain a co-occurrence matrix. Finally, desired texture features are computed from this co-occurrence matrix. Here, a two-class classification technique is adopted to develop a multi-class multimodal biometric system using fusion. The performance of the proposed system is tested on four standard iris image databases, namely UPOL, CASIA-Iris V3 Interval, MMU1 and IITD, which shows the efficacy of the proposed feature.
机译:本文提出了一种新颖的虹膜识别纹理特征。虹膜识别系统包括三个主要部分:预处理,特征提取和分类。在预处理期间,虹膜使用受限的圆形Hough变换进行分割,从而减少了时间和空间复杂度。在这项工作中,从归一化的虹膜图像中生成了一个新的纹理代码矩阵,然后将其用于获得共现矩阵。最后,从该共现矩阵计算出所需的纹理特征。这里,采用两类分类技术来开发使用融合的多类多峰生物特征识别系统。在四个标准虹膜图像数据库(即UPOL,CASIA-Iris V3间隔,MMU1和IITD)上测试了所提出系统的性能,这些结果证明了所提出功能的有效性。

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