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A CGA-MRF Hybrid Method for Iris Texture Analysis and Modeling

机译:用于虹膜纹理分析和建模的CGA-MRF混合方法

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This paper proposes a novel framework for iris image processing based on conformal geometric algebra (CGA) and Markov random field (MRF). Texture complexity and individual differences are two unique features of iris image, which bring many difficulties to automatic analysis and diagnosis. We propose a circle detection algorithm based on CGA for iris image segmentation. The algorithm is simple and has a wide scope of application. What's more, it can detect the inside and outside boundaries of iris simultaneously without any denoising. Then we propose a novel scheme for texture representation of iris image based on MRF. By learning the statistical texture differences of different pathological features, such as holes, cracks, a MRF based texture representation method shows different pathological regions in iris. Experimental results demonstrated that the proposed framework is very practical, provides a great help for subsequent diagnosis as well.
机译:本文提出了一种基于共形几何代数(CGA)和马尔可夫随机场(MRF)的虹膜图像处理新框架。纹理复杂度和个体差异是虹膜图像的两个独特特征,给自动分析和诊断带来很多困难。我们提出了一种基于CGA的虹膜图像分割圆检测算法。该算法简单,适用范围广。而且,它可以同时检测虹膜的内部和外部边界,而无需进行任何降噪处理。然后我们提出了一种基于MRF的虹膜图像纹理表示的新方案。通过学习不同病理特征(例如孔,裂纹)的统计纹理差异,基于MRF的纹理表示方法可显示虹膜中不同的病理区域。实验结果表明,该框架非常实用,也为后续诊断提供了很大的帮助。

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