胸片图像肺场的自动分割

Marı́a J. Carreira, Diego Cabello, Antonio Mosquera
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引用次数: 6

摘要

在这项工作中,我们实现了一个自动分割胸片图像中的肺场的系统。图像分析过程分三个层次进行。在第一种方法中,我们对图像执行独立于领域知识的操作。这种知识在中间层被隐式地、不太详细地使用,在高级块中以显式的方式使用,与渐进分割的思想在全局上相对应。知识在高层块中的表示是以生产规则的形式。控制结构一般是自下而上的,但也存在某些混合控制阶段,其中控制是由我们所寻求的区域模型(主要器官)驱动的。我们将全局系统应用于一组45张后前路(PA)胸片,获得与放射科医生绘制的轮廓的平均重叠度为87%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic Segmentation of Lung Fields on Chest Radiographic Images

In this work we have implemented a system for the automatic segmentation of lung fields in chest radiographic images. The image analysis process is carried out in three levels. In the first one we perform operations on the image that are independent from domain knowledge. This knowledge is implicitly and not very elaborately used in the intermediate level and used in an explicit manner in the high level block, globally corresponding to the idea of progressive segmentation. The representation of knowledge in the high level block is in the form of production rules. The control structure is in general bottom-up but there are certain hybrid control stages, in which the control is driven by the region model (main organs) we are seeking. We have applied the global system to a set of 45 posteroanterior (PA) chest radiographs, obtaining a mean degree of overlap with contours drawn by radiologists of 87%.

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