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首页> 外文期刊>PLoS Computational Biology >OpenABM-Covid19—An agent-based model for non-pharmaceutical interventions against COVID-19 including contact tracing
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OpenABM-Covid19—An agent-based model for non-pharmaceutical interventions against COVID-19 including contact tracing

机译:Openabm-Covid19-一种基于代理的非药物干预措施,用于对Covid-19的非药物干预措施,包括联系跟踪

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SARS-CoV-2 has spread across the world, causing high mortality and unprecedented restrictions on social and economic activity. Policymakers are assessing how best to navigate through the ongoing epidemic, with computational models being used to predict the spread of infection and assess the impact of public health measures. Here, we present OpenABM-Covid19: an agent-based simulation of the epidemic including detailed age-stratification and realistic social networks. By default the model is parameterised to UK demographics and calibrated to the UK epidemic, however, it can easily be re-parameterised for other countries. OpenABM-Covid19 can evaluate non-pharmaceutical interventions, including both manual and digital contact tracing, and vaccination programmes. It can simulate a population of 1 million people in seconds per day, allowing parameter sweeps and formal statistical model-based inference. The code is open-source and has been developed by teams both inside and outside academia, with an emphasis on formal testing, documentation, modularity and transparency. A key feature of OpenABM-Covid19 are its Python and R interfaces, which has allowed scientists and policymakers to simulate dynamic packages of interventions and help compare options to suppress the COVID-19 epidemic.
机译:SARS-COV-2遍布世界各地,造成高死亡率和对社会和经济活动的前所未有的限制。政策制定者正在评估通过正在进行的疫情的最佳导航,计算模型用于预测感染的传播,并评估公共卫生措施的影响。在这里,我们展示了OpenaBM-Covid19:基于代理的仿真程序的疫情,包括详细的年龄分层和现实的社交网络。默认情况下,该模型将参数化为英国人口统计数据并校准到英国流行病,但是,它可以很容易地为其他国家重新参加。 Openabm-Covid19可以评估非药物干预措施,包括手动和数字接触跟踪和疫苗接种程序。它可以以每天几秒钟模拟100万人的人口,允许参数扫描和基于正式的统计模型的推断。该代码是开源,由学术界内外的团队开发,重点是正式测试,文档,模块化和透明度。 OpenABM-Covid19的一个关键特征是其Python和R接口,它允许科学家和政策制定者模拟干预措施的动态包,并帮助比较选项来抑制Covid-19流行病。

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