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Airway wall thickness assessment: a new functionality in virtual bronchoscopy investigation

机译:气道壁厚评估:虚拟支气管镜检查的新功能

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While classic virtual bronchoscopy offers visualization facilities for investigating the shape of the inner airway wall surface, it provides no information regarding the local thickness of the wall. Such information may be crucial for evaluating the severity of remodeling of the bronchial wall in asthma and to guide bronchial biopsies for staging of lung cancers. This paper develops a new functionality with the virtual bronchoscopy, allowing to estimate and map the information of the bronchus wall thickness on the lumen wall surface, and to display it as coded colors during endoluminal navigation. The local bronchus wall thickness estimation relies on a new automated 3D segmentation approach using strong 3D morphological filtering and model-fitting. Such an approach reconstructs the inner/outer airway wall surfaces from multi-detector CT data as follows. First, the airway lumen is segmented and its surface geometry reconstructed using either a restricted Delaunay or a Marching Cubes based triangulation approach. The lumen mesh is then locally deformed in the surface normal direction under specific force constraints which stabilize the model evolution at the level of the outer bronchus wall surface. The developed segmentation approach was validated with respect to both 3D mathematically-simulated image phantoms of bronchus-vessel subdivisions and to state-of-the-art cross-section area estimation techniques when applied to clinical data. The investigation in virtual bronchoscopy mode is further enhanced by encoding the local wall thickness at each vertex of the lumen surface mesh and displaying it during navigation, according to a specific color map.
机译:尽管经典的虚拟支气管镜检查提供了可视化工具来调查气道内壁表面的形状,但它没有提供有关壁的局部厚度的信息。这些信息对于评估哮喘中支气管壁重塑的严重性以及指导支气管活检对肺癌的分期至关重要。本文利用虚拟支气管镜开发了一种新功能,可以估算和绘制管腔壁表面上的支气管壁厚度信息,并在腔内导航时将其显示为编码颜色。局部支气管壁厚估计依赖于一种新的自动3D分割方法,该方法使用了强大的3D形态学过滤和模型拟合功能。这样的方法如下从多探测器CT数据重建内/外气道壁表面。首先,对气管腔进行分割,并使用受限的Delaunay或基于Marching Cubes的三角剖分方法重建其表面几何形状。然后,在特定的力约束下,管腔网格在表面法线方向上局部变形,这使模型在支气管外壁表面的水平处稳定下来。在将3D数学模拟的支气管-血管细分图像模型和最新的横截面积估计技术应用于临床数据时,已验证了开发的分割方法。根据特定的颜色图,通过对管腔表面网格的每个顶点处的局部壁厚进行编码并在导航期间进行显示,可以进一步增强虚拟支气管镜模式下的检查。

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