Genetic-algorithm based approach for calibrating microscopic simulation models

Kyu-Ok Kim, L. Rilett
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引用次数: 33

Abstract

In the transportation field simulation has been widely used as a powerful tool for the analysis and design of transportation systems. The proper calibration of the input parameters of microscopic simulation models is essential if the model is to replicate supply characteristics, demand characteristics, and their interaction. These parameters affect the interaction among the driver, vehicle, and the roadway environment systems. This paper presents an automatic calibration approach for microscopic simulation model that is based on a genetic algorithm. The proposed approach can be demonstrated on a section of US 290 in Houston and a section of I-37 in San Antonio, Texas.
基于遗传算法的微观仿真模型标定方法
仿真作为一种分析和设计交通系统的有力工具,在交通运输领域得到了广泛的应用。如果微观模拟模型要复制供给特征、需求特征及其相互作用,那么正确校准微观模拟模型的输入参数是必不可少的。这些参数影响驾驶员、车辆和道路环境系统之间的相互作用。提出了一种基于遗传算法的微观仿真模型自动标定方法。所提出的方法可以在休斯顿290号美国公路和德克萨斯州圣安东尼奥I-37号州际公路的一段进行演示。
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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