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Two-pass region growing combined morphology algorithm for segmenting airway tree from CT chest scans

机译:从CT胸部扫描中分割气道树的两遍区域生长组合形态学算法

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A method based on two passes of 3D region growing and morphological reconstruction for segmenting pulmonary airway tree from computed tomography (CT) chest scans is presented to solve the problem of leakage and under-segmentation caused by the partial volume effect and motion artifact. Firstly, the first pass of 3D region growing with optimal threshold range is used to extract the rough airway. Then, three location maps of possible distal bronchi are located by using the grayscale morphological reconstruction on axial, coronal and sagittal slices respectively. Finally, on basis of rough airway extracted in first pass of 3D region growing, the second pass of 3D region growing constrained by the three location maps is implemented to obtain the completed airway. 25 clinical CT scans with thickness between 0.75 mm and 2 mm were used to test the proposed method by recording the number of tracheal branches of each order, the total number of tracheal branches and the average number of branches. Up to 12 generations of bronchi and average 156 branches were detected in the experiment which proves that our adaptive and automated method can segment the pulmonary airway with a better performance.
机译:提出了一种基于3D区域生长和形态学重构的两次方法,用于从计算机断层扫描(CT)胸部扫描中分割肺气道树的方法,以解决由局部体积效应和运动伪影引起的渗漏和分割不足的问题。首先,以最佳阈值范围生长的3D区域的第一遍用于提取粗糙的气道。然后,通过分别在轴向,冠状和矢状切片上使用灰度形态重建,定位可能的远端支气管的三个位置图。最后,基于在3D区域生长的第一遍中提取的粗略气道,实施由三个位置图约束的3D区域生长的第二遍,以获得完整的气道。通过记录每级气管分支的数量,气管分支的总数和平均分支数,使用25层厚度在0.75 mm至2 mm之间的临床CT扫描来测试该方法。实验中检测到多达12代支气管,平均156个分支,这证明我们的自适应和自动化方法可以更好地分割肺气道。

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