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Extraction and analysis of large vascular networks in 3D micro-CT images

机译:3D微型CT图像中大型血管网络的提取与分析

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High-resolution micro-CT scanners permit the generation of three-dimensional (3D) digital images containing extensive vascular networks. These images provide data needed to study the overall structure and function of such complex networks. Unfortunately, human operators have extreme difficulty in extracting the hundreds of vascular segments contained in the images. Also, no suitable network representation exists that permits straightforward structural analysis and information retrieval. This work proposes an automatic procedure for extracting and analyzing the vascular network contained in very large 3D CT images, such as can be generated by 3D micro-CT and by helical CT scanners. The procedure is efficient in terms of both execution time and memory usage. As results demonstrate, the procedure faithfully follows human-defined measurements and provides far more information than can be defined interactively.
机译:高分辨率微CT扫描仪允许产生包含广泛血管网络的三维(3D)数字图像。这些图像提供研究这些复杂网络的整体结构和功能所需的数据。不幸的是,人类运营商在提取图像中包含的数百个血管段具有极大的困难。此外,不存在合适的网络表示,其允许直接的结构分析和信息检索。该工作提出了一种用于提取和分析包含在非常大的3D CT图像中的血管网络的自动过程,例如可以通过3D微型CT和螺旋CT扫描仪产生。在执行时间和内存使用情况下,该过程是有效的。随着结果的表明,该过程忠实地遵循人为定义的测量并提供比可以交互方式定义的更多信息。

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