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首页> 外文期刊>International journal of biomedical imaging >Lung Segmentation in 4D CT Volumes Based on Robust Active Shape Model Matching
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Lung Segmentation in 4D CT Volumes Based on Robust Active Shape Model Matching

机译:基于鲁棒主动形状模型匹配的4D CT肺分割

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Dynamic and longitudinal lung CT imaging produce 4D lung image data sets, enabling applications like radiation treatment planning or assessment of response to treatment of lung diseases. In this paper, we present a 4D lung segmentation method that mutually utilizes all individual CT volumes to derive segmentations for each CT data set. Our approach is based on a 3D robust active shape model and extends it to fully utilize 4D lung image data sets. This yields an initial segmentation for the 4D volume, which is then refined by using a 4D optimal surface finding algorithm. The approach was evaluated on a diverse set of 152 CT scans of normal and diseased lungs, consisting of total lung capacity and functional residual capacity scan pairs. In addition, a comparison to a 3D segmentation method and a registration based 4D lung segmentation approach was performed. The proposed 4D method obtained an average Dice coefficient of0.9773±0.0254, which was statistically significantly better (pvalue≪0.001) than the 3D method (0.9659±0.0517). Compared to the registration based 4D method, our method obtained better or similar performance, but was 58.6% faster. Also, the method can be easily expanded to process 4D CT data sets consisting of several volumes.
机译:动态和纵向肺部CT成像可生成4D肺部图像数据集,从而实现诸如放射治疗计划或对肺部疾病治疗反应的评估之类的应用。在本文中,我们提出了一种4D肺分割方法,该方法相互利用所有单独的CT体积来得出每个CT数据集的分割。我们的方法基于3D鲁棒的主动形状​​模型,并将其扩展为充分利用4D肺部图像数据集。这将产生4D体积的初始分割,然后使用4D最佳表面查找算法进行细化。该方法在正常和患病肺的152次CT扫描的多样化集合中进行了评估,包括总肺活量和功能残余容量扫描对。另外,与3D分割方法和基于配准的4D肺分割方法进行了比较。拟议的4D方法获得的平均Dice系数为0.9773±0.0254,与3D方法(0.9659±0.0517)相比,统计学上显着更好(pvalue≪0.001)。与基于注册的4D方法相比,我们的方法获得了更好或相似的性能,但速度提高了58.6%。而且,该方法可以轻松扩展为处理由多个体积组成的4D CT数据集。

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