在存在模型不足的情况下进行仿真元建模

Xiaowei Zhang, Lu Zou
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引用次数: 4

摘要

仿真模型通常用作决策过程中真实系统的代理。然而,没有一个仿真模型能完全代表现实。应该仔细评估模型不完备对系统性能预测的影响。我们提出了一种新的元建模方法来同时表征仿真模型及其模型缺陷。我们的方法利用仿真输出和真实数据来预测系统性能,并分别考虑了仿真模型的未知性能度量、仿真误差、未知模型不完备性和真实系统的观测误差所产生的四种不确定性。数值结果表明,新方法在一般情况下提供了更准确的预测。
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Simulation metamodeling in the presence of model inadequacy
A simulation model is often used as a proxy for the real system of interest in a decision-making process. However, no simulation model is totally representative of the reality. The impact of the model inadequacy on the prediction of system performance should be carefully assessed. We propose a new metamodeling approach to simultaneously characterize both the simulation model and its model inadequacy. Our approach utilizes both simulation outputs and real data to predict system performance, and accounts for four types of uncertainty that arise from the unknown performance measure of the simulation model, simulation errors, unknown model inadequacy, and observation errors of the real system, respectively. Numerical results show that the new approach provides more accurate predictions in general.
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