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Image Processing Approach to Diagnose Eye Diseases

机译:诊断眼病的图像处理方法

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Image processing and machine learning techniques are used for automatic detection of abnormalities in eye. The proposed methodology requires a clear photograph of eye (not necessarily a fundoscopic image) from which the chromatic and spatial property of the sclera and iris is extracted. These features are used in the diagnosis of various diseases considered. The changes in the colour of iris is a symptom for corneal infections and cataract, the spatial distribution of different colours distinguishes diseases like subconjunctival haemorrhage and conjunctivitis, and the spatial arrangement of iris and sclera is an indicator of palsy. We used various classifiers of which adaboost classifier which was found to give a substantially high accuracy i.e., about 95% accuracy when compared to others (k-NN and naive-Bayes). To enumerate the accuracy of the method proposed, we used 150 samples in which 23% were used for testing and 77% were used for training.
机译:图像处理和机器学习技术用于自动检测眼睛异常。提出的方法需要清楚的眼睛照片(不一定是基础形象),从中提取巩膜和虹膜的彩色和空间性质。这些特征用于诊断考虑的各种疾病。虹膜颜色的变化是角膜感染和白内障的症状,不同颜色的空间分布区分疾病等疾病,如亚核血管血管炎,虹膜和巩膜的空间排列是麻痹的指标。我们使用了adaboost分类器的各种分类器,该分类器被发现给出了大大高的精度,即与他人(K-NN和NAIVE-Bayes)相比,约95%的精度。为了枚举所提出的方法的准确性,我们使用了150个样品,其中23%用于测试,77%用于培训。

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