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Automatic Optic Disc Segmentation Based on Modified Local Image Fitting Model with Shape Prior Information

机译:基于形状先验信息的改进局部图像拟合模型的自动光盘分割

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摘要

Accurate optic disc (OD) detection is an essential yet vital step for retinal disease diagnosis. In the paper, an approach for segmenting OD boundary without manpower named full-automatic double boundary extraction is designed. There are two main advantages in it. (1) Since the performances and the computational cost produced by iterations of contour evolution of active contour models- (ACM-) based approaches greatly depend on the initialization, this paper proposes an effective and adaptive initial level set contour extraction approach using saliency detection and threshold techniques. (2) In order to handle unreliable information generated by intensity in abnormal retinal images caused by diseases, a modified LIF approach is presented by incorporating the shape prior information into LIF. We test the effectiveness of the proposed approach on a publicly available DIARETDB0 database. Experimental results demonstrate that our approach outperforms well-known approaches in terms of the average overlapping ratio and accuracy rate.
机译:准确的视盘(OD)检测是视网膜疾病诊断的重要但至关重要的步骤。本文设计了一种无需人工分割OD边界的方法,即全自动双边界提取。它有两个主要优点。 (1)由于基于活动轮廓模型(ACM-)的方法的轮廓演化迭代产生的性能和计算成本很大程度上取决于初始化,因此本文提出了一种有效的,自适应的,利用显着性检测和初始水平集轮廓提取的方法。阈值技术。 (2)为了处理由疾病引起的异常视网膜图像中强度引起的不可靠信息,通过将形状先验信息合并到LIF中,提出了一种改进的LIF方法。我们在公开可用的DIARETDB0数据库上测试了该方法的有效性。实验结果表明,在平均重叠率和准确率方面,我们的方法优于知名方法。

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