Optimal Allocation of Public Parking Slots Using Evolutionary Algorithms

Javier Arellano-Verdejo, E. Alba
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引用次数: 9

Abstract

This article presents an innovative approach based on an evolutionary algorithm to calculate the best allocation of available parking slots in a city according to the driver's preferences. We have worked with an urban scenario created with the SUMO traffic simulator, in which cars follow a pattern of real movements to go from a start position to the parking slot assigned by the algorithm. The results of the SUMO analysis of a potential solution are used for calculating its fitness value. Additionally, we have used different amounts of cars and parking slots to consider diverse loads of the system and therefore diverse algorithm behaviors. As a sanity check, we have compared the results versus other techniques, like random search and simulated annealing, obtaining a significant improvement in the results.
基于进化算法的公共车位优化分配
本文提出了一种基于进化算法的创新方法,根据驾驶员的偏好计算城市中可用停车位的最佳分配。我们用SUMO交通模拟器创建了一个城市场景,在这个场景中,汽车遵循真实的运动模式,从起点到达算法指定的停车位。潜在解的相扑分析结果用于计算其适应度值。此外,我们使用了不同数量的汽车和停车位来考虑系统的不同负载,从而考虑不同的算法行为。作为完整性检查,我们将结果与其他技术(如随机搜索和模拟退火)进行了比较,获得了结果的显着改进。
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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