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A Semiautomatic Segmentation Algorithm for Extracting the Complete Structure of Acini from Synchrotron Micro-CT Images

机译:一种半自动分割算法,用于从同步CT图像中提取acini的完整结构

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Pulmonary acinus is the largest airway unit provided with alveoli where blood/gas exchange takes place. Understanding the complete structure of acinus is necessary to measure the pathway of gas exchange and to simulate various mechanical phenomena in the lungs. The usual manual segmentation of a complete acinus structure from their experimentally obtained images is difficult and extremely time-consuming, which hampers the statistical analysis. In this study, we develop a semiautomatic segmentation algorithm for extracting the complete structure of acinus from synchrotron micro-CT images of the closed chest of mouse lungs. The algorithm uses a combination of conventional binary image processing techniques based on the multiscale and hierarchical nature of lung structures. Specifically, larger structures are removed, while smaller structures are isolated from the image by repeatedly applying erosion and dilation operators in order, adjusting the parameter referencing to previously obtained morphometric data. A cluster of isolated acini belonging to the same terminal bronchiole is obtained without floating voxels. The extracted acinar models above 98% agree well with those extracted manually. The run time is drastically shortened compared with manual methods. These findings suggest that our method may be useful for taking samples used in the statistical analysis of acinus.
机译:肺部Acinus是最大的气道单元,提供肺泡的肺泡。了解缩进的Acinus的完整结构是为了测量气体交换途径,并模拟肺中各种机械现象。从实验所获得的图像中常用的ACINUS结构的通常手动分割是困难而极其耗时的,这妨碍了统计分析。在本研究中,我们开发了一种半自动分割算法,用于从闭合的小鼠肺胸部的同步CT图像中提取acinus的完整结构。该算法基于多尺度和肺部结构的分层性质使用传统二元图像处理技术的组合。具体地,除去较大的结构,而通过重复施加侵蚀和扩张操作器,从图像中重复施加侵蚀和扩张运算符,调整引用以前获得的形态数据的参数,从图像中分离较小的结构。在不漂浮体素的情况下获得属于同一终端支气管的分离的aciin簇。 98%以上的提取的缩醛模型与手动提取的那些吻合良好。与手动方法相比,运行时间急剧缩短。这些发现表明,我们的方法可用于采用在亚因姆的统计分析中使用的样品。

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