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Optimal design and impact analysis of urban traffic regulations under ambient uncertainty

机译:环境不确定性下城市交通法规的优化设计与影响分析

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摘要

Decision-making in traffic regulations is challenging with uncertainty in the environment. In this research we extend probabilistic engineering design concepts to policy decision-making for urban traffic with variability from field data. City traffic is simulated using user equilibrium and cellular automata. A cellular automata (CA) model is developed by combing existing CA models with tailored rules for local traffic behaviors in Tainan, Taiwan. Both passenger sedans and motorcycles are considered with the possibility of passing between different types of vehicles. The tailpipe emissions from all mobile sources are modeled as Gaussian dispersion with finite line sources. Speed limits of all roads are selected as independent policy design variables, resulting in a problem with 50 dimensions. We first study the impacts of a particular policy-setting on traffic behaviors and on the environment under various sources of uncertainties. The genetic algorithm, combined with probabilistic analysis, is then used to obtain the optimal regulations with the minimal cost to the environment in compliance to the current ambient air quality standards.
机译:交通法规的决策面临环境不确定性的挑战。在这项研究中,我们将概率工程设计的概念扩展到城市交通的政策决策中,该决策具有现场数据的可变性。使用用户平衡和元胞自动机模拟城市交通。通过将现有的CA模型与针对台湾台南的本地交通行为的量身定制的规则相结合,开发了一种细胞自动机(CA)模型。轿车和摩托车都被认为可以在不同类型的车辆之间通过。来自所有移动源的排气排放被建模为具有有限线源的高斯色散。选择所有道路的速度限制作为独立的策略设计变量,导致出现50个尺寸的问题。我们首先研究各种不确定性因素下特定政策设置对交通行为和环境的影响。然后,将遗传算法与概率分析相结合,以符合当前环境空气质量标准的方式,以对环境的最低成本获得最佳法规。

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