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Automation process for morphometric analysis of volumetric CT data from pulmonary vasculature in rats.

机译:大鼠肺血管容积CT数据形态计量分析的自动化过程。

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摘要

With advances in medical imaging scanners, it has become commonplace to generate large multidimensional datasets. These datasets require tools for a rapid, thorough analysis. To address this need, we have developed an automated algorithm for morphometric analysis incorporating A Visualization Workshop computational and image processing libraries for three-dimensional segmentation, vascular tree generation and structural hierarchical ordering with a two-stage numeric optimization procedure for estimating vessel diameters. We combine this new technique with our mathematical models of pulmonary vascular morphology to quantify structural and functional attributes of lung arterial trees. Our physiological studies require repeated measurements of vascular structure to determine differences in vessel biomechanical properties between animal models of pulmonary disease. Automation provides many advantages including significantly improved speed and minimized operator interaction and biasing. The results are validated by comparison with previously published rat pulmonary arterial micro-CT data analysis techniques, in which vessels were manually mapped and measured using intense operator intervention.
机译:随着医学成像扫描仪的发展,生成大型多维数据集已变得司空见惯。这些数据集需要工具来进行快速,彻底的分析。为了满足这一需求,我们开发了一种用于形态计量分析的自动化算法,该算法结合了Visualization Workshop计算和图像处理库,用于三维分割,血管树生成和结构分层排序,并具有用于估计血管直径的两阶段数值优化程序。我们将这项新技术与我们的肺血管形态数学模型相结合,以量化肺动脉树的结构和功能属性。我们的生理研究要求对血管结构进行重复测量,以确定肺部疾病动物模型之间血管生物力学特性的差异。自动化具有许多优势,包括显着提高的速度以及最小化的操作员互动和偏见。通过与先前发表的大鼠肺动脉微CT数据分析技术进行比较来验证结果,在该技术中,使用密集的操作员干预手动绘制血管并进行测量。

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