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Hybrid lung segmentation in chest CT images for computer-aided diagnosis

机译:胸部CT图像中的混合肺分割可用于计算机辅助诊断

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We propose an automatic segmentation method for accurately identifying lung surfaces in chest CT images. Our method consists of three steps. First, lungs and airways are extracted by an inverse seeded region growing and connected component labeling. Second, trachea and large airways are delineated from the lungs by three-dimensional region growing. Third, accurate lung region borders are obtained by subtracting the result of the second step from that of the first step. The proposed method has been applied to 10 patient datasets with lung cancer or pulmonary embolism. Experimental results show that our segmentation method extracts lung surfaces automatically and accurately. Averaged over all volumes, the root mean square difference between the computer and manual analysis is 1.2 pixels.
机译:我们提出了一种自动分割方法,用于准确识别胸部CT图像中的肺表面。我们的方法包括三个步骤。首先,通过反向播种区域生长和连接的成分标记来提取肺和气道。其次,通过三维区域生长从肺中描绘出气管和大气道。第三,通过从第一步的结果中减去第二步的结果来获得准确的肺区域边界。所提出的方法已应用于10例患有肺癌或肺栓塞的患者数据集。实验结果表明,我们的分割方法可以自动,准确地提取肺表面。对所有体积取平均值,计算机和手动分析之间的均方根差为1.2像素。

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