Optimizing control strategies for monkeypox through mathematical modeling

Mohamed Baroudi , Imane Smouni , Hicham Gourram , Abderrahim Labzai , Mohamed Belam
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Abstract

Monkeypox is a zoonotic viral disease similar to smallpox, has emerged as a major global health concern following the COVID-19 pandemic. This study presents a novel mathematical model aimed at analyzing various epidemiological factors, particularly the less-explored transmission from humans to monkeys, where both species act as carriers. Our approach integrates comprehensive awareness campaigns, strict security measures, and targeted health interventions to limit transmission between hosts, with the goal of reducing human infections and eliminating the virus among animal populations. The model utilizes the continuous-time Pontryagin maximum principle to determine and apply optimal control strategies, with iterative simulations conducted in Matlab. Our results, derived from these simulations, show that implementing all proposed preventative strategies—such as public awareness efforts, isolation of infected monkeys, and vaccination—simultaneously is the most effective method to control the virus’s spread. We observed a significant reduction in both human and animal infections when these strategies were combined. The study’s conclusions provide important insights into the transmission dynamics of monkeypox, highlighting the critical role of multifaceted intervention strategies in controlling outbreaks. These findings are expected to support more effective public health management and contribute to the global effort to contain and ultimately eradicate monkeypox.
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通过数学建模优化猴痘控制策略
猴痘是一种类似于天花的人畜共患病毒性疾病,在 COVID-19 大流行之后已成为全球关注的主要健康问题。本研究提出了一个新颖的数学模型,旨在分析各种流行病学因素,尤其是较少被研究的人猴传播,因为人猴都是病毒携带者。我们的方法整合了全面的宣传活动、严格的安全措施和有针对性的健康干预措施,以限制宿主之间的传播,从而达到减少人类感染和消灭动物群体中病毒的目的。该模型利用连续时间庞特里亚金最大原则来确定和应用最优控制策略,并在 Matlab 中进行迭代模拟。模拟结果表明,同时实施所有建议的预防策略,如提高公众意识、隔离受感染的猴子和接种疫苗,是控制病毒传播的最有效方法。我们观察到,当这些策略结合使用时,人类和动物的感染率都大幅下降。这项研究的结论为我们了解猴痘的传播动态提供了重要依据,突出了多方面干预策略在控制疫情爆发中的关键作用。这些发现有望为更有效的公共卫生管理提供支持,并有助于全球遏制并最终根除猴痘的努力。
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来源期刊
CiteScore
6.20
自引率
0.00%
发文量
138
审稿时长
14 weeks
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