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A robust non-vascular retina recognition system using structural features of retinal image

机译:一种鲁棒的非血管视网膜识别系统,使用视网膜图像的结构特征

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Biometric technology improves the accuracy of the person's identification system instead of the conventional identification technologies such as use of passwords, PIN, token etc. Biometric technologies are automated authentication methods, which identifies person's identity based upon his specific physiological or behavioral traits. Among all biometric systems such as iris, hand vein, finger prints, face, hand geometry, voice, gait, signature etc., human retina provides the most reliable and almost impossible to forge biometric trait. Most of the previous work carried out on retina recognition involves vessel based matching by using feature points i.e. minutiae points. Vessel segmentation and minutiae point extraction is a time consuming process. This motivates us to perform retina recognition matching without using minutiae points. This paper presents a simple and fast non-vascularbased retina recognition system. It computes similarity measure using novel features based upon structural information of an image. It extracts illuminance, contrast and structural features from a color retina image and combines these extracted attributes using an empirically optimized function to generate a similarity score between two candidate images. Finally matching decision is obtained on the basis of highest score value. The proposed system is tested on two retinal image databases collected from local source i.e. RIDB and AFIO. The local databasesare also made available online for other researchers. Efficiency of the proposed system is tested by the computation of false rejection rate (FRR) and false acceptance rate (FAR) and experimental results prove the validity of the proposed system. The method achieves an average identification rate of 92.50% on both databases.
机译:生物识别技术提高了人的识别系统的准确性,而不是传统的识别技术,例如使用密码,引脚,令牌等。生物识别技术是自动认证方法,其基于他的特定生理或行为特征来识别人的身份。在诸如虹膜,手静脉,手指印刷,面部,手几何,语音,步态,步态,签名等中,人类视网膜的所有生物识别系统中,人类视网膜提供最可靠,几乎不可能锻造生物特征。在视网膜识别上进行的大多数以前进行的工作涉及通过使用特征点的血管匹配。细节点。血管分割和细节点提取是耗时的过程。这使我们能够在不使用细节点进行视网膜识别匹配。本文介绍了一个简单快速的非VascularBased视网膜识别系统。它根据图像的结构信息计算使用新颖特征来计算相似度测量。它从彩色视网膜图像中提取照度,对比度和结构特征,并使用经验优化的功能结合这些提取的属性来在两个候选图像之间产生相似度得分。最后匹配决定是基于最高分的值获得的。所提出的系统在从本地来源中收集的两个视网膜图像数据库上进行测试。本地数据库也可用于其他研究人员。所提出的系统的效率是通过计算错误拒绝率(FRR)和错误接受率(远)和实验结果证明了所提出的系统的有效性。该方法在两个数据库上实现了92.50%的平均识别率。

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