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Sensitivity analysis of Repast computational ecology models with R/Repast

机译:R / Repast对Repast计算生态模型的敏感性分析

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Abstract Computational ecology is an emerging interdisciplinary discipline founded mainly on modeling and simulation methods for studying ecological systems. Among the existing modeling formalisms, the individual-based modeling is particularly well suited for capturing the complex temporal and spatial dynamics as well as the nonlinearities arising in ecosystems, communities, or populations due to individual variability. In addition, being a bottom-up approach, it is useful for providing new insights on the local mechanisms which are generating some observed global dynamics. Of course, no conclusions about model results could be taken seriously if they are based on a single model execution and they are not analyzed carefully. Therefore, a sound methodology should always be used for underpinning the interpretation of model results. The sensitivity analysis is a methodology for quantitatively assessing the effect of input uncertainty in the simulation output which should be incorporated compulsorily to every work based on in-silico experimental setup. In this article, we present R/Repast a GNU R package for running and analyzing Repast Simphony models accompanied by two worked examples on how to perform global sensitivity analysis and how to interpret the results.
机译:摘要计算生态学是一门新兴的交叉学科,主要建立在研究生态系统的建模和仿真方法之上。在现有的建模形式主义中,基于个体的建模特别适合捕获复杂的时空动态以及由于个体可变性而在生态系统,社区或种群中引起的非线性。此外,作为一种自下而上的方法,它对于提供有关产生某些观察到的全球动态的局部机制的新见解很有用。当然,如果模型结果基于单个模型执行并且没有仔细分析,则不会对模型结果做出任何认真的结论。因此,应始终使用正确的方法来对模型结果进行解释。灵敏度分析是一种用于定量评估模拟输出中输入不确定性的影响的方法,该方法应基于计算机内实验设置而强制纳入每项工作中。在本文中,我们为R / Repast提供了一个GNU R软件包,用于运行和分析Repast Simphony模型,并附带了两个有关如何执行全局敏感性分析和如何解释结果的有效示例。

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