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Marked Point Process for Vascular Tree Extraction on Angiogram

机译:血管造影术中提取血管树的标记点处理

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This paper presents a two-step algorithm to perform automatic extraction of vessel tree on angiogram. Firstly, the approximate vessel centerline is modeled as marked point process with each point denoting a line segment. A Double Area prior model is proposed to incorporate the geometrical and topological constraints of segments through potentials on the interaction and the type of segments. Data likelihood allows for the vesselness of the points which the segment covers, which is computed through the Hessian matrix of the image convolved with 2-D Gaussian filter at multiple scales. Optimization is realized by simulated annealing scheme using a Reversible Jump Markov Chain Monte Carlo (RJMCMC) algorithm. Secondly, the extracted approximate vessel centerline, containing global geometry shape as well as location information of vessel, is used as important guide to explore the accurate vessel edges by combination with local gradient information of angiogram. This is implemented by morphological homotopy modification and watershed transform on the original gradient image. Experimental results of clinical digitized coronary angiogram are reported.
机译:本文提出了一种两步算法来执行血管造影上血管树的自动提取。首先,将近似的血管中心线建模为标记点过程,每个点表示一条线段。提出了一种“双区域”先验模型,该模型通过相互作用和分段类型上的电势来合并分段的几何和拓扑约束。数据似然性考虑到了该段覆盖的点的血管性,这是通过将二维高斯滤波器在多个尺度上卷积的图像的Hessian矩阵计算得出的。通过使用可逆跳跃马尔可夫链蒙特卡罗(RJMCMC)算法的模拟退火方案来实现优化。其次,提取的包含总体几何形状以及血管位置信息的近似血管中心线,可作为结合血管造影术局部梯度信息探索精确血管边缘的重要指南。这是通过对原始梯度图像进行形态学同态修改和分水岭变换来实现的。报道了临床数字化冠状动脉造影的实验结果。

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