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Segmentation and Removal of Pulmonary Arteries, Veins and Left Atrial Appendage for Visualizing Coronary and Bypass Arteries

机译:用于可视化冠状动脉和旁路动脉的肺动脉,静脉和左心房阑尾的分割和去除

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In this paper we present an automatic heart segmentation system for helping the diagnosis of the coronary artery diseases (CAD). The goal is to visualize the heart from a cardiac CT image with pulmonary veins, pulmonary arteries and left atrial appendage removed so that doctors can clearly see major coronary artery trees, aorta and bypass arteries if exist. The system combines model-based detection framwork with data-driven post-refinements to create voxel-based heart mask for the visualization. The marginal space learning [6] algorithm is used to detect mesh or landmark models of different heart anatomies in the CT image. Guided by such detected models, local data-driven refinements are added to produce precise boundaries of the heart mask. The system is fully automatic and can process a 3D cardiac CT volume within 5 seconds.
机译:本文介绍了一种自动心脏分割系统,用于帮助诊断冠状动脉疾病(CAD)。目标是将心脏CT图像与肺静脉,肺动脉和左侧心房移除的心脏可视化,以便医生可以清楚地看到主要冠状动脉树,主动脉和旁路动脉,如果存在。该系统将基于模型的检测帧与数据驱动的后果结合起来,以创建基于体素的心脏掩模进行可视化。边缘空间学习[6]算法用于检测CT图像中不同心脏解剖的网格或地标模型。通过这种检测到的模型引导,添加了本地数据驱动的细化以产生心脏掩模的精确边界。系统完全自动,可以在5秒内处理3D心脏CT体积。

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