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[IEEE 2018 IEEE SmartWorld, Ubiquitous Intelligence & Computing, Advanced & Trusted Computing, Scalable Computing & Communications, Cloud & Big Data Computing, Internet of People and Smart City Innovation (SmartWorld/SCALCOM/UIC/ATC/CBDCom/IOP/SCI) - Guangzhou, China (2018.10.8-2018.10.12)] 2018 IEEE SmartWorld, Ubiquitous Intelligence & Computing, Advanced & Trusted Computing, Scalable Computing & Communications, Cloud & Big Data Computing, Internet of People and Smart City Innovation (SmartWorld/SCALCOM/UIC/ATC/CBDCom/IOP/SCI) - Automated Segmentation of Esophagus Layers from OCT Images Using Fast Marching Method

DOI:10.1109/SmartWorld.2018.00055 出版年份:2018 更新时间:2025-09-23 15:22:29
摘要: Thickness of the esophagus is an important diagnostic marker for many esophagus diseases. While labeling boundaries by manual to compute each layer’s average thickness is time-consuming and subjective. In this paper, we present a new fully automatic algorithm which includes Fast Marching Method (FMM) and Fourth-Order Runge-Kutta method (RK4) to identify five esophagus layers on optical coherence tomography (OCT) images. FMM is used to calculate the weighted geodesic distance. In particular, the velocity function involved in this method combines vertical gradient, horizontal gradient and curvature so that it not only can divide flat borders but also irregular borders. RK4 is used to find the shortest path which is the boundary to be segmented. The experimental comparison between automatic and manual is performed on 400 healthy guinea pig esophagus OCT images and the mean absolute error thickness difference between them is less than 6 pixels while the value can reach to 9.41 pixels at most between two observers.
作者: Miao Zhang,Na Yang,Cong Wang,Ting Yang,Meng Gan,Lirong Wang
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To develop a fully automatic algorithm for segmenting esophagus layers from OCT images to address the time-consuming and subjective nature of manual labeling, using Fast Marching Method and Fourth-Order Runge-Kutta method.

The proposed automatic segmentation algorithm achieves results comparable to manual segmentations, with mean absolute error thickness difference less than 6 pixels and Dice's similarity coefficient of 0.8587, indicating good accuracy and potential for clinical application, though further improvements with machine learning are suggested for future work.

Accurate region positioning requires prior knowledge, and if the organizational structure is too tight, segmentation may fail due to errors in area restriction.

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