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A diabetic retinopathy detection method using an improved pillar K-means algorithm

机译:使用改进的支柱K-means算法的糖尿病性视网膜病变检测方法

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摘要

The paper presents a new approach for medical image segmentation. Exudates are a visible sign of diabetic retinopathy that is the major reason of vision loss in patients with diabetes. If the exudates extend into the macular area, blindness may occur. Automated detection of exudates will assist ophthalmologists in early diagnosis. This segmentation process includes a new mechanism for clustering the elements of high-resolution images in order to improve precision and reduce computation time. The system applies K-means clustering to the image segmentation after getting optimized by Pillar algorithm; pillars are constructed in such a way that they can withstand the pressure. Improved pillar algorithm can optimize the K-means clustering for image segmentation in aspects of precision and computation time. This evaluates the proposed approach for image segmentation by comparing with Kmeans and Fuzzy C-means in a medical image. Using this method, identification of dark spot in the retina becomes easier and the proposed algorithm is applied on diabetic retinal images of all stages to identify hard and soft exudates, where the existing pillar K-means is more appropriate for brain MRI images. This proposed system help the doctors to identify the problem in the early stage and can suggest a better drug for preventing further retinal damage.
机译:本文提出了一种医学图像分割的新方法。渗出液是糖尿病性视网膜病的明显迹象,这是糖尿病患者视力丧失的主要原因。如果渗出液进入黄斑区域,可能会导致失明。分泌物的自动检测将有助于眼科医生进行早期诊断。该分割过程包括一种用于对高分辨率图像的元素进行聚类的新机制,以提高精度并减少计算时间。经Pillar算法优化后,系统将K-means聚类应用于图像分割。支柱的构造使其可以承受压力。改进的支柱算法可以在精度和计算时间方面优化用于图像分割的K-means聚类。通过与医学图像中的Kmeans和Fuzzy C-均值进行比较,评估了提出的图像分割方法。使用这种方法,可以更轻松地识别视网膜中的黑斑,并且将所提出的算法应用于所有阶段的糖尿病视网膜图像,以识别硬性和软性渗出液,而现有的支柱K均值更适合于脑部MRI图像。这个提议的系统可以帮助医生在早期发现问题,并可以建议一种更好的药物来防止进一步的视网膜损伤。

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