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Distributed Optimal Traffic Lights Design for Large-Scale Urban Networks

机译:用于大型城市网络的分布式最佳红绿灯设计

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In this paper, we deal with the problem of dynamical assignment of traffic light schedules in large-scale urban networks. We present a model for signalized traffic networks, based on the cell transmission model, and then a simplified model based on averaging theory. The control objective is to improve traffic, optimizing traffic indexes such as total travel distance and density balancing. We design a scheme that decides the duty cycles of traffic lights, by solving a convex program. The optimization is done in real time, at each cycle of traffic lights, so as to take into account variable traffic demands. The scalability problem is tackled through the synthesis of a distributed optimization algorithm; this reduces the computational load significantly, since the large optimization problem is broken into small local subproblems, whose size does not grow with the size of the network, together with iterative exchanges of messages with few neighbor subproblems. The performance of the proposed approach is evaluated via numerical simulations in two different scenarios: a macroscopic (MATLAB-based) Manhattan grid and a microscopic scenario (based on Aimsun simulator) reproducing a portion of the city of Grenoble, France.
机译:在本文中,我们处理大型城市网络中交通灯表动态分配问题。我们基于小区传输模型提出了一种用于信号交通网络的模型,然后基于平均理论的简化模型。控制目标是改善流量,优化交通指标,例如总行程距离和密度平衡。我们通过解决凸面编程,设计了一种决定交通灯的占空比的方案。优化是实时完成的,在每个交通信号灯处,以考虑变量流量需求。通过分布式优化算法的合成来解决可伸缩性问题;这显着降低了计算负荷,因为大的优化问题被闯入小型本地子问题,其大小不会随网络大小而增长,与少数邻居子问题的迭代交换一起。通过两种不同场景的数值模拟评估所提出的方法的性能:宏观(基于MATLAB的)曼哈顿网格和微观场景(基于Aimsun模拟器)再现法国格勒诺布尔市的一部分。

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