基于阈值移动平均模型的视网膜图像渗出物自动检测

Biofizika Pub Date : 2015-03-01
K Wisaeng, N Hiransakolwong, E Pothiruk
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引用次数: 0

摘要

由于渗出液诊断程序需要专家眼科医生的关注以及对疾病的定期监测,专家眼科医生的工作量最终将超过目前的筛查能力。视网膜成像技术是目前实践筛查能力提供的一个极具潜力的解决方案。本文提出了一种基于模糊图像的移动平均直方图模型的快速、鲁棒的渗出物自动检测方法,并推导出较好的直方图。在对候选渗出物进行分割后,基于Sobel边缘检测器和自动Otsu阈值分割算法对真实渗出物进行剪枝,从而准确定位数字视网膜图像中的渗出物。为了比较渗出物检测方法的性能,我们构建了一个大型的数字视网膜图像数据库。该方法在200张视网膜图像集上进行了训练,并在完全独立的1220张视网膜图像集上进行了测试。结果表明,该方法的灵敏度、特异度和准确度分别为90.42%、94.60%和93.69%。
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[Automatic detection of exudates in retinal images based on threshold moving average models].

Since exudate diagnostic procedures require the attention of an expert ophthalmologist as well as regular monitoring of the disease, the workload of expert ophthalmologists will eventually exceed the current screening capabilities. Retinal imaging technology is a current practice screening capability providing a great potential solution. In this paper, a fast and robust automatic detection of exudates based on moving average histogram models of the fuzzy image was applied, and then the better histogram was derived. After segmentation of the exudate candidates, the true exudates were pruned based on Sobel edge detector and automatic Otsu's thresholding algorithm that resulted in the accurate location of the exudates in digital retinal images. To compare the performance of exudate detection methods we have constructed a large database of digital retinal images. The method was trained on a set of 200 retinal images, and tested on a completely independent set of 1220 retinal images. Results show that the exudate detection method performs overall best sensitivity, specificity, and accuracy of 90.42%, 94.60%, and 93.69%, respectively.

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