Conservation-Based Modeling and Boundary Control of Congestion with an Application to Traffic Management in Center City Philadelphia

Xun Liu, H. Rastgoftar
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引用次数: 5

Abstract

This paper develops a conservation-based approach to model traffic dynamics and alleviate traffic congestion in a network of interconnected roads (NOIR). We generate a NOIR by using the Simulation of Urban Mobility (SUMO) software based on the real street map of Philadelphia Center City. The NOIR is then represented by a directed graph with nodes identifying distinct streets in the Center City area. By classifying the streets as inlets, outlets, and interior nodes, the model predictive control (MPC) method is applied to alleviate the network traffic congestion by optimizing the traffic inflow and outflow across the boundary of the NOIR with consideration of the inner traffic dynamics as a stochastic process. The proposed boundary control problem is defined as a quadratic programming problem with constraints imposing the feasibility of traffic coordination, and a cost function defined based on the traffic density across the NOIR.
基于守恒的拥堵建模与边界控制及其在费城中心城区交通管理中的应用
本文提出了一种基于守恒的方法来模拟交通动态并缓解互联道路网络(NOIR)中的交通拥堵。在费城中心城区真实街道地图的基础上,利用城市交通模拟(SUMO)软件生成NOIR。然后,NOIR由一个有向图表示,其中的节点标识中心城区的不同街道。通过将街道划分为入口节点、出口节点和内部节点,考虑到内部交通动态是一个随机过程,采用模型预测控制(MPC)方法,通过优化NOIR边界的交通流入和流出来缓解网络交通拥堵。本文将边界控制问题定义为具有交通协调可行性约束的二次规划问题,并根据NOIR的交通密度定义成本函数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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