Forecasting COVID-19 Infection Rates with Artificial Intelligence Model

IF 0.4 Q4 ECONOMICS International Real Estate Review Pub Date : 1998-06-30 DOI:10.53383/100354
J. Yang
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Abstract

This study applies an artificial intelligence (AI) based model to predict the infection rate of coronavirus disease 2019 (COVID-19). The results provide information for managing public and global health risks regarding pandemic controls, disease diagnosis, vaccine development, and socio-economic responses. The machine learning algorithm is developed with the Python program to analyze pathways and evolutions of infection. The finding is robust in predicting the virus spread situation. The machine learning algorithms predict the rate of spread of COVID -19 with an accuracy of nearly 90%. The algorithms simulate the virus spread distance and coverage. We find that self-isolation for suspected cases plays an important role in containing the pandemic. The COVID-19 virus could spread asymptotically (silent spreader); therefore, earlier doctor consultation and testing of the virus could reduce its spread in local communities.
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用人工智能模型预测COVID-19感染率
本研究采用基于人工智能(AI)的模型预测2019冠状病毒病(COVID-19)的感染率。研究结果为管理大流行控制、疾病诊断、疫苗开发和社会经济应对方面的公共和全球卫生风险提供了信息。机器学习算法是用Python程序开发的,用于分析感染的途径和进化。这一发现在预测病毒传播情况方面是强有力的。机器学习算法预测COVID -19的传播率,准确率接近90%。算法模拟了病毒的传播距离和覆盖范围。我们发现,疑似病例的自我隔离在遏制疫情方面发挥着重要作用。COVID-19病毒可能渐进传播(无声传播者);因此,尽早进行医生咨询和病毒检测可以减少其在当地社区的传播。
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来源期刊
CiteScore
0.80
自引率
14.30%
发文量
10
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