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Optic cup and optic disc analysis for glaucoma screening using pulse-coupled neural networks and line profile analysis

机译:使用脉冲耦合神经网络和线轮廓分析的青光眼筛选光学杯和光盘分析

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This paper proposes an image processing algorithm that segments and measures the optic cup and the optic disc, by using a pulsed coupled artificial neural network and a line profile technique respectively. Our approach extracts two key glaucoma prediction features-the vertical cup-to-disc ratio (vCDR) and the Inferior Superior Nasal Temporal (ISNT) rule. A total of 126 fundus images have been used to evaluate the proposed algorithm. The vCDR and ISNT rule evaluation was manually determined by experienced eye specialists. The proposed algorithm was then used to automatically estimate the same parameters on the same images. The algorithm achieved a RMSE of 0.11. Furthermore, we conducted a similarity test between the values for the parameters extracted using our algorithm and that of the manual estimation, using a student's T-test. The probability of difference in datasets was 2.08·10-13%. This could be a key step in providing good features for subsequent autonomous screening of glaucoma.
机译:本文通过使用脉冲耦合的人工神经网络和线轮廓技术,提出了一种图像处理算法,该图像处理算法和测量光盘和光盘。我们的方法提取两个关键的青光眼预测特征 - 垂直杯盘比(VCDR)和较低的鼻腔时间(ISNT)规则。共有126个眼底图像用于评估所提出的算法。 VCDR和ISNT规则评估由经验丰富的眼科专家手动确定。然后使用所提出的算法来自动估计相同图像上的相同参数。该算法实现了0.11的RMSE。此外,我们使用学生的T-Test对使用我们的算法提取的参数的值与手动估计的值之间进行了相似性测试。数据集差异的概率为2.08·10 -13 %。这可能是提供良好特征的关键步骤,以便随后对青光眼进行自主筛查。

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