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Rough Set Approach in Ultrasound Biomicroscopy Glaucoma Analysis

机译:超声波生物显微镜型青光眼分析中的粗糙集方法

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In this paper, we present an automated approach for Ultrasound Biomicroscopy (UBM) glaucoma images analysis. To increase the efficiency of the introduced approach, an intensity adjustment process is applied first using the Pulse Coupled Neural Network with a median filter. This is followed by applying the PCNN-based segmentation algorithm to detect the boundary of the anterior chamber of the eye image. Then, glaucoma clinical parameters have been calculated and normalized, followed by application of a rough set analysis to discover the dependency between the parameters and to generate set of reduct that contains minimal number of attributes. Experimental results show that the introduced approach is very successful and has high detection accuracy
机译:在本文中,我们提出了一种自动化方法,用于超声生物显微镜(UBM)荧光眼图像分析。为了提高引入方法的效率,首先使用具有中值滤波器的脉冲耦合的神经网络来应用强度调整过程。然后通过应用基于PCNN的分割算法来检测眼睛图像的前房的边界。然后,已经计算和标准化了青光眼临床参数,然后应用了粗糙集分析,以发现参数与生成包含最少数量数量的依赖性的依赖性。实验结果表明,介绍的方法非常成功,检测精度高

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