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首页> 外文期刊>Telecommunication systems: Modeling, Analysis, Design and Management >Context-aware negotiation, reputation and priority traffic light management protocols for VANET-based smart cities
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Context-aware negotiation, reputation and priority traffic light management protocols for VANET-based smart cities

机译:基于VANET的智能城市的上下文感知协商,声誉和优先交通光管理协议

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摘要

The traditional transportation system is based on a fixed-timed strategy to control the traffic congestion on urban roads. However, the increase of vehicle density in a smart city implies the variation and the conflict on the demand pattern of the drivers. The smart city development requires to create an efficient control plan for an intelligent traffic management system. In this paper, we aim to reduce the congestion at signalized intersections, and satisfy the needs of drivers according to their degree of displacement urgency. We use two optimization methods, namely the synchronization and the genetic algorithm (GA), where we develop three scheduling protocols. The first is the intelligent context-aware negotiation protocol (ICANP). This protocol allows the negotiating vehicles to cross the intersection. It enables each traffic light at the signalized intersection to negotiate the green time assigned to its phase. ICANP uses GA to optimize the crossing time in order to minimize the total waiting time of negotiating vehicles. Moreover, we introduce a negotiation protocol based on reputation, which minimises the congestion effect from incoming dishonest drivers. Finally, we propose an intelligent context-aware priority protocol (ICAPP), that considers the existence of priority vehicles. Upon arrival of at least one priority vehicle at the signalized intersection, ICAPP interrupts the green time of negotiating vehicles. A series of simulation showed that the proposed protocols reduce the total waiting time and the emissions of CO2 of vehicles at signalized intersection, in comparison with circular, ITLC and CATLS scheduling algorithms. Furthermore, formal complexity analysis and performance evaluation show the effectivity of our protocols.
机译:传统的交通系统基于固定定时的策略来控制城市道路上的交通拥堵。然而,智能城市的车辆密度的增加意味着司机需求模式的变化和冲突。智能城市开发需要为智能流量管理系统创建有效的控制计划。在本文中,我们的目标是减少信号交叉口的拥堵,并根据其位移紧急程度满足驱动程序的需求。我们使用两种优化方法,即同步和遗传算法(GA),在那里我们开发了三种调度协议。第一个是智能上下文感知协商协议(ICANP)。该协议允许谈判车辆交叉路口。它使信号交叉点处的每个流量都能够协商分配给其阶段的绿色时间。 ICANP使用GA优化交叉时间,以最大限度地减少谈判车辆的总等待时间。此外,我们介绍了一种基于声誉的谈判协议,这使得最大限度地减少了传入不诚实的驱动程序的拥塞效果。最后,我们提出了一种智能的背景知识优先级协议(ICAPP),其考虑了优先车辆的存在。在信号交叉口到达至少一个优先车辆时,ICAPP中断了谈判车辆的绿色时间。一系列模拟表明,与圆形,ITLC和CATL调度算法相比,所提出的协议减少了信号交叉口的车辆的总等待时间和二氧化碳排放。此外,形式的复杂性分析和绩效评估表明了我们协议的有效性。

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