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Computer Aided Diagnosis of Pleural Effusion in Tuberculosis Chest Radiographs

机译:结核胸片的胸腔积液的计算机辅助诊断

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Tuberculosis (TB) is one the leading killers in the world, and its early detection at scale is a challenge that remains. Computer Aided Detection of Tuberculosis is an important possibility for the world due to the mismatch in the incidences of this disease with the number of trained human readers for its identification. In this paper, we propose novel features for the detection of one of the symptoms observed in cases of TB, Pleural Effusion (PE). We begin by segmenting the lung regions, followed by creation of a novel feature set. We achieve an ROC of 0.961 on discriminating PE against Chest X-Rays (CXRs) without incidences of TB. To validate that our system discriminates against PE, we achieve an ROC of 0.864 against CXRs showing incidences of TB but a lack of PE. These features are then tested on two publicly available datasets (One collected from the United States, and the other from China). Due to the lack of other work for detection of PE on these datasets, a direct comparison is unfortunately not possible. However, the results obtained surpass those of work on PE detection on other private datasets.
机译:结核病(TB)是世界上主要的杀手之一,其大规模早期发现仍然是一项挑战。由于这种疾病的发病率与训练有素的人类阅读者数量不匹配,因此计算机辅助检测结核病在世界范围内是一种重要的可能性。在本文中,我们提出了用于检测在结核病例中观察到的一种症状的新功能,即胸腔积液(PE)。我们首先分割肺区域,然后创建一个新颖的功能集。我们将PE与胸部X射线(CXR)区别开来,而没有TB的发生率,因此ROC达到0.961。为了验证我们的系统对PE的区分,我们针对显示TB发生率但缺乏PE的CXR实现了ROC为0.864。然后,在两个公开可用的数据集上测试这些功能(一个从美国收集,另一个从中国收集)。由于缺少用于在这些数据集上检测PE的其他工作,因此,无法进行直接比较。但是,获得的结果超过了在其他私有数据集上进行PE检测的结果。

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