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Automated Triage Of Covid-19 From Various Lung Abnormalities Using Chest Ct Features

机译:使用胸部CT功能的各种肺异常自动化Covid-19的自动化

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The outbreak of COVID-19 has led to a global effort to decelerate the pandemic spread. For this purpose chest computed-tomography (CT) based screening and diagnosis of COVID-19 suspected patients is utilized, either as a support or replacement to reverse transcription-polymerase chain reaction (RT-PCR) test. In this paper, we propose a fully automated AI based system that takes as input chest CT scans and triages COVID-19 cases. More specifically, we produce multiple descriptive features, including lung and infections statistics, texture, shape and location, to train a machine learning based classifier that distinguishes between COVID-19 and other lung abnormalities (including community acquired pneumonia). We evaluated our system on a dataset of 2191 CT cases and demonstrated a robust solution with 90.8% sensitivity at 85.4% specificity with 94.0% ROC-AUC. In addition, we present an elaborated feature analysis and ablation study to explore the importance of each feature.
机译:Covid-19爆发导致全球努力减速大流行蔓延。 为此目的,利用基于Covid-19怀疑患者的基于胸部的筛选和诊断,作为逆转录聚合酶链反应(RT-PCR)试验的支持或替代。 在本文中,我们提出了一个完全自动化的AI系统,其作为输入胸部CT扫描和三轴Covid-19案例。 更具体地说,我们生产多种描述性功能,包括肺和感染统计,纹理,形状和位置,培训基于机器的基于机器学习的分类器,这些分类器区分Covid-19和其他肺异常(包括群落获得的肺炎)。 我们在2191cc案例的数据集上评估了我们的系统,并展示了90.8%的浓度为90.8%的浓度,94.0%Roc-AUC。 此外,我们提出了一个详细的特征分析和消融研究,以探讨每个功能的重要性。

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