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Rapid tracking of vascular tree in angiography images based on adaptive sampling

机译:基于自适应采样的血管造影图像中血管树快速跟踪

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摘要

Efficient assessment of vascular structures plays a significant role in many medical procedures. We present a practical approach to segmentation of vascular tree in angiography images. It is implemented in an interactive 3D visualization-assisted system and consists of the following main steps. First, angiography image is filtered to enhance vessels and eliminate irrelevant structures. Second, the centerline and thickness of the vessel are extracted utilizes a novel local tracking algorithm named adaptive sampling. The sampling starts from a single seed point and marches recursively forward along possible vessel continuations to capture whole tree-like structure, in which the branch detection and thickness estimation are developed in a consistent framework. Finally, the result could be proofread in a cooperative environment. We validated and evaluated the approach using synthetic data and real images from clinical. The results showed that the system achieves a reasonable balance between fast speed and high accuracy.
机译:血管结构的高效评估在许多医疗程序中起着重要作用。我们介绍了血管造影图像中血管树分割的实用方法。它在交互式3D可视化辅助系统中实现,并由以下主要步骤组成。首先,过滤血管造影图像以增强容器并消除不相关的结构。其次,提取血管的中心线和厚度利用名为Adaptive采样的新型局部跟踪算法。采样从单个种子点开始,沿着可能的容器递归向前向前捕获整个树状结构,其中分支检测和厚度估计是在一致的框架中开发的。最后,结果可以在合作环境中校对。我们通过临床验证和评估了使用综合性数据和真实图像的方法。结果表明,该系统在快速速度和高精度之间实现了合理的平衡。

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