论文标题

翻转接触跟踪中的视角

Flipping the Perspective in Contact Tracing

论文作者

Loh, Po-Shen

论文摘要

我们引入了一个根本不同的范式以进行接触追踪:对于每个积极案例,不仅要求直接接触到隔离;取而代之的是,告诉所有人疾病刚刚发生的有多少关系(因此,“ 2”是紧密的身体接触的紧密身体接触)。这种已部署在可公开下载的应用程序中的新方法为由网络理论提供支持的新工具提供了大流行控制的新工具。就像天气卫星提供对飓风的预警预警一样,它使个人有能力看到传播从远处接近,并煽动行为改变以直接避免暴露。这种透视的视角使自然的自我保护本能,减少了对利他主义的依赖,并引起谨慎的态度减少了每种感染的社会附近的流血传播。因此,我们的新系统解决了行为协调问题,该问题妨碍了迄今为止的许多其他基于应用程序的干预措施。我们还提供了启发式数学分析,该分析表明,从用户的角度来看,我们的系统如何以非常低的采用阈值来实现临界质量(在某些常见类型的社区中可能低于10%,如第一次实用部署所示);此后,我们系统的设计自然会加速进一步的采用,同时也提醒了该应用程序的非用户。本文旨在为我们的方法奠定理论基础,并为沿许多维度进行进一步研究的领域开放。

We introduce a fundamentally different paradigm for contact tracing: for each positive case, do not only ask direct contacts to quarantine; instead, tell everyone how many relationships away the disease just struck (so, "2" is a close physical contact of a close physical contact). This new approach, which has already been deployed in a publicly downloadable app, brings a new tool to bear on pandemic control, powered by network theory. Like a weather satellite providing early warning of incoming hurricanes, it empowers individuals to see transmission approaching from far away, and incites behavior change to directly avoid exposure. This flipped perspective engages natural self-interested instincts of self-preservation, reducing reliance on altruism, and the resulting caution reduces pandemic spread in the social vicinity of each infection. Consequently, our new system solves the behavior coordination problem which has hampered many other app-based interventions to date. We also provide a heuristic mathematical analysis that shows how our system already achieves critical mass from the user perspective at very low adoption thresholds (likely below 10% in some common types of communities as indicated empirically in the first practical deployment); after that point, the design of our system naturally accelerates further adoption, while also alerting even non-users of the app. This article seeks to lay the theoretical foundation for our approach, and to open the area for further research along many dimensions.

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