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Application of Higher Order Spectra for the Identification of Diabetes Retinopathy Stages

机译:高阶光谱在糖尿病视网膜病变分期中的应用

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Diabetic retinopathy (DR) is a condition where the retina is damaged due to fluid leaking from the blood vessels into the retina. In extreme cases, the patient will become blind. Therefore, early detection of diabetic retinopathy is crucial to prevent blindness. Various image processing techniques have been used to identify the different stages of diabetes retinopathy. The application of non-linear features of the higher-order spectra (HOS) was found to be efficient as it is more suitable for the detection of shapes. The aim of this work is to automatically identify the normal, mild DR, moderate DR, severe DR and prolific DR. The parameters are extracted from the raw images using the HOS techniques and fed to the support vector machine (SVM) classifier. This paper presents classification of five kinds of eye classes using SVM classifier. Our protocol uses, 300 subjects consisting of five different kinds of eye disease conditions. We demonstrate a sensitivity of 82% for the classifier with the specificity of 88%.
机译:糖尿病性视网膜病(DR)是一种由于液体从血管泄漏到视网膜而导致视网膜受损的疾病。在极端情况下,患者将变得盲目。因此,早期发现糖尿病性视网膜病对于预防失明至关重要。已经使用各种图像处理技术来识别糖尿病性视网膜病的不同阶段。发现高阶谱(HOS)的非线性特征的应用是有效的,因为它更适合于形状检测。这项工作的目的是自动识别正常,轻度DR,中度DR,重度DR和多产DR。使用HOS技术从原始图像中提取参数,并将其输入到支持向量机(SVM)分类器中。本文提出了使用支持向量机分类器对五种眼睛类别进行分类。我们的协议使用了300种受试者,其中包括五种不同的眼疾。我们证明了对分类器的敏感性为82%,特异性为88%。

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