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Centralized simulated annealing for alleviating vehicular congestion in smart cities

机译:集中模拟退火以缓解智慧城市的车辆拥堵

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Vehicular traffic congestion is a serious problem arising in many cities around the world, due to the increasing number of vehicles utilizing roads of a limited capacity. Often the congestion has a considerable influence on the travel time, travel distance, fuel consumption and air pollution. This paper proposes a novel dynamic centralized simulated annealing based approach for finding optimal vehicle routes using a VIKOR type of cost function. Five attributes: the average travel speed of the traffic, vehicles density, roads width, road traffic signals and the roads' length are utilized by the proposed approach to find the optimal paths. The average travel speed and vehicles density values can be obtained from the sensors deployed in smart cities and communicated to vehicles and roadside communication units via vehicular ad hoc networks. The performance of the proposed algorithm is compared with four other algorithms, over two test scenarios: Birmingham and Turin city centres. These show the proposed method improves traffic efficiency in the presence of congestion by an overall average of 24.05%, 48.88% and 36.89% in terms of travel time, fuel consumption and CO2 emission, respectively, for a test scenario from Birmingham city in the UK. Additionally, similar performance patterns are achieved for the a test with data from Turin, Italy.
机译:由于使用容量有限的道路的车辆数量的增加,在世界许多城市中,车辆交通拥堵是一个严重的问题。通常,交通拥堵会对出行时间,出行距离,燃料消耗和空气污染产生重大影响。本文提出了一种新的基于动态集中模拟退火的方法,该方法使用VIKOR类型的成本函数来查找最佳车辆路线。五个属性:交通的平均行进速度,车辆密度,道路宽度,道路交通信号和道路长度被所提出的方法用来寻找最佳路径。平均行驶速度和车辆密度值可以从部署在智慧城市中的传感器获取,并通过车辆自组织网络与车辆和路边通信单元通信。在两种测试场景下,将所提出算法的性能与其他四种算法进行了比较:伯明翰和都灵市中心。这些结果表明,对于来自英国伯明翰市的测试场景,所提出的方法在行驶拥堵的情况下,分别将出行时间,燃料消耗和二氧化碳排放量的总体平均效率提高了24.05%,48.88%和36.89%,分别达到24.05%,48.88%和36.89%。 。此外,使用来自意大利都灵的数据进行测试,可以达到类似的性能模式。

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