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首页> 外文期刊>IEEE Transactions on Intelligent Transportation Systems >An Exploratory Study of Two Efficient Approaches for the Sensitivity Analysis of Computationally Expensive Traffic Simulation Models
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An Exploratory Study of Two Efficient Approaches for the Sensitivity Analysis of Computationally Expensive Traffic Simulation Models

机译:计算性昂贵交通模拟模型敏感性分析的两种有效方法的探索性研究

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摘要

One of the main challenges arising when calibrating a complex traffic simulation model concerns the selection of the most important input parameters. The quasi-optimized trajectory-based elementary effects (quasi-OTEE) and the Kriging-based sensitivity analysis (SA) are two recently developed efficient approaches for the SA of computationally expensive simulation models. In this paper, two experimental studies using two different traffic simulation models (i.e., Aimsun and VISSIM) are presented to compare these two approaches and to better understand their advantages and disadvantages. Results show that both approaches are able to identify, to a good degree, the important parameters. In particular, the quasi-OTEE is better for screening the parameters, whereas the Kriging-based SA has higher precision in ranking the parameters. These findings suggest the following rule of thumb for the SA of computationally expensive traffic simulation models: the quasi-OTEE SA can be used first to screen the parameters and to decide which parameters to discard. Then, the Kriging-based SA can be used to refine the analysis and calculate first-order indexes to identify the correct rank of the important parameters.
机译:校准复杂的交通模拟模型时出现的主要挑战之一涉及最重要的输入参数的选择。准优化的基于轨迹的基本效应(准OTEE)和基于Kriging的灵敏度分析(SA)是最近开发的用于计算昂贵的仿真模型的SA的有效方法。在本文中,我们提出了使用两种不同的交通模拟模型(即Aimsun和VISSIM)进行的两项实验研究,以比较这两种方法并更好地了解它们的优缺点。结果表明,两种方法都可以在很大程度上确定重要参数。尤其是,准OTEE更适合筛选参数,而基于Kriging的SA在对参数进行排序时具有更高的精度。这些发现为计算昂贵的流量模拟模型的SA提出了以下经验法则:可以首先使用准OTEE SA筛选参数并确定要丢弃的参数。然后,基于Kriging的SA可以用于优化分析并计算一阶指标,以识别重要参数的正确等级。

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