Segmentation of coronary artery tree from computed tomography angiography using region growing method

M. Shams, Mohammed Abdel-Megeed Salem, S. Hamad, Howida A. Shedeed
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Abstract

Recently, automated analysis of medical images becomes important for easier and faster clinical diagnosis. Identifying human organs is the key component for such analysis, i.e., segmentation of the anatomical structures from medical images. Coronary arteries segmentation gained wide interest in old and recent scientific research, thus various methods have been developed for segmenting coronaries from different cardiac imaging modalities. This paper provides a review of studies based on region growing (RG) method in segmentation of coronary arteries from computed tomography angiography (CTA). The main objective of this paper is to highlight the different perspectives of applying RG in the segmentation process. Firstly, medical background is provided to coronary disease, CTA and RG algorithm explanation. Finally, the studies are compared to each other according to the selection of seed points, detection of seed points, preprocessing and enhancements, RG segmentation process and finally the post-processing.
用区域生长法分割计算机断层血管成像中的冠状动脉树
最近,医学图像的自动分析对于更容易和更快的临床诊断变得非常重要。识别人体器官是这种分析的关键组成部分,即从医学图像中分割解剖结构。冠状动脉分割在新旧科学研究中引起了广泛的兴趣,因此从不同的心脏成像方式中开发了各种冠状动脉分割方法。本文综述了基于区域生长(RG)方法在冠状动脉分割中的研究进展。本文的主要目的是强调在分割过程中应用RG的不同角度。首先对冠状动脉疾病进行医学背景介绍,对CTA和RG算法进行说明。最后,从种子点的选择、种子点的检测、预处理和增强、RG分割过程以及最后的后处理等方面进行研究比较。
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