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A Machine Learning Approach as an Aid for Early COVID-19 Detection

机译:一种机器学习方法作为早期Covid-19检测的辅助方法

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摘要

The novel coronavirus SARS-CoV-2 that causes the disease COVID-19 has forced us to go into our homes and limit our physical interactions with others. Economies around the world have come to a halt, with non-essential businesses being forced to close in order to prevent further propagation of the virus. Developing countries are having more difficulties due to their lack of access to diagnostic resources. In this study, we present an approach for detecting COVID-19 infections exclusively on the basis of self-reported symptoms. Such an approach is of great interest because it is relatively inexpensive and easy to deploy at either an individual or population scale. Our best model delivers a sensitivity score of 0.752, a specificity score of 0.609, and an area under the curve for the receiver operating characteristic of 0.728. These are promising results that justify continuing research efforts towards a machine learning test for detecting COVID-19.
机译:导致疾病Covid-19的新型冠状病毒SARS-COV-2迫使我们进入我们的家庭并限制与他人的身体互动。世界各地的经济已经停止,不必要的企业被迫关闭,以防止病毒进一步繁殖。由于缺乏诊断资源,发展中国家具有更多困难。在这项研究中,我们提出了一种在自我报告症状的基础上专门检测Covid-19感染的方法。这种方法非常兴趣,因为它相对便宜且易于以个人或人口规模部署。我们的最佳型号可提供0.752的灵敏度得分,特异性得分为0.609,以及曲线下的区域,用于接收器的操作特性为0.728。这些是有希望的结果,证明了对检测Covid-19的机器学习测试的持续研究工作。

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