鸡球虫病动态数学模型及一些控制策略

Q3 Mathematics
Yustina A. Liana, Mary C. Swai
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引用次数: 0

摘要

球虫病是由艾美耳菌引起的一种传染病。球虫病会感染禽类的消化系统,严重减缓其生长速度,对鸡造成严重的经济负担。为了深入了解鸡球虫病在种群中的传播动态,我们建立并分析了一个在有控制干预措施的情况下鸡球虫病传播动态的数学模型。实施了三种控制干预措施,即疫苗接种、环境卫生和治疗。研究旨在评估这些控制干预措施对球虫病传播动态的影响。利用微分方程理论,推导出模型的不变集,并发现模型的解在数学和生物学上都很重要。采用分析方法建立了平衡解,并研究了模型系统平衡的稳定性,同时进行了数值模拟以说明分析结果。利用新一代矩阵法获得了有效繁殖数,并建立了模型平衡的局部稳定性。当有效繁殖数小于 1 时,无病平衡被证明是局部稳定的。此外,还应用中心流形理论研究了分岔的性质及其对疾病预防的影响。另一方面,利用归一化前向敏感性指数进行敏感性分析,研究影响球虫病传播的参数。应针对对有效繁殖数量影响较大的参数进行控制,以减少疾病的传播。此外,还进行了数值模拟,以研究每种控制干预措施的贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mathematical Modeling of Coccidiosis Dynamics in Chickens with Some Control Strategies
Coccidiosis is an infectious disease caused by the Eimeria species. The species can infect a bird’s digestive system, severely slow down its growth, and is a serious economic burden for chickens. A mathematical model for the transmission dynamics of coccidiosis disease in chickens in the presence of control interventions has been formulated and analyzed to gain insights into the dynamics of the disease in the population. Three control interventions, namely vaccination, sanitation, and treatment, are implemented. The study intends to assess the effects of these control interventions in coccidiosis transmission dynamics. Using the theory of differential equations, the invariant set of the model was derived, and the model’s solution was found to be mathematically and biologically significant. Analytical methods are employed to establish equilibrium solutions and investigate the stability of the model system’s equilibria, while numerical simulations illustrate the analytical results. The effective reproduction number is obtained using the next-generation matrix method, and the local stability of the equilibria of the model is established. The disease-free equilibrium is proved to be locally stable when the effective reproduction number is less than unity. Also, the nature of the bifurcation and its implications for disease prevention are investigated through the application of the center manifold theory. On the other hand, sensitivity analysis is carried out to investigate the parameters that impact the transmission of coccidiosis disease using the normalized forward sensitivity index. The parameters that have a greater influence on the effective reproduction number should be targeted for control purposes to lessen the spread of disease. Furthermore, numerical simulation is performed to investigate the contribution of each control intervention.
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来源期刊
CiteScore
2.30
自引率
0.00%
发文量
36
审稿时长
3.5 months
期刊介绍: Abstract and Applied Analysis is a mathematical journal devoted exclusively to the publication of high-quality research papers in the fields of abstract and applied analysis. Emphasis is placed on important developments in classical analysis, linear and nonlinear functional analysis, ordinary and partial differential equations, optimization theory, and control theory. Abstract and Applied Analysis supports the publication of original material involving the complete solution of significant problems in the above disciplines. Abstract and Applied Analysis also encourages the publication of timely and thorough survey articles on current trends in the theory and applications of analysis.
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