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Detection of glaucoma using retinal fundus images

机译:使用视网膜眼底图像检测青光眼

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This paper proposes image processing technique for the early detection of glaucoma. Glaucoma is one of the major causes which cause blindness but it was hard to diagnose it in early stages. In this paper glaucoma is classified by extracting two features using retinal fundus images. (i) Cup to Disc Ratio (CDR). (ii) Ratio of Neuroretinal Rim in inferior, superior, temporal and nasal quadrants i.e. (ISNT quadrants) to check whether it obeys or violates the ISNT rule. The novel technique is implemented on 50 retinal images and an accuracy of 94% is achieved taking an average computational time of 1.42 seconds.
机译:本文提出了一种用于青光眼早期检测的图像处理技术。青光眼是引起失明的主要原因之一,但很难在早期进行诊断。在本文中,青光眼通过使用视网膜眼底图像提取两个特征进行分类。 (i)杯碟比(CDR)。 (ii)下,上,颞和鼻象限(即ISNT象限)中神经视网膜边缘的比率,以检查其是否遵守或违反了ISNT规则。该新技术在50个视网膜图像上实现,使用1.42秒的平均计算时间可达到94%的准确度。

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