发现由于疫苗接种不足而易受流行病爆发影响的空间集群。

Jose Cadena, Achla Marathe, Anil Vullikanti
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引用次数: 0

摘要

近年来,美国各地出现了接种疫苗不足人口的地理集群。公共卫生应对涉及监测和实地工作,这需要大量资源。鉴于公共卫生资源往往有限,确定关键群集并对其进行排序,有助于确定优先次序并分配稀缺资源,用于监测和快速干预。我们将集群的临界性量化为如果集群免疫不足造成的额外感染数量。我们专注于寻找最大限度地利用这一措施的集群,并通过利用问题的结构特性开发有效的近似算法来寻找关键集群。我们的方法涉及解决一个更一般的问题,即在具有连通性约束的图上最大化子模函数。我们将我们的方法应用于明尼苏达州,在那里我们发现集群的临界性明显高于公共卫生中使用的启发式方法获得的集群。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Finding Spatial Clusters Susceptible to Epidemic Outbreaks due to Undervaccination.

Geographical clusters of undervaccinated populations have emerged in various parts of the United States in recent years. Public health response involves surveillance and field work, which is very resource intensive. Given that public health resources are often limited, identifying and rank-ordering critical clusters can help prioritize and allocate scarce resources for surveillance and quick intervention. We quantify the criticality of a cluster as the additional number of infections caused if the cluster is underimmunized. We focus on finding clusters that maximize this measure and develop efficient approximation algorithms for finding critical clusters by exploiting structural properties of the problem. Our methods involve solving a more general problem of maximizing a submodular function on a graph with connectivity constraints. We apply our methods to the state of Minnesota, where we find clusters with significantly higher criticality than those obtained by heuristics used in public health.

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