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Retinal Image Graph-Cut Segmentation Algorithm Using Multiscale Hessian-Enhancement-Based Nonlocal Mean Filter

机译:基于多尺度Hessian增强的非局部均值滤波的视网膜图像图形分割算法

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摘要

We propose a new method to enhance and extract the retinal vessels. First, we employ a multiscale Hessian-based filter to compute the maximum response of vessel likeness function for each pixel. By this step, blood vessels of different widths are significantly enhanced. Then, we adopt a nonlocal mean filter to suppress the noise of enhanced image and maintain the vessel information at the same time. After that, a radial gradient symmetry transformation is adopted to suppress the nonvessel structures. Finally, an accurate graph-cut segmentation step is performed using the result of previous symmetry transformation as an initial. We test the proposed approach on the publicly available databases: DRIVE. The experimental results show that our method is quite effective.
机译:我们提出了一种新的方法来增强和提取视网膜血管。首先,我们使用基于多尺度Hessian的滤波器来计算每个像素的血管相似函数的最大响应。通过该步骤,显着增强了不同宽度的血管。然后,我们采用非局部均值滤波器来抑制增强图像的噪声并同时保持血管信息。之后,采用径向梯度对称变换抑制非血管结构。最后,使用先前的对称变换的结果作为初始值,执行精确的图割分割步骤。我们在公开可用的数据库DRIVE上测试了建议的方法。实验结果表明,该方法是有效的。

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