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An automated and robust image processing algorithm for glaucoma diagnosis from fundus images using novel blood vessel tracking and bend point detection

机译:使用新颖的血管跟踪和弯曲点检测从眼底图像中诊断青光眼的自动且鲁棒的图像处理算法

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摘要

Glaucoma is an ocular disease which can cause irreversible blindness. The disease is currently identified using specialized equipment operated by optometrists manually. The proposed work aims to provide an efficient imaging solution which can help in automating the process of Glaucoma diagnosis using computer vision techniques from digital fundus images. The proposed method segments the optic disc using a geometrical feature based strategic framework which improves the detection accuracy and makes the algorithm invariant to illumination and noise. Corner thresholding and point contour joining based novel methods are proposed to construct smooth contours of Optic Disc. Based on a clinical approach as used by ophthalmologist, the proposed algorithm tracks blood vessels inside the disc region and identifies the points at which first vessel bend from the optic disc boundary and connects them to obtain the contours of Optic Cup. The proposed method has been compared with the ground truth marked by the medical experts and the similarity parameters, used to determine the performance of the proposed method, have yield a high similarity of segmentation. The proposed method has achieved a macro-averaged f-score of 0.9485 and accuracy of 97.01% in correctly classifying fundus images. The proposed method is clinically significant and can be used for Glaucoma screening over a large population which will work in a real time.
机译:青光眼是一种眼科疾病,可能导致不可逆转的失明。目前使用验光师手动操作的专用设备来识别该疾病。拟议的工作旨在提供一种有效的成像解决方案,该解决方案可以使用来自数字眼底图像的计算机视觉技术来帮助自动进行青光眼的诊断过程。所提出的方法使用基于几何特征的策略框架对光盘进行分割,从而提高了检测精度,并使算法对照明和噪声保持不变。提出了基于拐角阈值和点轮廓连接的新颖方法来构造光碟的平滑轮廓。基于眼科医生使用的临床方法,所提出的算法可跟踪椎间盘区域内的血管,并识别第一根血管从视盘边界弯曲的点,并将它们连接起来以获得视杯的轮廓。将提出的方法与医学专家标记的地面事实进行了比较,相似度参数用于确定提出的方法的性能,具有很高的分割相似度。该方法在正确分类眼底图像中获得了0.9485的宏平均f得分和97.01%的准确度。所提出的方法在临床上具有重要意义,可用于在大量人群中进行青光眼筛查,这将实时进行。

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