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A Novel Automatic Coronary Artery Segmentation Method Based on Region Growing with Annular and Spherical Sector Partition

机译:一种基于环形和球形扇区分区的区域的新型自动冠状动脉分段方法

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摘要

Coronary artery segmentation based on the Computerized Tomography Angiography images is an important subject in the field of vascular medical imaging. In this paper, a novel automatic coronary artery segmentation method based on region growing with annular and spherical sector partition is proposed to improve search efficiency and quality of blood vessel segmentation. In our proposed method, the region is divided into a series of annular sectors based on the characteristics of vascular shape in the two-dimensional image, while the space is divided into spherical sectors according to the shape and tendency of the vessel in the three-dimensional image. The proposed method has been tested by 6 groups of data set, the efficiency and quality of the automatic segmentation has been significantly improved. Not only can the coronary artery and its adhesion tissue be successfully separated, but also the coronary arteries and their small branches can be detected. Furthermore, compared to the multiscale region growing method, our proposed method is able to search more branches. Also it is able to achieve higher total coverage ratio and Dice Similarity Coefficient ratio.
机译:基于计算机层面血管造影图像的冠状动脉分割是血管医学成像领域的重要主题。本文提出了一种基于环形和球形扇区分区生长区域的新型自动冠状动脉分割方法,提高了血管分割的搜索效率和质量。在我们所提出的方法中,该区域基于二维图像中的血管形状的特性分为一系列环形扇区,而空间根据三个血管的形状和趋势分成球形扇区尺寸图像。所提出的方法已经通过6组数据集进行了测试,自动分割的效率和质量得到了显着改善。冠状动脉和其粘附组织不仅可以成功分离,而且可以检测冠状动脉及其小分支。此外,与多尺度区域生长方法相比,我们所提出的方法能够搜索更多分支机构。此外,它还能够实现更高的总覆盖率和骰子相似度系数比。

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