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Robust parameter design for system dynamics models: a formal approach based on goal-seeking behavior

机译:系统动力学模型的稳健参数设计:基于目标寻求行为的正式方法

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摘要

Parametric uncertainties in system dynamics models can cause undesirable behavior, and if unaccounted for in the design phase can impair the ability of the system to meet design requirements. Sensitivity analysis, while useful in the modeling process, does not by itself offer a systematic method to the problem of system design under uncertainties. In this work, we propose an optimization model-based approach with the aim of obtaining a parametric design for system dynamics models that is robust against uncertainties. Our research synthesizes recent developments in robust optimization technology, eigenvalue analysis and the goal-seeking behavior of decision agents. To this end, we develop a mathematical model that is computationally efficient to solve and effective in hedging against parametric uncertainties. Numerical case studies conducted using a hare and lynx model and an inventory-workforce model demonstrate significant improvements of the proposed designs in achieving system requirements under uncertainty.
机译:系统动力学模型中的参数不确定性可能会导致不良行为,如果在设计阶段未进行说明,则会损害系统满足设计要求的能力。灵敏度分析虽然在建模过程中很有用,但它本身并不能为不确定性下的系统设计问题提供系统的方法。在这项工作中,我们提出了一种基于优化模型的方法,旨在为系统动力学模型获得对不确定性具有鲁棒性的参数设计。我们的研究综合了鲁棒优化技术,特征值分析和决策主体的目标寻求行为的最新发展。为此,我们开发了一种数学模型,该模型在计算上可以有效求解,并且可以有效地对冲参数不确定性。使用野兔和天猫座模型以及库存劳动力模型进行的数字案例研究表明,在不确定性条件下,在实现系统要求方面,拟议设计有显着改进。

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