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An infectious disease model on empirical networks of human contact: bridging the gap between dynamic network data and contact matrices

机译:基于人类接触经验网络的传染病模型:弥合动态网络数据与接触矩阵之间的差距

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摘要

BackgroundThe integration of empirical data in computational frameworks designed to model the spread of infectious diseases poses a number of challenges that are becoming more pressing with the increasing availability of high-resolution information on human mobility and contacts. This deluge of data has the potential to revolutionize the computational efforts aimed at simulating scenarios, designing containment strategies, and evaluating outcomes. However, the integration of highly detailed data sources yields models that are less transparent and general in their applicability. Hence, given a specific disease model, it is crucial to assess which representations of the raw data work best to inform the model, striking a balance between simplicity and detail.
机译:背景技术将经验数据集成到旨在模拟传染病传播的计算框架中带来了许多挑战,随着有关人类流动性和人际关系的高分辨率信息的可用性日益提高,这些挑战变得越来越紧迫。大量的数据有可能彻底改变旨在模拟场景,设计遏制策略和评估结果的计算工作。但是,高度详细的数据源的集成产生的模型不那么透明,而且适用性不强。因此,在给定特定疾病模型的情况下,至关重要的是评估原始数据的哪些表示最能为该模型提供信息,并在简单性和细节之间取得平衡。

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