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Bright Retinal Lesions Detection using Color Fundus Images Containing Reflective Features

机译:使用包含反射特征的彩色眼底图像进行明亮的视网膜病变检测

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Recently, the research community has developed many techniques to detect and diagnose diabetic retinopathy with retinal fundus images. This is a necessary step for the implementation of a large scale screening effort in rural areas where ophthalmologists are not available. In the United States of America, the incidence of diabetes is increasing among the young population. Retina fundus images of patients younger than 20 years old present a high amount of reflectance due to the Nerve Fibre Layer (NFL). Generally, the younger the patient the more the reflectance is visible. We are not aware of algorithms able to explicitly deal with this type of artifact.This paper presents a technique to detect bright lesions in patients with a high degree of reflective NFL. First, the candidate bright lesions are detected using image equalization and histogram analysis. Then, a classifier is trained using texture descriptors (Multi-scale Local Binary Patterns) and other statistical features in order to remove the false positives in the lesion detection. Finally, the area of the lesions is used to diagnose diabetic retinopathy.Our database consists of 33 images from a telemedicine network currently under active development. When determining moderate to severe diabetic retinopathy using the bright lesions detected, the algorithm achieves a sensitivity of 100% at a specificity of 100% with a leave-one-out test.
机译:最近,研究团体开发了许多技术来通过视网膜眼底图像检测和诊断糖尿病性视网膜病。这是在没有眼科医生的农村地区进行大规模筛查工作的必要步骤。在美利坚合众国,年轻人口中糖尿病的发病率正在增加。由于神经纤维层(NFL),年龄小于20岁的患者的眼底图像呈现出很高的反射率。通常,患者越年轻,反射率越明显。我们不知道能够显式处理这种工件的算法。 本文提出了一种在高度反射性NFL患者中检测明亮病变的技术。首先,使用图像均衡和直方图分析来检测候选明亮病变。然后,使用纹理描述符(多尺度局部二值模式)和其他统计特征训练分类器,以去除病变检测中的假阳性。最后,病变区域用于诊断糖尿病性视网膜病。 我们的数据库包含来自当前正在积极开发的远程医疗网络的33张图像。当使用检测到的明亮病变确定中度至重度糖尿病性视网膜病变时,通过留一法测试,该算法在100%的特异性下可达到100%的灵敏度。

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