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Topological leakage detection and freeze-and-grow propagation for improved CT-based airway segmentation

机译:拓扑泄漏检测和冻结增长方法,用于改进基于CT的气道分割

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Numerous large multi-center studies are incorporating the use of computed tomography (CT)-based characterization of the lung parenchyma and bronchial tree to understand chronic obstructive pulmonary disease status and progression. To the best of our knowledge, there are no fully automated airway tree segmentation methods, free of the need for user review. A failure in even a fraction of segmentation results necessitates manual revision of all segmentation masks which is laborious considering the thousands of image data sets evaluated in large studies. In this paper, we present a novel CT-based airway tree segmentation algorithm using topological leakage detection and freeze-and-grow propagation. The method is fully automated requiring no manual inputs or post-segmentation editing. It uses simple intensity-based connectivity and a freeze-and-grow propagation algorithm to iteratively grow the airway tree starting from an initial seed inside the trachea. It begins with a conservative parameter and then, gradually shifts toward more generous parameter values. The method was applied on chest CT scans of fifteen subjects at total lung capacity. Airway segmentation results were qualitatively assessed and performed comparably to established airway segmentation method with no major visual leakages.
机译:许多大型的多中心研究正在结合使用基于计算机断层扫描(CT)的肺实质和支气管树特征来了解慢性阻塞性肺疾病的状况和进展。据我们所知,没有全自动的气道树分割方法,无需用户审查。即使分割结果的一小部分失败,也必须对所有分割蒙版进行手动修订,考虑到在大型研究中评估的数千个图像数据集,这非常费力。在本文中,我们提出了一种新的基于CT的气道树分割算法,该算法使用拓扑泄漏检测和冻结增长增长。该方法是完全自动化的,不需要手动输入或分段后编辑。它使用基于强度的简单连接性和冻结增长算法,从气管内的初始种子开始迭代生长气道树。它以保守的参数开始,然后逐渐向更宽泛的参数值移动。该方法用于15位总肺容量的受试者的胸部CT扫描。定性评估气道分割结果,并与建立的气道分割方法进行比较,且无重大视觉泄漏。

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