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IRIS IMAGE KEY POINTS DESCRIPTORS BASED ON PHASE CONGRUENCY

机译:基于相位一致性的IRIS图像关键点描述器

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In this article the new method for iris image features extraction based on phase congruency is proposed. Iris image key points are calculated using the convolutions with Hermite transform functions. At each key point the feature vector characterizing this key point is obtained based on the phase congruency method. Iris key point descriptor contains phase congruency values at points located on concentric circles around the key point. To compare the key points, Euclidean metric between the key points descriptors is calculated. The distance between the iris images is equal to the number of matched iris key points. The proposed method was tested using the images from CASIA?IrisV4?Interval database and the value of EER?=?0.226% was obtained.
机译:本文提出了一种基于相位一致性的虹膜图像特征提取新方法。使用带有Hermite变换函数的卷积来计算虹膜图像关键点。在每个关键点,基于相位一致性方法获得表征该关键点的特征向量。虹膜关键点描述符包含关键点周围同心圆上的点的相位一致性值。为了比较关键点,计算关键点描述符之间的欧几里得度量。虹膜图像之间的距离等于匹配的虹膜关键点的数量。使用CASIA?IrisV4?Interval数据库中的图像对提出的方法进行了测试,得出EER?=?0.226%。

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