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Identification of Choroidal Neovascularisation on Fluorescein Angiograms using Gradient Vector Flow Active Contours

机译:使用梯度载体流动活动轮廓识别荧光素血管仪对荧光素血管造影的识别

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The application of image processing to the investigation of Age-related Macular Degeneration (AMD) has focused on detecting focal drusen deposits in colour fundus images. This research investigates Gradient Vector Flow (GVF) active contours for the detection of choroidal neovascularisation (CNV) from fundus fluorescein angiograms in exudative AMD, the most severe form of the disease. The method was used in the identification of hyperfluorescent regions using pre-selected angiograms with expert-identified lesion components. Using active contours that are positioned close enough to the lesion of interest by the user, the algorithm can simply deform to the lesion, providing a successful outcome. If the initial active contour is positioned too far from the lesion location, the algorithm had a tendency to identify other image components incorrectly, especially in images with significant background interference or complex lesions. The algorithm reported here is guided by experts and hence is semi-automatic. The solutions (lesion position and size) obtained were compared with those identified and measured by an expert reader in a series of 10 fundus fluorescein images.
机译:图像处理在年龄相关黄斑变性(AMD)调查中的应用重点是在彩色眼底图像中检测局灶性博森沉积物。本研究调查了从渗出的AMD中的眼底荧光素血管仪检测脉络膜新生血管(CNV)的梯度载体流动(GVF)活性轮廓,这是疾病最严重的形式。该方法用于使用预选择的血管造影识别具有专家识别的病变组分的高浊区域。使用与用户感兴趣的失误相近的活动轮廓,该算法可以简单地变形到病变,提供成功的结果。如果初始活动轮廓远离损伤位置,则该算法具有错误地识别其他图像分量的趋势,尤其是在具有显着背景干扰或复杂病变的图像中。这里报告的算法由专家指导,因此是半自动的。将获得的溶液(病变位置和尺寸)与专家读者鉴定和测量的溶液(病变位置和尺寸)进行比较。

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