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An image processing pipeline for segmenting the retinal layers from optical coherence tomography images

机译:用于从光学相干断层扫描图像中分割视网膜层的图像处理管线

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Optical Coherence Tomography (OCT) is the standard clinical modality for high resolution, three dimensional imaging of the multi-layered anatomy of the retina. This paper describes an image processing pipeline we developed for automated segmentation of the retinal strata within OCT image data-sets. The pipeline consists of three independent postprocessing modules that involve combinations of noise reduction i.e. 2D log-Gabor filtering, edge detection and interpolation. Our automated method was validated against manual measurements from three anonymized clinical OCT datasets. We found that our approach was able to accurately segment the layers of the retinal ultrastructure with mean differences of 1μm compared to manual measurements. Overall, we have developed a sophisticated automated application for segmenting the highly-structured retinal anatomy. Ultimately, this tool will be used to create detailed computer meshes of the retinal ultrastructure for our future modeling.
机译:光学相干断层扫描(OCT)是视网膜多层解剖结构的高分辨率,三维成像的标准临床方法。本文介绍了我们为在OCT图像数据集中对视网膜层进行自动分割而开发的图像处理管道。流水线由三个独立的后处理模块组成,涉及降噪的组合,即2D log-Gabor滤波,边缘检测和插值。我们的自动化方法已针对来自三个匿名临床OCT数据集的手动测量进行了验证。我们发现,与手动测量相比,我们的方法能够以1μm的平均差准确分割视网膜超微结构层。总体而言,我们已经开发出了一种复杂的自动化应用程序,用于对高度结构化的视网膜解剖结构进行细分。最终,该工具将用于为未来的建模创建视网膜超微结构的详细计算机网格。

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