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Intravascular Ultrasound Image Segmentation: A Fast-Marching Method

机译:血管内超声图像分割:一种快速进行的方法

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摘要

Intravascular ultrasound (IVUS) is a medical imaging technique that not only provides three-dimensional information about the blood vessel lumen and wall, but also directly depicts atherosclerotic plaque structure and morphology. Automatic processing of large data sets of IVUS data represents an important challenge due to ultrasound speckle and technology artifacts. A new semi-automatic IVUS segmentation model, the fast-marching method, based on grayscale statistics of the images, is compared to active contour segmentation. With fast-marching segmentation, the lumen, intima plus plaque structure, and media contours are computed in parallel. Preliminary results of this new IVUS segmentation model agree very well with vessel wall contours. Moreover, fast-marching segmentation is less sensitive to initialization with average distance between segmentation performed with different initializations <0.85 % and Haussdorf distance <2.6 %.
机译:血管内超声(IVUS)是一种医学成像技术,不仅可以提供有关血管内腔和壁的三维信息,而且可以直接描绘动脉粥样硬化斑块的结构和形态。由于超声散斑和技术伪像,IVUS数据的大数据集的自动处理代表了一项重要的挑战。一种新的半自动IVUS分割模型,即基于图像灰度统计的快速前进方法,与主动轮廓分割进行了比较。通过快速行进分割,可以并行计算内腔,内膜加斑块结构和介质轮廓。这种新的IVUS分割模型的初步结果与血管壁轮廓非常吻合。此外,快速行进分割对初始化的敏感性较低,在不同初始化之间执行的分割之间的平均距离<0.85%和Haussdorf距离<2.6%。

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