What drives the effectiveness of social distancing in combating COVID-19 across U.S. states?

是什么因素促使社交隔离措施在美国各州抗击新冠肺炎疫情中发挥了有效作用?

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Abstract

We propose a new theory of information-based voluntary social distancing in which people's responses to disease prevalence depend on the credibility of reported cases and fatalities and vary locally. We embed this theory into a new pandemic prediction and policy analysis framework that blends compartmental epidemiological/economic models with Machine Learning. We find that lockdown effectiveness varies widely across US States during the early phases of the COVID-19 pandemic. We find that voluntary social distancing is higher in more informed states, and increasing information could have substantially changed social distancing and fatalities.

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