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Automatic Screening of Narrow Anterior Chamber Angle and Angle-Closure Glaucoma Based on Slit-Lamp Image Analysis by Using Support Vector Machine

机译:基于狭缝灯图像分析的窄前房角度和角度闭合青光眼自动筛选使用支持向量机

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At present, Van Herick's method is a standard technique used to screen a Narrow Anterior Chamber Angle (NACA) and Angle-Closure Glaucoma (ACG). It can identify a patient who suffers from NACA and ACG by considering the width of peripheral anterior chamber depth (PACD) and corneal thickness. However, the screening result of this method often varies among ophthalmologists. So, an automatic screening of NACA and ACG based on slit-lamp image analysis by using Support Vector Machine (SVM) is proposed. SVM can automatically generate the classification model, which is used to classify the result as an angle-closure likely or an angle-closure unlikely. It shows that it can improve the accuracy of the screening result. To develop the classification model, the width of PACD and corneal thickness from many positions are measured and selected to be features. A statistic analysis is also used in the PACD and corneal thickness estimation in order to reduce the error from reflection on the cornea. In this study, it is found that the generated models are evaluated by using 5-fold cross validation and give a better result than the result classified by Van Herick's method.
机译:目前,van Herick的方法是一种标准技术,用于筛选窄前房角(Naca)和角度闭合青光眼(ACG)。它可以识别通过考虑周边前房深度(PACD)和角膜厚度的宽度而遭受NACA和ACG的患者。然而,这种方法的筛选结果通常在眼科医生之间变化。因此,提出了通过使用支持向量机(SVM)的基于狭缝灯图像分析的NACA和ACG的自动筛选。 SVM可以自动生成分类模型,该模型用于将结果分类为可能的角度闭合或不太可能的角度闭合。它表明它可以提高筛选结果的准确性。为了开发分类模型,测量来自许多位置的PACD和角膜厚度的宽度并选择是特征。统计分析也用于PACD和角膜厚度估计,以减少角膜反射的误差。在本研究中,发现通过使用5倍交叉验证来评估所生成的模型,并提供比Van Herick的方法分类的结果更好的结果。

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