Early Detection of Tuberculosis using Chest X-Ray (CXR) with Computer-Aided Diagnosis

Ilena Gabriella, Kamarga Stella A., Setiawan Agung W.
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引用次数: 11

Abstract

In this paper, a Computer-aided Diagnosis (CADx) system based on image processing is proposed to assist doctors and radiologists in interpreting Chest X-rays (CXR) for early detection of lung Tuberculosis (TB). CXR can indicate lung abnormalities including TB. However, the interpretations of CXR might vary from one individual to another. It is important to accurately and quickly detect TB because early treatment will prevent more infections and fatal effects from happening. The steps that were performed by the proposed system consisted of preprocessing, segmentation, feature extraction, and classification. In the preprocessing stage homomorphic filter, histogram equalization, median filter, and Contrast-Limited Adaptive Histogram Equalization (CLAHE) were applied to increase image quality. Segmentation was done by using Active Contour Model. Feature extraction was performed by analyzing the image’s first order statistical features. The last stage, classification, was based on the mean values. The results indicated that the system can increase specificity while maintaining sensitivity and accuracy of TB diagnosis. In conclusion, there is a high chance that CADx can assist doctors and radiologists for a more accurate and quick interpretation of CXR in early detection of TB.
利用计算机辅助诊断的胸部x线早期发现肺结核
本文提出了一种基于图像处理的计算机辅助诊断(CADx)系统,以帮助医生和放射科医生对胸部x光片(CXR)进行解释,以早期发现肺结核(TB)。CXR可提示包括结核在内的肺部异常。然而,对CXR的解释可能因人而异。准确和快速发现结核病非常重要,因为早期治疗将防止更多感染和致命后果的发生。该系统完成了预处理、分割、特征提取和分类等步骤。预处理阶段采用同态滤波、直方图均衡化、中值滤波和对比度有限自适应直方图均衡化(CLAHE)来提高图像质量。采用活动轮廓模型进行分割。通过分析图像的一阶统计特征进行特征提取。最后一个阶段,分类,是基于平均值。结果表明,该系统在保持结核诊断敏感性和准确性的同时,提高了特异性。总之,CADx很有可能帮助医生和放射科医生在早期发现结核病时更准确、更快速地解释CXR。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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