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Multi-agent systems in epidemiology: a first step for computational biology in the study of vector-borne disease transmission

机译:流行病学中的多主体系统:媒介生物学疾病传播研究中计算生物学的第一步

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摘要

BackgroundComputational biology is often associated with genetic or genomic studies only. However, thanks to the increase of computational resources, computational models are appreciated as useful tools in many other scientific fields. Such modeling systems are particularly relevant for the study of complex systems, like the epidemiology of emerging infectious diseases. So far, mathematical models remain the main tool for the epidemiological and ecological analysis of infectious diseases, with SIR models could be seen as an implicit standard in epidemiology. Unfortunately, these models are based on differential equations and, therefore, can become very rapidly unmanageable due to the too many parameters which need to be taken into consideration. For instance, in the case of zoonotic and vector-borne diseases in wildlife many different potential host species could be involved in the life-cycle of disease transmission, and SIR models might not be the most suitable tool to truly capture the overall disease circulation within that environment. This limitation underlines the necessity to develop a standard spatial model that can cope with the transmission of disease in realistic ecosystems.
机译:背景技术计算生物学通常仅与遗传或基因组研究相关。但是,由于计算资源的增加,计算模型在许多其他科学领域中被视为有用的工具。这样的建模系统与复杂系统的研究特别相关,例如新兴传染病的流行病学。到目前为止,数学模型仍然是传染病流行病学和生态学分析的主要工具,SIR模型可以看作是流行病学中的隐含标准。不幸的是,这些模型是基于微分方程的,因此,由于需要考虑太多的参数,因此变得非常难以管理。例如,在野生动物的人畜共患和媒介传播疾病的情况下,许多不同的潜在宿主物种可能参与疾病传播的生命周期,而SIR模型可能不是真正捕捉疾病内部总体疾病传播的最合适工具。那个环境。这种局限性强调了开发标准空间模型的必要性,该模型可以应对现实生态系统中疾病的传播。

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