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Efficient iris recognition by computing discriminable textons

机译:通过计算可怜的纺织品的高效虹膜识别

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This paper describes an efficient algorithm for iris recognition by computing the discriminable textons. The basic idea is that texture discrimination is based on first-order differences in geometric and luminance attributes of texture elements, called 'textons'. The whole procedure of feature extraction includes two steps. First a map of dark blob pixels are computed by convolving with a Gaussian filter followed by a Laplasian differential operator and then combining morphological operations with a two-threshold method, the most important blobs of iris are segmented on the basis of local shape into small compact and thin elongated components. Iris matching is implemented by calculating the hamming distances between two binary code sequences of irises. Experimental results indicate that the algorithm is successful in recognizing the different iris pattern especially when the iris images are not occluded by eyelids and eyelashes.
机译:本文介绍了通过计算可辨别的纺织识别的有效算法。基本思想是,纹理歧视是基于纹理元素的几何和亮度属性的一阶差异,称为“Texton”。特征提取的整个过程包括两个步骤。首先,通过使用高斯滤波器卷积,然后通过双阈值方法将形态操作组合来计算暗斑像素的地图,然后用双阈值方法组合形态操作,在局部形状中将最重要的虹膜斑块分段为小型压缩和薄的细长部件。通过计算虹膜两个二进制代码序列之间的汉明距离来实现虹膜匹配。实验结果表明,该算法成功地识别不同的虹膜图案,特别是当虹膜图像不被眼睑和睫毛堵塞时。

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