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A Market-Inspired Approach for Intersection Management in Urban Road Traffic Networks

机译:市场启发的城市道路交通网络交叉口管理方法

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Traffic congestion in urban road networks is a costly problem that affects all major cities in developed countries. To tackle this problem, it is possible (i) to act on the supply side, increasing the number of roads or lanes in a network, (ii) to reduce the demand, restricting the access to urban areas at specific hours or to specific vehicles, or (iii) to improve the efficiency of the existing network, by means of a widespread use of so-called Intelligent Transportation Systems (ITS). In line with the recent advances in smart transportation management infrastructures, ITS has turned out to be a promising field of application for artificial intelligence techniques. In particular, multiagent systems seem to be the ideal candidates for the design and implementation of ITS. In fact, drivers can be naturally modelled as autonomous agents that interact with the transportation management infrastructure, thereby generating a large-scale, open, agent-based system. To regulate such a system and maintain a smooth and efficient flow of traffic, decentralised mechanisms for the management of the transportation infrastructure are needed. In this article we propose a distributed, market-inspired, mechanism for the management of a future urban road network, where intelligent autonomous vehicles, operated by software agents on behalf of their human owners, interact with the infrastructure in order to travel safely and efficiently through the road network. Building on the reservation based intersection control model proposed by Dresner and Stone, we consider two different scenarios: one with a single intersection and one with a network of intersections. In the former, we analyse the performance of a novel policy based on combinatorial auctions for the allocation of reservations. In the latter, we analyse the impact that a traffic assignment strategy inspired by competitive markets has on the drivers' route choices. Finally we propose an adaptive management mechanism that integrates the auction-based traffic control policy with the competitive traffic assignment strategy.
机译:城市道路网络中的交通拥堵是一个代价高昂的问题,会影响发达国家的所有主要城市。为了解决这个问题,有可能(i)在供应方面采取行动,增加网络中的道路或车道数量,(ii)减少需求,限制在特定时间进入市区或特定车辆或(iii)通过广泛使用所谓的智能运输系统(ITS)来提高现有网络的效率。与智能交通管理基础设施的最新进展一致,ITS已成为人工智能技术的一个有前途的应用领域。特别是,多代理系统似乎是ITS设计和实施的理想选择。实际上,可以自然地将驾驶员建模为与运输管理基础结构交互的自治代理,从而生成大型的,基于代理的开放式系统。为了规范这样的系统并保持交通的顺畅高效,需要分散的机制来管理交通基础设施。在本文中,我们提出了一种以市场为灵感的分布式机制,用于管理未来的城市道路网络,在该机制中,由软件代理代表其人类所有者操作的智能自动驾驶汽车与基础设施进行交互,以安全高效地行驶通过公路网。在Dresner和Stone提出的基于预留的交叉路口控制模型的基础上,我们考虑两种不同的情况:一种具有单个交叉路口,另一种具有交叉路口网络。在前者中,我们分析了基于组合拍卖的新政策对预订分配的表现。在后者中,我们分析了竞争市场激励下的交通分配策略对驾驶员路线选择的影响。最后,我们提出了一种自适应管理机制,该机制将基于拍卖的交通控制策略与竞争性交通分配策略相集成。

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