AbstractVessel segmentation is a critical and challenging task for fundus image processing, which is p'/> Automatic vessel segmentation on fundus images using vessel filtering and fuzzy entropy
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Automatic vessel segmentation on fundus images using vessel filtering and fuzzy entropy

机译:使用船舶过滤和模糊熵的眼底图像自动血管分割

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AbstractVessel segmentation is a critical and challenging task for fundus image processing, which is precursor and essential first step to further vessel measurement and diagnosis. This paper proposes a novel hybrid automatic vessel segmentation method for the delineation of vessels on fundus images. The method consists of two main steps including Hessian-based vessel filtering and vessel segmentation. In vessel filtering, multi-scale linear filtering based on Hessian matrix is adapted to enhance vessels in the image. After vessel filtering, a novel two-dimensional histogram of filtering image is generated. Then, the thresholds are determined by the fuzzy entropic concepts. We demonstrate the effectiveness of the proposed method on real fundus images from DRIVE database. Quantification analysis is applied through three metrics with respect to manual delineated ground truth from one specialist. Compared to three other methods, the proposed method yields more complete and accurate results.]]>
机译:/加工,这是进一步血管测量和诊断的前兆和基本的第一步。本文提出了一种新型混合自动血管分割方法,用于丢弃眼底图像的血管。该方法包括两个主要步骤,包括基于Hessian的血管滤波和血管分割。在血管过滤中,基于Hessian矩阵的多尺度线性滤波适于增强图像中的血管。在血管滤波之后,产生一种新的二维直方图的滤波图像。然后,阈值由模糊熵概念确定。我们展示了从驱动数据库真实眼底图像上提出的方法的有效性。通过三个专家的手动描绘地面真相,通过三个度量应用量化分析。与其他三种方法相比,所提出的方法产生更完整和准确的结果。 ]]>

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