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Automatic Wavelet-based Retinal Blood Vessels Segmentation And Vessel Diameter Estimation

机译:基于小波的视网膜血管自动分割和血管直径估计

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摘要

Automatic detection of retinal blood vessels and measurement of vessel diameter are important steps in the computer aided diagnosis in ophthalmology. Here, we present a new multi-scale vessel enhancement method based on complex continuous wavelet transform (CCWT). The parameters of CCWT are optimized to represent line structures in all directions and separate them from simple edges. The final vessel network is obtained by applying an adaptive histogram-based thresholding process along with a proper length filtering method. An efficient circular structure operator is employed on the centerline of vessels to estimate their diameters. The performance of the proposed method is measured on the publicly available DRIVE and STARE databases and compared with several state-of-the-art methods as well as second observer. The proposed method shows much higher accuracy (95%) and sensitivity (79%) in the same range of specificity (97%). The predictive value of it is higher than 72.9%. The vessel diameter estimation process also shows lower root mean square error compared to the existing methods and second observer.
机译:视网膜血管的自动检测和血管直径的测量是眼科计算机辅助诊断中的重要步骤。在这里,我们提出了一种基于复杂连续小波变换(CCWT)的新型多尺度血管增强方法。优化了CCWT的参数,以表示所有方向上的线结构并将其与简单边线分开。通过应用基于直方图的自适应阈值处理以及适当的长度过滤方法,可以得到最终的船舶网络。在容器的中心线上使用有效的圆形结构算子来估计其直径。在公开可用的DRIVE和STARE数据库上对所提出方法的性能进行了测量,并与几种最新方法以及第二观察者进行了比较。所提出的方法在相同的特异性范围(97%)中显示出更高的准确性(95%)和灵敏度(79%)。它的预测值高于72.9%。与现有方法和第二观察者相比,血管直径估计过程还显示出较低的均方根误差。

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