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Fast and accurate retinal vasculature tracing and kernel-Isomap-based feature selection

机译:快速准确的视网膜脉管系统追踪和基于内核Isomap的特征选择

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The blood vessels in the retina have a characteristic radiating pattern, while there exists a significant variation dependent on the individual and/or medical condition. Extracting the geometric properties of these blood vessels have several important applications, such as biometrics (for identification) and medical diagnosis. In this paper, we will focus on biometric applications. For this, we propose a fast and accurate algorithm for tracing the blood vessels, and compare several candidate summary features based on the tracing results. Existing tracing algorithms based on a detailed analysis of the image can be too slow to quickly process a large volume of retinal images in real time (e.g., at a security check point). In order to select good features that can be extracted from the traces, we used kernel Isomap to test the distance between different retinal images as projected onto their respective feature spaces. We tested the following feature set: (1) angle among branches, (2) the number of fiber based on distance, (3) distance between branches, and (4) inner product among branches. Our results indicate that features 3 and 4 are prime candidates for use in fast, realtime biometric tasks. We expect our method to lead to fast and accurate biometric systems based on retinal images.
机译:视网膜中的血管具有特征性的辐射模式,而视个体和/或医学状况而定存在显着的变化。提取这些血管的几何特性具有几个重要的应用,例如生物识别(用于识别)和医学诊断。在本文中,我们将重点介绍生物识别应用程序。为此,我们提出了一种快速准确的血管追踪算法,并根据追踪结果比较了几种候选摘要特征。基于图像的详细分析的现有跟踪算法可能太慢,以至于不能实时地(例如,在安全检查点处)快速处理大量的视网膜图像。为了选择可以从轨迹中提取的良好特征,我们使用了内核Isomap来测试投影到其各自特征空间上的不同视网膜图像之间的距离。我们测试了以下特征集:(1)分支之间的角度;(2)基于距离的纤维数量;(3)分支之间的距离;(4)分支之间的内积。我们的结果表明,特征3和4是用于快速,实时生物特征识别任务的主要候选对象。我们希望我们的方法能够导致基于视网膜图像的快速,准确的生物识别系统。

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