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Comput Math Methods Med ; 2013: 927285, 2013.
Article in English | MEDLINE | ID: mdl-23662164

ABSTRACT

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.


Subject(s)
Image Enhancement/methods , Retinal Vessels/anatomy & histology , Algorithms , Computational Biology , Databases, Factual/statistics & numerical data , Humans , Models, Statistical , Pattern Recognition, Automated/methods
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