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首页> 外文期刊>Journal of biological systems >CURVATURE-BASED CORRECTION ALGORITHM FOR AUTOMATIC LUNG SEGMENTATION ON CHEST CT IMAGES
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CURVATURE-BASED CORRECTION ALGORITHM FOR AUTOMATIC LUNG SEGMENTATION ON CHEST CT IMAGES

机译:基于曲线的胸部CT图像肺段自动校正算法

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摘要

In order to ameliorate the lung defects caused by missed juxtapleural nodules in lung segmentation on chest computed tomography (CT) images, we develop a Newton-Cotes- based smoothing algorithm (NCBS) which is used as a preliminary step to remove noises as many as possible. Next considering the crescent outline features of the lung, we propose a curvature-based correction algorithm (CBC) for the determination of the correction threshold. The application of the proposed algorithms is demonstrated in the process of lung segmentation and the experimental results on 25 real datasets are illustrated. Furthermore, some experiments are conducted to investigate the effects of the key parameters in CBC on the performances of lung segmentation so as to decide their optimal values. In addition, the CBC is compared with other methods analytically and experimentally. The overall results show that our proposed algorithm in lung segmentation excels the related methods on the capability of automatic selection of the correction threshold, as well as the performances of accuracy, efficiency and feasibility.
机译:为了改善在胸部计算机断层扫描(CT)图像上进行的肺部分割中缺失的胸膜结节而导致的肺部缺损,我们开发了一种基于牛顿-科特斯的平滑算法(NCBS),该算法被用作去除噪声的初步步骤。可能。接下来考虑肺的月牙形轮廓特征,我们提出了一种基于曲率的校正算法(CBC),用于确定校正阈值。证明了所提算法在肺分割过程中的应用,并说明了在25个真实数据集上的实验结果。此外,进行了一些实验以研究CBC中关键参数对肺分割性能的影响,从而确定其最佳值。此外,CBC与其他方法进行了分析和实验比较。总体结果表明,本文提出的肺分割算法在自动选择校正阈值的能力,准确性,效率和可行性等方面均优于相关方法。

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