使用水平集分割的结核胸片纵隔形状表征

Sukanta Kumar Tulo, Satyavratan Govindarajan, Palaniappan Ramu, R. Swaminathan
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引用次数: 1

摘要

纵隔被认为是几种胸部相关病理的主要解剖区域之一。胸部X线片中纵隔的几何变化可作为结核病早期检测的潜在图像标记。这项研究试图使用水平集对CXR中的纵隔进行分割,以表征结核病的形状。本研究的CXR图像来自公共数据库。采用基于边缘的距离正则化水平集进化来分割肺部,然后采用基于区域的Chan-Vese模型来提取纵隔区域。从分割的图像中提取纵隔区域和肺部区域等特征。此外,计算纵隔与肺的面积比。对特征进行统计分析,以区分正常图像和TB图像。结果表明,所提出的分割方法能够在CXR中分割肺部并提取纵隔。发现纵隔面积和纵隔与肺面积的比值在肺结核的鉴别诊断中具有统计学意义。与正常人相比,肺结核影像中纵隔面积更大。肺野分割的性能也被观察到与文献一致。与现有方法相比,CXRs中的纵隔分割方法是一种新的方法。由于所提出的基于纵隔图像分析的方法提供了更好的形状特征,该研究可能在鉴别结核病方面具有临床实用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
SHAPE CHARACTERIZATION OF MEDIASTINUM IN TUBERCULOSIS CHEST RADIOGRAPHS USING LEVEL SET SEGMENTATION
Mediastinum is considered as one of the substantial anatomical regions for the gross diagnosis of several chest related pathologies. The geometric variations of the mediastinum in Chest Radiographs (CXRs) could be utilised as potential image markers in the early detection of Tuberculosis (TB). This study attempts to segment mediastinum in CXRs using level sets for the shape characterization of TB conditions. The CXR images for this study are considered from a public database. An edge-based distance regularized level set evolution is employed to segment the lungs followed by a region-based Chan-Vese model that extracts mediastinum region. Features such as mediastinum area and lungs area are extracted from the segmented images. Further, mediastinum to lungs area ratio is calculated. Statistical analysis is performed on the features to differentiate normal and TB images. Results show that the proposed segmentation approach is able to segment the lungs and extract the mediastinum in CXRs. It is found that features namely mediastinum area and mediastinum to lungs area ratio are statistically significant in the differentiation of TB. Larger mediastinum area is observed in TB images as compared to normal. The performance of lung field segmentation is also observed to be in line with the literature. The mediastinum segmentation approach in CXRs obtains to be a novel method as compared to the existing methods. As the proposed approach based on mediastinum image analysis provides better shape characterization, the study could be clinically useful in the differentiation of TB conditions.
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