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Segmentation and Quantitative Analysis of Intrathoracic Airway Trees from Computed Tomography Images

机译:计算机断层扫描图像对胸内气道树的分割和定量分析

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摘要

The segmentation of the human airway tree from volumetric multidetector-row computed tomography images is an important prerequisite for many clinical applications and physiologic studies. We present a new airway segmentation method based on fuzzy connectivity. Small adaptive regions of interest are used that follow the airway branches as they are segmented. This method works on various types of scans (low dose and regular dose, normal subjects and diseased subjects) without the need for the user to manually adjust any parameters. Comparison with a commonly used region-growing segmentation algorithm shows that this method retrieves a significantly higher count of airway branches. In an additional processing step, this method provides accurate cross-sectional airway measurements that are conducted in the original gray-level volume. Validation on a phantom shows that subvoxel accuracy is achieved for all airway sizes and airway orientations. The utility of the reported method is demonstrated in a comparative analysis of normal and cystic fibrosis airway trees.
机译:从体积多探测器行计算机断层摄影图像中分割人的气道树是许多临床应用和生理学研究的重要前提。我们提出了一种基于模糊连通度的气道分割新方法。使用小的自适应感兴趣区域,当它们被分割时遵循气道分支。该方法适用于各种类型的扫描(低剂量和常规剂量,正常受试者和患病受试者),而无需用户手动调整任何参数。与常用的区域增长分割算法的比较表明,该方法可检索到明显更多的气道分支。在另一个处理步骤中,此方法提供了在原始灰度级体积中进行的准确的气道横截面测量。幻像上的验证表明,对于所有气道尺寸和气道方向,亚体素准确性均达到。在正常和囊性纤维化气道树的比较分析中证明了该方法的实用性。

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