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Robust extraction of blood vessels for retinal recognition

机译:鲁棒提取血管视网膜识别

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In this competitive era, biometric systems provide more reliable security than traditional methods like passwords etc. Biometric systems perform person's authentication based on his physical traits. A number of biometric systems has been developed in the last few years such as fingerprints, hand and palm geometry, retina etc. Due to stability, uniqueness and non-replicable nature of vascular pattern, retinal recognition is the most stable biometric system. Retinal recognition performs person's identification based on the unique vasculature of retina. Generally, it is a three-step process, which includes pre-processing, segmentation and matching. Segmentation is the fundamental step, which becomes crucial in the presence of different pathological signs like exudates, lesions. If they are not removed in segmentation, then they produce false positives, hence leads to misclassification. To address this problem, this paper presents an efficient segmentation algorithm which aims to remove pathological effects from the diseased retinal images and improve matching results by reducing false recognition rate. Experimental results demonstrate the efficiency of proposed system.
机译:在这种竞争的时期,生物识别系统提供比密码等传统方法更可靠的安全性等。生物识别系统基于其物理特征来执行人的认证。在过去几年中已经开发了许多生物识别系统,例如指纹,手和棕榈几何形状,视网膜等。由于血管模式的稳定性,唯一性和不可复制的性质,视网膜识别是最稳定的生物识别系统。视网膜识别根据视网膜的独特脉管系统执行人的识别。通常,它是一个三步过程,包括预处理,分割和匹配。分割是基本步骤,这在不同病理迹象存在的情况下至关重要,如渗出物,病变。如果它们在分割中未被删除,那么它们会产生误报,因此导致错误分类。为了解决这个问题,本文提出了一种有效的分割算法,旨在去除来自患病视网膜图像的病理效应,通过降低虚假识别率来改善匹配结果。实验结果表明了所提出的系统的效率。

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