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Region Growing based Segmentation using Forstner Corner Detection Theory for Accurate Microaneurysms Detection in Retinal fundus images

机译:基于区域生长的分割,使用勘探角检测理论进行准确的微安瘤检测视网膜眼底图像

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Several diseases have adverb effect on visual system of human visual system (eye) and diabetes is leading one among them. Prolong and uncontrolled diabetic patient is prone to Diabetic Retinopathy (DR). DR is asymptomatic disease hence requires detection in early stages to avoid big loss in vision. It shows immediate necessity of screening system to access eye images and analyze for DR detection. Microaneurysms (MAs) are primary lesion of DR, so their detection can give time for patient and ophthalmologist to prevent further vision loss. Region growing segmentation method is proposed for accurate detection of MAs. The preprocessing of retinal images uses non local means (NLM) filter and contrast limited adaptive histogram equalization (CLAHE) for noise removal and enhancement image quality. In segmentation, region growing algorithm in which the seeds for the grower are selected and positioned by means of Forstner Corner Detection theory is utilized. After segmentation, the redundant areas are removed using morphological operations (Niblack Adaptive Thresholding) and finally the Predator prey optimizer is used for optimizing the features for MA detection.
机译:几种疾病对人类视觉系统(眼睛)和糖尿病的副词效应是其中一个。延长和不受控制的糖尿病患者易患糖尿病视网膜病变(DR)。博士是无症状的疾病,因此需要在早期阶段检测,以避免视力大的损失。它显示了筛选系统的即时必要性,以访问眼睛图像并分析DR检测。 MicroAneuRysms(Mas)是DR的主要病变,因此他们的检测可以为患者和眼科医生提供时间,以防止进一步的视力丧失。提出了区域生长分割方法,用于精确地检测MAS。视网膜图像的预处理使用非本地方法(NLM)滤波器和对比度有限的自适应直方图均衡(CLAHE),用于噪声去除和增强图像质量。在分割中,利用弃权角检测理论选择和定位种植者的种子的区域生长算法。在分割之后,使用形态操作(Niblack自适应阈值)去除冗余区域,并且最后将捕食者猎物优化器用于优化MA检测的特征。

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