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Active learning for multi-objective optimal road congestion pricing considering negative land use effect

机译:考虑负土地利用效应的多目标最佳道路拥堵定价的积极学习

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The road congestion pricing policy is implemented to alleviate traffic congestion and improve the efficiency of the transportation system during peak hours. However, the negative land use effect caused by this policy could not be ignored. How to design the optimal congestion toll that can not only ensure its positive effect on the transportation system but also reduce its negative effect on land use is an urgent problem to be solved. Given this, this paper proposed a multi-objective bilevel programming road congestion pricing model based on the integrated land use and transportation model to optimize the regional average accessibility, regional average land use diversity, and regional total flow time. Since the proposed problem is NP-hard, this paper innovatively proposed an active learning optimization algorithm based on multi-objective Bayesian optimization, which improves the computation efficiency of the bi-level programming model by automatically finding the next sampling point (candidate solution) according to the probability information. An empirical analysis of Jiangyin City demonstrated the effectiveness of the proposed approach in coordinating the relationship between land use and transportation and alleviating the negative land use effect caused by road congestion pricing. Moreover, the algorithm proposed in this paper can also be used to solve other transportation-related black box problems with high computation complexity.
机译:道路拥堵定价政策得到实施,以减轻交通拥堵,并在高峰时段提高运输系统的效率。但是,这一政策造成的负土地利用效应不能忽视。如何设计最佳拥堵收费,不仅可以确保其对运输系统的积极影响,还可以降低其对土地使用的负面影响是一个亟待解决的问题。鉴于这一点,本文提出了一种基于综合土地利用和运输模式的多目标均衡编程道路拥塞定价模型,以优化区域平均无障碍,区域平均土地利用多样性,以及区域总流量时间。由于提出的问题是NP - 硬,本文采用了一种基于多目标贝叶斯优化的主动学习优化算法,这通过自动查找下一个采样点(候选解决方案)来提高双级编程模型的计算效率概率信息。江阴市的实证分析展示了建议方法协调土地利用与运输关系的效力,减轻道路拥堵定价造成的负土地利用效应。此外,本文提出的算法还可用于解决具有高计算复杂性的其他与运输相关的黑匣子问题。

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