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Automatic segmentation of the choroid in enhanced depth imaging optical coherence tomography images

机译:增强深度成像光学相干断层扫描图像中脉络膜的自动分割

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Enhanced Depth Imaging (EDI) optical coherence tomography (OCT) provides high-definition cross-sectional images of the choroid in vivo, and hence is used in many clinical studies. However, the quantification of the choroid depends on the manual labelings of two boundaries, Bruch’s membrane and the choroidal-scleral interface. This labeling process is tedious and subjective of inter-observer differences, hence, automatic segmentation of the choroid layer is highly desirable. In this paper, we present a fast and accurate algorithm that could segment the choroid automatically. Bruch’s membrane is detected by searching the pixel with the biggest gradient value above the retinal pigment epithelium (RPE) and the choroidal-scleral interface is delineated by finding the shortest path of the graph formed by valley pixels using Dijkstra’s algorithm. The experiments comparing automatic segmentation results with the manual labelings are conducted on 45 EDI-OCT images and the average of Dice’s Coefficient is 90.5%, which shows good consistency of the algorithm with the manual labelings. The processing time for each image is about 1.25 seconds.
机译:增强深度成像(EDI)光学相干断层扫描(OCT)提供了体内脉络膜的高清横截面图像,因此已在许多临床研究中使用。但是,脉络膜的定量取决于两个边界的手动标记,即布鲁赫膜和脉络膜-巩膜界面。该标记过程是繁琐的并且主观上观察者之间的差异,因此,非常需要脉络膜层的自动分割。在本文中,我们提出了一种快速准确的算法,可以自动对脉络膜进行分割。通过搜索视网膜色素上皮(RPE)上方具有最大梯度值的像素来检测布鲁赫膜,并通过使用Dijkstra算法找到由谷底像素形成的图的最短路径来描绘脉络膜-巩膜界面。在45张EDI-OCT图像上进行了将自动分割结果与手动标记进行比较的实验,Dice系数的平均值为90.5%,这表明算法与手动标记具有良好的一致性。每个图像的处理时间约为1.25秒。

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