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Key-Point Matching Guided Coronary Artery Extraction from CT Coronary Angiography Sequence

机译:CT冠状动脉造影序列的关键点匹配引导冠状动脉提取

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Extracting coronary arteries is important in clinical applications of cardiac Computed Tomography Angiography (CTA). However, obtaining an accurate segmentation of coronary artery is challenging because of complex anatomy, variation in image quality, as well as motion induced by heart beating and respiration. This paper presented a semi-automatic framework dedicated to coronary artery segmentation in 3D+t Computed Tomography Angiography (CTA) sequence. The proposed segmentation scheme consists of two parts: vessel centerline extraction and vessel shape recovering. For the starting phase, spherical flux based minimal path method was employed to extract the main centerlines of coronary artery tree. To implement similar centerline extraction scheme automatically in subsequent phases, a novel method key-points detecting method was proposed and an endpoints searching procedure was taken. In this process, the key-points on distal vessels are easily got mismatched. A centerline tracking algorithm constrained by patient-specific vessel length was used to complete the extraction. The the overlap (OV) results of proposed framework are 93.56% (LAD), 90.96% (LCX) and 93.76% (RCA). We also achieved accuracy (AC) result: 0.6508mm (LAD) 0.6141mm (LCX) and 0.6297mm (RCA) which are less than the data voxel size (0.68mm).
机译:提取冠状动脉在心脏计算机断层扫描血管造影(CTA)的临床应用中很重要。然而,由于复杂的解剖结构,图像质量的变化以及由心脏跳动和呼吸引起的运动,因此获得冠状动脉的精确分割具有挑战性。本文提出了一种半自动框架,专门用于3D + t计算机断层扫描血管造影(CTA)序列中的冠状动脉分割。提出的分割方案包括两部分:血管中心线提取和血管形状恢复。在开始阶段,采用基于球面通量的最小路径方法提取冠状动脉树的主要中心线。为了在后续阶段自动实现相似的中心线提取方案,提出了一种新的方法关键点检测方法,并采用了端点搜索程序。在此过程中,远端血管的关键点很容易失配。使用受患者特定血管长度限制的中心线跟踪算法来完成提取。提议框架的重叠(OV)结果为93.56%(LAD),90.96%(LCX)和93.76%(RCA)。我们还获得了精度(AC)结果:0.6508mm(LAD)0.6141mm(LCX)和0.6297mm(RCA)小于数据体素尺寸(0.68mm)。

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