尺度不变特征变换在虹膜识别中的应用

Weijie Zhao, Xiaodong Chen, Ji Cheng, Linhua Jiang
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引用次数: 4

摘要

尺度不变特征变换(SIFT)是一种寻找图像局部特征的算法。SIFT使用高斯差分(DoG)定位候选关键点,并对关键点进行详细拟合定位,然后向关键点添加方向,并为每个关键点生成关键点描述符。虹膜识别是最可靠的生物特征认证之一。本文提出了一种可靠的基于SIFT的虹膜识别方法。它包括分割、匹配和评估。与传统方法不同,由于SIFT具有旋转不变性和尺度不变性,因此消除了归一化和编码。我们的方法在CASIA和自获取图像上进行了测试。实验结果表明,该方法快速、准确。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An application of scale-invariant feature transform in iris recognition
Scale-invariant Feature Transform (SIFT) is an algorithm to find local features in images. SIFT uses Difference-of-Gaussian (DoG) to locate candidate keypoints and performs a detailed fit to locate keypoints, then orientations are added to keypoints and keypoint descriptor is generated for each keypoint. Iris recognition is one of the most reliable biometric authentications. In this paper, we propose a reliable method of iris recognition by applying SIFT. It includes segmentation, matching and evaluation. Other than the conventional method, Normalizing and encoding are removed since SIFT is rotation-invariant and scale-invariant. Our proposed method is tested on CASIA and self-obtained images. Experiments show the proposed method is fast and accurate.
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