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Deploying System Dynamics Models for Disease Surveillance in the Philippines

机译:部署菲律宾疾病监控的系统动力学模型

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Disease surveillance is vital for monitoring outbreaks and designing timely public health interventions. However, especially in developing contexts, disease surveillance efforts are constrained by challenges of data scarcity. In this work, we discuss the deployment of system dynamics simulation models to aid in local disease surveillance programs in the Philippines. More specifically, we propose that (a) available time series records of disease incidence can be used to initialize simulation models with high accuracy and interpretability, and (b) virtual experiments can be used to test various what-if scenarios in designing potential interventions. Experiments with three years of data on dengue fever in the Western Visayas region illustrate our proposed framework as deployed on the FASSSTER platform. We conclude by outlining challenges and potential directions for future work.
机译:疾病监测对于监测爆发和设计及时公共卫生干预至关重要。然而,特别是在发展中文中,疾病监测努力受到数据稀缺挑战的限制。在这项工作中,我们讨论了系统动态模拟模型的部署,以帮助菲律宾局部疾病监测计划。更具体地,我们提出(a)可用时间序列疾病入射的序列记录可用于初始化具有高精度和解释性的仿真模型,并且(b)虚拟实验可用于测试在设计潜在干预方面的各种情况。西部Visayas地区登革热三年数据进行了实验,说明了我们在队列车间部署的建议框架。我们通过概述未来工作的挑战和潜在指示来结束。

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