Optimal environmental testing frequency for outbreak surveillance

IF 3 3区 医学 Q2 INFECTIOUS DISEASES Epidemics Pub Date : 2024-02-15 DOI:10.1016/j.epidem.2024.100750
Jason W. Olejarz , Kirstin I. Oliveira Roster , Stephen M. Kissler , Marc Lipsitch , Yonatan H. Grad
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引用次数: 0

Abstract

Public health surveillance for pathogens presents an optimization problem: we require enough sampling to identify intervention-triggering shifts in pathogen epidemiology, such as new introductions or sudden increases in prevalence, but not so much that costs due to surveillance itself outweigh those from pathogen-associated illness. To determine this optimal sampling frequency, we developed a general mathematical model for the introduction of a new pathogen that, once introduced, increases in prevalence exponentially. Given the relative cost of infection vs. sampling, we derived equations for the expected combined cost per unit time of disease burden and surveillance for a specified sampling frequency, and thus the sampling frequency for which the expected total cost per unit time is lowest.

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疫情监测的最佳环境检测频率
病原体的公共卫生监测提出了一个优化问题:我们需要足够的采样来识别病原体流行病学中引发干预的变化,如新病原体的引入或流行率的突然上升,但又不能使监测本身的成本超过病原体相关疾病的成本。为了确定最佳采样频率,我们建立了一个引入新病原体的通用数学模型,这种病原体一旦引入,其流行率就会呈指数增长。考虑到感染与采样的相对成本,我们推导出了特定采样频率下疾病负担和监测的单位时间预期综合成本方程,从而得出了单位时间预期总成本最低的采样频率。
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来源期刊
Epidemics
Epidemics INFECTIOUS DISEASES-
CiteScore
6.00
自引率
7.90%
发文量
92
审稿时长
140 days
期刊介绍: Epidemics publishes papers on infectious disease dynamics in the broadest sense. Its scope covers both within-host dynamics of infectious agents and dynamics at the population level, particularly the interaction between the two. Areas of emphasis include: spread, transmission, persistence, implications and population dynamics of infectious diseases; population and public health as well as policy aspects of control and prevention; dynamics at the individual level; interaction with the environment, ecology and evolution of infectious diseases, as well as population genetics of infectious agents.
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