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Optic disc segmentation by weighting the vessels density within the strongest candidates

机译:通过加权最强候选者内的血管密度来进行视盘分割

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Optic disc segmentation is a key element in automatic screening systems, which facilitates the detection of lesions that affect the interior surface of the eye (i.e. fundus). Therefore, this paper aims to provide a fully automated technique for detecting and segmenting the optic disc. First, the fundus image is preprocessed in order to estimate the approximate location of the optic disc, excluding the positions that doubtfully contain the optic disc. Consequently, the top candidates for the optic disc are detected and then ranked based on their strengths. Afterwards, the vessels density within each candidate is calculated and then weighted according to the candidate's strength, in which the one having the highest score is chosen to be the segmented optic disc. The performance of the proposed segmentation algorithm is evaluated over nine heterogeneous datasets of fundus images, achieving a sensitivity of 94.72%.
机译:椎间盘切开术是自动筛查系统中的关键要素,它有助于检测影响眼睛内表面(即眼底)的病变。因此,本文旨在提供一种用于检测和分割光盘的全自动技术。首先,对眼底图像进行预处理,以估计视盘的大致位置,排除怀疑包含视盘的位置。因此,将检测光盘的最佳候选对象,然后根据其优势进行排名。此后,计算每个候选者内的血管密度,然后根据候选者的强度进行加权,其中得分最高的一个被选为分段视盘。在九个眼底图像异构数据集上评估了所提出的分割算法的性能,实现了94.72%的灵敏度。

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