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Human recognition based on retinal images and using new similarity function

机译:基于视网膜图像并使用新的相似性功能的人识别

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This paper presents a new human recognition method based on features extracted from retinal images. The proposed method is composed of some steps including feature extraction, phase correlation technique, and feature matching for recognition. In the proposed method, Harris corner detector is used for feature extraction. Then, phase correlation technique is applied to estimate the rotation angle of head or eye movement in front of a retina fundus camera. Finally, a new similarity function is used to compute the similarity between features of different retina images. Experimental results on a database, including 480 retinal images obtained from 40 subjects of DRIVE dataset and 40 subjects from STARE dataset, demonstrated an average true recognition accuracy rate equal to 100% for the proposed method. The success rate and number of images used in the proposed method show the effectiveness of the proposed method in comparison to the counterpart methods.
机译:本文提出了一种新的基于视网膜图像特征的人体识别方法。所提出的方法包括特征提取,相位相关技术和特征匹配以进行识别的一些步骤。在提出的方法中,哈里斯角检测器用于特征提取。然后,使用相位相关技术来估计视网膜眼底摄像头前面的头部或眼睛运动的旋转角度。最后,使用新的相似度函数来计算不同视网膜图像的特征之间的相似度。在数据库上进行的实验结果包括从DRIVE数据集的40个受试者和STARE数据集的40个受试者获得的480张视网膜图像,证明了所提出方法的平均真实识别准确率等于100%。与对应方法相比,该方法的成功率和图像数量表明了该方法的有效性。

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