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Automatic detection of aortic dissection in contrast-enhanced CT

机译:对比增强CT自动检测主动脉夹层

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Aortic dissection is a condition in which a tear in the inner wall of the aorta allows blood to flow between two layers of the aortic wall. Aortic dissection is associated with severe chest pain and can be deadly. Contrast-enhanced CT is the main modality for detection of aortic dissection. Aortic dissection is one of the target abnormalities during evaluation of a triple rule-out CT in emergency cases. In this paper, we present a method for automatic patient-level detection of aortic dissection. Our algorithm starts by an atlas-based segmentation of the aorta which is used to produce cross-sectional images of the organ. Segmentation refinement, flap detection and shape analysis are employed to detect aortic dissection in these cross-sectional slices. Then, the slice-level results are aggregated to render a patient-level detection result. We tested our algorithm on a data set of 37 contrast-enhanced CT volumes, with 13 cases of aortic dissection. We achieved an accuracy of 83.8%, a sensitivity of 84.6% and a specificity of 83.3%.
机译:主动脉夹层是主动脉内壁中撕裂的条件允许血液在两层主动脉壁之间流动。主动脉夹层与严重的胸痛有关,可以致命。对比度增强的CT是检测主动脉夹层的主要模态。主动脉夹层是在应急情况下评估三重排除CT期间的靶异常之一。本文介绍了一种自动患者水平检测的方法。我们的算法开始由主动脉的基于地图集的atlas分段,用于产生器官的横截面图像。分段细化,使用翼片检测和形状分析来检测这些横截面切片中的主动脉夹层。然后,聚合切片级结果以呈现患者级检测结果。我们在37个对比度增强CT卷的数据集上测试了算法,13例主动脉夹层。我们的准确性为83.8%,敏感性为84.6 \%,特异性为83.3%。

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