Data assimilation for online model calibration in discrete event simulation

Xiaolin Hu, Mingxi Yan
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Abstract

The increasing availability of real-time data collected from dynamic systems brings opportunities for simulation models to be calibrated online for improving the accuracy of simulation-based studies. Systematical methods are needed for assimilating real-time measurement data into simulation models. This paper presents a particle filter-based data assimilation method to support online model calibration in discrete event simulation. A joint state-parameter estimation problem is defined, and a particle filter-based data assimilation algorithm is presented. The developed method is applied to a discrete event simulation of a one-way traffic control system. Experiments results demonstrate the effectiveness of the developed method for calibrating simulation models’ parameters in real time and for improving data assimilation results.
离散事件模拟中在线模型校准的数据同化
从动态系统中收集到的实时数据越来越多,这为在线校准模拟模型以提高模拟研究的准确性提供了机会。将实时测量数据同化到仿真模型中需要系统的方法。本文提出了一种基于粒子滤波的数据同化方法,以支持离散事件仿真中的在线模型校准。本文定义了一个联合状态参数估计问题,并介绍了一种基于粒子滤波的数据同化算法。所开发的方法被应用于单向交通控制系统的离散事件仿真。实验结果证明了所开发方法在实时校准仿真模型参数和改进数据同化结果方面的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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