在疫情爆发期间模拟感染行为相互作用:一种进化游戏理论方法
Pranav Verma1, Viney Kumar1, Samit Bhattacharyya1
1Disease Modelling Lab, Department of Mathematics, School of Natural Sciences, Shiv Nadar Institution of Eminence, Gautam Buddh Nagar 201314, India.
Mathematical biosciences and engineering : MBE
|September 3, 2025
概括
通过有效的风险沟通来促进自愿披露感染,可以破坏疾病的传播. 较高的感染严重程度增加了披露,减少了疫情期间的整体疾病发病率.
科学领域:
- 流行病学
- 游戏理论
- 数学生物学
背景情况:
- 有效的疾病爆发管理依赖于自愿披露潜在的感染和遵守自我隔离.
- 过去的流行病,如COVID-19,使用了隔离措施来减少疾病传播和耻辱感.
研究的目的:
- 开发一种游戏理论模型,分析疫情期间感染披露的行为相互作用.
- 确定打破传输链所需的最低自愿披露水平.
主要方法:
- 使用游戏理论框架来建模个人披露决策.
- 使用分数衍生方法来模拟疾病传播.
- 使用智利COVID-19住院数据进行校准的模型参数.
主要成果:
- 较高的传播率和感知到的感染严重程度激励了更多的自愿披露.
- 增加披露比例有效降低疾病发生率.
- 模型成功估计了行为参数和传播率.
结论:
- 自愿披露感染是控制疾病爆发的关键因素.
- 有效的风险沟通策略可以提高公开披露率.
- 了解行为动态是减轻流行病传播的关键.
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