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Vessel Centerline Tracking in CTA and MRA Images Using Hough Transform

机译:使用霍夫变换的CTA和MRA图像中的血管中心线跟踪

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Vascular disease is characterized by any condition that affects the circulatory system. Recently, a demand for sophisticated software tools that can characterize the integrity and functional state of vascular networks from different vascular imaging modalities has appeared. Such tools face significant challenges such as: large datasets, similarity in intensity distributions of other organs and structures, and the presence of complex vessel geometry and branching patterns. Towards that goal, this paper presents a new approach to automatically track vascular networks from CTA and MRA images. Our methodology is based on the Hough transform to dynamically estimate the centerline and vessel diameter along the vessel trajectory. Furthermore, the vessel architecture and orientation is determined by the analysis of the Hessian matrix of the CTA or MRA intensity distribution. Results are shown using both synthetic vessel datasets and real human CTA and MRA images. The tracking algorithm yielded high reproducibility rates, robustness to different noise levels, associated with simplicity of execution, which demonstrates the feasibility of our approach.
机译:血管疾病的特征是任何影响循环系统的疾病。最近,对能够从不同的血管成像模式表征血管网络的完整性和功能状态的复杂软件工具的需求已经出现。这些工具面临着巨大的挑战,例如:大型数据集,其他器官和结构的强度分布相似,复杂的血管几何形状和分支模式。为了实现这一目标,本文提出了一种从CTA和MRA图像自动跟踪血管网络的新方法。我们的方法基于霍夫变换,可动态估算沿血管轨迹的中心线和血管直径。此外,通过对CTA或MRA强度分布的Hessian矩阵进行分析来确定血管的结构和方向。使用合成血管数据集和真实的人类CTA和MRA图像显示结果。跟踪算法产生了高可重复性,对不同噪声水平具有鲁棒性,并且执行简单,这证明了我们方法的可行性。

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