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Extraction and Analysis of RPE layer from OCT Images for Detection of Age Related Macular Degeneration

机译:从OCT图像中RPE层的提取和分析检测年龄相关性黄斑变性

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Age-related Macular Degeneration (AMD) is an eye disease which affects elderly people. Cholesterol deposits in central part of retina, known as macula, damages the photoreceptors present in a particular area of eye. AMD usually effects only central vision of patient. In medical field various imaging techniques are used for diagnosis of eye diseases. Optical Coherence Tomography (OCT) is a relatively newer technique that is found to be very useful in analyzing eyes. In this research, we used OCT images to automatically detect and classify AMD. First we extract the retinal layer known as Retinal Pigment Epithelium by utilizing Graph Theory Dynamic Programming technique, after successfully enhancing the quality of OCT image by using Wiener filter. We used a unique feature set consisting of features extracted from difference signal of RPE and Inner Segment Outer Segment layer of RPE. Feature set includes approximation coefficient, entropy and spectrum energy of the resulting difference signal. Support Vector Machine classifier was used to classify AMD affected and normal image. The developed system gives an accuracy of 95% for AMD detection.
机译:年龄相关的黄斑变性(AMD)是一种影响老年人的眼病。胆固醇沉积在视网膜的中枢部分,称为黄斑,损坏了特定的眼睛区域中存在的感光体。 AMD通常只影响患者的中心视力。在医学领域,各种成像技术用于诊断眼病。光学相干断层扫描(OCT)是一种相对较低的技术,发现在分析眼睛方面非常有用。在这项研究中,我们使用OCT图像自动检测和分类AMD。首先,通过利用曲线理论动态规划技术,通过使用维纳滤波器成功提高OCT图像的质量后,通过使用曲线论动态编程技术提取称为视网膜颜料上皮的视网膜层。我们使用了由RPE的差分信号和RPE的内部段外部段层提取的特征组成的独特功能集。特征集包括所得到的差分信号的近似系数,熵和频谱能量。支持向量机器分类器用于对受影响和正常图像进行分类。发达的系统可提供95%的AMD检测的精度。

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