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基于图谱的容积X射线CT图像肺叶分割

Atlas-driven lung lobe segmentation in volumetric X-ray CT images.

作者信息

Zhang Li, Hoffman Eric A, Reinhardt Joseph M

机构信息

University of Iowa, Iowa City, IA 52242, USA.

出版信息

IEEE Trans Med Imaging. 2006 Jan;25(1):1-16. doi: 10.1109/TMI.2005.859209.

Abstract

High-resolution X-ray computed tomography (CT) imaging is routinely used for clinical pulmonary applications. Since lung function varies regionally and because pulmonary disease is usually not uniformly distributed in the lungs, it is useful to study the lungs on a lobe-by-lobe basis. Thus, it is important to segment not only the lungs, but the lobar fissures as well. In this paper, we demonstrate the use of an anatomic pulmonary atlas, encoded with a priori information on the pulmonary anatomy, to automatically segment the oblique lobar fissures. Sixteen volumetric CT scans from 16 subjects are used to construct the pulmonary atlas. A ridgeness measure is applied to the original CT images to enhance the fissure contrast. Fissure detection is accomplished in two stages: an initial fissure search and a final fissure search. A fuzzy reasoning system is used in the fissure search to analyze information from three sources: the image intensity, an anatomic smoothness constraint, and the atlas-based search initialization. Our method has been tested on 22 volumetric thin-slice CT scans from 12 subjects, and the results are compared to manual tracings. Averaged across all 22 data sets, the RMS error between the automatically segmented and manually segmented fissures is 1.96 +/- 0.71 mm and the mean of the similarity indices between the manually defined and computer-defined lobe regions is 0.988. The results indicate a strong agreement between the automatic and manual lobe segmentations.

摘要

高分辨率X射线计算机断层扫描(CT)成像常用于临床肺部应用。由于肺功能存在区域差异,且肺部疾病通常在肺内分布不均,因此逐叶研究肺部很有必要。所以,不仅要分割肺,还要分割叶间裂。在本文中,我们展示了使用一个编码有肺部解剖先验信息的解剖学肺部图谱来自动分割斜叶间裂。使用来自16名受试者的16份容积CT扫描来构建肺部图谱。将一种脊性度量应用于原始CT图像以增强裂沟对比度。裂沟检测分两个阶段完成:初始裂沟搜索和最终裂沟搜索。在裂沟搜索中使用模糊推理系统来分析来自三个来源的信息:图像强度、解剖学平滑约束以及基于图谱的搜索初始化。我们的方法已在来自12名受试者的22份容积薄层CT扫描上进行了测试,并将结果与手动描绘进行比较。在所有22个数据集上进行平均,自动分割和手动分割的裂沟之间的均方根误差为1.96 +/- 0.71毫米,手动定义和计算机定义的叶区域之间的相似性指数平均值为0.988。结果表明自动和手动叶分割之间有很强的一致性。

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