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Segmentation of retinal vessels in adaptive optics images for assessment of vasculitis

机译:在自适应光学图像中分割视网膜血管以评估血管炎

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In this paper we propose a new method for segmenting retinal vessels in adaptive optics images. This method is particularly dedicated for segmenting vessels with significant morphological alterations due to vasculitis, but it is also accurate for vessels with moderate or without alteration. It relies on a pre-segmentation step which is crucial for the robustness and accuracy of the results. This step is based on a specific morphological processing of isolines of the original image: they constitute of good basis for the segmentation because they are disposed along the wall borders of the vessels. Regularization is then performed using active contour model embedding a parallelism constraint. This novel model allows precise segmenting inner and outer walls of the vessel. In particular it is more accurate in the case of vasculitis than the existing methods. This is the only method that allows quantification. The results and the runtime make it suitable for clinical use.
机译:在本文中,我们提出了一种在自适应光学图像中分割视网膜血管的新方法。该方法特别适用于分割由于血管炎引起的形态学显着改变的血管,但对于中度或无改变的血管也很准确。它依赖于预分段步骤,这对于结果的鲁棒性和准确性至关重要。此步骤基于原始图像的等值线的特定形态处理:由于它们沿着血管壁边界放置,因此它们为分割提供了良好的基础。然后使用嵌入了并行约束的活动轮廓模型执行正则化。这种新颖的模型可以精确分割血管的内壁和外壁。特别是在血管炎的情况下,它比现有方法更为准确。这是唯一可以量化的方法。结果和运行时间使其适合临床使用。

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