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Automated extraction of bronchus from 3D CT images of lung based on genetic algorithm and 3D region growing

机译:基于遗传算法和3D区域生长的肺3D CT图像自动提取支气管

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Abstract: In this paper, we propose a method to automate the segmentation of airway tree structures in lung from a stack of gray-scale computed tomography (CT) images. A three- dimensional seeded region growing is performed on images without any preprocessing operation to obtain the segmented bronchus area. We first apply genetic algorithm (GA) to retrieve the seed point and it is based on the geometric features (shape, location and size) of the airway tree. By the feature of the size of the lung and airway tree, an optimal threshold value is obtained. The final extracted bronchus area with the optimal threshold value is reconstructed and visualized by 3D texture mapping method. !36
机译:摘要:在本文中,我们提出了一种从灰度计算机断层扫描(CT)图像堆栈中自动分割肺中气道树结构的方法。在没有任何预处理操作的情况下对图像执行三维种子区域生长,以获得分段的支气管区域。我们首先应用遗传算法(GA)检索种子点,它基于气道树的几何特征(形状,位置和大小)。通过肺和气道树的大小特征,可以获得最佳阈值。通过3D纹理映射方法重构并可视化最终提取出的具有最佳阈值的支气管区域。 !36

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