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Non-invasive technique of diabetes detection using iris images

机译:利用虹膜图像检测糖尿病的非侵入性技术

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Alternative medicine techniques are important in improving the quality of life, disease prevention and better to the conventional invasive method of diseases detection. This paper addresses a non-invasive approach of diabetic detection using iris images. The proposed techniques used to diagnose diabetes using modern digital image processing techniques that analyses structural properties of the iris and classifies the patterns according to iridology chart. The system analyses the broken tissues of the iris by extracting significant textural features using Gabor filter bank and grey level co-occurrence matrix (GLCM) from the specified subsection of the iris. The extracted textural features help to categorise the diabetic and non-diabetic irises using benchmarks artificial neural network (ANN) and support vector machine (SVM) classifiers. The promising results of extensive experiments demonstrate the effectiveness of the proposed method.
机译:替代医学技术对于改善生活质量,预防疾病和更好地改善传统的侵入性疾病检测方法至关重要。本文探讨了使用虹膜图像的非侵入性糖尿病检测方法。所提出的用于使用现代数字图像处理技术诊断糖尿病的技术,该技术可分析虹膜的结构特性并根据虹膜图对模式进行分类。该系统通过使用Gabor滤波器组和灰度共生矩阵(GLCM)从虹膜的指定部分中提取重要的纹理特征来分析虹膜的断裂组织。提取的纹理特征有助于使用基准人工神经网络(ANN)和支持向量机(SVM)分类器对糖尿病和非糖尿病性虹膜进行分类。大量实验的有希望的结果证明了该方法的有效性。

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