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2019冠状病毒病患者的风险评估:一种多类别分类方法。

Risk assessment in COVID-19 patients: A multiclass classification approach.

作者信息

Bárcenas Roberto, Fuentes-García Ruth

机构信息

Departamento de Matemáticas, Facultad de Ciencias, Universidad Nacional Autónoma de Mexico, Mexico.

出版信息

Inform Med Unlocked. 2022;32:101023. doi: 10.1016/j.imu.2022.101023. Epub 2022 Jul 19.

Abstract

Understanding SARS-CoV-2 infection that causes COVID-19 disease among the population was fundamental to determine the risk factors associated with severe cases or even death. Amidst the study of the pandemic, Artificial Intelligence (AI) and Machine Learning (ML) have been successfully applied in many areas such as biomedicine. Using a dataset from the Mexican Ministry of Health, we performed a multiclass classification scheme for the detection of risks in COVID-19 patients and implemented three Machine Learning algorithms achieving the following accuracy measures: Random Forest (89.86%), GBM (89.37%) XGBoost (89.97%). The key findings are the identification of relevant components associated with different severities of COVID-19 disease. Among these factors, we found sex, age, days elapsed from the beginning of symptoms, symptoms such as dyspnea and polypnea; and other comorbidities such as diabetes and hypertension. This setting allows us to establish predicting algorithms to model the risk that an individual or a specific group of people face after contracting COVID-19 and the factors associated with developing complications or receiving appropriate treatment.

摘要

了解导致人群中新冠肺炎疾病的新型冠状病毒感染情况,对于确定与重症甚至死亡相关的风险因素至关重要。在这场大流行的研究中,人工智能(AI)和机器学习(ML)已成功应用于生物医学等许多领域。利用墨西哥卫生部的数据集,我们对新冠肺炎患者的风险检测执行了多类分类方案,并实施了三种机器学习算法,获得了以下准确率指标:随机森林(89.86%)、梯度提升机(GBM,89.37%)、极端梯度提升(XGBoost,89.97%)。关键发现是识别出与新冠肺炎疾病不同严重程度相关的相关因素。在这些因素中,我们发现了性别、年龄、从症状出现开始经过的天数、诸如呼吸困难和呼吸急促等症状;以及其他合并症,如糖尿病和高血压。这种情况使我们能够建立预测算法,以模拟个体或特定人群感染新冠肺炎后面临的风险以及与发生并发症或接受适当治疗相关的因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e9b4/9295315/697ec26b8e9d/gr1_lrg.jpg

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