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Identification of incorrect segmentation and centerline correction of coronary arteries in CT angiographic images

机译:CT血管造影图像中冠状动脉的不正确分割和中线校正的识别

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For computer-aided diagnosis of cardiovascular diseases, accurately extracted centerlines of coronary arteries in computed tomography (CT) angiographic images are important, because they are the basis of curved multi-planar reformation (cMPR) creation and stenosis analysis. Within all the centerline extraction methods, the methods performed after vessel segmentation are easier to implement, of less running time and more robust, and for these reasons, they are still used in many practical applications. However, because of segmentation errors and vascular abnormalities, segmented vessels are not always correct. If centerline extraction seriously depends on vessel segmentation, incorrectly segmented vessels may probably result in errors in their centerlines (like incorrect local curvatures of centerlines). To obtain correct centerlines, we need to identify the incorrectly segmented vessels first, and then correct the centerlines of these vessels. In this paper, we propose two automatic methods to identify the incorrectly segmented vessels and correct their centerlines respectively. For the identification of incorrect vessel segmentation, we propose a method based on the vessel diameter fitting. And for centerline correction, we propose a method based on the precise smoothness to draw deviated centerlines back to the correct locations. We have validated the proposed methods on real CT angiographic datasets of coronary arteries. The quantitative evaluation results show that the proposed methods can effectively detect and correct centerline errors arising from the erroneous vessel segmentation in most cases. And we can see from the experimental results that the number of false positive and false negative center points reduces a lot when compared with the original results without centerline correction.
机译:对于计算机辅助诊断心血管疾病,在计算机断层扫描(CT)血管造影图像中准确提取冠状动脉中心线非常重要,因为它们是弯曲多平面重建(cMPR)创建和狭窄分析的基础。在所有中心线提取方法中,血管分割后执行的方法更易于实现,运行时间更少且更可靠,并且由于这些原因,它们仍在许多实际应用中使用。但是,由于分割错误和血管异常,分割的血管并不总是正确的。如果中心线提取严重依赖于血管分割,则错误地分割血管可能会导致其中心线错误(例如错误的中心线局部曲率)。为了获得正确的中心线,我们需要先识别未正确分割的血管,然后再校正这些血管的中心线。在本文中,我们提出了两种自动方法来识别错误分割的血管并分别校正其中心线。为了识别不正确的血管分割,我们提出了一种基于血管直径拟合的方法。对于中心线校正,我们提出了一种基于精确平滑度的方法,可将偏离的中心线拉回到正确的位置。我们已经在冠状动脉的真实CT血管造影数据集上验证了提出的方法。定量评估结果表明,在大多数情况下,所提出的方法可以有效地检测和纠正由错误的血管分割引起的中心线误差。从实验结果可以看出,与没有中心线校正的原始结果相比,假阳性和假阴性中心点的数量减少了很多。

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