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Loosely coupled level sets for retinal layer segmentation in optical coherence tomography

机译:光学相干断层扫描中用于视网膜层分割的松散耦合水平集

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This paper presents a novel method for the segmentation of layered structures that have a predefined order. Layers are jointly segmented by simultaneous detection of their interfaces. This is done by means of a level set approach based on Bayesian inference where the ordering of the layers is enforced via a novel level set coupling. The method was applied to in-vivo images of healthy human retinas acquired by optical coherence tomography (OCT). A quantitative comparison with manual annotations was used to estimate the method's accuracy, which showed very good agreement (mean absolute deviation (MAD) of 3.11-8.58 μm). The large errors were mainly due to differences in handling the vessels. Based on repeated OCT images of the same eye acquired on consecutive days, the reproducibility of manual and automated segmentations, expressed by the MAD of the RNFL thickness, were 10.97 μm and 7.68 μm.
机译:本文提出了一种新方法,用于对具有预定义顺序的分层结构进行分割。通过同时检测其接口来联合分割各层。这是通过基于贝叶斯推断的水平集方法来完成的,其中通过新颖的水平集耦合来强制层的排序。该方法适用于通过光学相干断层扫描(OCT)获得的健康人视网膜的体内图像。与手动注释的定量比较用于估计该方法的准确性,这显示出非常好的一致性(平均绝对偏差(MAD)为3.11-8.58μm)。较大的错误主要是由于处理船只方面的差异。基于连续几天获得的同一只眼睛的重复OCT图像,用RNFL厚度的MAD表示的手动和自动分割的重现性分别为10.97μm和7.68μm。

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