基于连续凸化的多区域城市网络高效调度方法

IF 2 Q2 AUTOMATION & CONTROL SYSTEMS
Antonios Georgantas;Stelios Timotheou;Christos G. Panayiotou
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引用次数: 0

摘要

在城市交通网络中,早晨通勤者表现出多样化的出行模式,有些人在到达目的地之前需要中途停留,比如把孩子送到学校。当学校的开学时间同步时,就会产生高峰需求,加剧拥堵。为了应对这一挑战,我们考虑了在不同地区定义良好的宏观基本图的多区域城市网络中规范学校开学时间的问题。我们将问题表述为一个双目标混合整数非线性规划,旨在共同最小化(i)所有车辆花费的总时间,以及(ii)与当前学校开学时间的总体偏差。由于其大规模和组合性,以及多个相互关联的城市区域之间交通动态的非凸性,该问题具有挑战性。为了解决这些挑战,我们引入了一种连续的凸化算法,该算法迭代地收紧交通密度界限并凸化约束,从而能够获得有关优化问题的可行且有效的解决方案。数值实验表明,我们的方法产生了接近最优的结果,显著缓解了拥堵,提高了整体交通效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Successive Convexification-Based Approach for Efficient School Scheduling in Multi-Region Urban Networks
In urban traffic networks, morning commuters exhibit diverse travel patterns, with some needing to make intermediate stops, such as dropping off children at school, before reaching their destination. When schools have synchronized start times, this induces high peak demand, exacerbating congestion. To address this challenge, we consider the problem of regulating the start times of schools in a multi-region urban network characterized by well-defined Macroscopic Fundamental Diagrams in different regions. We formulate the problem as a bi-objective mixed-integer nonlinear program aiming to jointly minimize (i) the total time spent by all vehicles, and (ii) the overall deviation from current school start times. The problem is challenging due to its large-scale and combinatorial nature, as well as the nonconvexity present in the traffic dynamics across multiple interconnected urban regions. To address these challenges, we introduce a successive convexification algorithm that iteratively tightens traffic density bounds and convexifies constraints, enabling the acquisition of feasible and efficient solutions concerning the optimization problem. Numerical experiments demonstrate that our approach yields near-optimal results, significantly mitigating congestion and improving overall traffic efficiency.
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来源期刊
IEEE Control Systems Letters
IEEE Control Systems Letters Mathematics-Control and Optimization
CiteScore
4.40
自引率
13.30%
发文量
471
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